US20200325469A1
2020-10-15
16/789,468
2020-02-13
Focused libraries of vectors or genetic packages that display, display and express, or comprise a member of a diverse family of antibody peptides, polypeptides or proteins and collectively display, display and express, or comprise at least a portion of the focused diversity of the family. The libraries have length and sequence diversities that mimic that found in native human antibodies.
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C12N15/1037 » CPC main
Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor; Recombinant DNA-technology; Processes for the isolation, preparation or purification of DNA or RNA; Isolating an individual clone by screening libraries Screening libraries presented on the surface of microorganisms, e.g. phage display, E. coli display
C07K16/005 » CPC further
Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies constructed by phage libraries
C40B40/08 » CPC further
Libraries , e.g. arrays, mixtures; Libraries containing only organic compounds; Libraries containing nucleotides or polynucleotides, or derivatives thereof Libraries containing RNA or DNA which encodes proteins, e.g. gene libraries
C12N15/10 IPC
Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor; Recombinant DNA-technology Processes for the isolation, preparation or purification of DNA or RNA
C07K16/00 » CPC further
Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
C40B40/02 » CPC further
Libraries , e.g. arrays, mixtures Libraries contained in or displayed by microorganisms, e.g. bacteria or animal cells; Libraries contained in or displayed by vectors, e.g. plasmids; Libraries containing only microorganisms or vectors
This application is a continuation of U.S. application Ser. No. 15/797,927, filed Oct. 30, 2017, now allowed, which is a continuation of U.S. application Ser. No. 13/571,661, filed Aug. 10, 2012, now U.S. Pat. No. 9,617,536, which is a continuation of U.S. application Ser. No. 13/250,520, filed Sep. 30, 2011, now U.S. Pat. No. 8,258,082, which is a continuation of U.S. application Ser. No. 12/762,051, filed Apr. 16, 2010, now U.S. Pat. No. 8,895,475, which is a continuation of U.S. application Ser. No. 11/416,460, filed on May 1, 2006, now abandoned, which is a continuation of U.S. application Ser. No. 10/026,925, filed on Dec. 18, 2001, now abandoned, which claims the benefit under 35 USC Β§ 119 of U.S. provisional application 60/256,380, filed Dec. 18, 2000, the entire content of each of which is herein incorporated by reference.
The present invention relates to focused libraries of genetic packages that each display, display and express, or comprise a member of a diverse family of peptides, polypeptides or proteins and collectively display, display and express, or comprise at least a portion of the focused diversity of the family. The focused diversity of the libraries of this invention comprises both sequence diversity and length diversity. In a preferred embodiment, the focused diversity of the libraries of this invention is biased toward the natural diversity of the selected family. In more preferred embodiment, the libraries are biased toward the natural diversity of human antibodies and are characterized by variegation in their heavy chain and light chain complementarity determining regions (βCDRsβ).
The present invention further relates to vectors and genetic packages (e.g., cells, spores or viruses) for displaying, or displaying and expressing a focused diverse family of peptides, polypeptides or proteins. In a preferred embodiment the genetic packages are filamentous phage or phagemids or yeast. Again, the focused diversity of the family comprises diversity in sequence and diversity in length.
The present invention further relates to methods of screening the focused libraries of the invention and to the peptides, polypeptides and proteins identified by such screening.
It is now common practice in the art to prepare libraries of genetic packages that individually display, display and express, or comprise a member of a diverse family of peptides, polypeptides or proteins and collectively display, display and express, or comprise at least a portion of the amino acid diversity of the family. In many common libraries, the peptides, polypeptides or proteins are related to antibodies (e.g., single chain Fv (scFv), Fv, Fab, whole antibodies or minibodies (i.e., dimers that consist of VH linked to VL)). Often, they comprise one or more of the CDRs and framework regions of the heavy and light chains of human antibodies.
Peptide, polypeptide or protein libraries have been produced in several ways in the prior art. See e.g., Knappik et al., J. Mol. Biol., 296, pp. 57-86 (20004, which is incorporated herein by references. One method is to capture the diversity of native donors, either naive or immunized. Another way is to generate libraries having synthetic diversity. A third method is combination of the first two. Typically, the diversity produced by these methods is limited to sequence diversity, i.e., each member of the library differs from the other members of the family by having different amino acids or variegation at a given position in the peptide, polypeptide or protein chain. Naturally diverse peptides, polypeptides or proteins, however, are not limited to diversity only in their amino acid sequences. For example, human antibodies are not limited to sequence diversity in their amino acids, they are also diverse in the lengths of their amino acid chains.
For antibodies, diversity in length occurs, for example, during variable region rearrangements. See e.g., Corbett et al., J. Mol. Biol., 270, pp. 587-97 (1997). The joining of V genes to J genes, for example, results in the inclusion of a recognizable D segment in CDR3 in about half of the heavy chain antibody sequences, thus creating regions encoding varying lengths of amino-acids. The following also may occur during joining of antibody gene segments: (i) the end of the V gene may have zero to several base deleted or changed; (ii) the end of the D segment may have zero to many bases removed or changed; (iii) a number of random bases may be inserted between V and D or between D and J; and (iv) the 5β² end of J may be edited to remove or to change several bases. These rearrangements result in antibodies that are diverse both in amino acid sequence and in length.
Libraries that contain only amino acid sequence diversity are, thus disadvantaged in that they do not reflect the natural diversity of the peptide, polypeptide or protein that the library is intended to mimic. Further, diversity in length may be important to the ultimate functioning of the protein, peptide or polypeptide. For example, with regard to a library comprising antibody regions, many of the peptides, polypeptides, proteins displayed, displayed and expressed, or comprised by the genetic packages of the library may not fold properly or their binding to an antigen may be disadvantaged, if diversity both in sequence and length are not represented in the library.
An additional disadvantage of prior art libraries of genetic packages that display, display and express, or comprise peptides, polypeptides and proteins is that they are not focused on those members that are based on natural occurring diversity and thus on members that are most likely to be functional. Rather, the prior art libraries, typically, attempt to include as much diversity or variegation at every amino acid residue as possible. This makes library construction time-consuming and less efficient than possible. The large number of members that are produced by trying to capture complete diversity also makes screening more cumbersome than it needs to be This is particularly true given that many members of the library will not be functional.
One objective of this invention is focused libraries of vectors or genetic packages that encode members of a diverse family of peptides, polypeptides or proteins wherein the libraries encode populations that are diverse in both length and sequence. The diverse length comprising components that contain motifs that are likely to fold and function in the context of the parental peptide, polypeptide or protein.
Another object of this invention is focused libraries of genetic packages that display, display and express, or comprise a member of a diverse family of peptides, polypeptides and proteins and collectively display, display and express, or comprise at least a portion of the focused diversity of the family. These libraries are diverse not only in their amino acid sequences, but also in their lengths. And, their diversity is focused so as to more closely mimic or take into account the naturally-occurring diversity of the specific family that the library represents.
Another object of this invention is diverse, but focused, populations of DNA sequences encoding peptides, polypeptides or proteins suitable for display or display and expression using genetic packages(such as phage or phagemids) or other regimens that allow selection of specific binding components of a library.
A further object of this invention is focused libraries comprising the CDRs of human antibodies that are diverse in both their amino acid sequence and in their length (examples of such libraries include libraries of single chain Fv(scFv), Fv, Fab, whole antibodies or minibodies (i.e., dimers that consist of VH linked to VL). Such regions may be from the heavy or light chains or both and may include one or, more of the CDRs of those chains. More preferably, they diversity or variegation occurs in all of the heavy chain and light chain CDRs.
It is another object of this invention to provide methods of making and screening the above libraries and the peptides, polypeptides and proteins obtained in such screening.
Among the preferred embodiments of this invention are the following:
1. A focused library of vectors or genetic packages that display, display and express, or comprise a member of a diverse family of human antibody related peptides, polypeptides and proteins and collectively display, display and express, or comprise at least a portion of the diversity of the antibody family, the vectors or genetic packages being characterized by variegated DNA sequences that encode a heavy chain CDR1 selected from the group consisting of:
2. A focused library of vectors or genetic packages that display, display and express, or comprise a member of a diverse family of human antibody related peptides, polypeptides and proteins and collectively display, display and express or comprise at least a portion of the diversity of the antibody facility, the vectors or genetic packages being characterized by variegated DNA sequences that encode a heavy chain CDR2 selected from the group consisting of:
3. A focused library of vectors or genetic packages that display, display and express, or comprise a member of a diverse family of human antibody related peptides, polypeptides and proteins and collectively display, display and express, or comprise at least a portion of the diversity of the antibody family, the vectors or genetic packages being characterized by variegated DNA sequences that encode a heavy chain CDR3 was selected from the group consisting of:
| (SEQβIDβNO:β8) | |
| (3)βYYCA211111111YFDAYTG, |
| (4)β | |
| (SEQβIDβNO:β9) | |
| YYCAR111S2S3111YFDYWG, |
| (SEQβIDβNO:β10) | |
| (5)βYYCA2111CSG11CY1YFDYWG, |
| (SEQβIDβNO:β11) | |
| (6)βYYCA211S1TIFG11111YFDYWG, |
Preferably, 1 in one or all of HC CDR3s (1) through (8) is 0.095. of each of G and Y and 0.048 of each of A, D, E, F H, 1, K, L, M, N, P, Q, R, S, T, V, and W.
4. A focused library of vectors or genetic packages that display, display and express, or comprise a member of a diverse family of human antibody related peptides, polypeptides and proteins and collectively display, display and express, or comprise at least a portion of the diversity of the antibody family, the vectors or genetic packages being characterized by variegated DNA sequences that encodes a kappa light chain CDR1 selected from the group consisting of:
| (SEQβIDβNO:β14) | |
| (1)βRASQ<1>V<2><2><3>LA | |
| (SEQβIDβNO:β15) | |
| (2)βRASQ<1>V<2><2><2><3>LA; |
5. A focused library of vectors or genetic packages that display, display and express, or comprise a member of a diverse family of human antibody related peptides, polypeptides and proteins and collectively display, display and express, or comprise at least a portion of the diversity of the-antibody family the vectors or genetic packages being characterized by variegated DNA sequences that encode a kappa light-chain CDR2 having the sequence:
| (SEQβIDβNO:β102) | |
| <1>AS<2>R<4><1>, |
6. A focused library of vectors or genetic packages that display, display and express, or comprise a member of a diverse family of human antibody related peptides, polypeptides and proteins and collectively display, display and express, or comprise at least a portion of the diversity of the antibody family, the vectors or genetic packages being characterized by variegated DNA sequences that encode a kappa light chain CDR3 selected from the groups consisting of:
| (SEQβIDβNO:β16) | |
| (1)βQQ<3><1><1><1>P<1>T, |
7. A focused library of vectors or genetic packages that display, display and express, or comprise a member of a diverse family of human antibody related peptides, polypeptides and proteins and collectively display, display and express, or comprise at least a portion of the diversity of the antibody family, the vectors or genetic packages being characterized by variegated DNA sequences that encode a lambda light chain CDR1 selected from the group consisting of:
| (SEQβIDβNO:β104) | |
| (2)βG<2><4>L<4><4><4><3><4><4>, |
8. A focused library of vectors or genetic packages that display, display and express, or comprise a member of a diverse family of human antibody related peptides, polypeptides and proteins and collectively display, display and express, or comprise at least a portion of the diversity of the antibody family, the vectors or genetic packages being characterized by variegated DNA sequences that encode a lambda light chain CDR2 has the sequence:
| (SEQβIDβNO:β105) | |
| <4><4><4><2>RPS |
9. A focused library of vectors or genetic packages that display, display and express, or comprise a member of a diverse family of human antibody related peptides, polypeptides and proteins and collectively display, display and express, or comprise at least a portion of the diversity of the antibody family, the vectors or genetic packages being characterized by variegated DNA sequences that encode a lambda light chain CDR3 selected from the group consisting of:
| (SEQβIDβNO:β19) | |
| (2)β<5>SY<1><5>S<5><1><4>V, |
10. A focused library comprising variegated-DNA sequences that encode a heavy chain CDR selected from the group consisting of:
11. The focused library comprising one or more of the variegated DNA sequences that encodes a heavy chain CDR of 1, 2 and 3 and further comprising variegated DNA sequences that encodes a light chain CDR selected from the group consisting of
12. A population of variegated DNA sequences as described in 1-11 above.
13. A population of vectors comprising the variegated DNA sequences as described in 1-11 above.
Antibodies (βAbβ) concentrate their diversity into those regions that are involved in determining affinity and specificity of the Ab for particular targets. These regions may be diverse in sequence or in length. Generally, they are diverse In both ways. However, within families of human antibodies the diversities, both in sequence and in length, are not truly random. Rather, some amino acid residues are preferred at certain positions of the CDRs and some CDR lengths are preferred. These preferred diversities account for the natural diversity of the antibody family.
According to this invention, and as more fully described below, libraries of vectors and genetic packages that more closely mirror the natural diversity, both in sequence and in length, of antibody families, or portions thereof are prepared and used.
(a) Framework
The heavy chain (βHCβ) Germ-Line Gene (GLG) 3-23 (also known as 1/1)-47) accounts for about 12% of all human Abs and is preferred as the framework in the preferred embodiment of the invention. It should, however, be understood that other well-known frameworks, such as 4-34, 3-30, 3-30.3 and 4-30.1, may also be used without departing from the principles of the focused diversities of this invention.
In addition, JH4(YFDYWGQGTLVTVSS; SEQ ID NO:20) occurs more often than JH3 in native antibodies. Hence, it is preferred for the focused libraries of this invention. However, JH3 (AFDIWGQGTMVTVSS; SEQ ID NO:21) could as well be used.
(i) CDR1
For CDR1, GLGs provide CDR1s only Of the lengths 5, 6, and 7. Mutations during the maturation of the v-domain gene, however, can lead to CDR1s having lengths as short as 2 and as long as 16. Nevertheless, length 5, predominates. Accordingly, in the preferred embodiment of this invention the preferred HC CDR1 is 5 amino acids, with less preferred CDR1s having lengths of 7 and 14. In the most preferred libraries of this invention, all three lengths are used in proportions similar to those found in natural antibodies.
(ii) CDR2
GLGs provide CDR2s only of the lengths 15:19, but mutations during maturation may result in CDR2s of lengths from 16 to 28 amino acids. The lengths 16 and 17 predominate in mature Ab genes. Accordingly, length 17 is the preferred length for HC CDR2 of the present invention. Less preferred HC CDR2s of this invention have lengths 16 and 19. In the most preferred focused libraries of this invention, all three lengths are included in proportions similar to those found in natural antibody families.
(iii) CDR3
HC CDR3s vary in length. About half of human HCs consist of the components: V::nz::D::ny::JHn where V is a V gene, nz is a series of bases (mean 12) that are essentially random, D is a D segment, often with heavy editing at both ends, ny is a series of bases (mean 6) that are essentially random, and JH is one of the six JH segments, often with heavy editing at the 5β² end. The D segments appear to provide spacer segments that allow folding of the IgG. The greatest diversity is at the junctions of y with D and of D with JH.
In the preferred-libraries of this invention both types of HC CDR3s are used. In HC CDR3s that have no identifiable D segment, the structure is V::nz::JHn where JH is usually edited at the 5β² end. In HC CDR3s that have an identifiable D segment, the structure is V::nz::D::ny::JHn.
(i) CDR1
In 5 amino acid length CDR1, examination of a 3D model of a humanized Ab showed that the side groups of residues 1, 3, and 5 were directed toward the combining pocket. Consequently, in the focused libraries of this invention, each of these positions may be selected from any of the native amino acid residues, except cysteine (βCβ). Cysteine can form disulfide bonds, which are an important component of the canonical Ig fold. Having free thiol groups Could, thus, interfere with proper folding of the HC and could lead to problems in production or manipulation of selected Abs. Thus, in the focused libraries of this invention cysteine is excluded from positions 1; 3 and 5 of the preferred 5 amino acid CDR1s. The other 19 natural amino acids residues may be used at positions 1, 3 and 5. Preferably, each is present in equimolar ratios in the variegated libraries of this invention.
3D modeling also suggests that the side groups of residue 2 in a 5 amino acid CDR1 are directed away from the combining pocket. Although this position shows substantial diversity, both in GLG and mature genes, in the focused libraries of this invention this residue is preferably Tyr (Y) because it occurs in 681/820 mature antibody genes. However, any of the other native amino acid residues, except Cys (C), could also be used at this position.
For position 4, there is also some diversity in GLG and mature antibody genes. However, almost all mature genes have uncharged hydrophobic amino acid residues: A, G, L, P, F, M, W, I, V, at this position. Inspection of a 3D model also shows that the side group of residue 4 is packed into the innards of the HC. Thus, in the preferred embodiment of this invention which uses framework 3-23, residue 4 is preferably Met because it Is likely to fit very well into the framework of 3-23. With other frameworks, a similar fit consideration is used to assign residue 4.
Thus, the most preferred HC CDR1 of this invention consists of the amino acid sequence <1>Y<I>M<1> where <1> can be any one of amino acid residues: A, D, E, G, H, I, K, L, M, N, R, Q, S, T, V, W, Y. (not C), preferably present at each position in an equimolar amount. This diversity is shown in the context of a framework 3-23:JH4 in Table 1. It has a diversity of 6859-fold.
The two less preferred HC CDR1s of this invention have length 7 and length 14. For length 7, a preferred variegation is (S/T)1(S/G/<1>)2(S/G/<1>)3Y4Y5W6(S/G/<1>)7 (SEQ ID NO:107); where (S/T) indicates an equimolar mixture of Ser and Thr codons; (S/G/<1>) indicates a mixture Of 0.2025 S, 0.2025 G, and 0.035 for each of A, D, E, F, H, I, K, L, M, N, P, Q, R, T, V, W, Y. This design gives a predominance of Ser and Gly at positions 2, 3, and 7, as occurs in mature HC genes. For length 14, a preferred variegation is VSGGSIS<1><1><1>YYW<l>(SEQ ID NO:108),where <1> is an equimolar mixture of the 19 native amino acid residues, except Cys (C).
The DNA that encodes these preferred HC CDR1s is preferably synthesized using trinucleotide building blocks so that each amino acid residue ii present in essentially equimolar or other described amounts. The preferred codons for the <1> amino acid residues are gct, gat, gag, ttt, ggt, cat, att, aag, ctt, atg, aat, cct, cag, cgt, tct, act, gtt, tgg, and tat. Of course, other codons for the chosen amino acid residue could also be used.
The diversity oligonucleotide (ON). is preferably synthesized from BspEI to BstXI (as shown in Table 1) and can, therefore, be incorporated either by PCR synthesis using overlapping ONs or introduced by ligation of BspEI/BstXI-cut fragments. Table 2 shows the oligonucleotides that embody the specified variegations of the preferred length 5 HC CDR1s of this invention. PCR using ON-R1V1vg, ON-R1top, and ON-R1bot gives a dsDNA product of 73 base-pairs, cleavage with 14spEI and BstXI trims 11 and 13 bases from the ends and provides cohesive ends that can be ligated to similarly cut vector having the 3-23 domain shown in Table 1. Replacement of ON-R1V1vg with either ONR1V2vg or ONR1V3vg (see Table 2) allows synthesis of the two alternative diversity patternsβthe 7 residue length and the 14 residue length HC CDR1.
The more preferred libraries of this invention comprise the 3 preferred HC CDR1 length diversities. Most preferably, the 3 lengths should be incorporated in approximately the ratios in which they are observed in antibodies selected without reference to the length of the CDRs. For example, one sample of 1095 HC genes have the three lengths present in the ratio: L=5:L=7:L=14::820:175:23::0.80:0.17:0.02. This is the preferred ratio in accordance with this invention.
(ii) CDR2
Diversity in HC CDR2 was designed with the same considerations as for HC CORI: GLG sequences, mature sequences and 3D structure. A preferred length for CDR2 is 17, as shown in Table 1. For this preferred 17 length CDR2, the preferred variegation in accordance with the invention is: <2>I<2><3>SGG<1>T<1>YADSVKG (SEQ ID NO:2), where <2> indicates any amino acid residue selected from the group of Y, R, W, V, G and S (equimolar mixture), <3> is P, S and G or P and S only (equimolar mixture), and <1> is any native amino acid residue except C (equimolar mixture).
ON-R2V1vg shown in Table 3 embodies this diversity pattern. It is preferably synthesized so that fragments of dsDNA containing the BstXI and XbaI site can be generated by PCR. PCR with ON-R2V1vg, ON-R2top, and ONR2bot gives a dsDNA product of 122 base pairs. Cleavage with BstXI and XbaI removes about 10 bases from each end and produces cohesive ends that can be ligated to similarly cut vector that contains the 3-23 gene-shown in Table 1.
In an alternative embodiment for a 17 length HC CDR2, the following variegation may be used; <1>I<4><1><1>G<5><1><1><1>YADSVKG(SEQ ID NO:3), where <1> is as described above for the more preferred alternative of HC CDR2; <4> indicates an equimolar mixture of DINSWY, and <5> indicates an equimolar mixture of SGDN. This diversity pattern is embodied in ON-R2V2vg shown in Table 3. Preferably, the two embodiments are used in equimolar mixtures in the libraries of this invention.
Other preferred HC CDR2s have lengths 16 and 19.
| Lengthβ16: | |
| (SEQβIDβNO:β4) | |
| <1>I<4><1><1>G<5<1><1>YNPSLKG; | |
| (SEQβIDβNO:β5) | |
| Length:β19: | |
| <1>I<8>S<1><1><1>GGYY<1>YAASVKG, |
(iii) CDR3
The preferred libraries of this invention comprise several BC CDR3 components. Some of these will have only sequence diversity. Others will have sequence diversity with embedded D segments to extend the length, while also incorporating sequences known to allow Igs to fold. The HC CDR3 components of the preferred libraries of this invention and their diversities are depicted in Table 4: Components 1-8.
This set of components was chosen after studying the sequences of 1383 human BC sequences. The proposed components are meant to fulfill the following goals:
1) approximately the same distribution of lengths as seen in native Ab genes;
2) high level of sequence diversity at places having high diversity in native Ab genes; and
3) incorporation of constant sequences often seen in native Ab genes.
Component 1 represents all the genes having lengths 0 to 8 (counting from the YYCAR motif at the end of FR3 to the WG dipeptide motif near the start of the J region, i.e., FR4). Component 2 corresponds the all the genes having lengths 9 or 10. Component 3. corresponds to the genes having lengths 11 or 12 plus half the genes having length 13. Component 4 corresponds to those having length 14 plus half those having length 13. Component 5 corresponds to the genes having length 15 and half of those having length 16. Component. 6 corresponds to genes of length 17 plus half of those with length 16. Component 7 corresponds to those with length 18. Component 8 corresponds to those having length 19 and greater. See Table 4.
For each HC CDR3 residue having the diversity <1>, equimolar ratios are preferably not used. Rather, the following ratios are used 0.095 [G and Y] and 0.048 [A, D, E, F, H, I, K, L, M, N, P, Q, R, S, T, V, and W]. Thus, there is a double dose of G and Y with the other residues being in equimolar ratios. For the other diversities, e.g., KR or SG, the residues are present in equimolar mixtures.
In the preferred libraries of this invention the eight components are present in the following fractions: 1 (0.10), 2 (0.14), 3 (0.25), 4 (0.13), 5 (0.13), 6 (0.11), 7 (0.04) and 8 (0.10). See Table 4.
In the more preferred embodiment of this invention, the amounts of the eight components is adjusted because the first component is not complex enough to justify including it as 10% of the library. For example, if the final library were to have 1Γ109 members, then 1Γ108 sequences would come from component 1, but it has only 2.6Γ105 CDR3 sequences so that each one would occur in Λ385 CDR1/2 contexts. Therefore, the more preferred amounts of the eight components are 1(0.02), 2(0.14), 3(0.25), 4(0.14), 510.14), 6(0.12), 7(0.68), 8(0.11). In accordance with the more preferred embodiment component 1 occurs in Λ77 CDR1/2 contexts and the other, longer CDR3s occur more often.
Table 5 shows vgDNA that embodies each of the eight HC CDR3 components shown in Table 4. In Table 5, the oligonucleotides (ON) Ctop25, CtprmA, C8prmB, and CBot25 allow PCR amplification of each of the variegated ONs (vgDNA): C1t08, C2t10, C3t12, C4t14, C5t15, C6t17, C7t18, and C8t19. After amplification, the dsDNA can be cleaved with AfiII and BstEII (or KpnI) and ligated to similarly cleaved vector that contains the remainder of the 3-23 domain. Preferably, this vector already contains diversity in one, or both, of CDR1 and CDR2 as disclosed herein. Most preferably, it contains diversity in both the CDR1 and CDR2 regions. It is, of course, to be understood that the various diversities can be incorporated into the vector in any order.
Preferably, the recipient vector originally contains a stuffer in place of CDR1, CDR2 and CDR3 so that there will be no parental sequence that would then occur in the resulting library. Table 6 shows a version of the V3-23 gene segment with each CDR replaced by a short segment that contains both stop codons and restriction sites that will allow specific cleavage of any vector that does not have the stuffer removed. The stuffer can either be short and contain a restriction enzyme site that will not occur in the finished library, allowing removal of vectors that are not cleaved by both AfiII and BstEII (or AionI) and religated. Alternatively, the stuffer could be 200-400 bases long so that uncleaved or once-cleaved vector can be readily separated from doubly cleaved vector.
(i) Kappa Chain
(a) Framework
In the preferred embodiment of this invention, the kappa light chain is built in an A27 framework with a JK1 region. These are the most common V and J regions in the native genes. Other frameworks, such as 012, L2, and All, and other J regions, such as JK4, however, may be used without departing from the scope of this invention.
(b) CDR1
In native human kappa chains, CDR1s with lengths of 11, 12, 13, 16, and 17 were observed with length 11 being predominant and length 12 being well represented. Thus, in the preferred embodiments of this invention LC CDR1s of length 11 and 12 are used in an and mixture similar to that observed in native antibodies), length 11 being most preferred. Length 11 has the following sequence: RASQ<1>V<2><2><3>LA (SEQ ID NO:14) and Length 12 hag the following sequence: RASQ<1>V<25<2><2><3>LA (SEQ ID NO:15), wherein <1> is an equimolar mixture of ill of the native.-amino acid residues, except C, <2> is 0.2 S and 0.044 of each of ADEFGHIKLMNPQRTVWY, and <3> is 0.2.Y and 0.044 each of A. D, E, F, G, H, 1, K, L, M, N, Q, R, T, V, W and Y. In the most preferred embodiment of this invention, both CDR1. lengths are used. Preferably, they are present in a ratio of 11:12::154:73:0.68:0.32.
(c) CDR2
In native kappa, CDR2 exhibits only length 7. This length is used in the preferred embodiments of-this invention. It has the sequence <1>AS<2>R<4><1>, wherein <1> is an-equimolar mixture of amino acid residues ADEFGHIKLMNPQRSTVWY; <2> is 0.2 S and 0.004 of each of ADEFGHIKLMNPQRTVWY; and <4> is 0.2 A and 0.044 of each of DEFGHIKLMNPQRSTUWY.
(d) CDR3
In native kappa, CDR3 exhibits lengths of 4, 6, 7; 8, 9, 10, 11, 12, 13, 0.0 . . . and 19. While any of these lengths and mixtures of them can be employed in this invention, we prefer lengths 8, 9 and 10, length 9 being more preferred. For the preferred Length 9, the sequence is, QQ<3><1><1><1>P<1>T, wherein <1> is an equimolar mixture of amino acid residues ADEFGHIKLMNPQRSTVWY and <3> is 0.2? and 0.044 each of ADEFGHIKLWQRSVW. Length 8 is preferably QQ33111P and Length 10 is Preferably QQ3211PP1T, wherein 1 and 3 are as defined for Length 9 and 2 is S (0.2) and 0.044 each of ADEFGHIKLMNPQRTVWY. A mixture of all 3 lengths being most preferred (ratios as in native antibodies), i.e., 8:9:10i28:166:63::0.1:0.65:0.25.
Table 7 shows a kappa chain gene of this invention, including a PlacZ promoter a ribosome-binding site, and signal sequence (MI3 III signal). The DNA sequence encodes the GLG amino acid sequence but does not comprise the GLG DNA sequence. Restriction sites are designed to fall within each framework region so that diversity can be cloned into the CDRs. XmaI and EspI are in FR1, SexAI is in FR2, RsrII is in FR3, and KpnI (or Acc65I), are in FR4. Additional sites are provided in the constant kappa chain to facilitate construction of the gene.
Table 7 also shows a suitable scheme of variegation for kappa. In .CDR1, the most preferred length 11 is depicted. However, most preferably both lengths 11 and 12 are used. Length 12 in CDR1 can be construed by introducing codon 51 as <2> (i.e. a Ser-biased mixture). CDR2 of kappa is always 7 codons. Table 7 shows a preferred variegation scheme for CDR2. Table 7 Shows a variegation scheme for the most preferred CDR3 (length 9). Similar variegations can be lied for CDRs of length 8 and 10. In the preferred embodiment of this invention, those three lengths (8, 9 and 10) are included in the libraries of this invention in the native ratios, as described above.
Table 9 shows series of diversity oligonucleotides and primers that may be used to construct the kappa chain diversities depicted in Table 7.
(ii) Lambda Chain
(a) Framework
The lambda chain is preferably built in a 2a2 framework with an L2J region. These are the most common V and J regions in the native genes. Other frameworks, such as 31, 4b, la and 6a, and other J regions, such as L1J, L3J and L7J, however, may be used without departing from the scope of this invention.
(b) CDR1
In native human lambda chains, CDR1s with length 14. predominate, lengths 11, 12 and 13 also occur. While any of these can be used in this invention, lengths 11 and 14 are preferred. For length 11 the sequence is: TG<2><4>L<4><4><4><3><4><4>(SEQ ID NO:22) and for Length 14 the sequence is: TG<1>SS<2>VG<1><3><2><3>VS (SEQ ID NO:18), wherein <1> is 0.27 T, 0.21 G and 0.027 each of ADEFHIKLMNPQRSVWY; <2> is 0.27 D, 0.27 N and 0.027 each of AEFGHIKLMPQRSTVWY; <3> is 0.36 Y and 0.0355 each of ADEFGHIKLMNPQRSTVW; and <4> is an equimolar mixture of amino acid residues ADEFGHIKLMNPQRSTVWY. Most preferably, Mixtures (similar to those occurring in native antibodies) preferably, the ratio is 11:14::23:46::0.33:0.67 of the three lengths are used.
(c) CDR2
In native human lambda chains4.CDR2s with length 7 are by far the most common. This length is preferred in this invention. The sequence of this Length 7 CDR2 is <4><4><4><2>RPS, wherein <2> is 0.27 D, 0.27 N, and 0.027 each of AEFGHIKLMPQRTVWY and <4> is an equimolar mixture of amino acid residues ADEFGHIKLMNPQRSTVW.
(d) CDR3
In native human lambda chains, CDR3s of length 10 and 11 predominate, while length 9 is also common. Any of these three lengths can be used in the invention. Length 11 is preferred and mixtures of 10 and 11 more preferred. The sequence of Length 11 is <4><5><4><2><4>S<4><4><4><4>V, where <2> and <4> are as defined for the lambda CORI and <5> is 0.36 S and 0.0355 each of ADFFGHIKLMNFORTVWY. The sequence of Length 10 is <5>SY<1><5>S<5><1><4>V (SEQ ID NO:19), wherein <1> is an equimolar mixture of ADEFGHIKLMNPQRSTVWY; and <4> and <5> are as defined for Length 11. The preferred mixtures of this invention comprise an equimolar mixture of Length 10 and Length 11. Table 8 shows a preferred focused lambda light chain diversity in accordance with this invention.
Table 9 shows a series of diversity oligonucleotides and primers that may be used to construct 10 the lambda chain diversities depicted in Table 7.
The diversities of heavy chain and the kappa and lambda light chains are best constructed in separate vector's. First a synthetic gene is designed to embody each of the synthetic variable domains. The light chains are bounded by restriction sites for ApaLI (positioned at the very end of the signal sequence) and AscI (positioned after the stop codon). The heavy chain is bounded by SfiI (positioned within the PelB signal sequence) and NotI (positioned in the linker between CH1 and the anchor protein). Signal sequences other than PelB may also need, e.g., a M13 pIII signal sequence.
The initial genes are made with βstufferβ sequences in place of the desired CDRs. A βstufferβ is a sequence that is to be cut away and replaced by diverse DNA but which does not allow expression βof a functional antibody gene. For example, the stuffer may contain several stop codons and restriction sites that will not occur in the correct finished library vector. For example, in Table 10, the stuffer for CDR1 of kappa A27 contains a StuI site. The vgDNA for CDR1 is introduced as a cassette from EspI, XmaI, or Af1II to dither SexAI or KasI. After the ligation, the DNA is cleaved with Still; there should be no StuI sites in the desired vectors.
The sequences of the heavy chain gene with stuffers is depicted in Table 6. The sequences of the kappa light chain gene with stuffers is depicted in Table 10. The sequence of the lambda light chain gene with stuffers is depicted in Table 11.
In another embodiment of the present invention the diversities of heavy chain and the kappa or lambda light chains are constructed in .a single vector or genetic packages (e.g., for display or display and expression) having appropriate restriction sites that allow cloning of these chains. The processes to construct such vectors are well known and widely used in the art. Preferably, a heavy chain and Kappa light Chain library and a heavy chain and lambda light chain library would be prepared separately. The two libraries, most preferably, will then be mixed in equimolar amounts to attain maximum diversity.
Most preferably, the display is had on the surface of a derivative of M13 phage. The most preferred vector contains all the genes of M13, an antibiotic resistance-gene, and the display cassette. The preferred vector is provided with restriction sites that allow introduction and excision of members of the diverse family of genes, as cassettes. The preferred vector is stable against rearrangement under the growth conditions used to amplify phage.
In another embodiment of this invention, the diversity captured by the methods of the present invention may be displayed and/or expressed in a phagemid vector (e.g., pCES1) that displays and/or expresses the peptide, polypeptide or protein. Such vectors may also be used to store the diversity for subsequent display and/or expression using other vectors or phage.
In another embodiment of this invention, the diversity captured by the methods of the present invention may be displayed and/or expressed in a yeast vector.
| TABLEβ1 |
| 3-23:JH4βCDR1/2βdiversityβ=β1.78βΓβ108 |
| βββββββββββββββββββββββββββFR1(VP47/V3-23)--------------- |
| ββββββββββββββββ20β21β22ββββ23ββ24ββ25ββ26ββ27ββ28ββ29ββ30 |
| (SEQβIDβNO:β99)βAββMββAβββββEβββVβββQβββLβββLβββEβββSβββG |
| ctgtctgaacββββββccβatgβgccβgaa/gtt/caa/ttg/tta/gag/tct/ggt/ |
| Scabβ.....βββββNcoI....βββββββββMfeI |
| βββββ----------FR1--------------------------------- |
| ββββββ31ββ32ββ33βββ34ββ35ββ36βββ37β38ββ39ββ40ββ41ββ42ββ43ββ44ββ45 |
| βββββββGβββGββββLβββVβββQβββPβββGβββGβββSβββLβββRβββLβββSβββCβββA |
| βββββ/ggc/ggt/ctt/gtt/cag/cct/ggt/ggt/tct/tta/cgt/ctt/tct/tgc/gct/ |
| ββββββββSitesβofβvariegationββββββββ<1><1>β<1>β<1>ββββ6859-foldβdiversity |
| βββββ----FR1β-------------β>/β..βCDR1...........β./---FR2----- |
| ββββββ46ββ47ββ48βββ49ββ50ββ51ββ52ββ53ββ54ββ55ββ56ββ57ββ58ββ59ββ60 |
| βββββββAβββSβββGββββFβββTβββFβββSβββ-βββYβββ-βββMβββ-βββWβββVβββR |
| βββββ/gct/tcc/gga/ttc/act/ttc/tct/ββ-β/tac/β-β/atg/β-β/tgg/gtt/cgc/ |
| βββββββββBspEIββββββββββββββββββββββββBsiWIββββββββββββββββββββββBstXI. |
| ββββββββββββββββββββββββSitesβofβvariegation-><2>βββββββ<2>β<3> |
| βββββ-----FR2--------------------β>/β..CDR2 |
| βββββ61ββ62ββ63ββ64ββ65ββ66ββ67ββ68ββ69ββ70ββ71ββ72ββ73ββ74ββ75 |
| ββββββQβββAβββPβββGβββKβββGβββLβββEβββWβββVβββSβββ-βββIβββ-βββ- |
| ββββ/caa/gct/cct/gtt/aaa/ggt/ttg/gag/tgg/gtt/tct/β-β/atc/β-β/β-β/ |
| β...BstXI |
| βββββββββββββββββ<1>βββββ<1>β25992-foldβdiversityβinβCDR2 |
| βββββ...CDR2β.....................................β/---FR3----- |
| βββββ76ββ77ββ78ββ79ββ80ββ81ββ82ββ83ββ84ββ85ββ86ββ87ββ88ββ89ββ90 |
| ββββββSβββGβββGβββ-βββTβββ-βββYβββAβββDβββSβββVβββKβββGβββRβββF |
| ββββ/tct/ggt/ggc/β-β/act/β-β/tat/gct/gac/tcc/gtt/aaa/ggt/cgc/ttc/ |
| ββββ--β-β-βFR3------------------------------------------------- |
| βββββ91ββ92ββ93ββ94ββ95ββ96ββ97ββ98ββ99β100β101β102β103β104β105 |
| βββββTββββIβββSβββRββDβββNβββSβββKβββNβββTβββLβββYβββLβββQβββM |
| βββ/act/atc/tct/aga/gac/aac/tct/aag/aat/act/ctc/tac/ttg/cag/atg/ |
| ββββββββββββXbaI |
| ββββ---FR3------------------------------------------------------ |
| ββββ106β107β108β109β110β111β112β113β114β115β116β117β118β119β120 |
| βββββNβββSβββLβββRβββAβββEβββDβββTβββAβββVβββYβββYβββCβββAβββK |
| βββ/aac/agc/tta/agg/gct/gag/gac/acc/gct/gtc/tac/tac/tgc/gcc/aaa/ |
| βββββββββAf1II |
| ββββ.....CDR3................../βReplacedβbyβtheβvariousβcomponents! |
| ββββ121β122β123β124β125β126β127 |
| βββββDβββYβββEβββGβββTβββGβββYβββ(SEQβIDβNO:β24) |
| βββ/gac/tat/gaa/ggt/act/ggt/tat/β(SEQβIDβNO:β23) |
| βββ/----------βFR4β---(JH4)-------------------------------------------------- |
| ββββββYβββFβββDβββYβββββWββGββββQβββGβββTβββLβββVβββTβββVβββSβββSβ(SEQβIDβNO:β26) |
| βββ/tat/ttc/gat/tat/tgg/ggt/caa/ggt/acc/ctg/gtc/acc/gtc/tct/agt/.β(SEQβIDβNO:β25) |
| βββββββββββββββββββββββββββββββββKpnIβββββββββββββββBstEII |
| <1>β=βCodons for ADEFGHIKLMNPQRSTVWY (equimolar mixture) |
| <2>β=βCodons for YRWVGS (equimolar mixture) |
| <3>β=βCodons for PS or PS and G (equimolar mixture) |
| TABLEβ2 |
| OligonucleotidesβusedβtoβvariegateβCDR1βofβhumanβHC |
| CDR1β-β5βresidues |
| (ON-R1V1vg):β5β²-ct/tcc/gga/ttc/act/ttc/tct/<1>/tac/<1>/atg/<1>/tgg/gtt/cgc/caa/gct/cct/gg-3β² |
| βββββββββββββ(SEQβIDβNO:β27) |
| <1>β=βCodonsβofβADEFGHIKLMNPQRSTVWYβ1:1 |
| (ON-Rltop):β5β²-cctactgtct/tcc/gga/ttc/act/ttc/tct-3β²β(SEQβIDβNO:β28) |
| (ON-Rlbot)[RC]:β5β²-β²tgg/gtt/cgc/caa/gct/cct/ggttgctcactc-3β²β(SEQβIDβNO:β29) |
| CDR1β-β7βresidues |
| (ON-R1V2vg):β5β²-ct/tcc/gga/ttc/act/ttc/tct/<6>/<7>/<7>/tac/tac/tgg/<7>/tgg/gtt/cgc/caa/gct/ |
| ββββββββββββββββcct/gg-3β²β(SEQβIDβNO:β30) |
| <6>β=βCodonsβforβST,β1:1 |
| <7>β0.2025(CodonsβforβSG)β+β0.035(CodonsβforβADEFHIKLMNPQRTVWY) |
| CDR1β-β14βresidues |
| (ON-R1V3vg):β5β²-βct/tcc/gga/ttc/act/ttc/tct/atc/agc/ggt/ggt/tct/atc/tcc/<1>/<1>/<1>/- |
| βββββββββββββtac/tac/tgg/<1>/tgg/gtt/cgc/caa/gct/cct/gg-3β²(SEQβIDβNO:β31) |
| <1>β=βCodonsβforβADEFGHIKLMNPQRSTVWYβ1:1 |
| TABLEβ3 |
| OligonucleotidesβusedβtoβvariegateβCDR2βofβhumanβHC |
| CDR2β-β17βresidues |
| (ON-R2V1vg):β5β²-ggt/ttg/gag/tgg/gtt/tct/<2>/atc/<2>/<3>/tct/ggt/ggc/<1>/act/<1>/tat/gct/- |
| ββββββββββββββββgac/tcc/gtt/aaa/gg-3β²β(SEQβIDβNO:β32) |
| (ON-R2top):β5β²-ct/tgg/gtt/cgc/caa/gct/cct/ggt/aaa/ggt/ttg/gag/tgg/gtt/tct-3β²β(SEQβIDβNO:β33) |
| (ON-R2bot)[RC]:β5β²-tat/gct/gac/tcc/gtt/aaa/ggt/cgc/ttc/act/atc/tct/aga/ttcctgtcac-3β² |
| ββββββββββββββββ(SEQβIDβNO:β34) |
| <I>β=βCodonsβforβA,βD,βE,βF,βG,βH,βI,βK,βL,βM,βN,βP,βQ,βR,βS,βT,βV,βWβandβY |
| (equimolarβmixture) |
| <2>β=βCodonsβforβY,βR,βW,βV,βGβandβSβ(equimolarβmixiure) |
| <a>β=βCodonsβforβPβandβSβ(equimolarβmixture)βorβP,βSβandβGβ(equimolarβmixture) |
| (ON-R2V2vg):β5β²-ggt/ttg/gag/tgg/gtt/tct/<1>/atc/<4>/<1>/<1>/ggt/<5>/<1>/<1>/<1>/tat/gct/- |
| ββββββββββββββββgac/tcc/gtt/aaa/gg-3β²β(SEQβIDβNO:β35) |
| <4>β=βCodonsβforβDINSWYβ(equimolarβmixture) |
| <5>β=βCodonsβforβSGDN,β(equimolarβmixture) |
| CDR2β-16βresidues |
| (ON-R2V3vg):β5β²-ggt/ttg/gag/tgg/gtt/tct/<1>/att/<4>/<1>/<1>/ggt/ |
| ββββββββββββββββ<5>/<1>/<1>/tat/aac/cct/tcc/ctt/aag/gg-3β²β(SEQβIDβNO:β36) |
| (ON-R2bo3)[RC]:β5β²-tat/aac/cct/tcc/ctt/aag/ggt/cgc/ttc/act/atc/tct/aga/ttcctgtcac-3β² |
| βββββββββββββββ(SEQβIDβNO:β37) |
| CDR2β19βresidues |
| (ON-R2V4vg):β5β²-ggt/ttg/gag/tgg/gtt/tct/<1>/atc/<8>/agt/<1>/<1>/ |
| βββββββββββββ<1>/ggt/ggt/act/act/<1>/tat/gcc/gct/tcc/gtt/aag/gg-3β²β(SEQβIDβNO:β38) |
| (ON-R2bo4)[RC]:β5β²-tat/gcc/gct/tcc/gtt/aag/ggt/cgc/ttc/act/atc/tct/aga/ttcctgtcacβ²-3β² |
| βββββββββββββββ(SEQβIDβNO:β39) |
| <1>,β<2>,β<3>,β<4>βandβ<5>βareβasβdefinedβabove |
| <8>βisβ0.27βRβandβ0.027βeachβofβADEFGHIKLMNPQSTVWY |
| TABLEβ4 |
| PreferredβComponents |
| Preferred | ||||
| Fractionβof | Adjusted | |||
| Component | Length | Complexity | Library | Fraction |
| 1 | YYCA21111YFDYWG. | β8 | 2.6βΓβ105 | .10 | .02 |
| (SEQβIDβNO:β6) |
| (1β=βanyβaminoβacidβresidue,βexceptβC;β2β=βKβandβR) | |
| 2 | YYCA2111111YFDYWG. | 10 | 9.4βΓβ107 | .14 | .14 |
| (SEQβIDβNO:β7) |
| (1β=βanyβaminoβacidβresidue,βexceptβC;β2β=βKβandβR) | |
| 3 | YYCA211111111YFDYTG. | 12 | 3.4βΓβ1010 | .25 | .25 |
| (SEQβIDβNO:β8) |
| (1β=βanyβaminoβacidβresidue,βexceptβC;β2β=βKβandβR) | |
| 4 | YYCAR111S2S3111YFDYWG. | 14 | 1.9βΓβ108 | .13 | .14 |
| (SEQβIDβNO:β9) |
| (1β=βanyβaminoβacidβresidue,βexceptβC;β2β=βSβandβGβ3β=βYβandβW) | |
| 5 | YYCA2111CSG11CY1YFDYWG. | 15 | 9.4βΓβ107 | .13 | .14 |
| (SEQβIDβNO:β10) |
| (1β=βanyβaminoβacidβresidueβexceptβC;β2β=βKβandβR) | |
| 6 | YYCA211S1TIFG11111YFDYWG. | 17 | 1.7βΓβ1010 | .11 | .12 |
| (SEQβIDβNO:β11) |
| (1β=βanyβaminoβacidβresidue,βexceptβC;β2β=βKβandβR) | |
| 7 | YYCAR111YY2S33YY111YFDYMG. | 18 | 3.8βΓβ108 | .04 | .08 |
| (SEQβIDβNO:β12) |
| (1β=βanyβaminoβacidβresidue,βexceptβC;β2β=βDβorβG;β3β=βSβandβG) | |
| 8 | YYCAR1111YC2231CY111YFDYWG. | 19 | 2.0βΓβ1011 | .10 | .11 |
| (SEQβIDβNO:β13) |
| (1β=βanyβaminoβacidβresidue,βexceptβC;β2β=βSβandβG;β3β=βT,βDβandβG) | |
| TABLEβ5 |
| OligonucleotidesβusedβtoβvariegateβtheβeightβcomponentsβofβHCβCDR3 |
| (Ctop25):β5β²-gctctggtcaac/tta/agg/gct/gag/g-3β²β(SEQβIDβNO:β40) |
| (CtprmA):β5β²-gctctggtcaac/tta/agg/gct/gag/gac/acc/gct/gtc/tac/tac/tgc/gcc-3β² |
| ββββββββββββββββββββAflLL.β.β.β(SEQβIDβNO:β41) |
| (CBprmB)[RC]:β5β²-/tac/ttc/gat/tac/tgg/ggc/caa/ggt/acc/ctg/gtc/acc/tcgctccacc-3β² |
| ββββββββββββββ(SEQβIDβNO:β42)βββββββββββββββββββββββββββββBstEII... |
| (CBot25)[RC]:β5β²-/ggt/acc/ctg/gtc/acc/tcgctccacc-3β²β(SEQβIDβNO:β43) |
| Theβ20βbasesβatβ3β²βendβofβCtprmAβareβidenticalβtoβtheβmostβ5β²β20βbases |
| ofβeachβofβtheβvgDNAβmolecules. |
| Ctop25βisβidenticalβtoβtheβmostβ5β²β25βbasesβofβCtprmA. |
| Theβ23βmostβ3β²βbasesβofβCBprmBβareβtheβreverseβcomplementβofβthe |
| mostβ3β²β23βbasesβofβeachβofβtheβvgDNAβmolecules. |
| CBot25βisβidenticalβtoβtheβ25βbasesβatβtheβ5β²βendβofβCBprmB. |
| Componentβ1 |
| (C1t08): |
| 5β²-cc/gct/gtc/tac/tac/tgc/gcc/<2>/<1>/<1>/<1>/<1>/tac/ttc/gat/tac/tgg/ggc/caa/gg-3β² |
| (SEQβIDβNO:β44) |
| <1>β=β0.095βYβ+β0.095βGβ+β0.048βeachβofβtheβresiduesβADEFHIKLMNPQRSTVW,βnoβC;β<2>β=βKβandβR |
| (equimolarβmixture) |
| componentβ2 |
| (C2t10): |
| 5β²-cc/gct/gtc/tac/tac/tgc/gcc/<2>/<1>/<1>/<1>/<1>/<1>/<1>/tac/ttc/gat/tac/tgg/ggc/caa/gg-3β² |
| (SEQβIDβNO:β45) |
| <1>β=β0.095βYβ+β0.095βGβ+β0.048βeachβofβADEFHIKLMNPQRSTVW,βnoβC;β<2>β=βKβandβRβ(equimolar |
| mixture) |
| Componentβ3 |
| (C3t12): |
| 5β²-cc/gct/gtc/tac/tac/tgc/gcc/<2>/<1>/<1>/<1>/<1>/<1>/<1>/<1>/<1>/tac/ttc/gat/tac/- |
| tgg/ggc/caa/gg-3β²β(SEQβIDβNO:β46) |
| <1>β=β0.095βYβ+β0.095βGβ+β0.048βeachβofβADEFHIKLMNPQRSTVW,βnoβC;β<2>β=βKβandβRβ(equimolar |
| mixture) |
| Componentβ4 |
| (C4t140): |
| 5β²-cc/gct/gtc/tac/tac/tgc/gcc/cgt/<1>/<1>1<1>/tct/<2>/tct/<3>/<1>/<1>/<1>/tac/ttc/gat/- |
| tac/tgg/ggc/caa/gg-3β²β(SEQβIDβNO:β47) |
| <1>β=β0.095βYβ+β0.095βGβ+β0.048βeachβofβADEFHIKLMNPQRSTVW,βnoβC;β<2>β=βSβandβGβ(equimolar |
| mixture);β<3>β=βYβandβWβ(equimolarβmixture) |
| Componentβ5 |
| (C5t15): |
| 5β²-cc/gct/gtc/tac/tac/tgc/gcc/<2>/<1>/<1>/<1>/tgc/tct/ggt/<1>/<1>/tgc/tat/<1>/tac/- |
| ttc/gat/tac/tgg/ggc/caa/gg-3β²β(SEQβIDβNO:β48) |
| <1>β=β0.095βYβ+β0.095βGβ+β0.048βeachβofβADEFHIKLMNPQRSTVW,βnoβC;β<2>β=βKβandβRβ(equimolar |
| mixture) |
| Componentβ6 |
| (C6t17): |
| 5β²-cc/gct/gtc/tac/tac/tgc/gcc/<2>/<1>/<1>/tct/<1>/act/atc/ttc/ggt/<1>/<1>/<1>/<1>/- |
| <1>/tac/ttc/gat/tac/tgg/ggc/caa/gg-3β²β(SEQβIDβNO:β49) |
| <1>β=β0.095βYβ+β0.095βGβ+β0.048βeachβofβADEFHIKLMNPQRSTVW,βnoβC;β<2>β=βKβandβRβ(equimolar |
| mixture) |
| Componentβ7 |
| (C7t18): |
| 5β²-cc/gct/gtc/tac/tac/tgc/gcc/cgt/<1>/<1>/<1>/tat/tac/<2>/tct/<3>/<3>/tac/tat/- |
| <1>/<1>/<1>/tac/ttc/gat/tac/tgg/ggc/caa/gg-3β²β(SEQβIDβNO:β50) |
| <1>β=β0.095βYβ+β0.095βGβ+β0.048βeachβofβADEFHIKLMNPQRSTVW,βnoβC;β<2>β=βDβandβGβ(equimolar |
| mixture);β<3>β=βSβandβGβ(equimolarβmixture) |
| Componentβ8 |
| (c8t19): |
| 5β²-cc/gct/gtc/tac/tac/tgc/gcc/cgt/<1>/<1>/<1>/<1>/tat/tgc/<2>/<2>/<3>/<1>/tgc/tat/- |
| <1>/<1>/<1>/tac/ttc/gat/tac/tgg/ggc/caa/gg-3β²β(SEQβIDβNO:β51) |
| <1>β=β0.095βYβ+β0.095βGβ+β0.048βeachβofβADEFHIKLMNPQRSTVW,βnoβC;β<2>β=βSβandβGβ(equimolar |
| mixture);β<3>β=βTDGβ(equimolarβmixture); |
| TABLEβ6 |
| 3-23::βJH4βStuffersβinβplaceβofβCDRs |
| βββββββββββββββββββββββββββββββββββββββFR1(DP47/V3-23)------------------------ |
| βββββββββββ20β21ββ22βββββββββββββββββββ23ββ24ββ25ββ26ββ27ββ28ββ29ββ30 |
| βββββββββββAβββMβββAβββββββββββββββββββEβββVβββQβββLβββLβββEβββSβββG |
| ctgtctgaacβccβatgβgccβββββββββββββββββgaa/gtt/caa/ttg/tta/gag/tct/ggt/ |
| (SEQβIDβNO:β99) |
| Scabβ.......NcoI....βββββββββββββββββββββββββββMfeI |
| βββββ----------------------------βFR1---------------------------- |
| βββββββ31ββ32ββ33ββ34ββ35ββ36ββ37ββ38β39ββ40ββ41ββ42ββ43ββ44ββ45 |
| βββββββGβββGβββLβββVβββQβββPβββGβββGβββSβββLβββRβββLβββSβββCβββA |
| βββββ/ggc/ggt/ctt/gtt/cag/cct/ggt/ggt/tct/tta/cgt/ctt/tct/tgc/gct/ |
| βββββ---FR1--------------------->/...CDR1βstuffer..../---FR2------ |
| ββββββ46ββ47ββ48ββ49ββ50ββ51ββ52ββ53ββ54ββ55ββ56ββ57ββ58ββ59ββ60 |
| βββββββAβββSβββGβββFβββTβββFβββSβββSβββYβββAβββ/βββ/βββWβββVβββR |
| βββββ/gct/tcc/gga/ttc/act/ttc/tct/tcg/tac/gct/tag/taa/tgg/gtt/cgc/ |
| βββββββββββBspEIβββββββββββββββββββββBsiWIβββββββββββββββββββββββBstXI. |
| βββ-------FR2-------------------------------->/...CDR2βstuffer. |
| βββ61ββ62ββ63ββ64ββ65ββ66ββ67ββ68ββ69ββ70ββ71ββ72ββ73ββ74ββ75 |
| ββββQβββAβββPβββGβββKβββGβββLβββEβββWβββVβββSβββ/βββPβββRβββ/ |
| ββ/caa/gct/cct/ggt/aaa/ggt/ttg/gag/tgg/gtt/tct/taa/cct/agg/tag/ |
| ...BstXIβββββββββββββββββββββββββββββββββββββββAvrII.. |
| ββ....CDR2βstuffer..................................../---FR3--- |
| ββββ91ββ92ββ93ββ94ββ95ββ96ββ97ββ98ββ99β100β101β102β103β104β105 |
| ββββTβββIβββSβββRβββDβββNβββSβββKβββNβββTβββLβββYβββLβββQβββM |
| ββ/act/atc/tct/aga/gac/aac/tct/aag/aat/act/ctc/tac/ttg/cag/atg/ |
| ββββββββββββXbaI |
| ββ--FR3------------..>βCDR3βStufferβ------------>/ |
| βββ106β107β108β109β110 |
| ββββNβββSβββLβββRβββAβββ(SEQβIDβNO:β53) |
| ββ/aac/agc/tta/agg/gct/tagβtaaβaggβcctβtaaβ(SEQβIDβNO:β52) |
| βββββββAflIIβββββββββββββββββββββStuI... |
| ββ/-----FR4β---β(JH4)β------------------------------------------- |
| ββYβββFβββDβββYβββWβββGβββQβββGβββTβββLβββVβββTβββVβββSβββSββ(SEQβIDβNO:β26) |
| /tat/ttc/gat/tat/tgg/ggt/caa/ggt/acc/ctg/gtc/acc/gtc/tct/agt/...β(SEQβIDβNO:β25) |
| ββββββββββββββββββββββββββββββKpnIββββββββBstEII |
| TABLEβ7 |
| A27:JH1βHumanβKappaβlightβchainβgene |
| gaggaccβattgggccccβctccgagactβctcgagcgca |
| Scabβ......Eco0109IβββββββββββXhoI |
| βββββββββββApaI |
| acgcaattaaβtgtgagttagβctcactcattβaggcaccccaβggctttacacβtttatgcttc |
| βββββ..β35..ββββββββββPlacββββββββββββββββββββββ..β10. |
| cggctcgtatβgttgtgtggaβattgtgagcgβgataacaattβtcacacagga |
| aacagctatgβaccatgatta |
| cgccaagcttβtggagcctttβtttttggagaβttttcaacβ(SEQβIDβNO:β54) |
| ββpflMI....... |
| βββββββββHindβIII |
| M13βIIIβsignalβsequenceβ(AAβseg)β------------------------------ |
| β1βββ2βββ3βββ4βββ5βββ6βββ7βββ8βββ9βββ10ββ11ββ12ββ13ββ14ββ15 |
| βMβββKβββKβββLβββLβββFβββAβββIβββPβββLβββVβββVβββPβββFβββY |
| gtgβaagβaagβctcβctaβtttβgctβatcβccgβcttβgtcβgttβccgβtttβtac |
| --Signal-->FR1---------------------------------------------> |
| β16ββ17ββ18ββ19ββ20ββ21ββ22ββ23ββ24ββ25ββ26ββ27ββ28ββ29ββ30 |
| ββSβββHβββSβββAβββQβββSβββVβββLβββTβββQβββSβββPβββGβββTβββL |
| /agc/cat/agt/gca/caa/tcc/gtc/ctt/act/caa/tct/cct/ggc/act/ctt/ |
| ββββββββββApaLI... |
| ----βFR1β-------------------------------------->/βCDR1----> |
| β31ββ32ββ33ββ34ββ35ββ36ββ37ββ38ββ39ββ40ββ41ββ42ββ43ββ44ββ45 |
| ββSβββLβββSβββPβββGβββEβββRβββAβββTβββLβββSβββCβββRβββAβββSβ |
| (SEQβIDβNO:β55) |
| /tcg/cta/agc/ccg/ggt/gaa/cgt/gct/acc/tta/agt/tgc/cgt/gct/tcc/ |
| (SEQβIDβNO:β54;βCont'd) |
| ββββEspI.....βββββββββββββββββββββAflIIβ... |
| βββββββββββββXmaI... |
| ForβCDR1: |
| <1>βADEFGHIKLMNPQRSTVWYβ1:1 |
| <2>βS(0.2)βADEFGHIKLMNPQRTVWYβ(0.044βeach) |
| <3>βY(0.2)βADEFGHIKLMNPQRSTVWβ(0.044βeach) |
| (CDR1βinstalledβasβAflII-(SexAIβorβKasI)βcassette.)βForβtheβmost |
| preferredβ11βlengthβcodonβ51β(XXX)βisβomitted;βforβtheβpreferred |
| 12βlengthβthisβcodonβisβ<2> |
| ------βCDR1---------------------β--->/β---βFR2-------------> |
| βββββ<1>β<2>β<2>βxxxβ<3> |
| β46ββ47ββ48ββ49ββ50ββ51ββ52ββ53ββ54ββ55ββ56ββ57ββ58ββ59ββ60 |
| ββQβββ-βββVβββ-βββ-βββ-βββ-βββLβββAβββWβββYβββQβββQβββKβββPβ |
| (SEQβIDβNO:β55;βCont'd) |
| /cag/β-β/gtt/β-β/β-β/β-β/β-β/ctt/gct/tgg/tat/caa/cag/aaa/cct/ |
| (SEQβIDβNO:β54;βCont'd) |
| ββββββββββββββββββββββββββββββββββββββββββββββββββββββSexAI.... |
| ForβCDR2: |
| <1>βADEFGHIKLMNPQRSTVWYβ1:1 |
| <2>βS(0.2)βADEFGHIKLMNPQRTVWYβ(0.044βeach) |
| <4>βA(0.2)βDEFGHIKLMNPQRSTVWYβ(0.044βeach) |
| CDR2βinstalledβasβ(SexAIβorβKasI)βtoβ(BamHIβorβRsrII)βcassette.) |
| -----βFR2β------------------------->/------CDR2-----------> |
| ββββββββββββββββββββββββββββββββββββ<1>βββββββββ<2>βββββ<4> |
| β61ββ62ββ63ββ64ββ65ββ66ββ67ββ68ββ69ββ70ββ71ββ72ββ73ββ74ββ75 |
| ββGβββQβββAβββPβββRβββLβββLβββIβββYβββ-βββAβββSβββ-βββRβββ-β |
| (SEQβIDβNO:β55;βCont'd) |
| /ggt/cag/gcg/ccg/cgt/tta/ctt/att/tat/β-β/gct/tct/β-β/cgc/β- |
| (SEQβIDβNO:β54;βCont'd) |
| SexAI....βββKasI.... |
| CDR2-->/---βFR3β------------------------------------------> |
| β<1> |
| β76ββ77ββ78ββ79ββ80ββ81ββ82ββ83ββ84ββ85ββ86ββ87ββ88ββ89ββ90 |
| ββ-βββGβββIβββPβββDβββRβββFβββSβββGβββSβββGβββSβββGβββTβββD |
| /β-β/ggg/atc/ccg/gac/cgt/ttc/tct/ggc/tct/ggt/tca/ggt/act/gac/ |
| βββββββBamHI |
| βββββββββββββββRsrIIβ..... |
| --------FR3------------------------------------------------> |
| β91ββ92ββ93ββ94ββ95ββ96ββ97ββ98ββ99ββ100β101β102β103β104β105 |
| ββFβββTβββLβββTβββIβββSβββRβββLβββEβββPβββEβββDβββFβββAβββVβ |
| (SEQβIDβNO:β55β²βCont'd) |
| /ttt/acc/ctt/act/att/tct/aga/ttg/gaa/cct/gaa/gac/ttc/gct/gtt/ |
| (SEQβIDβNO:β54;βCont'd)βXbaI |
| ForβCDR3β(Lengthβ9): |
| <1>βADEFGHIKLMNPQRSTVWYβ1:1 |
| <3>βY(0.2)βADEFGHIKLMNPQRTVWβ(0.044βeach) |
| ForβCDR3β(Lengthβ8):βQQ33111P |
| 1βandβ3βasβdefinedβforβLengthβ9 |
| ForβCDR3β(Lengthβ10):βQQ3211PP1T |
| 1βandβ3βasβdefinedβforβLengthβ9 |
| 2βS(0.2)βandβ0.044βeachβofβADEFGHIKLMNPQRTVWY |
| CDR3βinstalledβasβXbaIβtoβ(StyIβOrβBsiWI)cassette. |
| ------------->/----CDR3-------------------------->/----FR4---> |
| βββββββββββββββββββββ<3>β<1>β<1>β<1>βββββ<1> |
| β106β107β108β109β110β111β112β113β114β115β116β117β118β119β120 |
| ββYβββYβββCβββQβββQβββ-βββ-βββ-βββ-βββPβββ-βββTβββFβββGβββQβ |
| (SEQβIDβNO:β55;βCont'd) |
| /tat/tat/tgc/caa/cag/β-β/β-β/β-β/β-β/cct/β-β/act/ttc/ggt/caa/ |
| (SEQβIDβNO:β54;βCont'd) |
| ββββββββββββββBstXI......... |
| β----FR4-------------------->/βββββββββββββββ<-------Ckappaβ-------------- |
| β121β122β123β124β125β126β127ββββββββββββββββββ128β129β130β131β132β133β134 |
| ββGβββTβββKβββVβββEβββIβββKββββββββββββββββββββRβββTβββVβββAβββAβββPβββS |
| /ggt/acc/aag/gtt/gaa/atc/aag/ββββββββββββββββ/cgt/acg/gtt/gcc/gct/cct/agt/ |
| ββββββStyI....βββββββββββββββββββββββββββββββββBsiWI.. |
| β135β136β137β138β139β140β141β142β143β144β145β146β147β148β149 |
| ββVβββFβββIβββFβββPβββPβββSβββDβββEβββQβββLβββKβββSβββGβββT |
| /gtg/ttt/atc/ttt/cct/cct/tct/gac/gaa/caa/ttg/aag/tca/ggt/act/ |
| ββββββββββββββββββββββββββββββββββββββMfeI... |
| 150β151β152β153β154β155β156β157β158β159β160β161β162β163β164 |
| βAβββSβββVβββVβββCβββLβββLβββNβββNβββFβββYβββPβββRβββEβββAβ |
| (SEQβIDβNO:β55;βCont'd) |
| /gct/tct/gtc/gta/tgt/ttg/ctc/aac/aat/ttc/tac/cct/cgt/gaa/gct/ |
| (SEQβIDβNO:β54;βCont'd) |
| βββββββββββββββββββββββββββββββββββββββββββββBssSI.. |
| β165β166β167β168β169β170β171β172β173β174β175β176β177β178β179 |
| ββKβββVβββQβββWβββKβββVβββDβββNβββAβββLβββQβββSβββGβββNβββS |
| /aaa/gtt/cag/tgg/aaa/gtc/gat/aac/gcg/ttg/cag/tcg/ggt/aac/agt/ |
| ββββββββββββββββββββββββββββββMluI.... |
| β180β181β182β183β184β185β186β187β188β189β190β191β192β193β194 |
| ββQβββEβββSβββVβββTβββEβββQβββDβββSβββKβββDβββSβββTβββYβββS |
| /caa/gaa/tcc/gtc/act/gaa/cag/gat/agt/aag/gac/tct/acc/tac/tct/ |
| β195β196β197β198β199β200β201β202β203β204β205β206β207β208β209 |
| ββLβββSβββSβββTβββLβββTβββLβββSβββKβββAβββDβββYβββEβββKβββH |
| /ttg/tcc/tct/act/ctt/act/tta/tca/aag/gct/gat/tat/gag/aag/cat/ |
| β210β211β212β213β214β215β216β217β218β219β220β221β222β223β224 |
| ββKβββVβββYβββAβββCβββEβββVβββTβββHβββQβββGβββLβββSβββSβββPβ |
| (SEQβIDβNO:β55;βCont'd) |
| /aag/gtc/tat/GCt/TGC/gaa/gtt/acc/cac/cag/ggt/ctg/agc/ttc/cct/ |
| (SEQβIDβNO:β54;βCont'd) |
| βββββββββββββββββββββββββββββββββββββββββββββββSacI.... |
| β225β226β227β228β229β230β231β232β233β234 |
| ββVβββTβββKβββSβββFβββNβββRβββGβββEβββCβ |
| (SEQβIDβNO:β55;βCont'd) |
| /gtt/acc/aaa/agt/ttc/aac/cgt/ggt/gaa/tgc/taa/tagβggcgcgcc |
| ββββββββββββββββββββββDsaI....βββββββββββββββββββAscI.... |
| βββββββββββββββββββββββββββββββββββββββββββββββββββBssHII |
| βacgcatctctaaβgcggccgcβaacaggaggagβ |
| (SEQβIDβNO:β54;βCont'd) |
| ββββββββββββββNotI.... |
| TABLEβ8 |
| 2a2:JH2βHumanβlambda-chainβgene |
| gaggaccattβgggccccβttactccgtgac |
| Scab......βEco0109I |
| βββββββββ---------FR1--------------------------------------------> |
| βββββββββ1βββ2βββ3βββ4βββ5βββ6βββ7βββ8βββ9ββ10ββ11ββ12ββ13ββ14ββ15 |
| βSβββAβββQβββSβββAβββLβββTβββQβββPβββAβββSβββVβββSβββGβββSβββPβββG |
| (SEQβIDβNO:β57) |
| agt/gca/caa/tcc/gct/ctc/act/cag/cct/gct/agc/gtt/tcc/ggg/tca/cct/ggt/ |
| (SEQβIDβNO:β56) |
| βApaLI...ββββββββββββββββββββββββββββNheI...βββββββββBstEII... |
| βββββββββββββββββββββββββββββββββββββββββββββββββββββββββSexAI.... |
| ForβCDR1β(lengthβ14): |
| <1>β=β0.27βT,β0.27βG,β0.027βeachβofβADEFHIKLMNPQRSVWY,βnoβC |
| <2>β=β0.27βD,β0.27βN,β.0.027βeachβofβAEFGHIKLMPQRSTVWY,βnoβC |
| <3>β=β0.36βY,β0.0355βeachβofβADEFGHIKLMNPQRSTVW,βnoβC |
| βββββββββββββββββββββββββββββTβββGβββ<1>ββSβββSββ<2>ββVβββG |
| β-----FR1β---------------->ββ/----CDR1----------------------- |
| β16ββ17ββ18ββ19ββ20ββ21ββ22ββ23ββ24ββ25ββ26ββ27ββ28ββ29ββ30 |
| ββQβββSβββIβββTβββIβββSβββCβββTβββGβββ-βββSβββSβββ-βββVβββG |
| /caa/agt/atc/act/att/tct/tgt/aca/ggt/β-β/tct/tct/β-β/gtt/ggc/ |
| βββββββββββββββββββββββββBsrGI.. |
| β<1>β<3>β<2>β<3>ββVβββSβ=βvgβSchemeβ#1,βlengthβ=β14 |
| -----CDR1β------------->β/-------------βFR2----------------- |
| β31ββ32ββ33ββ34ββ35ββ36ββ37ββ38ββ39ββ40ββ41ββ42ββ43ββ44ββ45 |
| ββ-βββ-βββ-βββ-βββVβββSβββWβββYβββQβββQβββHβββPβββGβββKβββA |
| (SEQβIDβNO:β57;βCont'd) |
| /β-β/β-β/β-β/β-β/gtt/tct/tgg/tat/caa/caa/cac/ccg/ggc/aag/gcg/ |
| (SEQβIDβNO:β56;βCont'd) |
| ββββββββββββββββββββββββββββββββββββββββββXmaI....βββββKasI..... |
| ββββββββββββββββββββββββββββββββββββββββββAvaI.... |
| AβsecondβVgβschemeβforβCDR1βgivesβsegmentsβofβlengthβ11: |
| T22G<2><4>L<4><4><4><3><4><4>βwhere |
| <4>β=βequimolarβmixtureβofβeachβofβADEFGHIKLMNPQRSTVWY,βnoβC |
| <3>β=βasβdefinedβaboveβforβtheβalternativeβCDR1 |
| ForβCDR2: |
| <2>βandβ<4>βareβtheβsameβvariegationβasβforβCDR1 |
| βββββββββββββββββββββββββ<4>β<4>β<4>β<2>βRβββPβββS |
| β--FR2--------------->β/-------CDR2---------β----->/------FR3- |
| β46ββ47ββ48ββ49ββ50ββ51ββ52ββ53ββ54ββ55ββ56ββ57ββ58ββ59ββ60 |
| ββPβββKβββLβββMβββIβββYβββ-βββ-βββ-βββ-βββRβββPβββSβββGβββV |
| /ccg/aag/ttg/atg/atc/tac/β-β/β-β/β-β/β-β/cgt/cct/tct/ggt/gtt/ |
| KasI.... |
| --------FR3------------------------------------------------- |
| β61ββ62ββ63ββ64ββ65ββ66ββ67ββ68ββ69ββ70ββ71ββ72ββ73ββ74ββ75 |
| ββSβββNβββRβββFβββSβββGβββSβββKβββSβββGβββNβββTβββAβββSβββL |
| (SEQβIDβNO:β57;βCont'd) |
| /agc/aat/cgt/ttc/tcc/gga/tct/aaa/tcc/ggt/aat/acc/gca/agc/tta/ |
| (SEQβIDβNO:β56;βCont'd) |
| ββββββββββββββββββBspEI..ββββββββββββββββββββββββββHindIII. |
| ββββββββββββββββββββββBsaBI..............(blunt) |
| β------FR3-------------------------------------------------> |
| β76ββ77ββ78ββ79ββ80ββ81ββ82ββ83ββ84ββ85ββ86ββ87ββ88ββ89ββ90 |
| ββTβββIβββSβββGβββLβββQβββAβββEβββDβββEβββAβββDβββYβββYβββC |
| (SEQβIDβNO:β57;βCont'd) |
| /act/atc/tct/ggt/ctg/cag/gct/gaa/gac/gag/gct/gac/tac/tat/tgt/ |
| (SEQβIDβNO:β56;βCont'd) |
| ββββββββββββββββββPstI... |
| CDR3β(Lengthβ11): |
| <2>βandβ<4>βareβtheβsameβvariegationβasβforβCDR1 |
| <5>β=β0.36βS,β0.0355βeachβofβADEFGHIKLMNPQRTVWYβnoβC |
| CDR3β(Lengthβ10):β<5>βSYβ<1>β<5>βSβ<5>β<1>β<4>βV |
| <1>βisβanβequimolarβmixtureβofβADEFGHIKLMNPQRSTVWY,βnoβC |
| <4>βandβ<5>βareβasβdefinedβforβLengthβ11 |
| <4>β<5>β<4>β<2>β<4>βSβ<4>β<4>β<4>β<4>βV |
| ------CDR3--------------------------------->/----FR4------- |
| β91ββ92ββ93ββ94ββ95ββ96ββ97ββ98ββ99ββ100β101β102β103β104β105 |
| ββ-βββ-βββ-βββ-βββ-βββSβββ-βββ-βββ-βββ-βββVβββFβββGβββGβββG |
| /β-β/β-β/β-β/β-β/β-β/tct/β-β/β-β/β-β/β-β/gtc/ttc/ggc/ggt/ggt/ |
| βββββββββββββββββββββββββββββββββββββββββββββββββββββββββKpnI.. |
| β-------FR4-------------> |
| β106β107β108β109β110β111β112β113β114β115β116β117β118β119β120 |
| ββTβββKβββLβββTβββVβββLβββGβββQβββPβββKβββAβββAβββPβββSβββV |
| /acc/aaa/ctt/act/gtc/ctc/ggt/caa/cct/aag/gct/gct/cct/tcc/gtt/ |
| KpnI...βββββββββββββββββββHincII.. |
| ββββββββββββββββββββββββββββββββBsu36I... |
| β121β122β123β124β125β126β127β128β129β130β131β132β133β134β135 |
| ββTβββLβββFβββPβββPβββSβββSβββEβββEβββLβββQβββAβββNβββKβββA |
| (SEQβIDβNO:β57;βCont'd) |
| /act/ctc/ttc/cct/cct/agt/tct/gaa/gag/ctt/caa/gct/aac/aag/gct/ |
| (SEQβIDβNO:β56;βCont'd) |
| ββββββββββββββββββββββββββββββSapI..... |
| β136β137β138β139β140β141β142β143β144β145β146β147β148β149β150 |
| ββTβββLβββVβββCβββLβββIβββSβββDβββFβββYβββPβββGβββAβββVβββT |
| /act/ctt/gtt/tgc/ttg/atc/agt/gac/ttt/tat/cct/ggt/gct/gtt/act/ |
| ββββββββββββββββββBclI.... |
| β151β152β153β154β155β156β157β158β159β160β161β162β163β164β165 |
| ββVβββAβββWβββKβββAβββDβββSβββSβββPβββVβββKβββAβββGβββVβββE |
| /gtc/gct/tgg/aaa/gcc/gat/tct/tct/cct/gtt/aaa/gct/ggt/gtt/gag/ |
| βββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββBsmBI... |
| β166β167β168β169β170β171β172β173β174β175β176β177β178β179β180 |
| ββTβββTβββTβββPβββSβββKβββQβββSβββNβββNβββKβββYβββAβββAβββS |
| /acg/acc/act/cct/tct/aaa/caa/tct/aac/aat/aag/tac/gct/gcg/agc/ |
| BsmBI...βββββββββββββββββββββββββββββββββββββββββββββββSacI.... |
| β181β182β183β184β185β186β187β188β189β190β191β192β193β194β195 |
| ββSβββYβββLβββSβββLβββTβββPβββEβββQβββWβββKβββSβββHβββKβββS |
| (SEQβIDβNO:β57;βCont'd) |
| /tct/tat/ctt/tct/ctc/acc/cct/gaa/caa/tgg/aag/tct/cat/aaa/tcc/ |
| (SEQβIDβNO:β56;βCont'd) |
| SacI... |
| β196β197β198β199β200β201β202β203β204β205β206β207β208β209β210 |
| ββYβββSβββCβββQβββVβββTβββHβββEβββGβββSβββTβββVβββEβββKβββT |
| /tat/tcc/tgt/caa/gtt/act/cat/gaa/ggt/tct/acc/gtt/gaa/aag/act/ |
| ββββββββββββββββββββββBspHI... |
| β211β212β213β214β215β216β217β218β219 |
| ββVβββAβββPβββTβββEβββCβββS |
| (SEQβIDβNO:β57;βCont'd) |
| /gtt/gcc/cct/act/gag/tgt/tct/tag/tga/ggcgcgcc |
| ββββββββββββββββββββββββββββββββββββAscI.... |
| ββββββββββββββββββββββββββββββββββββββBssHII |
| aacgatgttcβaagβgcggccgcβaacaggaggag |
| (SEQβIDβNO:β56;βCont'd) |
| βββββββββββββββNotI....βScab....... |
| TABLEβ9 |
| OligonucleotidesβForβKappaβandβLambdaβLightβChainβVariegation |
| (Ctop25): |
| 5β²-gctctggtcaac/tta/agg/gct/gag/g-3β²β(SEQβIDβNO:β58) |
| (CtprmA): |
| 5β²-gctctggtcaac/tta/agg/gct/gag/gac/acc/gct/gtc/tac/tac/tgc/gcc-3β² |
| (SEQβIDβNO:β59)βAflII... |
| (CBprmB)[RC]: |
| 5β²-/tac/ttc/gat/tac/ttg/ggc/caa/ggt/acc/ctg/gtc/acc/tcgctccacc-3β² |
| (SEQβIDβNO:β60)ββββββββββββββββββββββββββββBstEII... |
| (CBot25)[RC]: |
| 5β²-/ggt/acc/ctg/gtc/acc/tcgaccacc-3β²β(SEQβIDβNO:β61) |
| Kappaβchains:βCDR1β(β1β),βCDR2β(β2β),βCDR1β(β3β) |
| CDR1 |
| (Ka1Top610): |
| 5β²-ggtctcagttg/cta/agc/ccg/ggt/gaa/cgt/gct/acc/tta/agt/tgc/cgt/ |
| gct/tcc/cag-3β²β(SEQβIDβNO:β62) |
| (Ka1STp615): |
| 5β²-ggtctcagttg/cta/agc/ccg/ggt/g-3β²β(SEQβIDβNO:β63) |
| (Ka1Bot620)[RC]: |
| β²5β²-ctt/gct/tgg/tat/caa/cag/aaa/cct/ggt/cag/gcg/ccaagtcgtgtc-3β² |
| (SEQβIDβNO:β64) |
| (Ka1SB625)[RC]: |
| 5β²-cct/ggt/cag/gcg/ccaagtcgtgtc-3β²β(SEQβIDβNO:β65) |
| (Ka1vg600): |
| 5β²-gct/acc/tta/agt/tgc/cgt/gct/tcc/cag- |
| /<1>/gtt/<2>/<2>/<3>/ctt/gct/tgg/tat/caa/cag/aaa/cc-3β² |
| (SEQβIDβNO:β66) |
| (Ka1vg600-12): |
| 5β²-gct/acc/tta/agt/tgc/cgt/gct/tcc/cag- |
| /<1>/gtt/<2>/<2>/<2>/<3>/ctt/gct/tgg/tat/caa/cag/aaa/cc-3β² |
| (SEQβIDβNO:β67) |
| CDR2 |
| (Ka2Tshort657): |
| 5β²-cacgagtccta/cct/ggt/cag/gc-3β²β(SEQβIDβNO:β68) |
| (Ka2Tlong655): |
| 5β²-cacgagtccta/cct/ggt/cag/gcg/ccg/cgt/tta/ctt/att/tat-3β² |
| (SEQβIDβNO:β69) |
| (Ka2Bshort660):[RC]: |
| 5β²-/gac/cgt/ttc/tct/ggt/tctcacc-3β²β(SEQβIDβNO:β70) |
| (Ka2vg650): |
| 5β²-cag/gcg/ccg/cgt/tta/ctt/att/tat/<1>/gct/tct/<2>/- |
| /cgc/<4>/<1>/ggg/atc/ccg/gac/cgt/ttc/tct/ggt/tctcacc-3β² |
| (SEQβIDβNO:β71) |
| CDR3 |
| (Ka3Tlon672): |
| 5β²-gacgagtccttct/aga/ttg/gaa/cct/gaa/gac/ttc/gct/gtt/tat/ |
| tat/tgc/caa/c-3β²β(SEQβIDβNO:β72) |
| (Ka3BotL682)[RC]: |
| 5β²-act/ttc/ggt/caa/ggt/acc/aag/gtt/gaa/atc/aag/cgt/acg/ |
| tcacaggtgag-3β²β(SEQβIDβNO:β73) |
| (Ka3Bsho694)[RC]: |
| 5β²-gaa/atc/aag/cgt/acg/tcacaggtgag-3β²β(SEQβIDβNO:β74) |
| (Ka3vg670): |
| 5β²-gac/ttc/gct/gtt/β- |
| /tat/tat/tgc/caa/cag/<3>/<1>/<1>/<1>/cct/<1>/act/ttc/ggt/caa/- |
| /ggt/acc/aag/gtt/g-3β²β(SEQβIDβNO:β75) |
| (Ka3v670-8): |
| 5β²-gac/ttc/gct/gtt/- |
| /tat/tat/tgc/caa/cag/<3>/<3>/<1>/<1>/<1>/cct/ttc/ggt/caa/- |
| /ggt/acc/aag/gtt/g-3β²β(SEQβIDβNO:β76) |
| (Ka3vg670-10): |
| 5β²-gac/ttc/gct/gtt/tat/- |
| /tat/tgc/caa/cag/<3>/<2>/<1>/<1>/cct/cct/<1>/act/ttc/ggt/caa/- |
| /ggt/acc/aag/gtt/g-3β²β(SEQβIDβNO:β77) |
| LambdaβChains:βCDR1(β1β),βCDR2(β2β),βCDR3(β3β) |
| CDR1 |
| (Lm1TPri75): |
| 5β²-gacgagtcctgg/tca/cct/ggt/-3β²β(SEQβIDβNO:β78) |
| (Lm1t1o715): |
| 5β²-gacgagtcctgg/tca/cct/ggt/caa/agt/atc/act/att/tct/tgt/aca/ggt-3β² |
| (SEQβIDβNO:β79) |
| (Lm1b1o724)[rc]: |
| 5β²-/gtt/tct/tgg/tat/caa/caa/cac/ccg/ggc/aag/gcg/agatcttcacaggtgag-3β² |
| (SEQβIDβNO:β80) |
| (Lm1bsh737)[rc]: |
| 5β²-gc/aag/gcg/agatcttcacaggtgag-3β²β(SEQβIDβNO:β81) |
| (Lm1vg710b): |
| 5β²-gt/atc/act/att/tct/tgt/aca/ggt/<2>/<4>/ctc/<4>/<4>/<4>/- |
| /<3>/<4>/<4>/tgg/tat/caa/caa/cac/cc-3β²β(SEQβIDβNO:β82) |
| (Lm1vg710): |
| 5β²-gt/atc/act/att/tct/tgt/aca/ggt/<1>/tct/tct/<2>/gtt/ggc/- |
| /<1>/<3>/<2>/<3>/gtt/tct/tgg/tat/caa/caa/cac/cc-3β²β(SEQβIDβNO:β83) |
| CDR2 |
| (Lm2TSh757): |
| 5β²-gagcagaggac/ccg/ggc/aag/gc-3β²β(SEQβIDβNO:β84) |
| (Lm2TLo753): |
| 5β²-gagcagaggac/ccg/ggc/aag/gcg/ccg/aag/ttg/atg/atc/tac/-3β² |
| (SEQβIDβNO:β85) |
| (Lm2BLo762)[RC]: |
| 5β²-cgt/cct/tct/ggt/gtc/agc/aat/cgt/ttc/tcc/gga/tcacaggtgag-3β² |
| (SEQβIDβNO:β86) |
| (Lm2Bsh765)[RC]: |
| 5β²-cgt/ttc/tcc/gga/tcacaggtgag-3β²β(SEQβIDβNO:β87) |
| (Lm2vg750): |
| 5β²-g/ccg/aag/ttg/atg/atc/tac/- |
| <4>/<4>/<4>/<2>/cgt/cct/tct/ggt/gtc/agc/aat/c-3β²β(SEQβIDβNO:β88) |
| CDR3 |
| (Lm3TSh822): |
| 5β²-ctg/cag/gct/gaa/gac/gag/gct/gac-3β²β(SEQβIDβNO:β89) |
| (Lm3TLo819): |
| 5β²-ctg/cag/gct/gaa/gac/gag/gct/gac/tac/tat/tgt/-3β²β(SEQβIDβNO:β90) |
| (Lm3BLo825)[RC]: |
| 5β²-gtc/ttc/ggc/ggt/ggt/acc/aaa/ctt/act/gtc/ctc/ggt/caa/cct/aag/g- |
| acacaggtgag-3β²β(SEQβIDβNO:β91) |
| (Lm3BSh832)[RC]: |
| 5β²βc/ggt/caa/cct/aag/gacacaggtgagβ(SEQβIDβNO:β92) |
| (Lm3vg17): |
| 5β²-gac/gag/gct/gac/tac/tat/tgt/- |
| /<4>/<5>/<4>/<2>/<4>/tct/<4>/<4>/<4>/<4>/- |
| Gtc/ttc/ggc/ggt/ggt/acc/aaa/ctt/ac-3β²β(SEQβIDβNO:β93) |
| (Lm3vg817-10): |
| 5β²-gac/gag/gct/gac/tac/tat/tgt/- |
| /<5>/agc/tat/<1>/<5>/tct/<5>/<1>/<4>/gtc/ttc/ggc/ggt/ggt/- |
| /acc/aaa/ctt/ac-3β²β(SEQβIDβNO:β94) |
| TABLEβ10 |
| A27:JH1βKappaβlightβchainβgeneβwithβstuffersβinβplaceβofβCDRs |
| Eachβstufferβcontainsβatβleastβoneβstopβcodonβandβa |
| restrictionβsiteβthatβwillβbeβuniqueβwithinβtheβdiversityβvector. |
| gaggaccβattgggccccβctccgagactβctcgagcgca |
| βββScab.....βEcoO109I |
| βββββββββββββApaI.βββββββββββββXhoI.. |
| acgcaattaaβtgtgagttagβctcactcattβaggcaccccaβggctttacacβtttatgcttc |
| ββββββ..β35..βββββββββPlacβββββββββββββββββββββ..β10. |
| cggctcgtatβgttgtgtggaβattgtgagcgβgataacaattβtcacacaggaβaacagctatgac |
| catgattaβcgccaagcttβtggagcctttβtttttggagaβttttcaacβ(SEQβIDβNO:β95) |
| βββββββββββPflMIβ............. |
| ββββββββββββββHind3. |
| M13βIIIβsignalβsequenceβ(AAβseq)--------------------------> |
| β1βββ2βββ3βββ4βββ5βββ6βββ7βββ8βββ9ββ10ββ11ββ12ββ13ββ14ββ15 |
| βMβββKβββKβββLβββLβββFβββAβββIβββPβββLβββVβββVβββPβββFβββY |
| gtgβaagβaagβctcβctaβtttβgctβatcβccgβcttβgtcβgttβccgβtttβtac |
| --Signal-->βFR1-------------------------------------------- |
| β16ββ17ββ18ββ19ββ20ββ21ββ22ββ23ββ24ββ25ββ26ββ27ββ28ββ29ββ30 |
| ββSβββHβββSβββAβββQβββSβββVβββLβββTβββQβββSβββPβββGβββTβββL |
| /agc/cat/agt/gca/caa/tcc/gtc/ctt/act/caa/tct/cct/ggc/act/ctt/ |
| βββββββββApaLI... |
| -----βFR1-------------------β-------------->/---------Stuffer-> |
| β31ββ32ββ33ββ34ββ35ββ36ββ37ββ38ββ39ββ40ββ41ββ42ββ43 |
| ββSβββLβββSβββPβββGβββEβββRβββAβββTβββLβββSβββ/βββ/β(SEQβIDβNO:β96) |
| /tcg/cta/agc/ccg/ggt/gga/cgt/gct/acc/tta/agt/tag/taa/gct/ccc/ |
| (SEQβIDβNO:β95;βCont'd) |
| βββEspI.....ββββββββββββββββββββββAflII... |
| βββββββββββXmaI.... |
| -βStufferβforβCDR1-->βFR2β---------------βFR2---β>/βStufferβforβCDR2 |
| βββββββββββββββββββββββ59ββ60ββ61ββ62ββ63ββ64ββ65ββ66 |
| ββββββββββββββββββββββββKβββPβββGβββQβββAβββPβββR |
| /agg/cct/ctt/tga/tct/g/aaa/cct/ggt/cag/gcg/ccg/cgt/taa/tga/aagcgctaatggccaacagtg |
| StuI...ββββββββββββββββββSexAI...βββKasI....βββββββββββββββAfeI..βββMscI.. |
| Stuffer-->/---βFR3β------------------------------------------> |
| β76ββ77ββ78ββ79ββ80ββ81ββ82ββ83ββ84ββ85ββ86ββ87ββ88ββ89ββ90 |
| ββTβββGβββIβββPβββDβββRβββFβββSβββGβββSβββGβββSβββGβββTβββDβ |
| (SEQβIDβNO:β96;βCont'd) |
| /act/ggg/atc/ccg/gac/cgt/ttc/tct/ggc/tct/ggt/tca/ggt/act/gac/ |
| (SEQβIDβNO:β95;βCont'd) |
| βββββββBamHI... |
| βββββββββββββRsrII............ |
| --------FR3------>----------------STUFFERβforβCDR3-------------------> |
| β91ββ92ββ93ββ94ββ95ββ96ββ97 |
| ββFβββTβββLβββTβββIβββSβββRβββ/βββ/ |
| /ttt/acc/ctt/act/att/tct/aga/taa/tga/βgttaacβtagβaccβtacgtaβaccβtag |
| βββββββββββββββββββββXbaI...ββββββββββHpaI..βββββββββSnaBI. |
| ----------------------CDR3βstuffer---------------->/------FR4-------> |
| βββββββββββββββββββββββββββββββββββββββββββββββββββββββββ118β119β120 |
| ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββFβββGβββQ |
| ββββββββββββββββββββββββββββββββββββββββββββββββββββββββ/ttc/ggt/caa/ |
| -----FR4-------------------->ββββββββββββ<--------Ckappaβ----------- |
| 121β122β123β124β125β126β127ββββββββββββββ128β129β130β131β132β133β134 |
| βGβββTβββKβββVβββEβββIβββKββββββββββββββββRβββTβββVβββAβββAβββPβββS |
| (SEQβIDβNO:β96;βCont'd) |
| /ggt/acc/aag/gtt/gaa/atc/aag/βββββββββββ/cgt/acg/gtt/gcc/gct/cct/agt/ |
| ββββββStyI....βββββββββββββββββββββββββββBsiWI.. |
| (SEQβIDβNO:β95;βCont'd) |
| β135β136β137β138β139β140β141β142β143β144β145β146β147β148β149 |
| ββVβββFβββIβββFβββPβββPβββSβββDβββEβββQβββLβββKβββSβββGβββT |
| (SEQβIDβNO:β96;βCont'd) |
| /gtg/ttt/atc/ttt/cct/cct/tct/gac/gaa/caa/ttg/aag/tca/ggt/act/ |
| ββββββββββββββββββββββββββββββββββββββMfeI... |
| acgcatctctaaβgcggccgcβaacaggaggagβ(SEQβIDβNO:β95;βCont'd) |
| βββββββββββββNotI.... |
| βββββββββββββββEagI.. |
| TABLEβ11 |
| 2a2:JH2βHumanβlambda-chainβgeneβwithβstuffersβinβplaceβofβCDR3 |
| gaggaccattβgggccccβttactccgtgac |
| Scabβ.β.β.βEcoO109I |
| βββββββββββApaI |
| βββββββββ----------FR1--------------β------------------------------β> |
| βββββββββ1βββ2βββ3βββ4βββ5βββ6βββ7βββ8ββ9ββ10ββ11ββ12ββ13ββ14ββ15 |
| βββSββAββQβββSβββAβββLβββTβββQβββPβββAββSββVβββSβββGβββSβββPβββG |
| ββagt/gca/caa/tcc/gct/ctc/act/cag/cct/gct/agc/gtt/tcc/ggg/tca/cct/ggt/ |
| ββApaLIβ.β.β.ββββββββββββββββββββββββNheIβ.β.β.βββββββBstEllβ.β.β. |
| βββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββSexAIβ.β.β. |
| -------FR1---------------->β/---------stufferβforβCDR1β--------- |
| β16ββ17ββ18ββ19ββ20ββ21ββ22ββ23 |
| ββQβββSβββIβββTβββIβββSβββCβββTβ(SEQβIDβNO:β98) |
| /caa/agt/atc/act/att/tct/tgt/aca/tctβtagβtgaβctcβ(SEQβIDβNO:β97) |
| βββββββββββββββββββββββββBsrGI.. |
| ----Stuffer----------------------------->--------FR2-------> |
| β31ββ32ββ33ββ34ββ35ββ36ββ37ββ38ββ39ββ40ββ41ββ42ββ43ββ44ββ45 |
| βRββSβββ/βββ/βββPβββ/βββββββββββββββββββHβββPβββGβββKβββA |
| agaβtctβtaaβtgaβccgβtagββββββββββββββββcac/ccg/ggc/aag/gcg/ |
| βBglIIββββββββββββββββββββββββββββββββββXmaIβ.β.β.βββββKasIβ.β.β. |
| ββββββββββββββββββββββββββββββββββββββββAvaIβ.β.β. |
| --/-------------StufferβforβCDR2---------------------------------> |
| βP |
| /ccg/taa/tga/atc/tcgβtacβgββββββββββββββββββββββββct/ggt/gtt/ |
| KasIβ.β.β.ββββββββBsiWIβ.β.β. |
| -------FR3------------------------------------------------ |
| 61ββ62ββ63ββ64ββ65ββ66ββ67ββ68ββ69ββ70ββ71ββ72ββ73ββ74ββ75 |
| βSβββNβββRβββFβββSβββGβββSβββKβββSβββGβββNβββTβββAβββSβββLβ(SEQβIDβNO:β98;βCont'd) |
| /agc/aat/cgt/ttc/tcc/gga/tct/aaa/tcc/ggt/aat/acc/gca/agc/tta/β(SEQβIDβNO:β97;βCont'd) |
| βββββββββββββββββBseEIβ.β.β.βββββββββββββββββββββββHindIIIβ.β.β. |
| ββββββββββββββββββββββββββββBsaBIβ.β.β.β(blunt) |
| ------FR3------------->/--StufferβforβORD3------------------>/ |
| β76ββ77ββ78ββ79ββ80ββ81ββ82ββ83ββ84ββ85ββ86ββ87ββ88ββ89ββ90 |
| ββTβββIβββSβββGβββLβββQ |
| /act/atc/tct/ggt/ctg/cag/gttβctgβtagβttcβcaattgβcttβtagβtgaβccc |
| βββββββββββββββββPstIβ.β.β.ββββββββββββββMfeIβ.β.β. |
| -----Stuffer------------------------------->/---FR4--------- |
| βββββββββββββββββββββββββββββββββββββββββββββββ103β104β105 |
| ββββββββββββββββββββββββββββββββββββββββββββββββGβββGβββG |
| βββββββββββββββββββββββββββββββββββββββββββββ/ggc/ggt/ggt/ |
| βββββββββββββββββββββββββββββββββββββββββββββββββββββββKpnIβ.β.β. |
| --------FR4--------------> |
| β106β107β108β109β110β111β112β113β114β115β116β117β118β119β120 |
| βββTβββKβββLβββTβββVβββLβββGβββQβββPβββKβββAβββAβββPβββSβ(SEQβIDβNO:β98;βCont'd) |
| V/acc/aaa/ctt/act/gtc/ctc/ggt/caa/cct/aag/gct/gct/cct/tcc/gtt/β(SEQβIDβNO:β97;βCont'd) |
| KpnIβ.β.β.ββββββββββββββββββββHincIIβ.β.β. |
| βββββββββββββββββββββββββββββββββββBsu36Iβ.β.β. |
| 121β122β123β124β125β126β127β128β129β130β131β132β133β134β135 |
| ββTβββLβββFβββPβββPβββSβββSβββEβββEβββLβββQβββAβββNβββKβββA |
| /act/ctc/ttc/cat/cct/agt/tct/gaa/gag/ctt/caa/gct/aac/aag/gct/ |
| βββββββββββββββββββββββββββββSapIβ.β.β. |
| 136β137β138β139β140β141β142β143β144β145β146β147β148β149β150 |
| βTβββLβββVβββCβββLβββIβββSβββDβββFβββYβββPβββGβββAβββVβββTβ(SEQβIDβNO:β98;βCont'd) |
| /act/cct/gtt/tgc/ttg/atc/agt/gac/ttt/tat/cct/ggt/gct/gtt/act/β(SEQβIDβNO:β97;βCon'td) |
| βββββββββββββββββββBclIβ.β.β.β |
The invention relates to generation of useful diversity in synthetic antibody (Ab) gene, especially to Ab genes having frameworks derived from human Abs.
Antibodies are highly useful molecules because of their ability to bind almost any substance with high specificity and affinity and their ability to remain in circulation in blood for prolonged periods as therapeutic or diagnostic agents. For treatment of humans, Abs derived from human Abs are much preferred to avoid immune response to the Ab. For example, murine Abs very often cause Human Anti Mouse Antibodies (HAMA) which at a minimum prevent the therapeutic effects of the murine Ab. For many medical applications, monoclonal Abs are preferred. Nowadays the preferred method of obtaining a human Ab having a particular binding specificity is to select the Ab from a library of human-derived Abs displayed on a genetic package, such as filamentous phage.
Libraries of phage-displayed Fabs and scFvs have been produced in several ways. One method is to capture the diversity of donors, either naive or immunized. Another way is to generate libraries having synthetic diversity. The present invention relates to methods of generating useful diversity in human Ab scaffolds.
As is well known, typical Abs consist of two heavy chains (HC) and two light chains (LC). There are several types of HCs: gamma, mu, epsilon, delta, etc. Each type has an N-terminal V domain followed by three or more constant domains. The LCs comprise an N-terminal V domain followed by a constant domain. LCs come in two types: kappa and lambda.
Within each V domain (LC or HC) there are seven canonical regions, named FR1, CDR1, FR2, CDR2, FR3, CDR3, and FR4, where βFRβ stands for βFramework Regionβ and βCDRβ stands for βComplementarity Determining Regionβ. For LC and HC, the FR and CDR GLGs have been selected over time to be secretable, stable, non-antigenic and these properties should be preserved as much as possible. Actual Ab genes contain mutations in the FR regions and some of these mutations contribute to binding, but such useful FR mutations are rare and are not necessary to obtain high-affinity binding. Thus, the present invention will concentrate diversity in the CDR regions.
In LC, FR1 up to FR3 and part of CDR3 comes from a genomic collection of genes called βV-genesβ. The remainder of CDR3 and FR4 comes from a genomic collection of genes called βJ-genesβ. The joining may involve a certain degree of mutation, allowing diversity in CDR3 that is not present in the genomic sequences. After the LC gene is formed, somatic mutations can give rise to mature, rearranged LC genes that have higher affinity for an antigen (Ag) than does any LC encoded by genomic sequences. A large fraction of somatic mutations occur in CDRs.
The HC V region is more complicated. A V gene is joined to a J gene with the possible inclusion of a D segment. About half of HC Abs sequences contain a recognizable D segment in CDR3. The joining is achieved with an amazing degree of molecular sloppiness. Roughly, the end of the V gene may have zero to several bases deleted or changed, the D segment may have zero to many bases removed or changed at either end, a number of random bases may be inserted between V and D or between D and J, and the 5β² end of J may be edited to remove or change several bases. Withal, it is amazing that human heavy chains work, but they do. The upshot is that the CDR3 is highly diverse both in encoded amino-acid sequences and in length. In designing synthetic libraries, there is the temptation to just throw in a high degree of synthetic diversity and let the phage sort it out. Nevertheless, D regions serve a function. They cause the Ab repertoire to be rich in sequences that a) allow Abs to fold correctly, and b) are conducive to binding to biological molecules, i.e. antigens.
One purpose of the present invention is to show how a manageable collection of diversified sequences can confer these advantages on synthetic Ab libraries. Another purpose of the present invention is to disclose analysis of known mature Ab sequences that lead to improved designs for diversity in the CDR1 and CDR2 of HC and the three CDRs of lambda and kappa chains.
The invention is directed to methods of preparing synthetically diverse populations of Ab genes suitable for display on genetic packages (such as phage or phagemids) or for other regimens that allow selection of specific binding. Said populations concentrate the diversity into regions of the Ab that are likely to be involved in determining affinity and specificity of the Ab for particular targets. In particular, a collection of actual Ab genes has been analyzed and the sites of actual diversity have been identified. In addition, structural considerations were used to determine whether the diversity is likely to greatly influence the binding activity of the Ab. Schemes of variegation are presented that encode populations in which the majority of members will fold correctly and in which there is likely to be a plurality of members that will bind to any given Ag. Specifically, a plan of variegation is presented for each CDR of the human heavy chain, kappa light chain, and lambda light chain. The variegated CDRs are presented in synthetic HC and LC frameworks.
In one embodiment, the invention involves variegation of human HC variable domains based on a synthetic 3-23 domain joined to a JH4 segment in which the variability in CDR1 and CDR2 comprises sequence variation of segments of fixed length while in CDR3 there are several components such that the population has lengths roughly corresponding to lengths seen in human Abs and having embedded D segments in a portion of the longer segments. In the light chains, the kappa chain is built in an A27 framework and a JK1 while lambda is built in a 2a2 framework with an L2 J region.
The HC Germ-Line Gene (GLG) 3-23 (also known as VP-47) accounts for about 12% of all human Abs and it suitable for the framework of the library. Certain types of Ags elicit Abs having particular types of VH genes; in some cases, the types elicited are otherwise rarely found. This apparent Ag/Ab type specificity has been ascribed to possible structural differences between the various families of V genes. It is also possible that the selection has to do with the availability of particular AA types in the GLG CDRs. Suppose, for example, that the sequence YR at positions 4 and 5 of CDR2 is particularly effective in binding a particular type of Ag. Only the V gene 6-1 provides this combination. Most Abs specific for the Ag will come from GLG 6-1. If Y4-R5 were provided in other frameworks, then other frameworks are likely to be as effective in binding the Ag.
In CDR1 and CDR2 of HCs, the GLGs provide limited length diversity as shown in Table 15P. Note that GLGs provide CDR's only of the lengths 5, 6, and 7. Mutations during the maturation of the V-domain gene leads to CDR's having lengths as short as 2 and as long as 16. Nevertheless, length 5 predominates. The preferred length for the present invention is 5 AAs in CDR1 with a possible supplemental components having lengths of 7 and 14.
GLGs provide CDR2s only of the lengths 15-19, but mutations during maturation result in CDR2s of length from 16 to 28 AAs. The lengths 16 and 17 predominate in mature Ab genes and length 17 is the most preferred length for the present invention. Possible supplementary components of length 16 and 19 may also be incorporated.
Table 20P shows the AA sequences of human GLG CDR1s and CDR2. Table 21P shows the frequency of each amino-acid type at each position in the GLGs. The GLGs as shown in Table 20P have been aligned by inserting gaps near the middle of the segment so that the ends align.
The 1398 mature V-domain genes used in studying D segments (vide infra) were scanned for examples in which CDR1 and CDR2 could be readily identified. Of this sample 1095 had identifiable CDR1, 2, and 3. The CDRs were identified by finding subsequences of the GLGs in an open reading frame. There are 51 human HC V genes. At the end of FR1, there are 20 different 9-mers. At the start of FR2, there are 11 different 9-mers. At the end of FR2 there are 14 different 9-mers. At the start of FR3, there are 14 different 9-mers. At the end of FR3, there are 13 different 9-mers. At the start of JH, there are three different 9-mers. These motifs were compared to the reported gene in frame and a match, at the site of maximum similarity, of seven out of nine was deemed acceptable. Only when all three CDRs were identified were any of the CDRs included in the analysis. In addition, the type of the gene was determined by comparing the framework regions to the GLG frameworks; the results are shown in Table 22P.
Diversity in CDR1 and CDR2 was designed from: a) the diversity of the GLGs, b) observed diversity in mature HC genes, and c) structural considerations. In CDR1, examination of a 3D model of a humanized Ab showed that the side groups of residues 1, 3, and 5 were directed toward the combining pocket. Consequently, we allow each of these positions to be any amino-acid type except cysteine. Cysteine can form disulfide bonds. Disulfide bonds are an important component of the canonical Ig fold. Having free thiol groups could interfere with proper folding of the HC and could lead to problems in production or manipulation of selected Abs. Thus, I exclude cysteine from the menu. The side groups of residue 2 is directed away from the combining pocket. Although this position shows substantial diversity, both in GLG and mature genes, I fixed this residue as Tyr because it occurs in 681/820 mature genes (Table 21P). Position 4 is fixed as Met. There is some diversity here, but almost all mature genes have uncharged hydrophobic AA types: M, W, I, V, etc. (Table 21P). Inspection of a 3D model shows that the side group of residue 4 is packed into the innards of the HC. Since we are using a single framework (3-23), we retain the Met that 3-23 has because it is likely to fit very well into the framework of 3-23. Thus, the most preferred CDR1 library consists of XYXMX (SEQ ID NO:109) where X can be any one of [A,D,E,F,G,H,I,K,L,M,N,P,Q,R,S,T,V,W,Y] (no C). The DNA that encodes this is preferably synthesized using trinucleotide building blocks so that each AA type is present in essentially equimolar amounts. Specifically, the X codons are synthesized using a mixture of the codons [gct, gat, gag, ttt, ggt, cat, att, aag, atg, aat, cct, cag, cgt, tct, act, gtt, tgg, tat]. This diversity is shown in the context of a synthetic 3-23 gene in Table 18P. The diversity oligonucleotide (ON) is synthesized from BspEI to BstXI and can be incorporated either by PCR synthesis using overlapping ONs or introduced by ligation of BspEI/BstXI-cut fragments. Table 22P shows ONs that embody the specified variegation. PCR using ON-R1V1vg, ON-R1top, and ON-R1bot gives a dsDNA product of 73 base pairs, cleavage with BspEI and BstXI trims 11 and 13 bases from the ends and provides cohesive ends that can be ligated to similarly cut vector having the synthetic 3-23 domain shown in Table 18P. Replacement of ON-R1V1vg with either ONR1V2vg or ONR1V3vg allows synthesis of the two alternative diversity patterns given below.
Alternatively, one can include CDR's of length 7 and/or 14. For length 7, a preferred diversity is (S/T)1(S/G/x)2(S/G/x)3Y4Y5W6(S/G/x)7 (SEQ ID NO:107); where (S/T) indicates an equimolar mixture of Ser and Thr codons; (S/G/x) indicates a mixture of 0.2025 S, 0.2025 G, and 0.035 for each of A, D, E, F, H, I, K, L, M, N, P, Q, R, T, V, W, Y. Other proportions could be used. The design gives a predominance of Ser and Gly at positions 2, 3, and 7, as occurs in mature HC genes. For length 14, a preferred pattern of diversity is VSGGSISXXXYYWX (SEQ ID NO:1) where X can be any AA type except Cys. This pattern appears to arise by insertions into the GLG sequences (SGGYYWS; SEQ ID NO:110, (4-30.1 and 4-31) and similar sequences. There is a preference for a hydrophobic residue at position 1 (V or C) with a second insertion of SISXXX (SEQ ID NO:111) between GG and YY. Diversity ONs having CDR1s of length 7 or 14 are synthesized from BspEI to BstXI and introduced into the library in appropriate proportions to the CDR1 of length 5. The components should be incorporated in approximately the ratios in which they are observed in antibodies selected without reference to the length of the CDRs. For example, the sample of 1095 HC genes examined here have them in the ratios (L=5:L=7:L=14::820:175:23::0.80:0.17:0.02).
Diversity at CDR2 was designed with the same considerations: GLG sequences, mature sequences and 3D structure. A preferred length for CDR2 is 17, as shown in Table 18P. Examination of a 3D model suggests that the residues shown as varied in Table 18P are the most likely to interact directly with Ag. Thus a preferred pattern of variegation is: <2>I<2><3>SGG<1>T<1>YADSVKG (SEQ ID NO:2), where <2> indicates a mixture of YRWVGS, <3> is a mixture of P and S, and <1> is a mixture of ADEFGHIKLMNPQRSTVWY (no C). ON-R2V1vg shown in Table 22P embodies this diversity pattern. PCR with ON-R2V1vg, ON-R2top, and ONR2bot gives a dsDNA product of 122 base pairs. Cleavage with BstXI and XbaI removes about 10 bases from each end and produces cohesive ends that can be ligated to similarly cut vector that contains the 3-23 gene shown in Table 18P.
An alternative pattern would include the variability seen in mature CDR2s as shown in Table 21P: <1>I<4><1><1>G<5><1><1><1>YADSVKG (SEQ ID NO:3), where <4> indicates a mixture of DINSWY, and <5> indicates a mixture of SGDN. This diversity pattern is embodied in ON-R2V2vg shown in Table 22P. For either case, the variegated ONs would be synthesized so that fragments of dsDNA containing the BstXI and XbaI site can be generated by PCR. ON-R2V2vg embodies this diversity pattern.
Alternatively, one can allow shorter or longer CDR2s. Table 22P shows ON-R2V3vg which embodies a CDR2 of length 16 and ON-R2V4vg which embodies a CDR2 of length 19. Table 22P shows ON-R2V3vg is PCR amplified with ON-R2top and ON-R2bo3 while ON-R2V4vg is amplified with ON-R2top and ONR2-bo4.
CDR3s of HC vary in length and in sequence. About half of human HCs consist of the components: V::nz::D::ny::JHn where V is a V gene, nz is a series of bases (mean 12) that are essentially random, D is a D segment, often with heavy editing at both ends, ny is a series of bases (mean 6) that are essentially random, and JH is one of the six JH segments, often with heavy editing at the 5β² end. In HCs that have no identifiable D segment, the structure is V::nz::JHn where JH is usually edited at the 5β² end. Our goal is to mimic the diversity of CDR3, but not to duplicate it (which would be impossible). The D segments appear to provide spacer segments that allow folding of the IgG. The greatest diversity is at the junctions of V with D and of D with JH. The planned CDR3 library will consist of several components. Some of these will have only sequence diversity. Others will have sequence diversity with embedded D segments to extend the length while incorporating sequences known to allow Igs to fold.
There are many papers on D segments. Corbett et al. (1997) show which D segments are used in which reading frames. My analysis basically confirms their findings. They did not report, however, the level of editing of each D segment and this information is needed for design of an effective library.
The following diversified sequences would be incorporated in the indicated proportions: β1β stands for 0.095 [G, Y] and 0.048 [A, D, E, F, H, I, K, L, M, N, P, Q, R, S, T, V, W]; double dose of Gly and Tyr plus all other AAs except Cys at equal level.
The amount of each component is assigned from the tabulation of lengths of the collection of natural VH genes. Component 1 represents all the genes having length 0 to 8 (counting from the YYCAR (SEQ ID NO:112) motif to the WG dipeptide motif). Component 2 corresponds the all the chains having length 9 or 10. Component 3 corresponds to the genes having length 11 or 12 plus half the genes having length 13. Component 4 corresponds to those having length 14 plus half those having length 13. Component 5 corresponds to the genes having length 15 and half of those having length 16. Component 6 corresponds to genes of length 17 plus half of those with length 16. Component 7 corresponds to those with length 18. Component 8 corresponds to those having length 19 and greater.
The composition has been adjusted because the first component is not complex enough to justify including it as 10% of the library. If the final library were to be 1. E 9, then 1. E 8 sequences would come from component 1, but it has only 2.6 E 5 CDR3 sequences so that each one would occur in Λ385 CDR1/2 contexts. I think it better to have this short CDR3 diversity occur in Λ77 CDR1/2 contexts and have the other, longer CDR3s occur more often.
The ONs would be PCR amplified with the primers CtprmA and CBprmB, cut with AflII and BstEII, and ligated to similarly cut V3-23.
This set of components was designed after studying the sequences of 1383 human HC sequences as described below. The proposed components are meant to fulfill the goals:
1) approximately the same distribution of lengths as seen in real Ab genes,
2) high level of sequence diversity at places having high diversity in real Ab genes, and
3) incorporation of constant sequences often seen in real Ab genes.
Note that the design uses JH4 (YFDYWGQGTLVTVSS; SEQ ID NO:20), which is found more often, instead of JH3 (AFDIWGQGTMVTVSS; SEQ ID NO:21). This involves three changes in AA sequence, shown as double underscored bold. An alternative JH segment is shown.
How the Library Components were Designed:
The processing of sequence data was accomplished by a series of custom-written FORTRAN programs, each of which carries out a fairly simple transformation on the data and writes its results as one or more ASCII files. The next program then uses these files as input.
A set of 2049 human heavy-chain genes was selected from the version of GenBank that was available at Dyax on the Sun server on 26 Jun. 2000. A program named βReformatβ changed the format of the files to that of GenBank from the GCG format, creating one file per sequence. A second program named βIDENT_CDR3β processed each of these files as follows. Files were tested for duplication by previous entries, duplicates were discarded. Each reading frame was tested. Most entries had a single open reading frame (ORF), none had two, and some had none. Entries with multiple stops in every reading frame were discarded because this indicates poor quality of sequencing. The sequence was written in triplets in the ORF or in all three reading frames if no ORF was found. The sequence was examined for three motifs: a) AA sequence=βYYCxxβ, b) DNA sequence=βtgg ggc (=WG)β, and DNA sequence=βg gtc acc (=BstEII)β. FR3 ends with a conserved motif YYCAR or a close approximation. When writing the DNA sequence, IDENT_CDR3 prints the DNA mostly in lower case. Cysteine codons (TGT or TGC) are printed in uppercase. When the motif βtay tay tgyβ is found, IDENT_CDR3 starts a new line that contains β< > xxx xxx xxx xxx xxxβ where the xxx's stand for the actual five codons that encode YYC and the next two codons (most often AR or AK). The following DNA is printed in triplets on new lines. A typical processed entry appears as in Table 1P.
Following the YYC motif, IDENT_CDR3 seeks the sequence βTGG GGCβ (the βWGβ motif) in the correct reading frame, 5/6 bases is counted as a hit. If found, the DNA is made uppercase. Following the WG motif (if found) or the YYC motif (if no WG found), IDENT_CDR3 seeks the sequence βG GTC ACCβ (the BstEII site) in the correct reading frame, 6/7 bases is counted as a hit. If found, the bases are made upper case. If either the WG or BstEII motif are not found, a note is inserted saying that the feature was not identified. The output of IDENT_CDR3 was processed by hand. In many cases, the lacking YYC motif could be seen as a closely related sequence, such as YFC, FYC, or HYC. When this was supported by an appropriately positioned WG and/or BstEII site, the effective YYC site was marked and the sequence retained for further analysis. If the YYC motif could not be identified or if the WG or BstEII sites could not be found, the entry was discarded. For example, the entry in Table 2P had no YYC motif.
The double underscored sequence encodes YHCAS and is taken as the end of FR3. Note that there is a WG motif at bases 403-408 (bold upper case) and a BstEII site at bases 420-426 (bold upper case). Using WordPerfect, I first made all occurrences of TGC and TGT bold. I then searched for βYYC not foundβ. If I could see the βYYCβ-related sequence quickly, I edited the entry so that a YYC was shown. The entry above would be converted to that shown in Table 3P. This processing reduced the list of entries to 1669.
A third program named βNew_DJβ processed the output of IDENT_CDR3. The end of the YYC motif (including the two codon following TGy=Cys) was taken as the end of FR3. The WG motif was taken as the end of the region that might contain a D segment. If WG was not observed and BstEII was, the WG site was assumed to be 17 bases upstream of BstEII. Using the WG motif for alignment, the sequence was compared to each human GLG JH segment (1-6) and the best one identified (New_DJ always assigned a JH segment). Starting from the WG motif of JH and moving toward the 5β² end, the program looked for the first codon having more than one mismatch. The region from YYCxx (SEQ ID NO:113) to this codon was taken as the region that might contain a D segment.
The region that might contain a D segment was tested against all the germ-line genes (GLGs) of human D segments and the best D segment was identified. The scoring involved matching the observed sequence to the GLG sequence in all possible ways. Starting at each base, multiply by 4 for a match and divide by 4 for a mismatch. Record the maximum value obtained for this function. The match was deemed significant if 7/7, 8/9, 9/11, etc. or more bases matched. Of the 1383 sequences examined for D segments,
βAssign_Dβ processes the output of New_DJ. For each sequence that had a significant match with a GLG D segment, a file was written containing the putative D segment, the DJ segment, the identified GLG D segment, the identified JH segment, the phase of the match between observed and GLG gene. For example, βD1_1-01_Phz0_hsa239356.txtβ is a file recording the match of entry hsa239356 with D1-01 in phase 0. The file contains the information shown in Table 4P. The final DV of the second sequence immediately precedes the WG in JH and is ascribed to JH3. Other files that begin D1_1-01_Phz0 match the same GLG D segment and these can be aligned by sliding amino-acid sequences across each other.
Table 5P shows how sequence hs6d4xb7 is first assigned to JH4 and then to D3-22. Note that the DNA sequence TGGGGG is aligned to the TGG GGC of the GLG and that the sequence is truncated on the left to fit. The program finds that JH4 has the best fit (5 misses and 18 correct out of 23). From the right, the program sees that DYWGQ (underscored) come from JH, but then the match drops off and the rest of the sequence on the left comes either from added bases or a D segment.
The lower part of Table 5P shows that the possible D segment matches D #13 (3-23) is a very good match.
Of 1383 files accepted by Assign_D, 757 had identifiable D segments. The tally of His in Table 6P shows that JH4 is by far the most common.
JH4 is most common, JH6 next, followed by JH3 and JH5. JH1 and JH2 are seldom used. Table 7P shows the length distributions of each JH class; they do not differ significantly class to class. These lengths count only amino-acids that are not accounted for by JH and so are shorter that the lengths given in Table 8P which cover from YYCAR (SEQ ID NO:112) to WG.
Table 8P contains the distribution of lengths for a) all the CDR3 segments, b) the CDR3 segments with identified D segments, and c) the CDR3 segments having no identifiable D segment. The CDR3s with identifiable D segments (13.9) are systematically longer than are those that lack D segments (11.2).
The identified CDR3 segments can be collated in two ways: aligned to the left (looking for a pattern following YYCAR; SEQ ID NO:112) or aligned to the right (looking for a pattern preceding WG). Table 9P shows the collation of left-aligned sequences while Table 10P shows the right-aligned sequences. For each position, I have tabulated the frequency of each AA type (A-M in the first block and N-Y in the second). The column headed β#β shows how many sequences have some AA at that position. The final column shows all of the AA types seen at that position with the most frequent first and the least frequent last. In the left-aligned sequences, we see that Gly is highly over-represented in the first seven positions while Tyr is over-represented at positions 8-16.
In Table 11P, I have tabulated the AA frequencies for the sequences having between 7 and 15 AAs between YYCAR (SEQ ID NO:112)_and WG. The last four positions can be viewed as coming from JH and so would be given lower levels of diversity than would earlier positions. From these tabulations, I conclude that most AA types are allowed at all the positions, but there is a fairly strong tendency to have Gly at the early positions and to end in Asp-Tyr (DY). We could use these tendencies in designing a pattern of variegation. I would not exclude any AA except Cys, but I might increase the frequency of Gly in the first several positions and Tyr in the last few.
There are 80 sequences (5.8%) having a pair of cysteines in CDR3. It is more surprising that 53 (3.8%) have a single Cys in CDR3.
MS-DOS was used to make a list of the files written by Assign_D. βFilterβ converts the output of MS-DOS Dir into a form that can be read into WordPerfect and sorted to bring a files belonging to the same D region together.
βFilter2β collects the sequences and produces a draft table of sequences, grouped by the D-segment used, and written so that the sequences can be aligned. The output of Filter2 were edited by hand. For each group, the translation of the GLG was inserted and the collection of observed sequences was aligned to the conserved part of the GLG. βFilter3β collated the aligned sequences. Table 12P shows an example of an alignment and the tabulation of AA types. The entries are as follows: βEntryβ is the name used in the data base, βSeq1β is the sequence from the YYCAR (SEQ ID NO:112) motif to the first amino acid not assigned to JH and βL1β is the length of the segment. The segments are shown aligned to the identified D segment. Seq2 is the sequence from the YYCAR (SEQ ID NO:112) motif to the WG motif (i.e. including part of JH) and βL2β is the length of that sequence. JH is the identified JH segment for this sequence. βPβ is the phase of the match. For positive values of P, P bases are found in the observed sequence that do not correspond to any from the GLG, i.e. the observed sequence has had that many bases inserted. For negative values of P, there are |P| bases in the GLG sequence for which there are no corresponding bases in the observed sequence. βScoreβ is approximately 1/(probability of accidental match). This is calculated by looking at all possible alignments. For each alignment, the score is first set to 1.0. Base by base, the score is multiplied by 4. if the bases match and divided by 4. if they do not. This is done for all starting points and ending points and the maximum value is recorded.
Table 13P is a summary of how often each D segment was identified and in which reading frame. I have not been consistent with Corbett et al. in assigning the phases of the GLG D segments. The MRC Web page that I took the GLGs from did not have D segments D1-14, D4-11, D5-18, or D6-25. None of these contribute to any great extent and this omission is unlikely to have any serious effect on the conclusions. The column headed β%β contains the percentage of the sequences examined here. The column headed βC %β contains the percentage reported by Corbett et al. I assume that the data used in Corbett et al. is mostly included in my collection. Nevertheless, the observed frequencies differ in detail. For example, my compilation shows that 10.7% of the collection contains a D segment encoding two cysteines while they have only 4.16% in this category. In D3 phase β0β, I see 19.4% of the collection while they report 11.8%.
The most common actual D segments were further analyzed. The GLGs are heavily edited at either end. The aligned sequences were aligned. For each D-segment having more than seven examples, Filter3 produced a table of the frequency of each amino-acid type at each position. From these tabulations, library components shown in Table 17P were designed. At each position where at least half the examples have an amino acid, I entered either the dominant AA type or βxβ. An AA type was βdominantβ if it occurred more than 50% of the time. L is the length and f is the number of sequences observed that have related sequences.
Table 14P shows possible library components for a library of CDR3's. βLβ is the length of the insert and βfβ is the frequency of the motif in the assayed collection. Table 17P shows vgDNA that embodies each of the components shown in Table 14P. In Table 17P, the oligonucleotides (ON) Ctop25, CtprmA, CBprmB, and CBot25 allow PCR amplification of each of the variegated ONs (vgDNA): C1t08, C2t10, C3t12, C4t14, C5t15, C6t17, C7t18, and c8t19. After amplification, the dsDNA can be cleaved with AflII and BstEII (or KpnI) and ligated to similarly cleaved vector that contains the remainder of the 3-23 synthetic domain. Preferably, this vector already contains diversity in CDR1 and CDR2 as disclosed herein. Preferably, the recipient vector contains a stuffer in place of CDR3 so that there will be no parental sequence that would then occur in the resulting library. Table 50P shows a version of the V3-23 gene segment with each CDR replaced by a short segment that contains both stop codons and restriction sites that will allow specific cleavage of any vector that does not have the stuffer removed. The stuffer can either be short and contain a restriction enzyme site that will not occur in the finish library, allowing removal of vectors that are not cleaved by both AflII and BstEII (or KpnI) and religated. Alternatively, the stuffer could be 200-400 bases long so that uncleaved or once cleaved vector can be readily separated from doubly cleaved vector.
In the vgDNA for HC CDR3, <1> means a mixture comprising 0.27 Y, 0.27 G, and 0.027 of each of the amino-acid codons {A, D, E, F, H, I, K, L, M, N, P, Q, R, S, T, V, W}; <2> means an equimolar mixture of K and R; and <3> means an equimolar mixture of S and G.
A collection of 285 human kappa chains was assembled from the public data base. Table 27 shows the names of the entries used. The GLG sequences of nine bases at each end of the framework regions were used to find the FR/CDR junctions. Only in cases where all six junctions could be found was the sequences included. Table 25P shows the distribution of lengths in CDRs in human kappas. CDR1s with lengths of 11, 12, 13, 16, and 17 were observed with 11 being predominant and 12 well represented. CDR2 exhibits only length 7. CDR3 exhibits lengths of 1, 4, 6, 7, 8, 9, 10, 11, 12, 13, and 19. Essentially all examples are in the 8, 9, or 10 length groups. Table 26P shows the distribution of V and J genes seen in the sample. A27 is the most common V and JK1 is the most common J. Thus, a suitable synthetic kappa gene comprises A27 joined to JK1. Table 30P shows a suitable synthetic kappa chain gene, including a PlacZ promoter, ribosome-binding site, and signal sequence (M13 III signal). The DNA sequence encodes the GLG amino-acid sequence, but does not comprise the GLG DNA sequence. Restriction sites are designed to fall within each framework region so that diversity can be cloned into the CDRs. XmaI and EspI are in FR1, SexAI is in FR2, RsrII is in FR3, and KpnI (or Acc65I) are in FR4. Additional sites are provided in the constant kappa chain to facilitate construction of the gene.
Table 30P also shows a suitable scheme of variegation for kappa. In CDR1, a preferred length is 11 codons. The A27 GLG has a CDR1 of 12 codons, but the sample of mature kappa chains has length 11 predominating. One could also introduce a component of kappas having length 12 in CDR1 by introducing codon 52 as <2> (i.e. a Ser-biased mixture). CDR2 of kappa is always 7 codons. Table 31P shows a tally of 285 CDR2s and a preferred variegation scheme for CDR2. The predominant length of CDR3 in kappa chains is 9 codons. Table 32P shows a tally of 166 CDR3s from human kappas and a preferred variegation scheme (which is also shown in Table 30P).
A collection of 158 lambda sequences was obtained from the public data base. Of these 93 contained sequences in which the FR/CDR boundaries could be identified automatically. Table 33P shows the distribution of lengths of CDRs.
The diversity of HC, kappa, and lambda are best constructed in separate vectors. First a synthetic gene is designed to embody each of the synthetic variable domains. The light chains are bounded by restriction sites for ApaLI (positioned at the very end of the signal sequence) and AscI (positioned afer the stop codon). The heavy chain is bounded by SfiI (positioned within the PelB signal sequence) and NotI (positioned in the linker between CH1 and the anchor protein. The initial genes are made with βstufferβ sequences in place of the desired CDRs. A βStufferβ is a sequence the is to be cut away and replaced by diverse DNA but which does not allow expression of a functional antibody gene. For example, the stuffer may contain several stop codons and restriction sites that will not occur in the correct finished library vector. In Table 40P, the stuffer for CDR1 of kappa A27 contains a StuI site. The vgDNA for CDR1 is introduced as a cassette from EspI, XmaI, or AflII to either SexAI or KasI. After the ligation, the DNA is cleaved with StuI; there should be no StuI sites in the desired vectors.
| TABLEβ1P |
| TypicalβentryβinβwhichβYYCβmotifβisβfound. |
| ++++C:β\tmp\haj10335.txt |
| LOCUSββββββHAJ10335βββββ306βbpβββββmRNAββββββββββPRIβββββββββ18-AUG-1998 |
| DEFINITIONβHomoβsapiensβmRNAβforβimmunoglobulinβheavyβchainβvariableβregion, |
| βββββββββββcloneβELD16/6. |
| ACCESSIONββAJ010335 |
| VERSIONββββAJ010335.1βGI:β3445266 |
| ββNgeneβ=ββ306 |
| βStopβcodonsβinβreadingβframeβ1 |
| ββββ49β115β124β253β277 |
| βNoβstopsβinβreadingβframeβ2 |
| βStopβcodonsβinβreadingβframeβ3 |
| ββββ12β60β81β147β204β213 |
| βββ1βββtβttgβgggβtccβctgβagaβctcβtccβTGTβgcaβgccβtctβggaβttcβacc |
| ββ44βgtcβagtβagcβaacβtacβatgβaccβtggβgtcβcgcβcagβgctβctaβgggβaag |
| ββ89βgggβctgβgagβtggβgtcβtcaβgttβattβtatβagcβggtβggtβagcβacaβtac |
| β134βtacβgcaβgacβtccβgtgβaagβggcβggaβttcβaccβatcβtccβagaβgacβaat |
| β179βtccβaagβaacβacaβctgβtatβcttβcaaβatgβaacβagcβctgβagaβcccβgag |
| β224βgacβacgβgctβgtg |
| <ββββββ>βTATβTACβTGTβgcgβaca |
| β251βggtβaatβcgcβctgβgaaβatgβgctβgcaβattβaacβTGGβGGCβcaaβggaβacc |
| β263βctGβGTCβACCβaaβ(SEQβIDβNO:β113) |
| ----------------------------------------------------------------------------- |
| TABLEβ2P |
| entryβinβwhichβYYCβmotifβwasβnotβautomaticallyβidentified |
| ++C:β\tmp\hs202g3.txt |
| !!NA_SEQUENCEβ1.0 |
| LOCUSββββββHS202G3ββββββββ522βbpβββββmRNAββββββββββPRIβββββββββ03-AUG-1995 |
| DEFINITIONβH.βsapiensβmRNAβforβimmunoglobulinβvariableβregionβ(cloneβ202-G3). |
| ACCESSIONββZ47259 |
| VERSIONββββZ47259.1βGI:β619470 |
| βββNgeneβ=β522 |
| βNoβstopsβinβreadingβframeβ1 |
| βStopβcodonsβinβreadingβframeβ2 |
| ββββ89β110β305β314 |
| βStopβcodonsβinβreadingβframeβ3 |
| ββββ84β192β321β351β369 |
| ββ1βatgβgacβtggβaccβtggβaggβttcβctcβtttβgtgβgtgβgcaβgcaβgctβaca |
| β46βggtβgtcβcagβtccβcagβgtgβcagβctgβgtgβcagβtctβgggβgctβgagβgtg |
| β91βaagβaagβcctβgggβtccβtcgβgtgβaagβgtcβtccβTGCβaagβgctβtctβgga |
| 136βggcβaccβttcβagcβagcβtatβgctβatcβagcβtggβgtgβcgaβcagβgccβcct |
| 181βggaβcaaβgggβcttβgagβtggβatgβggaβgggβatcβatcβcctβatcβtttβggt |
| 226βacaβgcaβaacβtacβgcaβcagβaagβttcβcagβggcβagaβgtcβacgβattβacc |
| 271βgcgβgacβgaaβtccβacgβagcβacaβgccβtacβatgβgagβctgβagcβagcβctg |
| 316βagaβtctβgagβgacβacgβgccβgtgβtatβcacβTGTβgcgβagtβgagβggaβtgg |
| 361βgagβagtβTGTβagtβggtβggtβggcβTGCβtacβgacβggtβatgβgacβgtcβTGG |
| 406βGGCβcaaβgggβaccβacGβGTCβACCβgtcβtccβtcaβgctβtccβaccβaagβggc |
| 451βccaβtcgβgtcβttcβcccβctgβgcgβcccβTGCβtccβaggβagcβaccβtctβggg |
| 496βggcβacaβgcgβgccβctgβggcβTGCβctgβ(SEQβIDβNO:β114) |
| YYCβnotβfoundβ!!! |
| ----------------------------------------------------------------------------- |
| TABLEβ3P |
| EntryβofβTableβ2Pβafterβeditting. |
| ++C:β\tmp\hs202g3.txt |
| !!NA_SEQUENCEβ1.0 |
| LOCUSββββββHS202G3ββββββββ522βbpββββββmRNAββββββββPRIββββββββββ03-AUG-1995 |
| DEFINITIONβH.βsapiensβmRNAβforβimmunoglobulinβvariableβregionβ(cloneβ202-G3). |
| ACCESSIONββZ47259 |
| VERSIONββββZ47259.1βGI:β619470 |
| βββNgeneβ=β522 |
| βNoβstopsβinβreadingβframeβ1 |
| βStopβcodonsβinβreadingβframeβ2 |
| ββββ89β110β305β314 |
| βStopβcodonsβinβreadingβframeβ3 |
| ββββ84β192β321β351β369 |
| βββ1βatgβgacβtggβaccβtggβaggβttcβctcβtttβgtgβgtgβgcaβgcaβgctβaca |
| ββ46βggtβgtcβcagβtccβcagβgtgβcagβctgβgtgβcagβtctβgggβgctβgagβgtg |
| ββ91βaagβaagβcctβgggβtccβtcgβgtgβaagβgtcβtccβTGCβaagβgctβtctβgga |
| β136βggcβaccβttcβagcβagcβtatβgctβatcβagcβtggβgtgβcgaβcagβgccβcct |
| β181βggaβcaaβgggβcttβgagβtggβatgβggaβgggβatcβatcβcctβatcβtttβggt |
| β226βacaβgcaβaacβtacβgcaβcagβaagβttcβcagβggcβagaβgtcβacgβattβacc |
| β271βgcgβgacβgaaβtccβacgβagcβacaβgccβtacβatgβgagβctgβagcβagcβctg |
| β316βagaβtctβgagβgacβacgβgccβgtg |
| <YHCAS>βtatβcacβTGTβgcgβagt |
| (SEQβIDβNO:β116) |
| ββββgagβggaβtgg |
| β361βgagβagtβTGTβagtβggtβggtβggcβTGCβtacβgacβggtβatgβgacβgtcβTGG |
| β406βGGCβcaaβgggβaccβacGβGTCβACCβgtcβtccβtcaβgctβtccβaccβaagβggc |
| β451βccaβtcgβgtcβttcβcccβctgβgcgβcccβTGCβtccβaggβagcβaccβtctβggg |
| β496βggcβacaβgcgβgccβctgβggcβTGCβctgβ(SEQβIDβNO:β115) |
| βYYCβnotβfoundβ!!! |
| ----------------------------------------------------------------------------- |
| TABLEβ4P |
| contentsβofβfileβD1_1-01_Phz0_hsa239356.txt |
| SRGGKYQLAPKGGMβ(SEQβIDβNO:β117) |
| DRGGKYQLAPKGGMDVβ(SEQβIDβNO:β118) |
| JH3βD#β1βPhaseββ15βScoreβββββββ6.55Dβ+β04 |
| ----------------------------------------------------------------------------- |
| TABLEβ5P |
| alignmentβofβaβCDR3::JHβsegmentβtoβGLGβJHsβandβD-segments. |
| +c:\tmp\hs6d4xb7.text |
| βββββββββ1ββββ1ββββ2ββββ2ββββ3ββββ3βββ3 | |
| 1234567890ββββ5ββββ0ββββ5ββββ0ββββ5βββ9 | |
| Observed | tatgatagtagtgggtcatactccgactacTGGGGGcagβ(SEQβIDβNO:β119) |
| JH1 | ------------gctgaatacttccagcactggggccagggcaccctggtcaccgtctcctcag--(SEQβIDβNO:β120) |
| Missβ=β9βNtβ=β27 | |
| JH2 | -----------ctactggtacttcgatctctggggccgtggcaccctggtcactgtctcctcag--(SEQβIDβNO:β121) |
| Missβ=β13βNtβ=β28 | |
| JH3 | --------------tgatgcttttgatatctggggccaagggacaatggtcaccgtctcttcag--(SEQβIDβNO:β122) |
| Missβ=β14βNtβ=β25 | |
| JH4 | ----------------actactttgactactggggccagggaaccctggtcaccgtctcctcag--(SEQβIDβNO:β123) |
| Missβ=β5βNtβ=β23 | |
| JH5 | -------------acaactggttcgacccctggggccagggaaccctggtcaccgtctcctcag--(SEQβIDβNO:β124) |
| Missβ=β11βNtβ=β26 | |
| JH6 | -attactactactactacggtatggacgtctggggccaagggaccacggtcaccgtctcctcag--(SEQβIDβNO:β125) |
| Missβ=β23βNtβ=β38 | |
| 4 | tatβgatβagtβagtβgggβtcaβTACβTccβGACβTACβTGGβGGgβCAGβ(SEQβIDβNO:β126) |
| βYβββDβββSβββSβββGβββSβββYβββSβββDβββYβββWβββGβββQβ(SEQβIDβNO:β127) | |
| JH4 | ---β---β---β---β---β-acβtacβtttβgacβtacβtggβggcβcagβggaβaccβctgβgtcβaccβgtcβtccβtcaβg-- |
| (SEQβIDβNO:β128) | |
| β-βββ-βββ-βββ-βββ-βββ-βββYβββFβββDβββYβββWβββGβββQβββGβββTβββLβββVβββTβββVβββSβββSβββ-(SEQβID | |
| NO:β129) | |
| Fractβ=β0.783β=β18β/β23 |
| MatchingβtheβrestβtoβDβsegments: |
| D#13 | --------gtattactatgatagtagtggttattactacβGLGβ(SEQβIDβNO:β130) |
| β | gatcgccacaattactatgatagtagtgggtcatactccβObservedβ(SEQβIDβNO:β131) |
| --------gt...................t.at....a.β.β=βmatch | |
| D#13βPhaseβ=β9βScoreβ=β4.3980E+12 |
| TABLE 6P |
| Number of sequences identified as having JH derived |
| from GLG JHn |
| JH | 1 | 2 | 3 | 4 | 5 | 6 |
| # sequences | 17 | 40 | 198 | 707 | 160 | 261 |
| TABLE 7P |
| Distribution of CDR3 fragments that might contain D segments. |
| For JH1 |
| 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | 11 | 12 | 13 | |
| 0 | 0 | 1 | 1 | 3 | 1 | 1 | 2 | 0 | 3 | 1 | 1 | 1 | 2 | |
| Total = 17 Median = 8.0 |
| For JH2 |
| 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | 11 | 12 | 13 | 14 |
| 0 | 0 | 0 | 0 | 0 | 2 | 4 | 6 | 2 | 6 | 3 | 4 | 5 | 2 | 3 |
| 15 | 16 | 17 | 18 | |||||||||||
| 2 | 0 | 0 | 1 | |||||||||||
| Total = 40 Median = 9.0 |
| For JH3 |
| 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | 11 | 12 | 13 | 14 |
| 0 | 0 | 2 | 6 | 16 | 12 | 17 | 17 | 15 | 22 | 20 | 20 | 18 | 13 | 4 |
| 15 | 16 | 17 | 18 | 19 | ||||||||||
| 8 | 3 | 2 | 1 | 2 | ||||||||||
| Total = 198 Median = 8.6 |
| For JH4 |
| 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | 11 | 12 | 13 | 14 |
| 0 | 0 | 7 | 15 | 19 | 40 | 63 | 82 | 81 | 77 | 81 | 53 | 57 | 44 | 30 |
| 15 | 16 | 17 | 18 | 19 | 20 | 21 | 22 | 23 | 24 | 25 | 26 | 27 | 28 | 29 |
| 15 | 23 | 8 | 3 | 5 | 2 | 0 | 1 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
| 30 | 31 | 32 | 33 | 34 | 35 | |||||||||
| 0 | 0 | 0 | 0 | 0 | 1 | |||||||||
| Total = 707 Median = 8.6 |
| For JH5 |
| 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | 11 | 12 | 13 | 14 |
| 0 | 0 | 0 | 3 | 4 | 6 | 13 | 19 | 12 | 14 | 22 | 18 | 10 | 18 | 10 |
| 15 | 16 | 17 | 18 | 19 | 20 | 21 | 22 | 23 | 24 | 25 | 26 | 27 | 28 | 29 |
| 5 | 1 | 1 | 0 | 0 | 1 | 1 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
| 30 | 31 | 32 | 33 | 34 | 35 | 36 | 37 | 38 | 39 | 40 | 41 | 42 | 43 | 44 |
| 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 1 | 0 | 0 |
| 45 | 46 | |||||||||||||
| 0 | 1 | |||||||||||||
| Total = 160 Median = 9.4 |
| For JH6 |
| 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | 11 | 12 | 13 | 14 |
| 2 | 0 | 1 | 2 | 5 | 15 | 20 | 18 | 22 | 29 | 29 | 28 | 23 | 16 | 10 |
| 15 | 16 | 17 | 18 | 19 | 20 | |||||||||
| 14 | 9 | 9 | 4 | 2 | 3 | |||||||||
| Total = 261 Median = 9.6 |
| TABLE 8P |
| Lengths of CDR3 segments from YYCAR to WG. |
| Distribution of lengths from end of FR3 to WG motif all sequences. |
| L | 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 |
| N | 6 | 0 | 0 | 4 | 2 | 9 | 13 | 38 | 61 | 88 | 101 |
| Sum(N) | 6 | 6 | 6 | 10 | 12 | 21 | 34 | 72 | 133 | 221 | 322 |
| f | .004 | .004 | .004 | .007 | .009 | .015 | .025 | .052 | .096 | .160 | .233 |
| L | 11 | 12 | 13 | 14 | 15 | 16 | 17 | 18 | 19 | 20 | 21 |
| N | 118 | 154 | 150 | 118 | 125 | 105 | 84 | 61 | 46 | 42 | 16 |
| SN | 440 | 594 | 744 | 862 | 987 | 1092 | 1176 | 1237 | 1283 | 1325 | 1341 |
| f | .318 | .430 | .538 | .623 | .714 | .790 | .850 | .894 | .928 | .958 | .970 |
| L | 22 | 23 | 24 | 25 | 26 | 27 | 28 | 29 | 30 | 31 | 32 |
| N | 17 | 7 | 9 | 2 | 1 | 0 | 2 | 1 | 0 | 0 | 0 |
| SN | 1358 | 1365 | 1374 | 1376 | 1377 | 1377 | 1379 | 1380 | 1380 | 1380 | 1380 |
| f | .982 | .987 | .993 | .995 | .996 | .996 | .997 | .998 | .998 | .998 | .998 |
| L | 33 | 34 | 35 | 36 | 37 | 38 | 39 | 40 | 41 | 42 | 43 |
| N | 0 | 0 | 0 | 0 | 1 | 0 | 0 | 0 | 0 | 1 | 0 |
| SN | 1380 | 1380 | 1380 | 1380 | 1381 | 1381 | 1381 | 1381 | 1381 | 1382 | 1382 |
| f | .998 | .998 | .998 | .998 | .999 | .999 | .999 | .999 | .999 | .999 | .999 |
| L | 44 | 45 | 46 | ||||||||
| N | 0 | 0 | 1 | ||||||||
| SN | 1382 | 1382 | 1383 | ||||||||
| f | .999 | .999 | 1.0 | ||||||||
| Median = | |||||||||||
| 12.65 | |||||||||||
| Distribution of lengths from end of FR3 to WG motif with assigned D. |
| L | 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 |
| N | 3 | 0 | 0 | 0 | 0 | 0 | 3 | 9 | 21 | 15 | 39 |
| SN | 3 | 3 | 3 | 3 | 3 | 3 | 6 | 15 | 36 | 51 | 90 |
| f | .004 | .004 | .004 | .004 | .004 | .004 | .008 | .019 | .046 | .065 | .115 |
| L | 11 | 12 | 13 | 14 | 15 | 16 | 17 | 18 | 19 | 20 | 21 |
| N | 64 | 77 | 97 | 72 | 77 | 75 | 63 | 45 | 35 | 38 | 15 |
| SN | 154 | 231 | 328 | 400 | 477 | 552 | 615 | 660 | 695 | 733 | 748 |
| f | .196 | .294 | .418 | .510 | .608 | .703 | .783 | .841 | .885 | .934 | .953 |
| L | 22 | 23 | 24 | 25 | 26 | 27 | 28 | 29 | 30 | 31 | 32 |
| N | 15 | 6 | 9 | 2 | 1 | 0 | 1 | 1 | 0 | 0 | 0 |
| SN | 763 | 769 | 778 | 780 | 781 | 781 | 782 | 783 | 783 | 783 | 783 |
| f | .972 | .980 | .991 | .994 | .995 | .995 | .996 | .997 | .997 | .997 | .997 |
| L | 33 | 34 | 35 | 36 | 37 | 38 | 39 | 40 | 41 | 42 | 43 |
| N | 0 | 0 | 0 | 0 | 1 | 0 | 0 | 0 | 0 | 0 | 0 |
| SN | 783 | 783 | 783 | 783 | 784 | 784 | 784 | 784 | 784 | 784 | 784 |
| f | .997 | .997 | .997 | .997 | .999 | .999 | .999 | .999 | .999 | .999 | .999 |
| L | 44 | 45 | 46 | ||||||||
| N | 0 | 0 | 1 | ||||||||
| SN | 784 | 784 | 785 | ||||||||
| f | .999 | .999 | 1.0 | ||||||||
| Median = | |||||||||||
| 13.90 | |||||||||||
| Distribution of lengths from end of FR3 to WG motif with no assigned D. |
| L | 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 |
| N | 3 | 0 | 0 | 4 | 2 | 9 | 10 | 29 | 40 | 73 | 62 |
| SN | 3 | 3 | 3 | 7 | 9 | 18 | 28 | 57 | 97 | 170 | 232 |
| f | .005 | .005 | .005 | .012 | .015 | .030 | .047 | .095 | .162 | .284 | .388 |
| L | 11 | 12 | 13 | 14 | 15 | 16 | 17 | 18 | 19 | 20 | 21 |
| N | 54 | 77 | 53 | 46 | 48 | 30 | 21 | 16 | 11 | 4 | 1 |
| SN | 286 | 363 | 416 | 462 | 510 | 540 | 561 | 577 | 588 | 592 | 593 |
| f | .478 | .607 | .696 | .773 | .853 | .903 | .938 | .965 | .983 | .990 | .992 |
| L | 22 | 23 | 24 | 25 | 26 | 27 | 28 | 29 | 30 | 31 | 32 |
| N | 2 | 1 | 0 | 0 | 0 | 0 | 1 | 0 | 0 | 0 | 0 |
| SN | 595 | 596 | 596 | 596 | 596 | 596 | 597 | 597 | 597 | 597 | 597 |
| f | .995 | .997 | .997 | .997 | .997 | .997 | .998 | .998 | .998 | .998 | .998 |
| L | 33 | 34 | 35 | 36 | 37 | 38 | 39 | 40 | 41 | 42 | |
| N | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 1 | |
| SN | 597 | 597 | 597 | 597 | 597 | 597 | 597 | 597 | 597 | 598 | |
| f | .998 | .998 | .998 | .998 | .998 | .998 | .998 | .998 | .998 | 1.0 | |
| Median = | |||||||||||
| 11.17 | |||||||||||
| L is the length | |||||||||||
| N is the number of examples | |||||||||||
| Sum(N) = SN is the sum of the Ns | |||||||||||
| f is the cumulative fraction seen |
| TABLEβ9P |
| Tallyβofβleft-alignedβCDR3βsequences |
| A | C | D | E | F | G | H | I | K | L | M | # | ||
| β1 | 74 | ββ6 | 278 | 109 | 11 | β319 | β50 | β18 | β11 | β60 | ββ8 | 1383 | GDERVASLHTNQPIWYFKMCX |
| β2 | 50 | ββ9 | β64 | β32 | 29 | β249 | β43 | β42 | β41 | 109 | β22 | 1377 | GRPSLDVYTANHIQKEFMWCX |
| β3 | 81 | β18 | β74 | β39 | 25 | β214 | β29 | β42 | β16 | β83 | β19 | 1377 | GSYRTVLADPIWEQHNFMCK| |
| β4 | 70 | β23 | β92 | β49 | 50 | β228 | β23 | β58 | β21 | β70 | β16 | 1373 | GSYDRVALTIPFEWNCHQKMX |
| β5 | 86 | β28 | 106 | β32 | 59 | β217 | β21 | β41 | β16 | β72 | β19 | 1371 | GYSDAVTLRFIPWNECHMQK|X |
| β6 | 88 | β17 | 104 | β28 | 94 | β171 | β17 | β48 | β12 | β50 | β17 | 1362 | GYSDFATVRWPLINEQCHMK| |
| β7 | 69 | β15 | 110 | β21 | 89 | β176 | β22 | β50 | β15 | β81 | β12 | 1349 | GSYDFVLTAPRWINHEQCKM|X |
| β8 | 53 | β19 | 141 | β17 | 90 | β150 | β18 | β47 | β17 | β68 | β11 | 1311 | YSGDFLTVWAPIRNCHEKQM| |
| β9 | 44 | β21 | 120 | β24 | 102 | β174 | β24 | β36 | β20 | β71 | β11 | 1250 | YGSDFLNVRTAWPIEHCKQM| |
| 10 | 39 | β31 | 129 | β23 | 124 | β116 | β23 | β42 | ββ9 | β58 | β32 | 1162 | YDFGSLIARPTVWNMCEHQK |
| 11 | 36 | β12 | 158 | β17 | 137 | ββ83 | β13 | β18 | β10 | β40 | β21 | 1061 | YDFGSPLVANWMTRIEHCKQX |
| 12 | 34 | β11 | 164 | β10 | 82 | ββ74 | β34 | β30 | ββ1 | β31 | β20 | β943 | YDFGPSVAHLINMRTWCEQKX |
| 13 | 32 | ββ2 | 121 | ββ6 | 84 | ββ56 | β10 | β26 | ββ7 | β43 | β32 | β789 | YDFGLSPVAMIWRTHNKQEC |
| 14 | 23 | 131 | ββ5 | 59 | ββ65 | β10 | β16 | ββ4 | β25 | β34 | β639 | YDGFMVLAPISWNRHTQEKX | |
| 15 | 15 | ββ4 | 107 | ββ5 | 43 | ββ42 | ββ1 | β23 | β20 | β34 | β521 | YDFGVMILWAPRSENCQTH| | |
| 16 | 4 | ββ2 | β80 | ββ3 | 33 | ββ26 | ββ4 | ββ5 | ββ1 | β10 | β29 | β396 | YDVFMGPSLNTRIWAHECQ|K |
| 17 | 3 | ββ1 | β63 | 19 | ββ19 | ββ9 | β13 | β12 | β21 | β291 | DYVMFGILHPSTWAQRCNX | ||
| 18 | 3 | β47 | 16 | ββ13 | ββ1 | ββ4 | ββ7 | β23 | β207 | DYVMFGPSLTIAHN | |||
| 19 | 5 | β1 | β39 | ββ1 | 4 | ββ13 | ββ3 | ββ3 | ββ1 | β14 | β146 | DYVMGAFHINRSCELPQW | |
| 20 | 2 | β17 | 4 | βββ5 | ββ3 | ββ4 | β12 | β100 | VYDMGFLIPSARWQ | ||||
| 21 | β17 | 3 | βββ8 | ββ1 | ββ1 | ββ4 | ββ58 | DVGYMFHINTW | |||||
| 22 | 1 | ββ7 | 6 | βββ1 | ββ1 | ββ5 | ββ42 | VDFMYSAGITW | |||||
| 23 | ββ9 | βββ1 | ββ1 | ββ1 | ββ1 | ββ25 | DVYGILMPS | ||||||
| 24 | 1 | ββ2 | ββ1 | ββ1 | ββ1 | ββ18 | VYDAHLMPT | ||||||
| 25 | ββ1 | βββ3 | βββ9 | GVDPSY | |||||||||
| 26 | βββ2 | ββ2 | βββ7 | GMSTV | |||||||||
| 27 | ββ2 | ββ1 | ββ1 | βββ6 | DKMST | ||||||||
| 28 | 1 | ββ1 | βββ1 | βββ6 | VADGS | ||||||||
| 29 | ββ1 | βββ4 | DPSV | ||||||||||
| 30 | 1 | βββ3 | FST | ||||||||||
| 31 | ββ1 | ββ1 | βββ3 | KLV | |||||||||
| 32 | 1 | βββ1 | βββ3 | FGP | |||||||||
| 33 | βββ1 | βββ3 | PG | ||||||||||
| 34 | 1 | ββ1 | ββ1 | βββ3 | HLS | ||||||||
| 35 | βββ3 | AVW | |||||||||||
| 36 | β1 | 1 | βββ3 | DFP | |||||||||
| 37 | βββ3 | PSY | |||||||||||
| 38 | ββ1 | βββ2 | LS | ||||||||||
| 39 | 1 | ββ1 | βββ2 | AK | |||||||||
| 40 | βββ2 | PS | |||||||||||
| 41 | βββ2 | ST | |||||||||||
| 42 | βββ2 | S | |||||||||||
| 43 | ββ1 | βββ1 | K | ||||||||||
| 44 | βββ1 | S | |||||||||||
| 45 | βββ1 | T | |||||||||||
| 46 | βββ1 | S | |||||||||||
| 816 | 220 | 2186 | 421 | 1166 | 2428 | 358 | 568 | 205 | 920 | 421 | |||
| N | P | Q | R | S | T | V | W | Y | | | X | # | ||
| β1 | β35 | β23 | β31 | 108 | ββ63 | β50 | ββ94 | β16 | ββ13 | β6 | 1383 | GDERVASLHTNQPIWYFKMCX | |
| β2 | β44 | 114 | β42 | 169 | β114 | β59 | ββ62 | β21 | ββ60 | β2 | 1377 | GRPSLDVYTANHIQKEFMWCX | |
| β3 | β26 | β73 | β37 | 110 | β140 | β97 | ββ89 | β42 | β122 | β1 | 1377 | GSYRTVLADPIWEQHNFMCK| | |
| β4 | β48 | β51 | β22 | β79 | β141 | β65 | ββ77 | β49 | β139 | β2 | 1373 | GSYDRVALTIPFEWNCHQKMX | |
| β5 | β37 | β41 | β18 | β61 | β157 | β75 | ββ85 | β38 | β158 | β2 | β2 | 1371 | GYSDAVTLRFIPWNECHMQK|X |
| β6 | β32 | β54 | β23 | β67 | β152 | β80 | ββ78 | β64 | β165 | β1 | 1362 | GYSDFATVRWPLINEQCHMK| | |
| β7 | β44 | β59 | β18 | β58 | β157 | β73 | ββ85 | β54 | β139 | β1 | β1 | 1349 | GSYDFVLTAPRWINHEQCKM|X |
| β8 | β38 | β48 | β14 | β41 | β167 | β68 | ββ59 | β59 | β185 | β1 | 1311 | YSGDFLTVWAPIRNCHEKQM| | |
| β9 | β52 | β40 | β14 | β47 | β123 | β45 | ββ48 | β41 | β192 | β1 | 1250 | YGSDFLNVRTAWPIEHCKQM| | |
| 10 | β33 | β37 | β12 | β39 | ββ73 | β36 | ββ36 | β35 | β235 | 1162 | YDFGSLIARPTVWNMCEHQK | ||
| 11 | β33 | β49 | ββ7 | β20 | ββ68 | β21 | ββ37 | β29 | β251 | β1 | 1061 | YDFGSPLVANWMTRIEHCKQX | |
| 12 | β30 | β53 | β10 | β19 | ββ45 | β19 | ββ42 | β18 | β215 | β1 | β943 | YDFGPSVAHLINMRTWCEQKX | |
| 13 | β10 | β34 | ββ7 | β22 | ββ40 | β15 | ββ33 | β25 | β184 | β789 | YDFGLSPVAMIWRTHNKQEC | ||
| 14 | β13 | β22 | ββ6 | β12 | ββ15 | β10 | ββ26 | β14 | β148 | β1 | β639 | YDGFMVLAPISWNRHTQEKX | |
| 15 | ββ5 | β12 | ββ2 | β12 | ββ12 | ββ3 | ββ40 | β20 | β119 | β1 | β521 | YDFGVMILWAPRSENCQTH| | |
| 16 | β10 | β24 | ββ3 | ββ6 | ββ12 | ββ7 | ββ49 | ββ5 | ββ82 | β2 | β396 | YDVFMGPSLNTRIWAHECQ|K | |
| 17 | ββ1 | ββ8 | ββ3 | ββ2 | βββ8 | ββ5 | ββ42 | ββ4 | ββ58 | β1 | β291 | DYVMFGILHPSTWAQRCNX | |
| 18 | ββ1 | β13 | βββ8 | ββ5 | ββ31 | ββ35 | β207 | DYVMFGPSLTIAHN | |||||
| 19 | ββ2 | ββ1 | ββ1 | ββ2 | βββ2 | ββ24 | ββ1 | ββ29 | β146 | DYVMGAFHINRSCELPQW | |||
| 20 | ββ3 | ββ1 | ββ2 | βββ3 | ββ23 | ββ2 | ββ19 | β100 | VYDMGFLIPSARWQ | ||||
| 21 | 1 | ββ1 | ββ14 | ββ1 | βββ7 | ββ58 | DVGYMFHINTW | ||||||
| 22 | βββ2 | ββ1 | ββ12 | ββ1 | βββ5 | ββ42 | VDFMYSAGITW | ||||||
| 23 | ββ1 | βββ1 | βββ5 | βββ5 | ββ25 | DVYGILMPS | |||||||
| 24 | ββ1 | ββ1 | βββ5 | βββ5 | ββ18 | VYDAHLMPT | |||||||
| 25 | ββ1 | βββ1 | βββ2 | βββ1 | βββ9 | GVDPSY | |||||||
| 26 | βββ1 | ββ1 | βββ1 | βββ7 | GMSTV | ||||||||
| 27 | βββ1 | ββ1 | βββ6 | DKMST | |||||||||
| 28 | βββ1 | βββ2 | βββ6 | VADGS | |||||||||
| 29 | ββ1 | βββ1 | βββ1 | βββ4 | DPSV | ||||||||
| 30 | βββ1 | ββ1 | βββ3 | FST | |||||||||
| 31 | βββ1 | βββ3 | KLV | ||||||||||
| 32 | ββ1 | βββ3 | FGP | ||||||||||
| 33 | ββ2 | βββ3 | PG | ||||||||||
| 34 | βββ1 | βββ3 | HLS | ||||||||||
| 35 | ββ1 | βββ1 | βββ3 | AVW | |||||||||
| 36 | ββ1 | β1 | βββ3 | DFP | |||||||||
| 37 | ββ1 | βββ1 | βββ3 | PSY | |||||||||
| 38 | βββ1 | βββ2 | LS | ||||||||||
| 39 | βββ2 | AK | |||||||||||
| 40 | β1 | βββ1 | βββ2 | PS | |||||||||
| 41 | βββ1 | ββ1 | βββ2 | ST | |||||||||
| 42 | βββ2 | βββ2 | S | ||||||||||
| 43 | βββ1 | K | |||||||||||
| 44 | βββ1 | βββ1 | S | ||||||||||
| 45 | ββ1 | βββ1 | T | ||||||||||
| 46 | βββ1 | βββ1 | S | ||||||||||
| 495 | 769 | 270 | 876 | 1518 | 741 | 1104 | 540 | 2572 | 10 | 17 | 18621 | ||
| TABLEβ10P |
| Tallyβofβright-alignedβsequences |
| A | C | D | E | F | G | H | I | K | L | M | |||
| β5 | βββ1 | βββ1 | G | ||||||||||
| β6 | βββ1 | S | |||||||||||
| β7 | βββ1 | βββ1 | G | ||||||||||
| β8 | βββ1 | βββ1 | G | ||||||||||
| β9 | βββ2 | RV | |||||||||||
| 10 | βββ2 | RV | |||||||||||
| 11 | βββ1 | ββ1 | βββ2 | GI | |||||||||
| 12 | βββ2 | V | |||||||||||
| 13 | βββ2 | TY | |||||||||||
| 14 | βββ1 | βββ1 | βββ3 | DGN | |||||||||
| 15 | ββ1 | βββ3 | ISY | ||||||||||
| 16 | ββ1 | βββ3 | DSY | ||||||||||
| 17 | ββ1 | βββ3 | APY | ||||||||||
| 18 | βββ1 | βββ1 | ββ1 | βββ3 | DFM | ||||||||
| 19 | βββ2 | βββ1 | βββ3 | DG | |||||||||
| 20 | ββ1 | ββ1 | βββ3 | ILV | |||||||||
| 21 | βββ3 | WP | |||||||||||
| 22 | βββ3 | βββ4 | GS | ||||||||||
| 23 | βββ2 | ββ1 | βββ6 | GHQSV | |||||||||
| 24 | ββ1 | βββ3 | ββ1 | βββ6 | GALR | ||||||||
| 25 | ββ1 | βββ2 | ββ1 | βββ7 | DTAIS | ||||||||
| 26 | ββ1 | ββ1 | βββ1 | βββ1 | ββ1 | ββ1 | ββ1 | βββ9 | ACDGKLMST | ||||
| 27 | ββ2 | βββ5 | ββ1 | βββ2 | ββ1 | ββ1 | ββ18 | DAGVEILNQRS | |||||
| 28 | βββ2 | ββ2 | βββ3 | ββ1 | ββ2 | ββ25 | TGQSDELPRIV | ||||||
| 29 | ββ3 | βββ5 | ββ6 | βββ7 | ββ1 | ββ1 | ββ1 | ββ42 | GEDVAPQRSKLMTY| | ||||
| 30 | ββ2 | βββ9 | βββ1 | βββ9 | ββ1 | ββ4 | ββ5 | ββ2 | ββ58 | DGRLSIVPAMQTFHNY | |||
| 31 | ββ4 | ββ2 | ββ19 | ββ9 | βββ2 | ββ18 | ββ1 | ββ2 | ββ1 | ββ3 | β100 | DGSERVYALPTCFINHKW | |
| 32 | β10 | ββ5 | ββ18 | ββ5 | βββ3 | ββ16 | ββ3 | ββ3 | ββ2 | β14 | ββ1 | β146 | DGLRVAPYSTCEQFHINWKM |
| 33 | β20 | ββ18 | β10 | βββ7 | ββ34 | ββ7 | ββ8 | ββ2 | ββ6 | ββ1 | β207 | GARDPSYTEVIFHLQWKM | |
| 34 | β13 | ββ4 | ββ31 | β18 | βββ9 | ββ37 | ββ8 | β16 | ββ4 | β14 | ββ4 | β291 | GDRYPVEILASTFHQWCKMNX| |
| 35 | β17 | ββ5 | ββ32 | β23 | ββ10 | ββ70 | β12 | β10 | ββ6 | β25 | ββ1 | β396 | GRSDYLEVTPAHNFIWKCQM| |
| 36 | β23 | ββ6 | ββ51 | β21 | βββ9 | ββ79 | β19 | β15 | β14 | β36 | ββ9 | β521 | GDSYRLTVPAEHIKNFMWCQ| |
| 37 | β35 | β12 | ββ56 | β23 | ββ15 | β110 | β14 | β17 | ββ5 | β24 | ββ4 | β639 | GYDVRSTAPLEIFHNCWQKMX |
| 38 | β28 | β19 | ββ68 | β27 | ββ29 | β133 | β26 | β31 | β12 | β43 | ββ7 | β789 | GSYDVRLPTIFAEHCNWKQM |
| 39 | β51 | β25 | ββ80 | β27 | ββ33 | β162 | β16 | β30 | β18 | β55 | β15 | β943 | GSDRYVLATPFWIECKHMQNK |
| 40 | β44 | β14 | ββ73 | β36 | ββ46 | β161 | β27 | β32 | β17 | β59 | ββ8 | 1061 | GSRDYVTLPFAEIWHQNKCM |
| 41 | β54 | β21 | ββ74 | β25 | ββ23 | β178 | β23 | β52 | β15 | β57 | β11 | 1162 | GSYTDRVLPAIWNQEFHCKMX| |
| 42 | β57 | β13 | ββ82 | β40 | ββ42 | β190 | β14 | β39 | β15 | β82 | β15 | 1250 | GSYDLVRTANPFEIWQKMHC| |
| 43 | β75 | β18 | ββ54 | β25 | ββ35 | β242 | β13 | β29 | β18 | β49 | β12 | 1311 | GYSTARVPDLWNFIQECKHM| |
| 44 | β63 | β17 | ββ79 | β15 | ββ43 | β197 | β20 | β38 | β14 | β76 | ββ8 | 1349 | YGSTDLRAPVWNFIQHCEKM |
| 45 | β59 | β16 | ββ69 | β35 | ββ55 | β165 | β26 | β23 | β23 | β75 | ββ9 | 1362 | YGSLRTDNAFPVWEHIKCQM |
| 46 | β41 | β19 | β125 | β26 | ββ27 | β208 | β31 | β14 | β16 | β38 | ββ8 | 1371 | YGDSNRWATLPHFECQCKIM |
| 47 | 160 | β10 | β24 | β13 | ββ53 | β332 | β36 | β16 | β11 | β40 | β10 | 1373 | GYAWPSFRLHTVNDIEKCMQX |
| 48 | β21 | ββ4 | βββ8 | ββ5 | β680 | ββ27 | ββ4 | β44 | ββ5 | 145 | 288 | 1377 | FMLISGVYPAWTDNQREKCHX |
| 49 | β23 | ββ2 | 1181 | β29 | βββ1 | ββ30 | β15 | ββ4 | ββ2 | ββ8 | ββ1 | 1377 | DGEAHNQSYVLPTIRCKW|FMX |
| 50 | ββ7 | ββ7 | ββ15 | ββ42 | βββ3 | β41 | 135 | ββ3 | β59 | ββ4 | 1383 | YVIPSLFHNDTACXMGKQRW| | |
| 816 | 220 | 2186 | 421 | 1166 | 2428 | 358 | 568 | 205 | 920 | 421 | |||
| N | P | Q | R | S | T | V | W | Y | | | X | # | ||
| β5 | 1 | βββ1 | G | ||||||||||
| β6 | βββ1 | S | |||||||||||
| β7 | βββ1 | G | |||||||||||
| β8 | βββ1 | G | |||||||||||
| β9 | ββ1 | βββ1 | βββ2 | RV | |||||||||
| 10 | ββ1 | βββ1 | βββ2 | RV | |||||||||
| 11 | βββ2 | GI | |||||||||||
| 12 | βββ2 | βββ2 | V | ||||||||||
| 13 | ββ1 | βββ1 | βββ2 | TY | |||||||||
| 14 | ββ1 | βββ3 | DGN | ||||||||||
| 15 | βββ1 | βββ1 | βββ3 | ISY | |||||||||
| 16 | βββ1 | βββ1 | βββ3 | DSY | |||||||||
| 17 | ββ1 | βββ1 | βββ3 | APY | |||||||||
| 18 | βββ3 | DFM | |||||||||||
| 19 | βββ3 | DG | |||||||||||
| 20 | βββ1 | βββ3 | ILV | ||||||||||
| 21 | ββ1 | ββ2 | βββ3 | WP | |||||||||
| 22 | βββ1 | βββ4 | GS | ||||||||||
| 23 | ββ1 | βββ1 | βββ1 | βββ6 | GSQSV | ||||||||
| 24 | ββ1 | βββ6 | GALR | ||||||||||
| 25 | βββ1 | ββ2 | βββ7 | DTAIS | |||||||||
| 26 | βββ1 | ββ1 | βββ9 | ACDGKLMST | |||||||||
| 27 | ββ1 | ββ1 | ββ1 | βββ1 | βββ2 | ββ18 | DAGVEILNQRS | ||||||
| 28 | ββ2 | ββ3 | ββ2 | βββ3 | ββ4 | βββ1 | ββ25 | TGQSDELPRIV | |||||
| 29 | ββ3 | ββ3 | ββ2 | βββ2 | ββ1 | βββ5 | βββ1 | β1 | ββ42 | GEDVAPQRSKLMTY| | |||
| 30 | ββ1 | ββ3 | ββ2 | ββ7 | βββ5 | ββ2 | βββ4 | βββ1 | ββ58 | DGRLSIVPAMQTFHNY | |||
| 31 | ββ2 | ββ3 | ββ7 | ββ10 | ββ3 | βββ7 | ββ1 | βββ6 | β100 | DGSERVYALPTCFINHKW | |||
| 32 | ββ3 | ββ9 | ββ4 | β12 | βββ8 | ββ6 | ββ12 | ββ3 | βββ9 | β146 | DGLRVAPYSTCEQFHINWKM | ||
| 33 | β16 | ββ6 | β19 | ββ15 | β12 | ββ10 | ββ3 | ββ13 | β207 | GARDPSYTEVIFHLQWKM | |||
| 34 | ββ2 | β20 | ββ5 | β31 | ββ12 | β12 | ββ20 | ββ5 | ββ23 | β1 | β2 | β291 | GDRYPVEILSASTFHQWCKMNX| |
| 35 | β12 | β18 | ββ5 | β39 | ββ35 | β19 | ββ23 | ββ7 | ββ26 | β1 | β396 | GRSDYLEVTPAHNFIWKCQM| | |
| 36 | β11 | β24 | ββ6 | β42 | ββ47 | β29 | ββ28 | ββ7 | ββ44 | β1 | β521 | GDSYRLTVPAEHIKNFMWCQ| | |
| 37 | β14 | β33 | ββ9 | β54 | ββ52 | β37 | ββ55 | β11 | ββ58 | β1 | β639 | GYDVRSTAPLEIFHNCWQKMX | |
| 38 | β18 | β33 | β12 | β46 | ββ77 | β32 | ββ58 | β17 | ββ73 | β789 | GSYDVRLPTIFAEHCNWKQM | ||
| 39 | β11 | β38 | β12 | β70 | ββ94 | β42 | ββ61 | β33 | ββ68 | β2 | β943 | GSDRYVLATPFWIECKHMQNX | |
| 40 | β24 | β52 | β27 | β74 | β140 | β61 | ββ66 | β29 | ββ71 | 1061 | GSRDYVTLPFAEIWHQNKCM | ||
| 41 | β31 | β55 | β29 | β70 | β146 | β76 | ββ61 | β51 | ββ97 | β1 | β2 | 1162 | GSYTDRVLPAIWNQEFHCKMX| |
| 42 | β48 | β47 | β24 | β68 | β171 | β68 | ββ70 | β39 | β125 | β1 | 1250 | GSYDLVRTANPFEIWQKMHC| | |
| 43 | β38 | β58 | β28 | β73 | β164 | β76 | ββ66 | β43 | β194 | β1 | 1311 | GYSTARVPDLWNFIQECKHM| | |
| 44 | β48 | β60 | β24 | β69 | β131 | β86 | ββ57 | β52 | β252 | 1349 | YGSTDLRAPVWNFIQHCEKM | ||
| 45 | β62 | β51 | β16 | β75 | β116 | β74 | ββ50 | β39 | β324 | 1362 | YGSLRTDNAFPVWEHIKCQM | ||
| 46 | β97 | β38 | β21 | β55 | β110 | β39 | ββ26 | β55 | β377 | 1371 | YGDSNRWATLPHFEVQCKIM | ||
| 47 | β25 | β54 | ββ9 | β44 | ββ54 | β34 | ββ32 | 122 | β292 | β2 | 1373 | GYAWPSFRLHTVNDIEKCMQX | |
| 48 | ββ8 | β22 | ββ7 | ββ6 | ββ28 | β10 | ββ25 | β16 | ββ23 | β1 | 1377 | FMLISGVYPAWTDNQREKCHX | |
| 49 | β15 | ββ6 | β13 | ββ4 | ββ13 | ββ5 | βββ9 | ββ2 | ββ11 | β2 | β1 | 1377 | DGEAHNQSYVLPTIRCKW|FMX |
| 50 | β23 | 122 | ββ3 | ββ3 | ββ67 | ββ9 | β350 | ββ3 | β480 | β1 | β6 | 1383 | YVIPSLFHNDTACXMGKQRW| |
| 50 | 495 | 769 | 270 | 876 | 1518 | 741 | 1104 | 540 | 2572 | 10 | 17 | 18621 | |
| TABLEβ11P |
| TalliesβofβAA-frequenciesβinβallβCDR3βbyβlength |
| Tallyβofβsequencesβofβlengthβ7β#β=β38 |
| A | C | D | E | F | G | H | I | K | L | M | # | ||
| 1 | 1 | β8 | 1 | β1 | 14 | 1 | 1 | β5 | 38 | GDLRWAEFHKS | |||
| 2 | 1 | β1 | β2 | β6 | 3 | 2 | β1 | 1 | 38 | RGNHVFKTYADLMW | |||
| 3 | 1 | β4 | β1 | β5 | 1 | β2 | β2 | 38 | GSDWYPVILTAFHN | ||||
| 4 | 3 | β1 | β1 | 12 | 1 | β1 | β1 | 38 | GYSANRVDFHILPT | ||||
| 5 | 2 | 1 | 14 | β3 | β4 | 1 | β3 | 3 | 38 | FIGLMARVYEKP | |||
| 6 | 26 | 1 | β1 | 38 | DVPTHISWY | ||||||||
| 7 | 1 | β2 | 2 | β3 | β1 | 38 | YVINDHSALR | ||||||
| 9 | 42 | 2 | 19 | 40 | 9 | 11 | 4 | 13 | 4 | ||||
| N | P | Q | R | S | T | V | W | Y | | | X | # | ||
| 1 | β3 | β1 | 2 | β38 | GDLRWAEFHKS | ||||||||
| 2 | β6 | β7 | 2 | β3 | 1 | β2 | β38 | RGNHVFKTYADLMW | |||||
| 3 | β1 | 3 | β5 | 2 | β3 | 4 | β4 | β38 | GSDWYPVILTAFHN | ||||
| 4 | β2 | 1 | β2 | β4 | 1 | β2 | β6 | β38 | GYSANRVDFHILPT | ||||
| 5 | 1 | β2 | β2 | β2 | β38 | FIGLMARVYEKP | |||||||
| 6 | 2 | β1 | 2 | β3 | 1 | β1 | β38 | DVPTHISWY | |||||
| 7 | β3 | β1 | β2 | β7 | 16 | β38 | YVINDHSALR | ||||||
| 12 | 7 | 15 | 13 | 7 | 20 | 8 | 31 | 266 | |||||
| Tallyβofβsequencesβofβlengthβ8β#β=β61 |
| A | C | D | E | F | G | H | I | K | L | M | # | ||
| 1 | β3 | β7 | 3 | 14 | β2 | β2 | β5 | 61 | GDLTVRSAEHINWPQY | ||||
| 2 | β1 | β9 | 1 | β1 | 15 | β1 | 2 | β1 | 61 | GDTNRSVKWYAEFILPQ | |||
| 3 | β2 | β3 | β1 | 10 | β1 | β1 | β7 | 61 | GLSTYVDPRAFHIMNQW | ||||
| 4 | β4 | 1 | β3 | 1 | β1 | 15 | β1 | β4 | 61 | GYRADQDSWVCEFHNPT | |||
| 5 | 10 | β2 | 1 | β9 | β5 | 1 | β5 | 1 | 61 | AGYHLTPRVDSEKMW | |||
| 6 | β5 | 1 | 24 | β2 | β7 | β5 | 2 | 61 | FIALPSVYGMCQRW | ||||
| 7 | β5 | 37 | 2 | β4 | β1 | β2 | 61 | DAHSELNVIP| | |||||
| 8 | β1 | β2 | β3 | β1 | 12 | β3 | 61 | YISFLVDNAHPRT | |||||
| 31 | 2 | 63 | 8 | 30 | 65 | 14 | 24 | 3 | 32 | 4 | |||
| N | P | Q | R | S | T | V | W | Y | | | X | # | ||
| 1 | β2 | β1 | 1 | β4 | β4 | β5 | β5 | β1 | β1 | β61 | GDLTVRSAEHINWPQY | ||
| 2 | β6 | β1 | 1 | β4 | β3 | β8 | β3 | β2 | β2 | β61 | GDTNRSVKWYAEFILPQ | ||
| 3 | β1 | β3 | 1 | β3 | β7 | β7 | β5 | β1 | β7 | β61 | GLSTYVDPRAFHIMNQW | ||
| 4 | β1 | β1 | 4 | β5 | β3 | β1 | β2 | β3 | 11 | β61 | GYRALQDSWVCEFHNPT | ||
| 5 | β4 | β4 | β2 | β5 | β4 | β1 | β7 | β61 | AGYHLTPRVDSEKMW | ||||
| 6 | β3 | 1 | β1 | β3 | β3 | β1 | β3 | β61 | FIALPSVYGMCQRW | ||||
| 7 | β2 | β1 | β4 | β2 | 1 | β61 | DAHSELNVIP| | ||||||
| 8 | β2 | β1 | β1 | β7 | β1 | β3 | 24 | β61 | YISFLVDNAHPRT | ||||
| 14 | 15 | 8 | 22 | 33 | 27 | 27 | 10 | 55 | 1 | 488 | |||
| Tallyβofβsequencesβofβlengthβ9β#β=β88 |
| A | C | D | E | F | G | H | I | K | L | M | # | ||
| 1 | β9 | 12 | β4 | β21 | β1 | β1 | 2 | β5 | 88 | GDARNVLEQTKWHIPSY | |||
| 2 | β2 | β2 | β3 | β3 | β13 | β4 | 3 | β7 | β2 | 88 | GPSRLNTHEFKYADMQW | ||
| 3 | β4 | 2 | β3 | β3 | β3 | β15 | β1 | β1 | 88 | GTPSQNRVWYADEFCLM | |||
| 4 | β5 | 1 | β6 | β3 | β6 | β22 | β2 | β4 | 1 | β6 | β1 | 88 | GSDFLARITYENPWHVCKM |
| 5 | β7 | 1 | β4 | β3 | β4 | β14 | β2 | β7 | β2 | 88 | GSYALNDFVERWHMQTCP | ||
| 6 | 13 | β2 | β1 | β3 | β13 | β6 | β2 | 1 | β4 | β1 | 88 | YAGHNLPSVFTWDIEKMQR | |
| 7 | β4 | β2 | 41 | ββ2 | β3 | 1 | 14 | β5 | 88 | FLMAPWIDGSVKNQTY | |||
| 8 | β1β | 1 | 73 | β2 | ββ2 | β1 | β2 | 88 | DEGLSACHNQRV | ||||
| 9 | 1 | β1 | β4 | ββ1 | β3 | β8 | β2 | 88 | YVISFHPLNTCDGF | ||||
| 45 | 6 | 105 | 19 | 64 | 103 | 19 | 18 | 8 | 48 | 12 | |||
| N | P | Q | R | S | T | V | W | Y | | | X | # | ||
| 1 | β7 | β1 | β3 | β8 | β1 | β3 | β7 | β2 | β1 | β88 | GDARNVLEQTKWHIPSY | ||
| 2 | β5 | 11 | β2 | 10 | 11 | β5 | β2 | β3 | β88 | GPSRLNTHEFKYADMQW | |||
| 3 | β5 | β7 | β6 | β5 | β7 | 11 | β5 | β5 | β5 | β88 | GTPSQNRVWYADEFCLM | ||
| 4 | β3 | β3 | β5 | β7 | β4 | β2 | β3 | β4 | β88 | GSDFLARITYENPWHVCKM | |||
| 5 | β6 | β1 | β2 | β3 | 12 | β2 | β4 | β3 | 11 | β88 | GSYALNDFVERWHMQTCP | ||
| 6 | β5 | β4 | β1 | β1 | β4 | β3 | β4 | β3 | 17 | β88 | YAGHNLPSVFTWDIEKMQR | ||
| 7 | β1 | β4 | β1 | β2 | β1 | β2 | β4 | β1 | β88 | FLMAPWIDGSVKNQTY | |||
| 8 | β1 | β1 | β1 | β2 | β1 | β88 | DEGLSACHNQRV | ||||||
| 9 | β2 | β3 | β1 | β8 | β2 | β9 | 43 | β88 | YVISFHPLNTCDGR | ||||
| 35 | 34 | 16 | 34 | 54 | 31 | 34 | 22 | 85 | 792 | ||||
| Tallyβofβsequencesβofβlengthβ10β#β=β101 |
| A | C | D | E | F | G | H | I | K | L | M | # | ||
| β1 | β8 | 1 | β19 | β7 | β1 | β16 | β3 | β2 | β3 | β2 | 101 | DGNAERTSQVHLWKMYCF | |
| β2 | β3 | ββ8 | β3 | β5 | β13 | β5 | 15 | β2 | 101 | LGRDSPVFINTAEQYMW | |||
| β3 | β6 | ββ9 | β1 | β26 | β1 | β3 | β1 | β4 | β1 | 101 | GSYDAVTLNRIPWFHKMQ | ||
| β4 | β7 | ββ6 | β1 | β25 | β1 | β5 | β4 | β1 | 101 | GSYARDINPLTVWQFHM | |||
| β5 | β6 | ββ5 | β9 | β4 | β16 | β1 | β3 | β4 | 101 | GYTESANDPRFLVKQWH | |||
| β6 | β6 | 1 | ββ6 | β5 | β4 | β23 | β2 | β4 | β3 | β3 | β1 | 101 | GYRSWADEFINKLTHCMQV |
| β7 | 13 | ββ3 | β1 | β5 | ββ9 | β3 | β1 | β4 | β1 | 101 | YASGPRWFTVLDHNEIMQ | ||
| β8 | β2 | 1 | β1 | 57 | ββ3 | β4 | 15 | β4 | 101 | ||||
| β9 | β3 | β78 | β2 | ββ6 | β1 | β1 | β1 | 101 | |||||
| 10 | ββ3 | β4 | β4 | 13 | β1 | 101 | |||||||
| 54 | 3 | 137 | 28 | 82 | 137 | 15 | 36 | 10 | 54 | 12 | |||
| N | P | Q | R | S | T | V | W | Y | | | X | # | ||
| β1 | β9 | β4 | β6 | β5 | β6 | β4 | β3 | ββ2 | β101 | DGNAERTSQVHLWKMYCF | |||
| β2 | β5 | β6 | β3 | 11 | β8 | β4 | β6 | β1 | ββ3 | β101 | LGRDSPVFINTAEQYMW | ||
| β3 | β4 | β3 | β1 | β4 | 14 | β5 | β6 | β2 | β10 | β101 | GSYDAVTLNRIPWFHKMQ | ||
| β4 | β5 | β5 | β3 | β7 | 11 | β4 | β4 | β4 | ββ8 | β101 | GSYARDINPLTVWQFHM | ||
| β5 | β6 | β5 | β2 | β5 | β8 | 10 | β4 | β2 | β11 | β101 | GYTESANDPRFLVKQWH | ||
| β6 | β4 | β1 | β8 | β7 | β3 | β1 | β7 | β12 | β101 | GYRSWADEFINKLTHCMQV | |||
| β7 | β2 | β7 | β1 | β7 | 11 | β5 | β5 | β6 | β17 | β101 | YASGPRWFTVLDHNEIMQ | ||
| β8 | β2 | β2 | β4 | β2 | β3 | ββ1 | β101 | FLIMSGWANPVCEY | |||||
| β9 | β2 | β1 | β3 | β1 | β1 | ββ1 | β101 | DGAQENIKLPRSW | |||||
| 10 | β4 | β8 | β7 | β5 | β52 | β101 | YIPSVFHNDL | ||||||
| 43 | 37 | 18 | 49 | 76 | 37 | 37 | 29 | 116 | 1010 | ||||
| Tallyβofβsequencesβofβlengthβ11β#β=β118 |
| A | C | D | E | F | G | H | I | K | L | M | # | ||
| β1 | β7 | 1 | β21 | 11 | β23 | β5 | β2 | β7 | 118 | GDEVRALQHSPTINCWY | |||
| β2 | β1 | 2 | ββ9 | β1 | ββ1 | β24 | β5 | β6 | 2 | β7 | β3 | 118 | GSRDYLPIVHQTMNCKWAEFX |
| β3 | β4 | ββ4 | β2 | ββ4 | β13 | β2 | β3 | 1 | β7 | β2 | 118 | SGTVRLYWADFNQIEHMKP | |
| β4 | 10 | ββ3 | β3 | ββ2 | β25 | β1 | β2 | β4 | β3 | 118 | SGARTWYLVDEMQFINPH | ||
| β5 | β5 | 2 | β10 | β1 | ββ4 | β24 | β2 | 1 | β5 | β1 | 118 | GSVYDTNALRFWCHQEKM | |
| β6 | β6 | ββ4 | β2 | ββ7 | β19 | β2 | β3 | 1 | β5 | β1 | 118 | GSYWTFAVLRDINEHQKMP | |
| β7 | β4 | 1 | ββ8 | β5 | ββ2 | β20 | β4 | β1 | β2 | β1 | 118 | GYSNRDWTEPAHFLQVCIM | |
| β8 | 13 | 2 | ββ6 | β1 | ββ8 | β12 | β4 | 2 | β7β | 118 | YAGWFLDPRSTHCKVE | ||
| β9 | β2 | ββ2 | β68 | ββ2 | β5 | 14 | β7 | 118 | FLMYVITADGP | ||||
| 10 | β2 | 1 | 100 | β5 | ββ3 | β2 | β1 | β1 | 118 | DEGAHCLMNPQ | |||
| 11 | ββ2 | ββ6 | β1 | β7 | 1 | β6 | β1 | 118 | YPVISFLNDHKM | ||||
| 54 | 9 | 169 | 31 | 102 | 165 | 28 | 29 | 8 | 65 | 20 | |||
| N | P | Q | R | S | T | V | W | Y | | | X | # | ||
| β1 | β2 | β4 | β7 | β8 | ββ5 | β3 | 10 | β1 | ββ1 | β118 | GDEVRALQHSPTINCWY | ||
| β2 | β3 | β7 | β4 | 10 | β11 | β4 | β6 | β2 | ββ9 | 1 | β118 | GSRDYLPIVHQTMNCKWAEFX | |
| β3 | β4 | β1 | β4 | β8 | β25 | 12 | β9 | β6 | ββ7 | β118 | SGTVRLYWADFNQIEHMKP | ||
| β4 | β2 | β2 | β3 | β9 | β26 | β8 | β4 | β6 | ββ5 | β118 | SGARTWYLVDEMQFINPH | ||
| β5 | β6 | β2 | β5 | β15 | β9 | 11 | β4 | β11 | β118 | GSVYDTNALRFWCHQEKM | |||
| β6 | β3 | β1 | β2 | β5 | β16 | β9 | β6 | 11 | β15 | β118 | GSYWTFAVLRDINEHQKMP | ||
| β7 | β9 | β5 | β2 | β9 | β11 | β6 | β2 | β7 | β19 | β118 | GYSNRDWTEPAHFLQVCIM | ||
| β8 | β6 | β5 | ββ5 | β5 | β2 | 11 | β29 | β118 | YAGWFLDPRSTHCKVE | ||||
| β9 | β1 | β4 | β6 | ββ7 | β118 | FLMYVITADGP | |||||||
| 10 | β1 | β1 | β1 | β118 | DEGAHCLMNPQ | ||||||||
| 11 | β3 | 13 | ββ7 | 11 | β60 | β118 | YPVISFLNDHKM | ||||||
| 33 | 41 | 25 | 59 | 121 | 60 | 67 | 48 | 163 | 1 | 1298 | |||
| Tallyβofβsequencesβofβlengthβ12β#β=β154 |
| A | C | D | E | F | G | H | I | K | L | M | # | ||
| β1 | β5 | β31 | 12 | β37 | β6 | β1 | β1 | β7 | β3 | 154 | GDRESVLHAPMNQTWYIK | ||
| β2 | β5 | β1 | ββ7 | β6 | ββ1 | β25 | β3 | β7 | β3 | 13 | β2 | 154 | GSRLPDIQEAVYHKNTMWCF |
| β3 | 10 | β2 | ββ7 | β5 | ββ1 | β19 | β5 | β4 | 12 | β2 | 154 | GRSYLATVPDQEIKWCMNF | |
| β4 | β8 | ββ9 | β6 | ββ8 | β27 | β6 | β5 | β6 | β1 | 154 | GVSDNAFRTYEILKWPQM | ||
| β5 | 18 | β1 | ββ8 | β5 | ββ6 | β42 | β1 | β9 | β1 | β7 | β3 | 154 | GSAIDYLFPTEQVMNWCHK |
| β6 | 13 | β12 | β4 | β10 | β23 | β1 | β7 | β8 | β1 | 154 | GAVDSFYTLPRWINEQHM | ||
| β7 | 11 | β2 | ββ4 | β3 | β10 | β15 | β1 | β4 | 12 | 154 | YGSPLRAFWTNVDIECQH | ||
| β8 | β3 | β2 | β18 | β3 | ββ3 | β25 | β4 | β2 | β5 | β6 | 154 | YGDSNLTKRWHPAEFCIQV | |
| β9 | 15 | β1 | ββ2 | ββ8 | β33 | β4 | β7 | β1 | β5 | β1 | 154 | GYWARFISPLHTDQCKMN | |
| 10 | β1 | β1 | ββ2 | β1 | β79 | ββ1 | β2 | β5 | β1 | 19 | 26 | 154 | FMLIPYDHVWACEGKNQRST |
| 11 | β2 | 135 | β2 | ββ4 | β2 | 154 | DGYAEHSVNR | ||||||
| 12 | β1 | ββ1 | ββ6 | ββ1 | β9 | 16 | β4 | 154 | YVPIHFSLNCDGW | ||||
| 91 | 11 | 236 | 47 | 132 | 252 | 33 | 69 | 21 | 99 | 39 | |||
| N | P | Q | R | S | T | V | W | Y | | | X | # | ||
| β1 | β3 | β4 | β3 | 14 | β10 | β3 | β10 | β2 | ββ2 | β154 | GDRESVLHAPMNQTWYIK | ||
| β2 | β3 | 11 | β7 | 22 | β24 | β3 | ββ5 | β2 | ββ4 | β154 | GSRLPDIQEAVYHKNTMWCF | ||
| β3 | β2 | β8 | β6 | 17 | β17 | β9 | ββ9 | β4 | β15 | β154 | GRSYLATVPDQEIKWCMNF | ||
| β4 | β9 | β4 | β4 | β7 | β17 | β7 | β18 | β5 | ββ7 | β154 | GVSDNAFRTYEILKWPQM | ||
| β5 | β3 | β6 | β4 | β20 | β6 | ββ4 | β2 | ββ8 | β154 | GSAIDYLFPTEQVMNWCHK | |||
| β6 | β5 | β8 | β3 | β8 | β11 | β9 | β13 | β8 | β10 | β154 | GAVDSFYTLPRWINEQHM | ||
| β7 | β5 | 14 | β2 | 12 | β15 | β6 | ββ5 | β9 | β24 | β154 | YGSPLRAFWTNVDIECQH | ||
| β8 | 10 | β4 | β2 | β5 | β15 | β6 | ββ2 | β5 | β34 | β154 | YGDSNLTKRWHPAEFCIQV | ||
| β9 | β1 | β6 | β2 | 10 | ββ7 | β3 | 18 | β30 | β154 | GYWARFISPLHTDQCKMN | |||
| 10 | β1 | β4 | β1 | β1 | ββ1 | β1 | ββ2 | β2 | ββ3 | β154 | FMLIPYDHVWACEGKNQRST | ||
| 11 | β1 | β1 | ββ2 | ββ2 | ββ3 | β154 | DGYAEHSVNR | ||||||
| 12 | β2 | 18 | ββ5 | β32 | β1 | β58 | YVPIHFSLNCDGW | ||||||
| 45 | 87 | 34 | 97 | 144 | 53 | 102 | 58 | 198 | 1848 | ||||
| Tallyβofβsequencesβofβlengthβ13β#β=β150 |
| A | C | D | E | F | G | H | I | K | L | M | # | ||
| β1 | β4 | β2 | β28 | β9 | ββ3 | β37 | β8 | β3 | β3 | ββ5 | 150 | GDTESHRVLPAQFIKCNW | |
| β2 | 11 | β4 | ββ4 | β1 | ββ2 | β32 | β3 | β1 | β5 | β11 | β3 | 150 | GRSPALTKVCDYHMQWFEIN |
| β3 | β7 | β2 | ββ8 | β4 | ββ4 | β23 | 11 | β1 | β4 | ββ6 | β2 | 150 | GSYHQTDPRAVLEFKNCMWI |
| β4 | β6 | β2 | ββ6 | β4 | ββ6 | β30 | β1 | β8 | ββ6 | β1 | 150 | GSWYTIADFLPVEQRCHMNX | |
| β5 | β8 | β10 | β4 | ββ2 | β28 | β1 | β2 | β22 | β3 | 150 | GLSYDATWPREQMNVFIH | ||
| β6 | 10 | β2 | β11 | β1 | ββ6 | β21 | β2 | β2 | ββ5 | β1 | 150 | GYSPTDAQVFRLNWCIKEM | |
| β7 | β5 | β1 | ββ8 | β1 | ββ4 | β19 | β1 | β6 | β5 | β21 | β2 | 150 | LGYSTDPIRVAKFNWMQCEH |
| β8 | β7 | β5 | β22 | β5 | ββ3 | β12 | β3 | β3 | β3 | ββ8 | β1 | 150 | YDSGLARTCEQVNPFHIKWM |
| β9 | β1 | β2 | β12 | β3 | ββ1 | β26 | β7 | β2 | β4 | ββ7 | β2 | 150 | NGYDSWHLPRKETVCIMAFQ |
| 10 | 19 | β1 | ββ2 | β2 | β17 | β24 | β5 | β2 | ββ5 | β1 | 150 | YGAFWHLPTNSVDEIQRCM | |
| 11 | β1 | β1 | 105 | ββ2 | β2 | β1 | β13 | 14 | 150 | FMLYGIVAEKPQRSWX | |||
| 12 | 130 | β3 | ββ5 | β1 | 150 | DGYEQNHT | |||||||
| 13 | β1 | ββ2 | ββ5 | β5 | 14 | β18 | β1 | 150 | YVLIPSFHTDAMN | ||||
| 80 | 21 | 243 | 38 | 158 | 259 | 46 | 46 | 27 | 127 | 31 | |||
| N | P | Q | R | S | T | V | W | Y | | | X | # | ||
| β1 | β2 | β5 | β4 | β8 | ββ9 | 11 | β8 | β1 | β150 | GDTESHRVLPAQFIKCNW | |||
| β2 | β1 | 13 | β3 | 20 | β17 | β7 | β5 | β3 | ββ4 | β150 | GRSPALTKVCDYEMQWFEIN | ||
| β3 | β3 | β8 | 11 | β8 | β16 | 11 | β7 | β2 | β12 | β150 | GSYHQTDPRAVLEFKNCMWI | ||
| β4 | β1 | β6 | β4 | β4 | β18 | 10 | β6 | 16 | β14 | 1 | β150 | GSWYTIADFLPVEQRCHMNX | |
| β5 | β3 | β6 | β4 | β5 | β19 | β8 | β3 | β7 | β15 | β150 | GLSYDATWPREQMNVFIH | ||
| β6 | β3 | 15 | β8 | β6 | β15 | 13 | β8 | β3 | β17 | β150 | GYSPTDAQVFRLNWCIKEM | ||
| β7 | β4 | β7 | β2 | β6 | β15 | 14 | β6 | β4 | β19 | β150 | LGYSTDPIRVAKFNWMQCEH | ||
| β8 | β4 | β4 | β5 | β7 | β15 | β7 | β5 | β2 | β29 | β150 | YDSGLARTCEQVNPFHIKWM | ||
| β9 | 31 | β5 | β1 | β5 | β10 | β3 | β3 | β9 | β16 | β150 | NGYDSWHLPRKETVCIMAFQ | ||
| 10 | β3 | β5 | β2 | β2 | ββ3 | β4 | β3 | 15 | β35 | β150 | YGAFWHLPTNSVDEIQRCM | ||
| 11 | β1 | β1 | β1 | ββ1 | β2 | β1 | ββ3 | 1 | β150 | FMLYGIVAEKPQRSWX | |||
| 12 | β2 | β3 | β1 | ββ5 | β150 | GDYEQNHT | |||||||
| 13 | β1 | 14 | β13 | β4 | 21 | β51 | β150 | YVLIPSFHTDAMN | |||||
| 58 | 89 | 48 | 72 | 152 | 93 | 77 | 63 | 220 | 2 | 1950 | |||
| Tallyβofβsequencesβofβlengthβ14β#β=β118 |
| A | C | D | E | F | G | H | I | K | L | M | # | ||
| β1 | β6 | β29 | β7 | ββ2 | β32 | β8 | β1 | β1 | β2 | 118 | GDVHERTAFLPSIKNQ | ||
| β2 | β4 | β10 | β1 | ββ5 | β22 | β7 | β3 | β4 | β7 | 118 | GPDRYSVHLFAKIQTENW | ||
| β3 | 11 | β2 | ββ7 | β2 | ββ3 | β25 | β5 | β1 | β9 | β2 | 118 | GVARYLSDITFWCEMPK | |
| β4 | β5 | β2 | ββ7 | β7 | ββ3 | β12 | β4 | β4 | β3 | β6 | 118 | SGVYPDELRTANHIFKWC | |
| β5 | β6 | β5 | β12 | ββ2 | β18 | β2 | β2 | β2 | β4 | β1 | 118 | GYSDTVARCLPFHIKNWMQ | |
| β6 | β6 | β10 | β5 | ββ4 | β16 | β5 | β3 | β2 | β1 | 118 | YGSTDRAEIFVKWLPQMN | ||
| β7 | β4 | ββ4 | β1 | ββ4 | β32 | β2 | β2 | β2 | β1 | 118 | GSVTYNADFHIKPQRWEM | ||
| β8 | β6 | β1 | ββ5 | β1 | ββ4 | β18 | β2 | β5 | β3 | β2 | 118 | GSYTWAPRDIFNVLHMCE | |
| β9 | β5 | β2 | ββ4 | β1 | ββ2 | β11 | β2 | β1 | β5 | β9 | β1 | 118 | YSGTLVAKNRDWCFHPEIM |
| 10 | β2 | β5 | ββ9 | β2 | ββ3 | β21 | β2 | β2 | β4 | 118 | YGSDNTCQLRFWAEIKPV | ||
| 11 | 12 | ββ1 | β3 | ββ5 | β25 | β2 | β2 | β1 | 118 | YGWAPVFNEHLTDMQR | |||
| 12 | β1 | β64 | ββ5 | β1 | β5 | 12 | 16 | 118 | FMLGIPSVAHQTY | ||||
| 13 | β3 | β97 | β4 | ββ5 | β1 | β1 | β1 | β1 | 118 | DGEANQHIKLV | |||
| 14 | β2 | ββ3 | β4 | 12 | β6 | 118 | YVPILHFANS | ||||||
| 73 | 17 | 195 | 34 | 104 | 242 | 35 | 48 | 24 | 67 | 25 | |||
| N | P | Q | R | S | T | V | W | Y | | | X | # | ||
| β1 | β1 | β2 | β1 | β7 | ββ2 | β7 | β10 | β118 | GDVHERTAFLPSIKNQ | ||||
| β2 | β1 | 13 | β2 | 10 | ββ8 | β2 | ββ8 | β1 | β10 | β118 | GPDRYSVHLFAKIQTENW | ||
| β3 | β2 | 11 | ββ8 | β4 | β13 | β3 | β10 | β118 | GVARYLSDITFWCEMPK | ||||
| β4 | β5 | β8 | β6 | β13 | β6 | β12 | β3 | β12 | β118 | SGVYPDELRTANHIFKWC | |||
| β5 | β2 | β3 | β1 | β6 | β15 | 10 | ββ7 | β2 | β18 | β118 | GYSDTVARCLPFHIKNWMQ | ||
| β6 | β1 | β2 | β2 | β7 | β16 | 12 | ββ4 | β3 | β19 | β118 | YGSTDRAEIFVKWLPQMN | ||
| β7 | β5 | β2 | β2 | β2 | β18 | 12 | β13 | β2 | β10 | β118 | GSVTYNADFHIKPQRWEM | ||
| β8 | β4 | β6 | β6 | β16 | 12 | ββ4 | β9 | β14 | β118 | GSYTWAPRDIFNVLHMCE | |||
| β9 | β5 | β2 | β5 | β14 | 10 | ββ8 | β4 | β27 | β118 | YSGTLVAKNRDWCFHPEIM | |||
| 10 | β6 | β2 | β5 | β4 | β13 | β6 | ββ2 | β3 | β27 | β118 | YGSDNTCQLRFWAEIKPV | ||
| 11 | β4 | β7 | β1 | β1 | β2 | ββ6 | 14 | β32 | β118 | YGWAPVFNEHLTDMQR | |||
| 12 | β4 | β1 | ββ4 | β1 | ββ3 | ββ1 | β118 | FMLGIPSVAHQTY | |||||
| 13 | β2 | β2 | ββ1 | β118 | DGEANQHILKV | ||||||||
| 14 | β2 | 14 | ββ2 | β20 | β53 | β118 | YVPILHFANS | ||||||
| 38 | 67 | 17 | 65 | 129 | 84 | 111 | 44 | 233 | 1652 | ||||
| TABLEβ12P |
| Alignmentβandβtabulationβofβsequencesβhavingβ3-22βDβsegments |
| D3:3-22_Phz0βYYYDSSGYYYβ(SEQβIDβNO:β448)β=βGLG |
| Entry | Seq1 | L1 | Seq2 | L2 | JH | P | Score | |
| β1 | hs3d6hcv | GRDYYDSGGYFT | 12 | GRDYYDSGGYFTVAFDI | 17 | 3 | ββ6 | 1.76Dβ+β13 |
| (SEQβIDβNO:β334) | (SEQβIDβNO:β335) | |||||||
| β2 | hs6d4xb7 | DRHNYYDSSGSYS | 13 | DRHNYYDSSGSYSDY | 15 | 4 | ββ9 | 4.40Dβ+β12 |
| (SEQβIDβNO:β336) | (SEQβIDβNO:β337) | |||||||
| β3 | hs6d4xg3 | DCPAPAKMYYYGSGICT | 17 | DCPAPAKMYYYGSGICT | 20 | 4 | ββ3 | 6.55Dβ+β04 |
| (SEQβIDβNO:β338) | FDY | |||||||
| (SEQβIDβNO:β339) | ||||||||
| β4 | hs83x6f2 | AFYDSAD | β7 | AFYDSADDY | β9 | 4 | ββ4 | 2.62Dβ+β05 |
| (SEQβIDβNO:β340) | (SEQβIDβNO:β341) | |||||||
| β5 | hsa230644 | RDYYDSSGPEAG | 12 | RDYYDSSGPEAGFDI | 15 | 3 | ββ3 | 6.87Dβ+β10 |
| (SEQβIDβNO:β342) | (SEQβIDβNO:β343) | |||||||
| β6 | hsa239386 | DGTLIDTSAYYYL | 13 | DGTLIDTSAYYYLY | 14 | 4 | ββ6 | 6.87Dβ+β10 |
| (SEQβIDβNO:β344) | (SEQβIDβNO:β345) | |||||||
| β7 | hsa234232 | NSSDSS | β6 | NSSDSSVLDV | 10 | 6 | ββ4 | 6.55Dβ+β04 |
| (SEQβIDβNO:β346) | (SEQβIDβNO:β347) | |||||||
| β8 | hsa239378 | DQVFDSGGYNHR | 12 | DQVFDSGGYNHRFDS | 15 | 4 | ββ3β | 1.07Dβ+β09 |
| (SEQβIDβNO:β348) | (SEQβIDβNO:β349) | |||||||
| β9 | hsa239367 | DLEYYYDSGGHYSP | 14 | DLEYYYDSGGHYSPFHY | 17 | 4 | ββ9 | 1.10Dβ+β12 |
| (SEQβIDβNO:β350) | (SEQβIDβNO:β351) | |||||||
| 10 | hsa239339 | DDSSGY | β6 | DDSSGYYYIDY | 11 | 4 | β10 | 1.72Dβ+β10 |
| (SEQβIDβNO:β352) | (SEQβIDβNO:β353) | |||||||
| 11 | hsa245311 | GHYYDSPGQYSYS | 13 | GHYYDSPGQYSYSEY | 15 | 4 | ββ3 | 1.07Dβ+β09 |
| (SEQβIDβNO:β354) | (SEQβIDβNO:β355) | |||||||
| 12 | hsa240578 | GGFRPPPYDYESSAYRTYR | 19 | GGFRPPPYDYESSAYRT | 22 | 4 | β21 | 2.75Dβ+β11 |
| (SEQβIDβNO:β356) | YRLDF | |||||||
| (SEQβIDβNO:β357) | ||||||||
| 13 | hsa245359 | DSDTRAY | β7 | DSDTRAYYWYFDL | 13 | 2 | ββ7 | 1.68Dβ+β07 |
| (SEQβIDβNO:β358) | (SEQβIDβNO:β359) | |||||||
| 14 | hsa245028 | GRHYYDSSGYYSTPE | 15 | GRHYYDSSGYYSTPENY | 20 | 4 | ββ6 | 1.80Dβ+β16 |
| (SEQβIDβNO:β360) | FDY | |||||||
| (SEQβIDβNO:β361) | ||||||||
| 15 | hsa245019 | DPSYYYDSSGLPL | 13 | DPSYYYDSSGLPLHGMDV | 18 | 6 | ββ9 | 4.40Dβ+β12 |
| (SEQβIDβNO:β362) | (SEQβIDβNO:β363) | |||||||
| 16 | hsa244991 | TYYYDSSGYLLTR | 13 | TYYYDSSGYLLTRYFQH | 17 | 1 | ββ3 | 4.50Dβ+β15 |
| (SEQβIDβNO:β364) | (SEQβIDβNO:β365) | |||||||
| 17 | hsa244945 | NAPHYDSSGYYQT | 13 | NAPHYDSSGYYQTFDY | 16 | 4 | ββ6 | 7.04Dβ+β13 |
| (SEQβIDβNO:β366) | (SEQβIDβNO:β367) | |||||||
| 18 | hsa244943 | GYHSSSYA | β8 | GYHSSSYADAFDI | 13 | 3 | ββ7 | 6.71Dβ+β07 |
| (SEQβIDβNO:β368) | (SEQβIDβNO:β369) | |||||||
| 19 | hsa245289 | PIGYCSGGSC | 10 | PIGYCSGGSCYSFDY | 15 | 4 | ββ4 | 2.62Dβ+β05 |
| (SEQβIDβNO:β370) | (SEQβIDβNO:β371) | |||||||
| 20 | hsa240554 | THGTYVTSGYYPKI | 14 | THGTYVTSGYYPKI | 14 | 4 | ββ6 | 2.68Dβ+β08 |
| (SEQβIDβNO:β372) | (SEQβIDβNO:β373) | |||||||
| 21 | hsa279533 | GATYYYESSGNYP | 13 | GATYYYESSGNYPDY | 15 | 4 | ββ9 | 7.04Dβ+β13 |
| (SEQβIDβNO:β374) | (SEQβIDβNO:β375) | |||||||
| 22 | hsa389177 | AFYHYDSTGYPNRRY | 15 | AFYHYDSTGYPNRRYYFDY | 19 | 4 | ββ6 | 4.29Dβ+β09 |
| (SEQβIDβNO:β376) | (SEQβIDβNO:β377) | |||||||
| 23 | hsa7321 | SYSYYYDSSGYWGG | 14 | SYSYYYDSSGYWGGYFDY | 18 | 4 | ββ9 | 4.50Dβ+β15 |
| (SEQβIDβNO:β378) | (SEQβIDβNO:β379) | |||||||
| 24 | hsaj2772 | LSPYYYDSSSYH | 12 | LSPYYYDSSSYHDAFDI | 17 | 3 | ββ6 | 2.62Dβ+β05 |
| (SEQβIDβNO:β380) | (SEQβIDβNO:β381) | |||||||
| 25 | hsb7g4f08 | EEDYYDSSGQAS | 12 | EEDYYDSSGQASYNWFXP | 18 | 5 | ββ6 | 2.75Dβ+β11 |
| (SEQβIDβNO:β382) | (SEQβIDβNO:β383) | |||||||
| 26 | hsb7g3b02 | ETNYYDSGGYPG | 12 | ETNYYDSGGYPGFDF | 15 | 4 | ββ6 | 4.40Dβ+β12 |
| (SEQβIDβNO:β384) | (SEQβIDβNO:β385) | |||||||
| 27 | hsb7g3c12 | GDHYYDRSGYRH | 12 | GDHYYDRSGYRHSYYYY | 21 | 6 | ββ6 | 2.75Dβ+β11 |
| (SEQβIDβNO:β386) | AMDV | |||||||
| (SEQβIDβNO:β387) | ||||||||
| 28 | hsb8g3b07 | DRSSGN | β6 | DRSSGNYFDGMDV | 13 | 6 | β10 | 6.55Dβ+β04 |
| (SEQβIDβNO:β388) | (SEQβIDβNO:β389) | |||||||
| 29 | hsfoglh | GRSRYSGYG | β9 | GRSRYSGYGFYSGMDV | 16 | 6 | ββ4 | 2.62Dβ+β05 |
| (SEQβIDβNO:β390) | (SEQβIDβNO:β391) | |||||||
| 30 | hsgvh0209 | DDTSGYGP | β8 | DDTSGYGPYYFYYGMDV | 17 | 6 | β10 | 2.68Dβ+β08 |
| (SEQβIDβNO:β392) | (SEQβIDβNO:β393) | |||||||
| 31 | hsgvh55 | RAYYDTSFYFEY | 12 | RAYYDTSFYFEYY | 13 | 4 | ββ3 | 1.72Dβ+β10 |
| (SEQβIDβNO:β394) | (SEQβIDβNO:β395) | |||||||
| 32 | hsgvh0304 | DRIDYYKSGYYLGSA | 15 | DRIDYYKSGYYLGSADS | 17 | 4 | ββ6 | 1.68Dβ+β07 |
| (SEQβIDβNO:β396) | (SEQβIDβNO:β397) | |||||||
| 33 | hsgvh0332 | DTDSSSHYG | β9 | DTDSSSHYGRFDP | 13 | 5 | ββ7 | 1.68Dβ+β07 |
| (SEQβIDβNO:β398) | (SEQβIDβNO:β399) | |||||||
| 34 | hsgvh0328 | VSISHYDSSGRPQRVF | 16 | VSISHYDSSGRPQRVFY | 21 | 6 | ββ9 | 1.07Dβ+β09 |
| (SEQβIDβNO:β400) | GMDV | |||||||
| (SEQβIDβNO:β401) | ||||||||
| 35 | hsgvh536 | QARENVFYDSSGPTAP | 16 | QARENVFYDSSGPTAPFDH | 19 | 4 | β15 | 1.72Dβ+β10 |
| (SEQβIDβNO:β402) | (SEQβIDβNO:β403) | |||||||
| 36 | hshcmg42 | VPAGNYYDTSGPDN | 14 | VPAGNYYDTSGPDNAD | 16 | 4 | β12 | 1.72Dβ+β10 |
| (SEQβIDβNO:β404) | (SEQβIDβNO:β405) | |||||||
| 37 | hsig001vh | WYYFDTSGYYPRNFYYMDV | 19 | WYYFDTSGYYPRNFYYMDV | 19 | 4 | ββ3 | 2.81Dβ+β14 |
| (SEQβIDβNO:β406) | (SEQβIDβNO:β407) | |||||||
| 38 | hsig13g10 | GYYYDSGGNYNG | 12 | GYYYDSGGNYNGDY | 14 | 4 | ββ3 | 1.10Dβ+β12 |
| (SEQβIDβNO:β408) | (SEQβIDβNO:β409) | |||||||
| 39 | hsighpat3 | DLRSYDPSGYYN | 12 | DLRSYDPSGYYNDGFDI | 17 | 3 | ββ6 | 2.75Dβ+β11 |
| (SEQβIDβNO:β410) | (SEQβIDβNO:β411) | |||||||
| 40 | hsigh13g7 | GYYYDRGGNCNG | 12 | GYYYDRGGNCNGDY | 14 | 4 | ββ3 | 6.87Dβ+β10 |
| (SEQβIDβNO:β412) | (SEQβIDβNO:β413) | |||||||
| 41 | hsighl3g1 | GYYYDRGGNYNG | 12 | GYYYDRGGNYNGDY | 14 | 4 | ββ3 | 1.10Dβ+β12 |
| (SEQβIDβNO:β414) | (SEQβIDβNO:β415) | |||||||
| 42 | hsighxx20 | THYDSSGL | β8 | THYDSSGLDAFDI | 13 | 3 | ββ4 | 1.72Dβ+β10 |
| (SEQβIDβNO:β416) | (SEQβIDβNO:β417) | |||||||
| 43 | hsihr9 | DDSSGS | β6 | DDSSGSYYFDY | 11 | 4 | β10 | 1.07Dβ+β09 |
| (SEQβIDβNO:β418) | (SEQβIDβNO:β419) | |||||||
| 44 | hsihv11 | LSGGYYS | β7 | LSGGYYSDFDY | 11 | 4 | β13 | 2.68Dβ+β08 |
| (SEQβIDβNO:β420) | (SEQβIDβNO:β421) | |||||||
| 45 | hsβej1f | GDYSDSSDSYI | 11 | GDYSDSSDSYIDAFDV | 16 | 3 | ββ3 | 1.10Dβ+β12 |
| (SEQβIDβNO:β422) | (SEQβIDβNO:β423) | |||||||
| 46 | hsmvh51 | GETYYYDSRGYA | 12 | GETYYYDSRGYAFDH | 15 | 4 | ββ6 | 2.62Dβ+β05 |
| (SEQβIDβNO:β424) | (SEQβIDβNO:β425) | |||||||
| 47 | hsmvh517 | PTRDSSGY | β8 | PTRDSSGYYVGY | 12 | 4 | ββ4 | 1.07Dβ+β09 |
| (SEQβIDβNO:β426) | (SEQβIDβNO:β427) | |||||||
| 48 | hsmvh0406 | GSFYYDSSGYPP | 12 | GSFYYDSSGYPPFDC | 15 | 4 | ββ6 | 6.87Dβ+β10 |
| (SEQβIDβNO:β428) | (SEQβIDβNO:β429) | |||||||
| 49 | hst14x14 | GPYYYDSSGYYL | 12 | GPYYYDSSGYYLLDY | 15 | 4 | ββ6 | 1.80Dβ+β16 |
| (SEQβIDβNO:β430) | (SEQβIDβNO:β431) | |||||||
| 50 | hsvhig2 | EEGYYDSSGYYSLGA | 15 | EEGYYDSSGYYSLGASDY | 18 | 4 | ββ6 | 4.50Dβ+β15 |
| (SEQβIDβNO:β432) | (SEQβIDβNO:β433) | |||||||
| 51 | hsvhia2 | RPDSSGSRW | β9 | RPDSSGSRWYFDY | 13 | 4 | ββ7 | 6.71Dβ+β07 |
| (SEQβIDβNO:β434) | (SEQβIDβNO:β435) | |||||||
| 52 | hsy14936 | GYYDISGYYF | 10 | GYYDISGYYFDAFNI | 15 | 3 | ββ4 | 2.81Dβ+β14 |
| (SEQβIDβNO:β436) | (SEQβIDβNO:β437) | |||||||
| 53 | hsy14934 | DRGYDSSGYYGN | 12 | DRGYDSSGYYGNLDC | 15 | 4 | ββ3 | 1.76Dβ+β13 |
| (SEQβIDβNO:β438) | (SEQβIDβNO:β439) | |||||||
| 54 | hsy14935 | DRGYDSIGYYGN | 12 | DRGYDSIGYYGNLDC | 15 | 4 | ββ3 | 1.10Dβ+β12 |
| (SEQβIDβNO:β440) | (SEQβIDβNO:β441) | |||||||
| 55 | hsz80519 | AEDLTYYYDRSGWGVHGLL | 19 | AEDLTYYYDRSGWGVHG | 24 | 4 | β15 | 4.40Dβ+β12 |
| (SEQβIDβNO:β442) | LLYYFDY | |||||||
| (SEQβIDβNO:β443) | ||||||||
| 56 | hsz80429 | LYPHYDSSGYYYV | 13 | LYPHYDSSGYYYVLDY | 16 | 4 | ββ6 | 4.50Dβ+β15 |
| (SEQβIDβNO:β444) | (SEQβIDβNO:β445) | |||||||
| 57 | hsz80461 | DRVGYYDSSGYPPGSP | 16 | DRVGYYDSSGYPPGSPLDY | 19 | 4 | ββ9 | 1.76Dβ+β13 |
| (SEQβIDβNO:β446) | (SEQβIDβNO:β447) | |||||||
| FrequencyβofβeachβAAβtypeβatβeachβpositionβinβ57βSequencesβhavingβD3-22βsegments |
| Pos | A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y | | | X | # | |
| β1 | β1 | β1 | ||||||||||||||||||||||
| β2 | β1 | β1 | ||||||||||||||||||||||
| β3 | 1 | 1 | 1 | β3 | ||||||||||||||||||||
| β4 | 1 | 1 | 1 | 1 | β4 | |||||||||||||||||||
| β5 | β5 | β1 | 1 | 2 | 1 | β1 | 1 | 12 | ||||||||||||||||
| β6 | 3 | β3 | 4 | β6 | 3 | 1 | 2 | 2 | β2 | 1 | β1 | 28 | x | |||||||||||
| β7 | 1 | β5 | 4 | 1 | β7 | 2 | 1 | 1 | 1 | 3 | 5 | β3 | 4 | 1 | 1 | β1 | 41 | x | ||||||
| β8 | 2 | 1 | β4 | 1 | β5 | 3 | 1 | 4 | 4 | 1 | 3 | β1 | 3 | 1 | 14 | 48 | x | |||||||
| β9 | β4 | 2 | β3 | 5 | 1 | 1 | 1 | 2 | β2 | 2 | 1 | 28 | 52 | Y | ||||||||||
| 10 | 1 | β4 | 2 | β1 | 1 | 1 | 1 | β4 | 1 | 40 | 56 | Y | ||||||||||||
| 11 | 46 | 2 | 1 | 1 | 1 | 2 | 1 | β3 | 57 | D | ||||||||||||||
| 12 | 1 | 1 | β1 | 1 | 1 | 1 | 4 | 39 | 7 | β1 | 57 | S | ||||||||||||
| 13 | 1 | β8 | 1 | 1 | 1 | 1 | 43 | 1 | 57 | S | ||||||||||||||
| 14 | 3 | β2 | 1 | 45 | 1 | 1 | β3 | 56 | G | |||||||||||||||
| 15 | β2 | 2 | 2 | 5 | 3 | 2 | 1 | β4 | 1 | 33 | 55 | Y | ||||||||||||
| 16 | 2 | 1 | β1 | 1 | 2 | β3 | 1 | 1 | 1 | 6 | 3 | β1 | 1 | 1 | 24 | 49 | x | |||||||
| 17 | 3 | 1 | 1 | 1 | β5 | 2 | 1 | 4 | 6 | 6 | 2 | β7 | 2 | 1 | 1 | β3 | 46 | x | ||||||
| 18 | β8 | 1 | 1 | 2 | 2 | 2 | 4 | 3 | 1 | β3 | 27 | |||||||||||||
| 19 | β2 | 1 | 1 | 1 | 3 | β4 | 1 | 13 | ||||||||||||||||
| 20 | 2 | 1 | 2 | β1 | 1 | 1 | β1 | β9 | ||||||||||||||||
| 21 | 1 | 1 | β1 | β3 | ||||||||||||||||||||
| 22 | 1 | β1 | β2 | |||||||||||||||||||||
| 23 | 1 | 1 | β2 | |||||||||||||||||||||
| 24 | β1 | β1 | ||||||||||||||||||||||
| 25 | 1 | β1 | ||||||||||||||||||||||
| AverageβDsegβ=β11.9βAverageβDJβ=β15.7 |
| MedianβDβ=β12ββ12βShortestβ6βLongestβ19 |
| MedianβDJβ=β15β15βShortestβ9βLongestβ24 |
| TABLEβ13P |
| FrequencyβofβD-segments.ββ|ββstandsβforβaβstopβcodon. |
| Dβseg | β0β | % | Cβ% | GLG | β1β | % | Cβ% | GLG | β2β | % | Cβ% | GLG |
| 1-01 | β1 | 0.13 | 0 | VQLERX | β4 | 0.53 | 0.22 | GTTGTX | β5 | 0.66 | 0.34 | YNWND |
| (SEQβIDβNO:β132) | (SEQβIDβNO:β133) | (SEQβIDβNO:β134) | ||||||||||
| 1-07 | β0 | 0 | 0 | V|LELX | β3 | 0.4 | 0.11 | GITGTX | β9 | 1.19 | 0.34 | YNWNY |
| (SEQβIDβNO:β135) | (SEQβIDβNO:β136) | (SEQβIDβNO:β137) | ||||||||||
| 1-20 | β0 | 0 | 0 | V|LERX | β1 | 0.13 | 0.22 | GITGTX | β4 | 0.53 | 0.45 | YNWND |
| (SEQβIDβNO:β138) | (SEQβIDβNO:β139) | (SEQβIDβNO:β140) | ||||||||||
| 1-26 | β4 | 0.53 | 0 | V|WELLX | 13 | 1.72 | 0.90 | GIVGATX | 36 | 4.76 | 0.78 | YSGSYY |
| (SEQβIDβNO:β141) | (SEQβIDβNO:β142) | (SEQβIDβNO:β143) | ||||||||||
| 2-02 | 31 | 4.1 | 2.47 | GYCSSTSCYT | β4 | 0.53 | 0.22 | RIL||YQLLYX | β9 | 1.19 | 2.47 | DIVVVPAAIX |
| (SEQβIDβNO:β144) | (SEQβIDβNO:β145) | (SEQβIDβNO:β146) | ||||||||||
| 2-08 | β5 | 0.66 | 0.56 | GYCTNGVCYT | β0 | 0 | 0 | RILY|WCMLYX | β3 | 0.4 | 0.56 | DIVLMVYAIX |
| (SEQβIDβNO:β147) | (SEQβIDβNO:β148) | (SEQβIDβNO:β149) | ||||||||||
| 2-15 | 29 | 3.83 | 1.57 | GYCSGGSCYS | β2 | 0.26 | 0.11 | RIL|WW|LLLX | β7 | 0.92 | 1.57 | DIVVVVAATX |
| (SEQβIDβNO:β150) | (SEQβIDβNO:β151) | (SEQβIDβNO:β152) | ||||||||||
| 2-21 | 16 | 2.11 | 0.67 | AYCGGDCYS | β0 | 0 | 0 | SILWW|LLFX | β7 | 0.92 | 0.67 | HIVVVTAIX |
| (SEQβIDβNO:β153) | (SEQβIDβNO:β154) | (SEQβIDβNO:β155) | ||||||||||
| 3-03 | 32 | 4.23 | 2.80 | YYDFWSGYYT | β7 | 0.92 | 0.90 | VLRFLEWLLYX | 27 | 3.57 | 1.12 | ITIFGVVIIX |
| (SEQβIDβNO:β156) | (SEQβIDβNO:β157) | (SEQβIDβNO:β158) | ||||||||||
| 3-09 | 13 | 1.72 | 1.35 | YYDILTGYYN | β5 | 0.66 | 0.78 | VLRYFDWLL|X | β0 | 0 | 0 | ITIF|LVIIX |
| (SEQβIDβNO:β159) | (SEQβIDβNO:β160) | (SEQβIDβNO:β161) | ||||||||||
| 3-10 | 42 | 5.55 | 4.26 | YYYGSGSYYN | 13 | 1.72 | 0.89 | VLLWFGELL|X | 11 | 1.45 | 2.91 | ITMVRGVIIX |
| (SEQβIDβNO:β162) | (SEQβIDβNO:β163) | (SEQβIDβNO:β164) | ||||||||||
| 3-16 | 18 | 2.38 | 0.67 | YYDYVWGSYRYT | β8 | 1.06 | 0 | VL|LRLGELSLYX | β5 | 0.66 | 0.34 | IMITFGGVIVIX |
| (SEQβIDβNO:β165) | (SEQβIDβNO:β166) | (SEQβIDβNO:β167) | ||||||||||
| 3-22 | 57 | 7.53 | 3.36 | YYYDSSGYYY | β1 | 0.13 | 0.11 | VLL|||WLLLX | β6 | 0.79 | 0.34 | ITMIVVVITX |
| (SEQβIDβNO:β168) | (SEQβIDβNO:β169) | (SEQβIDβNO:β170) | ||||||||||
| 4-04 | β5 | 0.66 | 0.28 | DYSNY | β2 | 0.26 | 0 | |LQ|LX | β2 | 0.26 | 0.06 | TTVTX |
| (SEQβIDβNO:β171) | (SEQβIDβNO:β172) | (SEQβIDβNO:β173) | ||||||||||
| 4-17 | 29 | 3.83 | 1.45 | DYGDY | β0 | 0 | 0 | |LR|LX | 20 | 2.64 | 0.90 | TTVTX |
| (SEQβIDβNO:β174) | (SEQβIDβNO:β175) | (SEQβIDβNO:β176) | ||||||||||
| 4-23 | 10 | 1.32 | 0.56 | DYGGNS | β1 | 0.13 | 0 | |LRW|LX | β4 | 0.53 | 0.56 | TTVVTX |
| (SEQβIDβNO:β177) | (SEQβIDβNO:β178) | (SEQβIDβNO:β179) | ||||||||||
| 5-05 | β3 | 0.4 | 0.06 | WIQLWLX | 10 | 1.32 | 0.39 | VDTAMVX | 31 | 4.1 | 0.73 | GYSYGY |
| (SEQβIDβNO:β180) | (SEQβIDβNO:β181) | (SEQβIDβNO:β182) | ||||||||||
| 5-12 | β0 | 0 | 0 | WI|WLRLX | β8β | 1.06 | 0.45 | VDIVATIX | 14 | 1.85 | 1.12 | GYSGYDY |
| (SEQβIDβNO:β183) | (SEQβIDβNO:β184) | (SEQβIDβNO:β185) | ||||||||||
| 5-24 | 11 | 1.45 | 0 | |RWLQLX | β5 | 0.66 | 0.34 | VEMATIX | 13 | 1.72 | 0.44 | RDGYNY |
| (SEQβIDβNO:β186) | (SEQβIDβNO:β187) | (SEQβIDβNO:β188) | ||||||||||
| 6-06 | 11 | 1.45 | 0.78 | SIAARX | β9 | 1.19 | 0.48 | EYSSSS | β1 | 0.13 | 0.11 | V|QLVX |
| (SEQβIDβNO:β189) | (SEQβIDβNO:β190) | (SEQβIDβNO:β191) | ||||||||||
| 6-13 | 19 | 2.51 | 1.01 | GIAAAGX | 35 | 4.62 | 2.13 | GYSSSWY | β2 | 0.26 | 0.31 | V|QQLVX |
| (SEQβIDβNO:β192) | (SEQβIDβNO:β193) | (SEQβIDβNO:β194) | ||||||||||
| 6-19 | 14 | 1.85 | 2.12 | GIAVAGX | 48 | 6.34 | 2.02 | GYSSGWY | β4 | 0.53 | 0.56 | V|QWLVX |
| (SEQβIDβNO:β195) | (SEQβIDβNO:β196) | (SEQβIDβNO:β197) | ||||||||||
| D7: | β1 | 0.13 | 0 | |LGX | β2 | 0.26 | 0.68 | LTGX | β2 | 0.26 | 0.22 | NWG |
| 7-27 | (SEQβIDβNO:β198) | |||||||||||
| Total =β757 |
| TABLEβ14P |
| Possibleβlibraryβcomponents. |
| Component | L | f | ||
| D2_2-02_Phz0 | xxxYCSSTSCxxx | 13, | 31, | (SEQβIDβNO:β199) |
| D3_3-16_Phz0 | xxxxYVWGSYxxx | 13, | 18, | (SEQβIDβNO:β200) |
| D5_5-12_Phz2 | xxxxxxxSGYxxx | 13, | 14, | (SEQβIDβNO:β201) |
| D3_3-09_Phz0 | xxxYDILIGYYxx | 13, | 13, | (SEQβIDβNO:β202) |
| D2_2-02_Phz2 | xxxVVVPAAxxxx | 13, | β9, | (SEQβIDβNO:β203) |
| D3_3-22_Phz0 | βxxxYYDSSGYxx | 12, | 57, | (SEQβIDβNO:β204) |
| D3_3-03_Phz0 | βxxxDFWSGxxxx | 12, | 32, | (SEQβIDβNO:β205) |
| D3_3-03_Phz2 | βxxxTIFGVxxxx | 12, | 27, | (SEQβIDβNO:β206) |
| D5_5-12_Phz1 | βxxxxIVATxxxx | 12, | β8, | (SEQβIDβNO:β207) |
| D3_3-10_Phz0 | ββxxxYGSGSYYx | 11, | 42, | !βcouldβaddβoneβx |
| atβeitherβend | ||||
| (SEQβIDβNO:β208) | ||||
| D5_5-05_Phz2 | ββxxxxYSYGxxx | 11, | 31, | (SEQβIDβNO:β209) |
| D2_2-15_Phz0 | ββxxxCSGxxCYx | 11, | 29, | (SEQβIDβNO:β210) |
| D6_6-13_Phz0 | ββxxxxAAAGxxx | 11, | 19, | (SEQβIDβNO:β211) |
| D4_4-23_Phz0 | ββxGxxxGGNxxx | 11, | 10, | (SEQβIDβNO:β212) |
| D1_1-26_Phz2 | βββxxxSGSYxxx | 10, | 35, | (SEQβIDβNO:β213) |
| D6_6-13_Phz1 | βββxxxSSSWxxx | 10, | 35, | (SEQβIDβNO:β214) |
| D4_4-17_Phz2 | βββxxxxTTVTTx | 10, | 20, | (SEQβIDβNO:β215) |
| D2_2-21_Phz0 | xxxC(SG)GDxCx | 10, | 16, | (SEQβIDβNO:β216) |
| D6_6-19_Phz0 | xxx(IV)AVAGxx | 10, | 14, | (SEQβIDβNO:β217) |
| D3_3-10_Phz1 | βββxxLWFGELxx | 10, | 13, | (SEQβIDβNO:β218) |
| D5_5-24_Phz0 | βββGxxWLxxxxF | 10, | 11, | (SEQβIDβNO:β219) |
| D5_5-05_Phz1 | βββxxxDTxMVxx | 10, | 10, | (SEQβIDβNO:β220) |
| D3_3-16_Phz1 | βββxxxxxGExxx | 10, | β8, | (SEQβIDβNO:β221) |
| D6_6-19_Phz1 | ββββxxxxSGWxx | β9, | 48, | (SEQβIDβNO:β222) |
| D5_5-24_Phz2 | ββββxxxxGYNxx | β9, | 13, | (SEQβIDβNO:β223) |
| D3_3-10_Phz2 | ββββxxxVRGVxx | β9, | 11, | (SEQβIDβNO:β224) |
| D6_6-06_Phz0 | ββββxxxIAAxxx | β9, | 11, | (SEQβIDβNO:β225) |
| D1_1-07_Phz2 | ββββxxYxWNxxx | β9, | β9, | (SEQβIDβNO:β226) |
| D4_4-17_Phz0 | βββββxxxYGDxx | β8, | 29, | (SEQβIDβNO:β227) |
| D1_1-26_Phz1 | βββββxxVGATxx | β8, | 13, | (SEQβIDβNO:β228) |
| D6_6-06_Phz1 | βββββxxxYSSSx | β8, | β9, | (SEQβIDβNO:β229) |
| TABLE 15P |
| Lengths of CDRs: 1095 actual VH domains and 51 VH GLGs. |
| Length | 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | 11 | 12 | 13 | 14 | 15 | 16 | 17 |
| CDR1 | 0 | 0 | 10 | 0 | 1 | 820 | 38 | 175 | 1 | 1 | 5 | 1 | 11 | 0 | 23 | 1 | 7 | 0 |
| GLG | 0 | 0 | 0 | 0 | 0 | 38 | 3 | 10 | 0 | 0 . . . |
| CDR2 | 0 | 0 | 0 | 0 | 0 | 2 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 464 | 579 |
| GLG | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 1 | 17 | 28 |
| CDR3 | 0 | 0 | 0 | 4 | 2 | 8 | 6 | 28 | 40 | 65β | 77β | 90 | 117 | 117 | 88 | 105 | 86 | 81 |
| Length | 18 | 19 | 20 | 21 | 22 | 23 | 24 | 25 | 26 | 27 | 28 | 29 | 30 | 31 | 32 | (33 or more) |
| CDR2 | 9 | 31 | 1 | β3 | β3 | 1 | 0 | 0 | 0 | 0 | 2 | 0 | 0 . . . |
| GLG | 1 | 4 | 0 | 0 . . . |
| CDR3 | 45 | 36 | 36 | 16 | 16 | 8 | 8 | 2 | 3 | 0 | 2 | 1 | 0 | 0 | 1 | 5 |
| TABLEβ16P |
| LibraryβofβHCβCDR3 |
| Component | Fractionβof | Length | #X | Complexity | library | Adjusted |
| 1: | YYCA21111YFDYWG. | β8 | 4 | 2.6βEβ5 | .10β(0-8) | .02 |
| (2β=βKR;βSEQβIDβNO:β6) | ||||||
| 2: | YYCA2111111YFDYWG. | 10 | 6 | 9.4βEβ7 | .14β(9-10) | .14 |
| (2β=βKR;βSEQβIDβNO:β7) | ||||||
| 3: | YYCA211111111YFDYTG. | 12 | 8 | 3.4βEβ10 | .25β(11β+β12β+ | .25 |
| (2β=βKR;βSEQβIDβNO:β8) | ββββ13/2) | |||||
| 4: | YYCAR111S2S3111YFDYWG. | 14 | 6 | 1.9βeβ8 | .13β(14β+β13/2) | .14 |
| (2β=βSGβ3β=βYW; | ||||||
| SEQβIDβNO:β9) | ||||||
| 5: | YYCA2111CSG11CY1YFDYWG. | 15 | 6 | 9.4βEβ7 | .13β(15β+β16/2) | .14 |
| (2β=βKR;βSEQβIDβNO:β10) | ||||||
| 6: | YYCA211S1TIFG11111YFDYWG. | 17 | 8 | 1.7βEβ10 | .11β(17β+β16/2) | .12 |
| (2β=βKR;βSEQβIDβNO:β11) | ||||||
| 7:β | YYCAR111YY2S33YY111YFDYWG. | 18 | 6 | 3.8βEβ8 | .04β(18) | .08 |
| (2β=βD|G;β3β=βS|G; | ||||||
| SEQβIDβNO:β12) | ||||||
| 8: | YYCAR1111YC2231CY111YFDYWG. | 19 | 8 | 2.0βEβ11 | .10β(19βon) | .11 |
| (2β=βS|G;β3β=βT|D|G; | ||||||
| SEQβIDβNO:β13) | ||||||
| Allowedβlengths:β8,β10,β12,β14,β15,β17,β18,β&β19 |
| TABLEβ17P |
| vgDNAβencodingβtheβCDR3βelementsβofβtheβlibrary |
| !βCDR3βlibraryβcomponents |
| (Ctop25)β5β²-gctctggtcaaβC|TTA|AGg|gct|gag|g-3β²β(SEQβIDβNO:β40) |
| (CtprmA)β5β²-gctctggtcaaβC|TTA|AGg|gct|gag|gac- |
| !βββββββββββββββββββββββAflII... |
| ββββββββββββ|acc|gct|gtc|tac|tac|tgc|gcc-3β²β(SEQβIDβNO:β41) |
| ! |
| (CBprmB)[RC]β5β²-|tac|ttc|gat|tac|ttg|ggc|caa|GGT|ACC|ctG|GTC|ACC|tcgctccacc-3β²(SEQβIDβNO:β42) |
| !ββββββββββββββββββββββββββββββββββββββββββββββββββββββBstEII... |
| (CBot25)[RC]βββββββββββββββββββββββββββββ5β²-|GGT|ACC|ctG|GTC|ACC|tcgctccacc-3β²(SEQβIDβNO:β43) |
| ! |
| !βN.B.β[RC]βmeansβtheβtheβactualβoligonucleotideβisβtheβreverseβcomplement |
| !ββββββofβtheβoneβshown. |
| !βN.B.βTheβ20βbasesβatβ3β²βendβofβCtprmAβareβidenticalβtoβtheβmostβ5β²β20βbases |
| !ββββββofβeachβofβtheβvgDNAβmolecules. |
| !βN.B.βCtop25βisβidenticalβtoβtheβmostβ5β²β25βbasesβofβCtprmA. |
| !βN.B.βTheβ23βmostβ3β²βbasesβofβCBprmBβareβtheβreverseβcomplementβofβthe |
| !ββββββmostβ3β²β23βbasesβofβeachβofβtheβvgDNAβmolecules. |
| !βN.B.βCBot25βisβidenticalβtoβtheβ25βbasesβatβtheβ5β²βendβofβCBprmB. |
| ! |
| (C1t08)β5β²-cc|gct|gtc|tac|tac|tgc|B|- |
| βββββββββββββββ<2>|<1>|<1>|<1>|<1>- |
| βββββββββββββ|tac|ttc|gat|tac|ttg|ggc|caa|GG-3β²β(SEQβIDβNO:β44) |
| !β2β=βKR,β1β=β0.27Yβ+β0.27Gβ+β0.027{ADEFHIKLMNPQRSTVW}βnoβC |
| ! |
| (C2t10)β5β²-cc|gct|gtc|tac|tac|tgc|gcc|- |
| βββββββββββββββ<2>|<1>|<1>|<1>|<1>|<1>|<1>|- |
| βββββββββββββtac|ttc|gat|tac|ttg|ggc|caa|GG-3β²β(SEQβIDβNO:β45) |
| !β2β=βKR,β1β=β0.27Yβ+β0.27Gβ+β0.027{ADEFHIKLMNPQRSTVW}βnoβC |
| ! |
| (C3t12)β5β²-cc|gct|gtc|tac|tac|tgc|gcc|- |
| βββββββββββββββ<2>|<1>|<1>|<1>|<1>|<1>|<1>|<1>|<1>|- |
| βββββββββββββtac|ttc|gat|tac|ttg|ggc|caa|GG-3β²β(SEQβIDβNO:β46) |
| !β2β=βKR,β1β=β0.27Yβ+β0.27Gβ+β0.027{ADEFHIKLMNPQRSTVW}βnoβC |
| ! |
| (C4t14)β5β²-cc|gct|gtc|tac|tac|tgc|gcc|cgt|- |
| βββββββββββββ|<1>|<1>|<1>|tct|<2>|tct|<3>|<1>|<1>|<1>|- |
| βββββββββββtac|ttc|gat|tac|ttg|ggc|caa|GG-3ββ(SEQβIDβNO:β47) |
| !β2β=βSG,β1β=β0.27Yβ+β0.27Gβ+β0.027{ADEFHIKLMNPQRSTVW}βnoβC,β3β=βYW |
| ! |
| (C5t15)β5β²-cc|gct|gtc|tac|tac|tgc|gcc|- |
| ββββββββββββββββ<2>|<1>|<1>|<1>|tgc|tct|ggt|<1>|<1>|tgc|tat|<1>|- |
| βββββββββββββtac|ttc|gat|tac|ttg|ggc|caa|GG-3ββ(SEQβIDβNO:β48) |
| !β2β=βKR,β1β=β0.27Yβ+β0.27Gβ+β0.027{ADEFHIKLMNPQRSTVW}βnoβC |
| ! |
| (C6t17)β5β²-cc|gct|gtc|tac|tac|tgc|gcc|- |
| ββββββββββββββ<2>|<1>|<1>|tct|<1>|act|atc|ttc|ggt|<1>|<1>|<1>|<1>|<1>|- |
| βββββββββββββtac|ttc|gat|tac|ttg|ggc|caa|GG-3β²β(SEQβIDβNO:β49) |
| !β2β=βKR,β1β=β0.27Yβ+β0.27Gβ+β0.027{ADEFHIKLMNPQRSTVW}βnoβC |
| ! |
| (C7t18)β5β²-cc|gct|gtc|tac|tac|tgc|gcc|cgt|- |
| ββββββ|<1>|<1>|<1>|tat|tac|<2>|tct|<3>|<3>|tac|tat|<1>|<1>|<1>|- |
| ββββββββββββββββtac|ttc|gat|tac|ttg|ggc|caa|GG-3β²β(SEQβIDβNO:β50) |
| !β2β=βDG,β1β=β0.27Yβ+β0.27Gβ+β0.027{ADEFHIKLMNPQRSTVW}βnoβC,β3β=βSG |
| ! |
| (c8t19)β5β²-cc|gct|gtc|tac|tac|tgc|gcc|cgt|- |
| ββββββ|<1>|<1>|<1>|<1>|tat|tgc|<2>|<2>|<3>|<1>|tgc|tat|<1>|<1>|<1>|- |
| ββββββββββββββββtac|ttc|gat|tac|ttg|ggc|caa|GG-3β²β(SEQβIDβNO:β51) |
| !β2β=βSG,β1β=β0.27Yβ+β0.27Gβ+β0.027{ADEFHIKLMNPQRSTVW}βnoβC,β3β=βTDG |
| ! |
| TABLE 19 |
| Names of 1398 GeneBank entries examined |
| haj10335 | hsa006165 | hsa234190 | hsa234288 | hsa239366 | hsa240594 | hsa244963 |
| hs201e3 | hsa006167 | hsa234191 | hsa234290 | hsa239367 | hsa240595 | hsa244965 |
| hs201g1 | hsa006169 | hsa234193 | hsa234291 | hsa239368 | hsa240599 | hsa244966 |
| hs201m2 | hsa006171 | hsa234194 | hsa234294 | hsa239369 | hsa240604 | hsa244967 |
| hs202e2 | hsa006173 | hsa234196 | hsa234296 | hsa239370 | hsa241344 | hsa244968 |
| hs202g3 | hsa131921 | hsa234197 | hsa234298 | hsa239371 | hsa241345 | hsa244969 |
| hs202g9 | hsa132847 | hsa234199 | hsa235649 | hsa239372 | hsa241346 | hsa244970 |
| hs202m3 | hsa132849 | hsa234202 | hsa235658 | hsa239373 | hsa241347 | hsa244971 |
| hs203e1 | hsa132850 | hsa234203 | hsa235662 | hsa239375 | hsa241348 | hsa244972 |
| hs203g1 | hsa132851 | hsa234205 | hsa235664 | hsa239376 | hsa241349 | hsa244973 |
| hs203m5 | hsa132852 | hsa234206 | hsa235665 | hsa239377 | hsa241350 | hsa244974 |
| hs204e1 | hsa224746 | hsa234207 | hsa235667 | hsa239378 | hsa241351 | hsa244975 |
| hs204g1 | hsa225092 | hsa234208 | hsa235671 | hsa239379 | hsa241353 | hsa244976 |
| hs3d6hcv | hsa225093 | hsa234209 | hsa235675 | hsa239380 | hsa241354 | hsa244977 |
| hs6d4xa7 | hsa230634 | hsa234211 | hsa235677 | hsa239381 | hsa241355 | hsa244978 |
| hs6d4xb7 | hsa230635 | hsa234212 | hsa238036 | hsa239382 | hsa241356 | hsa244979 |
| hs6d4xf1 | hsa230636 | hsa234214 | hsa238037 | hsa239383 | hsa241357 | hsa244980 |
| hs6d4xf2 | hsa230637 | hsa234217 | hsa238038 | hsa239384 | hsa241420 | hsa244981 |
| hs6d4xg3 | hsa230638 | hsa234221 | hsa238039 | hsa239385 | hsa241421 | hsa244982 |
| hs6d4xh5 | hsa230639 | hsa234224 | hsa238040 | hsa239386 | hsa242555 | hsa244983 |
| hs83x6b2 | hsa230640 | hsa234227 | hsa238326 | hsa239387 | hsa242556 | hsa244984 |
| hs83x6b5 | hsa230641 | hsa234229 | hsa238327 | hsa239388 | hsa243108 | hsa244985 |
| hs83x6c3 | hsa230643 | hsa234230 | hsa238328 | hsa239390 | hsa243110 | hsa244986 |
| hs83x6c4 | hsa230644 | hsa234232 | hsa239330 | hsa239391 | hsa244928 | hsa244987 |
| hs83x6c5 | hsa230645 | hsa234235 | hsa239331 | hsa240553 | hsa244929 | hsa244988 |
| hs83x6d4 | hsa230646 | hsa234238 | hsa239332 | hsa240554 | hsa244930 | hsa244989 |
| hs83x6f1 | hsa230647 | hsa234239 | hsa239333 | hsa240555 | hsa244931 | hsa244990 |
| hs83x6f2 | hsa230648 | hsa234242 | hsa239334 | hsa240556 | hsa244932 | hsa244991 |
| hs83x6f3 | hsa230649 | hsa234245 | hsa239335 | hsa240557 | hsa244933 | hsa244992 |
| hs83x6f5 | hsa230650 | hsa234248 | hsa239336 | hsa240558 | hsa244934 | hsa244993 |
| hs83x6h3 | hsa230651 | hsa234249 | hsa239337 | hsa240559 | hsa244935 | hsa244994 |
| hs83x9a6 | hsa230652 | hsa234251 | hsa239338 | hsa240560 | hsa244936 | hsa244995 |
| hs83x9b6 | hsa230653 | hsa234252 | hsa239339 | hsa240561 | hsa244937 | hsa244996 |
| hs83x9b9 | hsa230654 | hsa234255 | hsa239340 | hsa240562 | hsa244938 | hsa244997 |
| hs83x9c8 | hsa230655 | hsa234256 | hsa239341 | hsa240563 | hsa244939 | hsa244998 |
| hs83x9d6 | hsa230656 | hsa234257 | hsa239342 | hsa240564 | hsa244940 | hsa244999 |
| hs83x9d7 | hsa230657 | hsa234258 | hsa239343 | hsa240565 | hsa244941 | hsa245000 |
| hs83x9e6 | hsa230658 | hsa234259 | hsa239344 | hsa240566 | hsa244942 | hsa245001 |
| hs83x9e8 | hsa234156 | hsa234260 | hsa239345 | hsa240567 | hsa244943 | hsa245002 |
| hs83x9e9 | hsa234158 | hsa234262 | hsa239346 | hsa240568 | hsa244944 | hsa245003 |
| hs83x9f6 | hsa234160 | hsa234263 | hsa239347 | hsa240569 | hsa244945 | hsa245004 |
| hs83x9g6 | hsa234161 | hsa234264 | hsa239348 | hsa240570 | hsa244946 | hsa245005 |
| hs9d4x10 | hsa234163 | hsa234266 | hsa239349 | hsa240571 | hsa244947 | hsa245006 |
| hs9d4x7 | hsa234164 | hsa234268 | hsa239350 | hsa240572 | hsa244948 | hsa245007 |
| hs9d4x8 | hsa234166 | hsa234269 | hsa239351 | hsa240573 | hsa244949 | hsa245008 |
| hs9d4x9 | hsa234168 | hsa234270 | hsa239353 | hsa240575 | hsa244950 | hsa245009 |
| hs9d4xa6 | hsa234169 | hsa234272 | hsa239354 | hsa240576 | hsa244951 | hsa245010 |
| hs9d4xa7 | hsa234171 | hsa234273 | hsa239355 | hsa240578 | hsa244952 | hsa245011 |
| hs9d4xb6 | hsa234172 | hsa234274 | hsa239356 | hsa240580 | hsa244953 | hsa245012 |
| hs9d4xc2 | hsa234175 | hsa234276 | hsa239357 | hsa240581 | hsa244954 | hsa245013 |
| hs9d4xd6 | hsa234178 | hsa234277 | hsa239358 | hsa240582 | hsa244955 | hsa245014 |
| hs9d4xe6 | hsa234180 | hsa234279 | hsa239359 | hsa240585 | hsa244956 | hsa245015 |
| hs9d4xf3 | hsa234181 | hsa234281 | hsa239360 | hsa240586 | hsa244957 | hsa245016 |
| hs9d4xh4 | hsa234183 | hsa234282 | hsa239361 | hsa240588 | hsa244958 | hsa245017 |
| hs9d4xh5 | hsa234184 | hsa234283 | hsa239362 | hsa240589 | hsa244959 | hsa245018 |
| hsa005975 | hsa234186 | hsa234284 | hsa239363 | hsa240590 | hsa244960 | hsa245019 |
| hsa005977 | hsa234187 | hsa234286 | hsa239364 | hsa240592 | hsa244961 | hsa245020 |
| hsa006161 | hsa234189 | hsa234287 | hsa239365 | hsa240593 | hsa244962 | hsa245021 |
| hsa245022 | hsa245217 | hsa245305 | hsa279524 | hsabhiv8 | hsb8g2g08 | hsevh52a1 |
| hsa245023 | hsa245218 | hsa245307 | hsa279526 | hsadeigvh | hsb8g3b07 | hsevh52a2 |
| hsa245024 | hsa245219 | hsa245309 | hsa279527 | hsaj2768 | hsb8g3c07 | hsevh52a3 |
| hsa245025 | hsa245220 | hsa245311 | hsa279528 | hsaj2769 | hsb8g3c08 | hsevh52a4 |
| hsa245026 | hsa245221 | hsa245312 | hsa279529 | hsaj2771 | hsb8g3c12 | hsevh52a5 |
| hsa245027 | hsa245222 | hsa245313 | hsa279530 | hsaj2772 | hsb8g3d03 | hsevh52b1 |
| hsa245028 | hsa245223 | hsa245315 | hsa279531 | hsaj2773 | hsb8g3d04 | hsevh53a1 |
| hsa245029 | hsa245224 | hsa245317 | hsa279532 | hsaj2776 | hsb8g3d07 | hsevh53a2 |
| hsa245030 | hsa245225 | hsa245318 | hsa279533 | hsaj2777 | hsb8g3d08 | hsfog1h |
| hsa245031 | hsa245226 | hsa245319 | hsa279535 | hsaj4083 | hsb8g3e02 | hsfog3h |
| hsa245032 | hsa245228 | hsa245320 | hsa279536 | hsaj4899 | hsb8g3e03 | hsfogbh |
| hsa245033 | hsa245229 | hsa245321 | hsa279537 | hsasighc | hsb8g3f03 | hsfom1h |
| hsa245034 | hsa245230 | hsa245322 | hsa279543 | hsavh510 | hsb8g3g01 | hsfs10hc |
| hsa245035 | hsa245231 | hsa245323 | hsa279544 | hsavh512 | hsb8g3g03 | hsfs11hc |
| hsa245036 | hsa245232 | hsa245325 | hsa279545 | hsavh513 | hsb8g3g05 | hsfs9whc |
| hsa245037 | hsa245233 | hsa245326 | hsa279552 | hsavh514 | hsb8g3g10 | hsgad2h |
| hsa245039 | hsa245234 | hsa245338 | hsa389169 | hsavh515 | hsb8g3h01 | hsgvh0117 |
| hsa245040 | hsa245235 | hsa245342 | hsa389170 | hsavh516 | hsb8g4c02 | hsgvh0118 |
| hsa245041 | hsa245236 | hsa245343 | hsa389171 | hsavh517 | hsb8g4e01 | hsgvh0119 |
| hsa245042 | hsa245237 | hsa245345 | hsa389172 | hsavh519 | hsb8g4e05 | hsgvh0120 |
| hsa245043 | hsa245238 | hsa245346 | hsa389173 | hsavh520 | hsb8g4f11 | hsgvh0121 |
| hsa245044 | hsa245239 | hsa245347 | hsa389174 | hsavh523 | hsb8g4h09 | hsgvh0122 |
| hsa245045 | hsa245240 | hsa245348 | hsa389175 | hsavh524 | hsb8g4h10 | hsgvh0123 |
| hsa245046 | hsa245241 | hsa245349 | hsa389176 | hsavh526 | hsb8g5d10 | hsgvh0124 |
| hsa245047 | hsa245246 | hsa245350 | hsa389177 | hsavh529 | hsb8g5h08 | hsgvh0201 |
| hsa245048 | hsa245251 | hsa245352 | hsa389178 | hsavh53 | hsbel1 | hsgvh0202 |
| hsa245049 | hsa245255 | hsa245353 | hsa389179 | hsavh56 | hsbel14 | hsgvh0203 |
| hsa245050 | hsa245258 | hsa245355 | hsa389180 | hsb3g4a07 | hsbel28 | hsgvh0204 |
| hsa245051 | hsa245260 | hsa245356 | hsa389181 | hsb73g04n | hsbel29 | hsgvh0205 |
| hsa245052 | hsa245261 | hsa245357 | hsa389182 | hsb74a08n | hsbel3 | hsgvh0206 |
| hsa245053 | hsa245262 | hsa245358 | hsa389183 | hsb7g1a11 | hsbel34 | hsgvh0207 |
| hsa245054 | hsa245263 | hsa245359 | hsa389184 | hsb7g2b01 | hsbel43 | hsgvh0208 |
| hsa245055 | hsa245265 | hsa249378 | hsa389185 | hsb7g3a01 | hsbel45 | hsgvh0209 |
| hsa245056 | hsa245266 | hsa249628 | hsa389186 | hsb7g3a05 | hsbel5 | hsgvh0210 |
| hsa245057 | hsa245268 | hsa249629 | hsa389187 | hsb7g3a10 | bsbel54 | hsgvh0211 |
| hsa245058 | hsa245272 | hsa249630 | hsa389188 | hsb7g3b02 | bsbel69 | hsgvh0213 |
| hsa245059 | hsa245273 | hsa249631 | hsa389190 | hsb7g3b03 | hsbo1vhig | hsgvh0214 |
| hsa245060 | hsa245275 | hsa249632 | hsa389191 | hsb7g3b05 | hsbo3vhig | hsgvh0215 |
| hsa245061 | hsa245277 | hsa249633 | hsa389192 | hsb7g3c03 | hsbr1vhig | hsgvh0216 |
| hsa245062 | hsa245278 | hsa249634 | hsa389193 | hsb7g3c12 | hsbradh3 | hsgvh0217 |
| hsa245063 | hsa245279 | hsa249635 | hsa389194 | hsb7g3d07 | hscal4ghc | hsgvh0218 |
| hsa245064 | hsa245280 | hsa249636 | hsa389195 | hsb7g3e01 | hsd4xd10 | hsgvh0219 |
| hsa245065 | hsa245281 | hsa249637 | hsa389927 | hsb7g3f02 | hsd4xf21 | hsgvh0220 |
| hsa245066 | hsa245282 | hsa271600 | hsa389929 | hsb7g3f10 | hsd4xg2 | hsgvh0221 |
| hsa245067 | hsa245283 | hsa271601 | hsa6351 | hsb7g3g02 | hsd4xi10 | hsgvh0222 |
| hsa245068 | hsa245284 | hsa271602 | hsa7321 | hsb7g3g04 | hsd4xi4 | hsgvh0223 |
| hsa245069 | hsa245285 | hsa271603 | hsa7322 | hsb7g4a08 | hsd4xk9 | hsgvh0224 |
| hsa245071 | hsa245286 | hsa271604 | hsa7323 | hsb7g4c05 | hsd4xl3 | hsgvh0302 |
| hsa245072 | hsa245287 | hsa279513 | hsa7325 | hsb7g4d09 | hsd5hc | hsgvh0304 |
| hsa245073 | hsa245288 | hsa279514 | hsa7326 | hsb7g4f08 | hsdo1vhig | hsgvh0306 |
| hsa245201 | hsa245289 | hsa279515 | hsa7328 | hsb7g4g07 | hseliepa1 | hsgvh0307 |
| hsa245203 | hsa245290 | hsa279516 | hsa7438 | hsb7g5g03 | hseliepa3 | hsgvh0308 |
| hsa245204 | hsa245291 | hsa279517 | hsa7440 | hsb8g1c04 | hseliepa4 | hsgvh0309 |
| hsa245208 | hsa245292 | hsa279519 | hsa7441 | hsb8g1e04 | hseliepb2 | hsgvh0310 |
| hsa245209 | hsa245294 | hsa279520 | hsa7442 | hsb8g1f03 | hseliepd2 | hsgvh0311 |
| hsa245210 | hsa245298 | hsa279521 | hsa7443 | hsb8g1g04 | hselilpb1 | hsgvh0312 |
| hsa245214 | hsa245299 | hsa279522 | hsa7444 | hsb8g1h02 | hsevh51a1 | hsgvh0314 |
| hsa245215 | hsa245301 | hsa279523 | hsaarma1 | hsb8g2f09 | hsevh51b1 | hsgvh0315 |
| hsgvh0318 | hsig001vh | hsighpat5 | hsigvhc07 | hsimghc1 | hsmvh0401 | hsrou233 |
| hsgvh0320 | hsig030vh | hsighpat6 | hsigvhc08 | hsimghc2 | hsmvh0403 | hsrt792hc |
| hsgvh0321 | hsig033vh | hsighpat7 | hsigvhc09 | hsimghc3 | hsmvh0404 | hsrt79hc |
| hsgvh0322 | hsig039vh | hsighpat8 | hsigvhc10 | hsimghc4 | hsmvh0405 | hssm1vhig |
| hsgvh0323 | hsig040vh | hsighpat9 | hsigvhc11 | hsimghcS | hsmvh0406 | hssp46a |
| hsgvh0324 | hsig055vh | hsighpt11 | hsigvhc12 | hsin42p5 | hsmvh0501 | hst14vh |
| hsgvh0325 | hsig057vh | hsighpt12 | hsigvhc14 | hsin51p7 | hsmvh0502 | hst14x1 |
| hsgvh0326 | hsig1059 | hsighpta1 | hsigvhc16 | hsin51p8 | hsmvh0503 | hst14x10 |
| hsgvh0327 | hsig10610 | hsighvb5 | hsigvhc17 | hsin78 | hsmvh0504 | hst14x11 |
| hsgvh0328 | hsig13g10 | hsighvca | hsigvhc18 | hsin87 | hsmvh0505 | hst14x12 |
| hsgvh0329 | hsig473 | hsighvcb | hsigvhc19 | hsin89p2 | hsmvh0506 | hst14x13 |
| hsgvh0330 | hsig7sa11 | hsighvcc | hsigvhc20 | hsin92 | hsmvh0507 | hst14x14 |
| hsgvh0331 | hsigaehc | hsighvcd | hsigvhc21 | hsin98p1 | hsmvh0508 | hst14x15 |
| hsgvh0332 | hsigaf2h2 | hsighvce | hsigvhc22 | hsjac10h | hsmvh0509 | hst14x16 |
| hsgvh0333 | hsigashc | hsighvm | hsigvhc23 | hsjhba1f | hsmvh0510 | hst14x17 |
| hsgvh0334 | hsigathc | hsighxx1 | hsigvhc24 | hsjhbr2f | hsmvh0511 | hst14x18 |
| hsgvh0335 | hsigdvrhc | hsighxx10 | hsigvhc25 | hsjhej1f | hsmvh0513 | hst14x19 |
| hsgvh0336 | hsigg1kh | hsighxx11 | hsigvhc26 | hsld1110 | hsmvh0515 | hst14x20 |
| hsgvh0419 | hsigg1kl | hsighxx12 | hsigvhc27 | hsld1117 | hsmvh0529 | hst14x21 |
| hsgvh0420 | hsigg1lh | hsighxx14 | hsigvhc28 | hsld152 | hsmvh51 | hst14x22 |
| hsgvh0421 | hsigghc85 | hsighxx16 | hsigvhc29 | hsld21 | hsmvh510 | hst14x23 |
| hsgvh0422 | hsigghcv3 | hsighxx18 | hsigvhc30 | hsld217 | hsmvh511 | hst14x24 |
| hsgvh0423 | hsigghevr | hsighxx2 | hsigvhc31 | hsld218 | hsmvh512 | hst14x25 |
| hsgvh0424 | hsiggvdj1 | hsighxx20 | hsigvhc32 | hsld25 | hsmvh515 | hst14x3 |
| hsgvh0428 | hsiggvdj2 | hsighxx21 | hsigvhc33 | hsmad2h | hsmvh516 | hst14x6 |
| hsgvh0429 | hsiggvhb | hsighxx22 | hsigvhc35 | hsmbcl5h4 | hsmvh517 | hst14x7 |
| hsgvh0430 | hsiggvhc | hsighxx23 | hsigvhc36 | hsmica1h | hsmvh53 | hst14x8 |
| hsgvh0517 | hsigh10g1 | hsighxx25 | hsigvhc37 | hsmica3h | hsmvh54 | hst14x9 |
| hsgvh0519 | hsigh10g2 | hsighxx26 | hsigvhc38 | hsmica4h | hsmvh55 | hst22x1 |
| hsgvh0522 | hsigh10g3 | hsighxx28 | hsigvhc39 | hsmica5h | hsmvh56 | hst22x11 |
| hsgvh0523 | hsigh10g4 | hsighxx29 | hsigvhc40 | hsmica6h | hsmvh57 | hst22x12 |
| hsgvh0526 | hsigh10g5 | hsighxx3 | hsigvhc41 | hsmica7h | hsmvh58 | hst22x13 |
| hsgvh0527 | hsigh10g7 | hsighxx30 | hsigvhc42 | hsmt11ige | hsmvh59 | hst22x14 |
| hsgvh0531 | hsigh10g8 | hsighxx31 | hsigvhc43 | hsmt12ige | hsnamembo | hst22x15 |
| hsgvh511 | hsigh10g9 | hsighxx32 | hsigvhls | hsmt13ige | hsnpb346e | hst22x18 |
| hsgvh512 | hsigh13g1 | hsighxx34 | hsigvhttd | hsmt14ige | hsoak3h | hst22x20 |
| hsgvh513 | hsigh13g7 | hsighxx36 | hsigvp151 | hsmt15ige | hsog31h | hst22x21 |
| hsgvh515 | hsigh14g1 | hsighxx37 | hsigvp152 | hsmt16ige | hspag1h | hst22x22 |
| hsgvh519 | hsigh14g2 | hsighxx38 | hsigvp153 | hsmt17ige | hsrael | hst22x23 |
| hsgvh521 | hsigh2f2 | hsighxx5 | hsigvp154 | hsmt21ige | hsregah | hst22x25 |
| hsgvh526 | hsigh3135 | hsighxx6 | hsigvp155 | hsmt22ige | hsrfabh37 | hst22x26 |
| hsgvh530 | hsigh35 | hsighxx7 | hsigvp156 | hsmt23ige | hsrighvja | hst22x27 |
| hsgvh533 | hsigh44 | hsighxx8 | hsigvp157 | hsmt24ige | hsrighvjb | hst22x28 |
| hsgvh534 | hsigh4c2 | hsighxx9 | hsigvp158 | hsmt25ige | hsrou10 | hst22x30 |
| hsgvh535 | hsigh9e1 | hsigkrf | hsigvp251 | hsmt26ige | hsrou11 | hst22x9 |
| hsgvh536 | hsighadi2 | hsigmhavh | hsigvp255 | hsmt27ige | hsrou111 | hsu24687 |
| hsgvh55 | hsighadi3 | hsigrhe15 | hsigvp256 | hsmutuiem | hsrou112 | hsu24688 |
| hsh217e | hsighcvr | hsigtgk1h | hsigvp257 | hsmvh0001 | hsrou119 | hsu24690 |
| hsh241e | hsighcza | hsigtgk4h | hsigvp360 | hsmvh0002 | hsrou122 | hsu24691 |
| hsh28e | hsighczb | hsigtgl9h | hsigvp363 | hsmvh0003 | hsrou126 | hsv52a512 |
| hsha3d1ig | hsighczc | hsigvarh1 | hsigvp369 | hsmvh0004 | hsrou127 | hsvdj10h |
| hshambh | hsighczd | hsigvhc | hsigvp39 | hsmvh0005 | hsrou129 | hsvdj12h |
| hshcmg42 | hsighczf | hsigvhc01 | hsihr8 | hsmvh0006 | hsrou13 | hsvgcg1 |
| hshcmg43 | hsighczg | hsigvhc02 | hsihr9 | hsmvh0007 | hsrou131 | hsvgcm1 |
| hshcmg44 | hsigheavy | hsigvhc03 | hsihv1 | hsmvh0009 | hsrou18 | hsvgcm2 |
| hshcmg46 | hsighpat2 | hsigvhc04 | hsihv11 | hsmvh0010 | hsrou219 | hsvh1djh6 |
| hshcmt42 | hsighpat3 | hsigvhc05 | hsihv18 | hsmvh0011 | hsrou221 | hsvh3djh4 |
| hshcmt47 | hsighpat4 | hsigvhc06 | hsim9vch | hsmvh0012 | hsrou222 | hsvh4dj |
| hsvh4djh6 | hsvhic11 | hsww1p10e | hsy14935 | hsz80377 | hsz80424 | hsz80482 |
| hsvh4r | hsvhic2 | hsx98932 | hsy14936 | hsz80378 | hsz80426 | hsz80483 |
| hsvh52a43 | hsvhic3 | hsx98933 | hsy14937 | hsz80383 | hsz80427 | hsz80487 |
| hsvh52a55 | hsvhid1 | hsx98934 | hsy14938 | hsz80385 | hsz80429 | hsz80489 |
| hsvh5dj | hsvhid5 | hsx98935 | hsy14939 | hsz80386 | hsz80433 | hsz80492 |
| hsvh5djh5 | hsvhid7 | hsx98936 | hsy14940 | hsz80388 | hsz80436 | hsz80495 |
| hsvh710p1 | hsvhid9 | hsx98938 | hsy14943 | hsz80390 | hsz80438 | hsz80496 |
| hsvheg7 | hsvhie4 | hsx98939 | hsy14945 | hsz80391 | hsz80439 | hsz80499 |
| hsvhfa2 | hsvhif10 | hsx98940 | hsy18120 | hsz80392 | hsz80441 | hsz80500 |
| hsvhfa7 | hsvhif3 | hsx98941 | hsz74663 | hsz80393 | hsz80442 | hsz80502 |
| hsvhfb5 | hsvhif7 | hsx98943 | hsz74665 | hsz80394 | hsz80443 | hsz80504 |
| hsvhfc2 | hsvhig2 | hsx98944 | hsz74668 | hsz80397 | hsz80445 | hsz80507 |
| hsvhfd7 | hsvhp2 | hsx98945 | hsz74671 | hsz80400 | hsz80458 | hsz80509 |
| hsvhfe5 | hsvhp29 | hsx98946 | hsz74672 | hsz80403 | hsz80459 | hsz80512 |
| hsvhfg9 | hsvhp30 | hsx98947 | hsz74682 | hsz80406 | hsz80460 | hsz80513 |
| hsvhgd8 | hsvhp32 | hsx98948 | hsz74688 | hsz80407 | hsz80461 | hsz80517 |
| hsvhgd9 | hsvhp34 | hsx98950 | hsz74690 | hsz80409 | hsz80462 | hsz80519 |
| hsvhgh7 | hsvhp4 | hsx98951 | hsz74693 | hsz80411 | hsz80463 | hsz80520 |
| hsvhha10 | hsvhp46 | hsx98952 | hsz74695 | hsz80412 | hsz80465 | hsz80527 |
| hsvhia2 | hsvhp48 | hsx98953 | hsz80363 | hsz80414 | hsz80466 | hsz80534 |
| hsvhia5 | hsvhp53 | hsx98954 | hsz80364 | hsz80415 | hsz80473 | hsz80538 |
| hsvhib12 | hsvhp7 | hsx98955 | hsz80365 | hsz80416 | hsz80474 | hsz80544 |
| hsvhib6 | hsvigd9 | hsx98956 | hsz80367 | hsz80417 | hsz80475 | hsz80545 |
| hsvhib8 | hswad35vh | hsx98958 | hsz80368 | hsz80418 | hsz80476 | |
| hsvhic1 | hswanembo | hsx98963 | hsz80372 | hsz80421 | hsz80477 | |
| hsvhic10 | hswo1vhig | hsy14934 | hsz80375 | hsz80422 | hsz80480 | |
| TABLEβ20P |
| HumanβGLGβCDR1β&βCDR2βAAβseqs |
| CDR1 | βββββββββ1ββββ1βββ1 | |||
| Name | 1234567 | CDR2 | 1234567890123456789 | |
| 1-02 | GYY-MH | (SEQβIDβNO:β230) | WINPNSGG--TNYAQKFQG | (SEQβIDβNO:β231) |
| 1-03 | SYA--MH | (SEQβIDβNO:β232) | WINAGNGN--TKYSQKFQG | (SEQβIDβNO:β233) |
| 1-08 | SYD--IN | (SEQβIDβNO:β234) | WMNPNSGN--TGYAQKFQG | (SEQβIDβNO:β235) |
| 1-18 | SYG--IS | (SEQβIDβNO:β236) | WISAYNGN--TNYAQKLQG | (SEQβIDβNO:β237) |
| 1-24 | ELS--MH | (SEQβIDβNO:β238) | GFDPEDGE--TIYAQKFQG | (SEQβIDβNO:β239) |
| 1-45 | YRY--LH | (SEQβIDβNO:β240) | WITPFNGN--TNYAQKFQD | (SEQβIDβNO:β241) |
| 1-46 | SYY--MH | (SEQβIDβNO:β242) | IINPSGGS--TSYAQKFQG | (SEQβIDβNO:β243) |
| 1-58 | SSA--VQ | (SEQβIDβNO:β244) | WIVVGSGN--TNYAQKFQE | (SEQβIDβNO:β245) |
| 1-69 | SYA--IS | (SEQβIDβNO:β246) | GIIPIFGT--ANYAQKFQG | (SEQβIDβNO:β247) |
| 1-e | SYA--IS | (SEQβIDβNO:β248) | GIIPIFGT--ANYAQKFQG | (SEQβIDβNO:β249) |
| 1-f | DYY--MH | (SEQβIDβNO:β250) | LVDPEDGE--TIYAEKFQG | (SEQβIDβNO:β251) |
| 2-05 | TSGVGVG | (SEQβIDβNO:β252) | LIYWNDDK---RYSPSLKS | (SEQβIDβNO:β253) |
| 2-26 | NARMGVS | (SEQβIDβNO:β254) | HIFSNDEK---SYSTSLKS | (SEQβIDβNO:β255) |
| 2-70 | TSGMRVS | (SEQβIDβNO:β256) | RIDWDDDK---FYSTSLKT | (SEQβIDβNO:β257) |
| 3-07 | SYW--MS | (SEQβIDβNO:β258) | NIKQDGSE--KYYVDSVKG | (SEQβIDβNO:β259) |
| 3-09 | DYA--MH | (SEQβIDβNO:β260) | GISWNSGS--IGYADSVKG | (SEQβIDβNO:β261) |
| 3-11 | DYY--MS | (SEQβIDβNO:β262) | YISSSGST--IYYADSVKG | (SEQβIDβNO:β263) |
| 3-13 | SYD--MH | (SEQβIDβNO:β264) | AIGTAGD---TYYPGSVKG | (SEQβIDβNO:β265) |
| 3-15 | NAW--MS | (SEQβIDβNO:β266) | RIKSKIDGGITDYAAPVKG | (SEQβIDβNO:β267) |
| 3-20 | DYG--MS | (SEQβIDβNO:β268) | GINWNGGS--TGYADSVKG | (SEQβIDβNO:β269) |
| 3-21 | SYS--MN | (SEQβIDβNO:β270) | SISSSSSY--IYYADSVKG | (SEQβIDβNO:β271) |
| 3-23 | SYA--MS | (SEQβIDβNO:β272) | AISGSGGS--TYYADSVKG | (SEQβIDβNO:β273) |
| 3-30 | SYG--MH | (SEQβIDβNO:β274) | VISYDGSN--KYYADSVKG | (SEQβIDβNO:β275) |
| 3303 | SYA--MH | (SEQβIDβNO:β276) | VISYDGSN--KYYADSVKG | (SEQβIDβNO:β277) |
| 3305 | SYG--MH | (SEQβIDβNO:β278) | VISYDGSN--KYYADSVKG | (SEQβIDβNO:β279) |
| 3-33 | SYG--MH | (SEQβIDβNO:β280) | VIWYDGSN--KYYADSVKG | (SEQβIDβNO:β281) |
| 3-43 | DYT--MH | (SEQβIDβNO:β282) | LISWDGGS--TYYADSVKG | (SEQβIDβNO:β283) |
| 3-48 | SYS--MN | (SEQβIDβNO:β284) | YISSSSST--IYYADSVKG | (SEQβIDβNO:β285) |
| 3-49 | DYA--MS | (SEQβIDβNO:β286) | FIRSKAYGGTTEYTASVKG | (SEQβIDβNO:β287) |
| 3-53 | SNY--MS | (SEQβIDβNO:β288) | VIYSGGS---TYYADSVKG | (SEQβIDβNO:β289) |
| 3-64 | SYA--MH | (SEQβIDβNO:β290) | AISSNGGS--TYYANSVKG | (SEQβIDβNO:β291) |
| 3-66 | SNY--MS | (SEQβIDβNO:β292) | VIYSGGS---TYYADSVKG | (SEQβIDβNO:β293) |
| 3-72 | DHY--MD | (SEQβIDβNO:β294) | RTRNKANSYTTEYAASVKG | (SEQβIDβNO:β295) |
| 3-73 | GSA--MH | (SEQβIDβNO:β296) | RIRSKANSYATAYAASVKG | (SEQβIDβNO:β297) |
| 3-74 | SYW--MH | (SEQβIDβNO:β298) | RINSDGSS--TSYADSVKG | (SEQβIDβNO:β299) |
| 3-d | SNE--MS | (SEQβIDβNO:β300) | SISGGS----TYYADSRKG | (SEQβIDβNO:β301) |
| 4-04 | SSNW-WS | (SEQβIDβNO:β302) | EIYHSGS---TNYNPSLKS | (SEQβIDβNO:β303) |
| 4-28 | SSNW-WG | (SEQβIDβNO:β304) | YIYYSGS---TYYNPSLKS | (SEQβIDβNO:β305) |
| 4301 | SGGYYWS | (SEQβIDβNO:β306) | YIYYSGS---TYYNPSLKS | (SEQβIDβNO:β307) |
| 4302 | SGGYSWS | (SEQβIDβNO:β308) | YIYHSGS---TYYNPSLKS | (SEQβIDβNO:β309) |
| 4304 | SGDYYWS | (SEQβIDβNO:β310) | YIYYSGS---TYYNPSLKS | (SEQβIDβNO:β311) |
| 4-31 | SGGYYWS | (SEQβIDβNO:β312) | YIYYSGS---TYYNPSLKS | (SEQβIDβNO:β313) |
| 4-34 | GYY--WS | (SEQβIDβNO:β314) | EINHSGS---TNYNPSLKS | (SEQβIDβNO:β315) |
| 4-39 | SSSYYWG | (SEQβIDβNO:β316) | SIYYSGS---TYYNPSLKS | (SEQβIDβNO:β317) |
| 4-59 | SYY--WS | (SEQβIDβNO:β318) | YIYYSGS---TNYNPSLKS | (SEQβIDβNO:β319) |
| 4-61 | SGSYYWS | (SEQβIDβNO:β320) | YIYYSGS---TNYNPSLKS | (SEQβIDβNO:β321) |
| 4-b | SGYY-WG | (SEQβIDβNO:β322) | SIYHSGS---TYYNPSLKS | (SEQβIDβNO:β323) |
| 5-51 | SYW--IG | (SEQβIDβNO:β324) | IIYPGDSD--TRYSPSFQG | (SEQβIDβNO:β325) |
| 5-a | SYW--IS | (SEQβIDβNO:β326) | RIDPSDSY--TNYSPSFQG | (SEQβIDβNO:β327) |
| 6-1 | SNSAAWN | (SEQβIDβNO:β328) | RTYYRSKWY-NDYAVSVKS | (SEQβIDβNO:β329) |
| 74.1 | SYA--MN | (SEQβIDβNO:β330) | WINTNIGN--PTYAQGFIG | (SEQβIDβNO:β331) |
| CDR1βofβhumanβGLGs |
| A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y | β | Consens. | |
| β1 | 7 | 1 | 3 | 2 | 35 | 2 | 1 | Sdβx | ||||||||||||||
| β2 | 2 | 6 | 1 | 1 | 4 | 1 | 7 | 29 | Ysgβx | |||||||||||||
| β3 | 11 | 3 | 1 | 10 | 2 | 1 | 6 | 1 | 5 | 11 | YAGSβx | |||||||||||
| β4 | 1 | 2 | 1 | 2 | 7 | 38 | β | |||||||||||||||
| β5 | 1 | 2 | 1 | 1 | 5 | 41 | β | |||||||||||||||
| β6 | 6 | 1 | 28 | 4 | 12 | Mwi | ||||||||||||||||
| β7 | 1 | 5 | 16 | 5 | 1 | 23 | SHng |
| CDR2βofβhumanβGLGs |
| β1 | 3 | 2 | 1 | 5 | 1 | 2 | 3 | 1 | 7 | 4 | 6 | 7 | 9 | X | ||||||||
| β2 | 1 | 46 | 1 | 2 | 1 | I | ||||||||||||||||
| β3 | 4 | 1 | 1 | 2 | 2 | 8 | 3 | 12 | 1 | 1 | 1 | 15 | ysnβx | |||||||||
| β4 | 2 | 2 | 4 | 1 | 10 | 1 | 11 | 2 | 1 | 5 | 12 | yspβx | ||||||||||
| β5 | 1 | 8 | 2 | 1 | 6 | 2 | 4 | 8 | 1 | 17 | 1 | sdβx | ||||||||||
| β6 | 3 | 7 | 2 | 26 | 3 | 8 | 2 | Gsdβx | ||||||||||||||
| β7 | 4 | 1 | 17 | 1 | 2 | 24 | 1 | 1 | SGβx | |||||||||||||
| β8 | 1 | 3 | 3 | 3 | 10 | 9 | 4 | 1 | 2 | 15 | -ns | |||||||||||
| β9 | 2 | 3 | 46 | β | ||||||||||||||||||
| 10 | 1 | 3 | 47 | β | ||||||||||||||||||
| 11 | 2 | 4 | 5 | 1 | 1 | 35 | 3 | T | ||||||||||||||
| 12 | 1 | 2 | 2 | 1 | 3 | 2 | 1 | 11 | 2 | 3 | 1 | 22 | Ynβx | |||||||||
| 13 | 51 | Y | ||||||||||||||||||||
| 14 | 31 | 11 | 1 | 6 | 1 | 1 | Anβx | |||||||||||||||
| 15 | 4 | 16 | 1 | 1 | 1 | 14 | 11 | 2 | 1 | dpqβx | ||||||||||||
| 16 | 1 | 11 | 1 | 38 | Sk | |||||||||||||||||
| 17 | 13 | 15 | 1 | 22 | Vlf | |||||||||||||||||
| 18 | 37 | 13 | 1 | Kq | ||||||||||||||||||
| 19 | 1 | 1 | 34 | 14 | 1 | GS | ||||||||||||||||
| TABLEβ21P |
| TalliesβofβAmino-acidβfrequenciesβinβmatureβCDR1βandβCDR2 |
| Tallyβofβ23βexamplesβwithβlengthβ14 |
| A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y | | | X | |
| β1 | 8 | 2 | 13 | |||||||||||||||||||
| β2 | 3 | 15 | 3 | 2 | ||||||||||||||||||
| β3 | 2 | 1 | 14 | 1 | 5 | |||||||||||||||||
| β4 | 2 | 2 | 11 | 5 | 3 | |||||||||||||||||
| β5 | 7 | 1 | 1 | 13 | 1 | |||||||||||||||||
| β6 | 1 | 4 | 3 | 12 | 2 | 1 | ||||||||||||||||
| β7 | 3 | 1 | 1 | 2 | 1 | 5 | 10 | |||||||||||||||
| β8 | 6 | 1 | 1 | 2 | 1 | 6 | 4 | 2 | ||||||||||||||
| β9 | 1 | 5 | 1 | 3 | 1 | 4 | 7 | 1 | ||||||||||||||
| 10 | 1 | 8 | 3 | 1 | 2 | 1 | 4 | 1 | 2 | |||||||||||||
| 11 | 1 | 1 | 1 | 1 | 2 | 1 | 16 | |||||||||||||||
| 12 | 1 | 2 | 1 | 1 | 1 | 1 | 1 | 1 | 14 | |||||||||||||
| 13 | 4 | 2 | 17 | |||||||||||||||||||
| 14 | 4 | 1 | 5 | 4 | 5 | 4 | ||||||||||||||||
| Tallyβofβ11βexamplesβwithβlengthβ12 |
| A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y | | | X | |
| β1 | 4 | 7 | ||||||||||||||||||||
| β2 | 1 | 4 | 4 | 2 | ||||||||||||||||||
| β3 | 7 | 4 | ||||||||||||||||||||
| β4 | 1 | 1 | 1 | 5 | 2 | 1 | ||||||||||||||||
| β5 | 1 | 9 | 1 | |||||||||||||||||||
| β6 | 2 | 1 | 3 | 2 | 3 | |||||||||||||||||
| β7 | 3 | 1 | 3 | 1 | 3 | |||||||||||||||||
| β8 | 1 | 3 | 2 | 1 | 2 | 2 | ||||||||||||||||
| β9 | 1 | 1 | 9 | |||||||||||||||||||
| 10 | 1 | 10 | ||||||||||||||||||||
| 11 | 11 | |||||||||||||||||||||
| 12 | 2 | 1 | 7 | 1 | ||||||||||||||||||
| Tallyβofβ175βexamplesβwithβlengthβ7 |
| A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y | | | X | |
| β1 | 2 | 1 | 1 | 2 | 1 | 3 | 2 | 153 | 10 | |||||||||||||
| β2 | 3 | 2 | 1 | 87 | 1 | 10 | 1 | 5 | 61 | 2 | 2 | |||||||||||
| β3 | 3 | 26 | 1 | 54 | 1 | 5 | 1 | 2 | 76 | 3 | 1 | 2 | ||||||||||
| β4 | 6 | 1 | 1 | 6 | 1 | 2 | 1 | 11 | 1 | 145 | ||||||||||||
| β5 | 5 | 2 | 13 | 2 | 2 | 3 | 6 | 2 | 140 | |||||||||||||
| β6 | 1 | 1 | 1 | 13 | 159 | |||||||||||||||||
| β7 | 2 | 1 | 67 | 1 | 10 | 88 | 5 | 1 | ||||||||||||||
| Tallyβofβ38βexamplesβwithβlengthβ6 |
| A | C | D | E | F | G | H | I | K | L | M | N | P | 4 | R | S | T | V | W | Y | | | X | |
| β1 | 2 | 34 | 2 | |||||||||||||||||||
| β2 | 1 | 2 | 1 | 8 | 4 | 22 | ||||||||||||||||
| β3 | 3 | 26 | 9 | |||||||||||||||||||
| β4 | 1 | 1 | 29 | 7 | ||||||||||||||||||
| β5 | 38 | |||||||||||||||||||||
| β6 | 10 | 3 | 3 | |||||||||||||||||||
| Tallyβofβ820βexamplesβwithβlengthβ5 |
| A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y | Seen | ||
| β1 | 8 | 81 | 10 | 151 | 4 | 8 | 5 | 3 | 100 | 4 | 15 | 364 | 55 | 8 | 4 | SGNDTβx | 15 | |||||
| β2 | 7 | 5 | 12 | 24 | 1 | 30 | 1 | 1 | 5 | 26 | 1 | 1 | 23 | 2 | 681 | Y | 15 | |||||
| β3 | 202 | 4 | 24 | 13 | 13 | 133 | 10 | 2 | 7 | 5 | 2 | 3 | 32 | 14 | 13 | 112 | 231 | YAGWβx | 17 | |||
| β4 | 6 | 172 | 2 | 7 | 409 | 3 | 16 | 205 | MWI | β8 | ||||||||||||
| β5 | 8 | 6 | 1 | 1 | 49 | 241 | 2 | 79 | 1 | 3 | 367 | 56 | 2 | 4 | SHNTx | 14 | ||||||
| CDR2 |
| Tallyβofβ31βexamplesβwithβCDR2βofβlengthβ19 |
| A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y | X | RFβx | |
| β1 | 11 | 1 | 1 | 1 | 15 | 1 | 1 | I | ||||||||||||||
| β2 | 1 | 28 | 2 | Rk | ||||||||||||||||||
| β3 | 9 | 1 | 18 | 1 | 1 | 1 | S | |||||||||||||||
| β4 | 1 | 2 | 6 | 21 | 1 | Kβx | ||||||||||||||||
| β5 | 1 | 1 | 1 | 22 | 1 | 1 | 1 | 1 | 1 | 1 | Aβx | |||||||||||
| β6 | 16 | 1 | 1 | 1 | 1 | 3 | 1 | 6 | 1 | yβx | ||||||||||||
| β7 | 1 | 9 | 7 | 3 | 1 | 10 | G | |||||||||||||||
| β8 | 23 | 1 | 1 | 5 | 1 | G | ||||||||||||||||
| β9 | 2 | 18 | 1 | 1 | 1 | 7 | 1 | T | ||||||||||||||
| 10 | 4 | 1 | 1 | 1 | 1 | 1 | 21 | 1 | T | |||||||||||||
| 11 | 1 | 3 | 1 | 26 | x | |||||||||||||||||
| 12 | 2 | 11 | 9 | 1 | 1 | 1 | 1 | 2 | 1 | 2 | Y | |||||||||||
| 13 | 1 | 1 | 29 | A | ||||||||||||||||||
| 14 | 29 | 1 | 1 | A | ||||||||||||||||||
| 15 | 25 | 3 | 1 | 1 | 1 | Sp | ||||||||||||||||
| 16 | 1 | 10 | 20 | V | ||||||||||||||||||
| 17 | 1 | 1 | 29 | K | ||||||||||||||||||
| 18 | 1 | 27 | 1 | 2 | G | |||||||||||||||||
| 19 | 1 | 30 | ||||||||||||||||||||
| Tallyβofβ579β(nβ>β50,βbold;βoverβ400,βunderscored)βexamplesβwithβlengthβ17 |
| A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y | X | ||
| β1 | 44 | 1 | 1 | 2 | 11 | 81 | 5 | 69 | 1 | 14 | 6 | 41 | 1 | 4 | 34 | 30 | 19 | 118 | 66 | 31 | VGIWβx | |
| β2 | 7 | 522 | 1 | 10 | 17 | 1 | 3 | 3 | 8 | 10 | I | |||||||||||
| β3 | 3 | 1 | 22 | 5 | 7 | 6 | 51 | 25 | 1 | 76 | 8 | 262 | 19 | 1 | 46 | 46 | SNIx | |||||
| β4 | 39 | 2 | 8 | 6 | 16 | 64 | 9 | 3 | 2 | 3 | 15 | 178 | 23 | 6 | 50 | 11 | 8 | 16 | 120 | PYGx | ||
| β5 | 3 | 194 | 6 | 1 | 70 | 6 | 44 | 6 | 4 | 1 | 55 | 4 | 8 | 133 | 9 | 7 | 1 | 27 | DSGNβx | |||
| β6 | 3 | 1 | 75 | 4 | 45 | 326 | 1 | 6 | 43 | 1 | 63 | 8 | 1 | 2 | GDSβx | |||||||
| β7 | 8 | 24 | 5 | 226 | 3 | 3 | 3 | 4 | 24 | 2 | 11 | 245 | 14 | 6 | 1 | SGβx | ||||||
| β8 | 4 | 2 | 57 | 37 | 5 | 22 | 4 | 18 | 18 | 2 | 2 | 161 | 1 | 4 | 11 | 106 | 90 | 2 | 1 | 32 | NSTβx | |
| β9 | 56 | 11 | 2 | 63 | 157 | 1 | 3 | 3 | 11 | 5 | 13 | 4 | 242 | 8 | TKIAβx | |||||||
| 10 | 1 | 14 | 2 | 13 | 30 | 23 | 6 | 29 | 2 | 3 | 110 | 3 | 52 | 20 | 10 | 1 | 1 | 259 | YNRβx | |||
| 11 | 2 | 7 | 5 | 1 | 4 | 3 | 5 | 551 | Yβ | |||||||||||||
| 12 | 405 | 1 | 2 | 18 | 1 | 6 | 2 | 3 | 1 | 89 | 8 | 44 | A | |||||||||
| 13 | 7 | 323 | 22 | 7 | 4 | 1 | 4 | 66 | 138 | 3 | 1 | 3 | DQPβx | |||||||||
| 14 | 2 | 5 | 6 | 3 | 123 | 4 | 2 | 7 | 421 | 1 | 2 | 2 | SKβx | |||||||||
| 15 | 1 | 1 | 188 | 2 | 1 | 22 | 3 | 1 | 357 | 2 | 1 | VF | ||||||||||
| 16 | 1 | 13 | 1 | 1 | 332 | 3 | 2 | 1 | 1 | 199 | 21 | 4 | KQβx | |||||||||
| 17 | 11 | 1 | 565 | 1 | 1 | G | ||||||||||||||||
| Tallyβofβ464β(overβ50,βbold;βoverβ400,βunderscored) |
| A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y | X | ||
| β1 | 5 | 13 | 184 | 8 | 1 | 7 | 1 | 2 | 15 | 6 | 3 | 26 | 65 | 9 | 14 | 105 | EYSLβx | |||||
| β2 | 6 | 429 | 3 | 4 | 1 | 2 | 19 | I | ||||||||||||||
| β3 | 1 | 13 | 13 | 4 | 10 | 5 | 154 | 1 | 12 | 1 | 250 | YNβx | ||||||||||
| β4 | 1 | 12 | 2 | 6 | 199 | 2 | 1 | 3 | 4 | 5 | 2 | 19 | 28 | 15 | 165 | YHβx | ||||||
| β5 | 5 | 20 | 1 | 1 | 18 | 4 | 9 | 1 | 22 | 365 | 16 | 1 | 1 | Sβx | ||||||||
| β6 | 13 | 8 | 439 | 1 | 1 | 1 | 1 | G | ||||||||||||||
| β7 | 20 | 2 | 14 | 2 | 4 | 2 | 26 | 1 | 12 | 357 | 20 | 1 | 2 | 1 | Sβx | |||||||
| β8 | 13 | 2 | 4 | 8 | 1 | 2 | 4 | 3 | 6 | 420 | 1 | T | ||||||||||
| β9 | 10 | 4 | 1 | 10 | 1 | 8 | 1 | 245 | 13 | 9 | 3 | 1 | 1 | 157 | NYβx | |||||||
| 10 | 6 | 2 | 2 | 2 | 1 | 7 | 444 | Y | ||||||||||||||
| 11 | 14 | 3 | 1 | 1 | 8 | 408 | 4 | 21 | 2 | 2 | N | |||||||||||
| 12 | 4 | 13 | 4 | 2 | 1 | 418 | 14 | 7 | 1 | P | ||||||||||||
| 13 | 2 | 2 | 6 | 452 | 1 | 1 | S | |||||||||||||||
| 14 | 2 | 2 | 441 | 1 | 18 | L | ||||||||||||||||
| 15 | 18 | 413 | 3 | 5 | 11 | 10 | 1 | 2 | 1 | K | ||||||||||||
| 16 | 1 | 1 | 31 | 2 | 2 | 3 | 419 | 5 | S | |||||||||||||
| TABLE 22P |
| Tally of VH types |
| 1-02 | 16 | 1-03 | 16 | 1-08 | 13 | 1-18 | 27 | 1-24 | 5 |
| 1-45 | 0 | 1-46 | 14 | 1-58 | 1 | 1-69 | 37 | 1-e | 16 |
| 1-f | 1 | 2-05 | 13 | 2-26 | 1 | 2-70 | 2 | 3-07 | 33 |
| 3-09 | 13 | 3-11 | 15 | 3-13 | 4 | 3-15 | 10 | 3-20 | 4 |
| 3-21 | 25 | 3-23 | 85 | 3-30 | 55 | 3303 | 59 | 3305 | 0 |
| 3-33 | 42 | 3-43 | 1 | 3-48 | 24 | 3-49 | 11 | 3-53 | 12 |
| 3-64 | 4 | 3-66 | 4 | 3-72 | 3 | 3-73 | 3 | 3-74 | 12 |
| 3-d | 0 | 4-04 | 29 | 4-28 | 3 | 4301 | 46 | 4302 | 7 |
| 4304 | 37 | 4-31 | 0 | 4-34 | 184 | 4-39 | 65 | 4-59 | 45 |
| 4-61 | 9 | 4-b | 11 | 5-51 | 55 | 5-a | 13 | 6-1 | 7 |
| 74.1 | 3 | ||||||||
| TABLEβ23P |
| OligonucleotidesβusedβtoβvariegateβCDR1βandβCDR2βofβhumanβHC |
| !(name)β5β²-....DNAβsequence....-3β² |
| !everythingβtoβrightβofβanβexclamationβpointβisβcommentary |
| ![RC]βmeansββreverseβcomplementββofβsequenceβshown |
| !βIfβlastβnon-commentβandβnon-blankβcharacterβisββ-β,βthenβcontinue |
| !onβnextβline. |
| !βIgnoreβcase,ββaββ=ββAβ,ββcββ=ββCβ,βetc. |
| !βIgnoreββIββandβblanks. |
| !β<number>βmeansβincorporateβtrinucleotideβmixtueβofβgivenβnumber. |
| !------------------------------------------------------------------------- |
| ! |
| !βCDR1 |
| (ON-R1V1vg)β5β²-βββββββct|TCC|GGA|ttc|act|ttc|tct|- |
| βββββββ<1>|tac|<1>|atg|<1>|-ββββββββββββββ!βCDR1βofβlengthβ5,βONβ=β55βbases |
| ββββββββββββββββββtgg|gtt|cgC|CAa|gct|ccT|GG-3β²β(SEQβIDβNO:β27) |
| !β<1>β=βADEFGHIKLMNPQRSTVWYβnoβC |
| ! |
| (ON-R1top)β5β²-cctactgtctβ|TCC|GGA|ttc|act|ttc|tct-3β²β(SEQβIDβNO:β28) |
| (ON-R1bot)[RC]β5β²-tgg|gtt|cgC|CAa|gct|ccT|GGβttgctcactc-3β²β(SEQβIDβNO:β29) |
| (ON-R1V2vg)β5β²-βββββββct|TCC|GGA|ttc|act|ttc|tct|- |
| βββββββ<6>|<7>|<7>|tac|tac|tgg|<7>|-ββββββ!βCDR1βofβlengthβ7,βONβ=β61βbases |
| ββββββββββββββββββtgg|gtt|cgC|CAa|gct|ccT|GG-3β²β(SEQβIDβNO:β30) |
| !β<6>β=βST,β1:1 |
| !β<7>β=β0.2025(SG)β+β0.035(ADEFHIKLMNPQRTVWY)βnoβC |
| (ON-R1V3vg)β5β²-ct|TCC|GGA|ttc|act|ttc|tct|- |
| ββββββ|atc|agc|ggt|ggt|tct|atc|tcc|<1>|<1>|<1>|tac|tac|tgg|<1>|-β!βCDR1,βLβ=β14 |
| ββββββββββββββββββtgg|gtt|cgC|CAa|gct|ccT|GG-3β²(SEQβIDβNO:β31)β!βONβ=β82βbases |
| !βCDR2 |
| (ON-R2V1vg)βββββββββββββββββββββββββββββββββββ5β²-ggt|ttg|gag|tgg|gtt|tct|- |
| ββββββββββ<2>|atc|<2>|<3>|tct|ggt|ggc|<1>|act|<1>|- |
| ββββββββββββββββββtat|gct|gac|tcc|gtt|aaa|gg-3β²β(SEQβIDβNO:β32)!βONβ=β68 |
| bases,βCDR2β=β17βAA |
| (ON-R2top)β5β²-ct|tgg|gtt|cgC|CAa|gct|ccT|GGt|aaa|ggt|ttg|gag|tgg|gtt|tct-3β² |
| βββββββββββ(SEQβIDβNO:β33) |
| (ON-R2bot)[RC]β5β-tat|gct|gac|tcc|gtt|aaa|ggt|- |
| βββββββββββcgc|ttc|act|atc|TCT|AGA|ttcctgtcac-3β²β(SEQβIDβNO:β34)!βXbaIβplusβ10 |
| basesβofβscab |
| (ON-R2V2vg)βββββββββββββββββββββββββββββββββββ5β²-ggt|ttg|gag|tgg|gtt|tct|- |
| ββββββββββ<1>|atc|<4>|<1>|<1>|ggt|<5>|<1>|<1>|<1>|- |
| ββββββββββββββββββtat|gct|gac|tcc|gtt|aaa|gg-3β²β(SEQβIDβNO:β35)!βONβ=β68 |
| bases,βCDR2β=β17βAA |
| !β<4>β=βDINSWY,βequimolarβ!β<5>β=βSGDN,βequimolar |
| (ON-R2V3vg)βββββββββββββββββββββββββββββββββββ5β²-ggt|ttg|gag|tgg|gtt|tct|- |
| ββββββββββ<1>|atc|<4>|<1>|<1>|ggt|<5>|<1>|<1>|- |
| ββββββββββββββββββtat|aac|cct|tcc|ctt|aag|gg-3β²β(SEQβIDβNO:β36)!βONβ=β65 |
| bases,βCDR2β=β16βAA |
| (ON-R2bo3)[RC]β5β²-tat|aac|cct|tcc|ctt|aag|ggt|- |
| βββββββββββcgc|ttc|act|atc|TCT|AGA|ttcctgtcac-3β²β(SEQβIDβNO:β37)!βXbaIβplusβ10 |
| basesβofβscab |
| (ON-R2V4vg)βββββββββββββββββββββββββββββββββββ5β²-ggt|ttg|gag|tgg|gtt|tct|- |
| ββββββββββ<1>|atc|<8>|agt|<1>|<1>|<1>|ggt|ggt|act|act|<1> |
| ββββββββββββββββββtat|gcc|gct|tcc|gtt|aag|gg-3β²β(SEQβIDβNO:β38)!βONβ=β74 |
| bases,βCDR2β=β19βAA |
| (ON-R2bo4)[RC]β5β²--tat|gcc|gct|tcc|gtt|aag|ggt|- |
| βββββββββββcgc|ttc|act|atc|TCT|AGA|ttcctgtcac-3β²β(SEQβIDβNO:β39)β!βXbaIβplus |
| 10βbasesβofβscab |
| TABLE 25P |
| Lengths of CDRs in 285 human kappa chains |
| 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | 11 | 12 | 13 | 14 | 15 | 16 | 17 | 18 | 19 | |
| CDR1 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 154 | 73 | 3 | 0 | 0 | 28 | 27 | 0 | 0 |
| CDR2 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 285 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
| CDR3 | 0 | 5 | 0 | 0 | 1 | 0 | 3 | 2 | 28 | 166 | 63 | 12 | 1 | 1 | 0 | 0 | 0 | 0 | 0 | 1 |
| TABLE 26P |
| Tally of kappa types: V and J |
| V genes: |
| O12 | 59 | O2 | 0 | O18 | 0 | O8 | 0 | A20 | 0 |
| A30 | 0 | L14 | 0 | L1 | 2 | L15 | 0 | L4 | 2 |
| L18 | 0 | L5 | 4 | L19 | 0 | L8 | 4 | L23 | 0 |
| L9 | 1 | L24 | 0 | L11 | 4 | L12 | 8 | O11 | 10 |
| O1 | 0 | A17 | 5 | A1 | 0 | A18 | 3 | A2 | 0 |
| A19 | 13 | A3 | 0 | A23 | 4 | A27 | 79 | A11 | 26 |
| L2 | 28 | L16 | 0 | L6 | 11 | L20 | 0 | L25 | 0 |
| B3 | 22 | B2 | 0 | A26 | 0 | A10 | 0 | A14 | 0 |
| JH# | 1 | 2 | 3 | 4 | 5 | |
| tally | 105 | 64 | 29 | 78 | 9 | |
| TABLE 27P |
| Names of Kappa chains analyzed |
| AB022651 | |
| AB022653 | |
| AB022654 | |
| AB022656 | |
| AF007572 | |
| AF021036 | |
| AF103499 | |
| AF103500 | |
| AF103527 | |
| AF103873 | |
| AF107244 | |
| AF107245 | |
| AF107246 | |
| AF107247 | |
| AF115361 | |
| AF165099 | |
| AF165101 | |
| AF165103 | |
| AF165108 | |
| AF165110 | |
| AF165111 | |
| AF184763 | |
| AF184767 | |
| hsa004955 | |
| hsa004956 | |
| hsa011133 | |
| HSA241367 | |
| HSA241375 | |
| HSA388639 | |
| HSA388640 | |
| HSA388641 | |
| HSA388642 | |
| HSA388643 | |
| HSA388644 | |
| HSA388645 | |
| HSA388646 | |
| HSA388647 | |
| HSA388648 | |
| HSA388650 | |
| HSA388651 | |
| HSA388652 | |
| HSA388653 | |
| HSA388654 | |
| HSA388655 | |
| HSA388656 | |
| HSA388657 | |
| hsew1vk | |
| hsew3vk | |
| hsew4vk | |
| hsigdpk13 | |
| hsigg1kl | |
| HSIGGVKA | |
| hsigk123 | |
| hsigk319 | |
| hsigklc14 | |
| hsigklc28 | |
| hsigklc5 | |
| hsigklg31 | |
| hsigklv01 | |
| hsigklv02 | |
| hsigklv03 | |
| hsigklv04 | |
| hsigklv05 | |
| hsigklv06 | |
| hsigklv07 | |
| hsigklv09 | |
| hsigklv10 | |
| hsigklv12 | |
| hsigklv13 | |
| hsigklv14 | |
| hsigklv15 | |
| hsigklv16 | |
| hsigklv17 | |
| hsigklv18 | |
| hsigklv19 | |
| hsigklv20 | |
| hsigklv21 | |
| hsigklv22 | |
| hsigklv23 | |
| hsigklv24 | |
| hsigklv25 | |
| hsigklv27 | |
| hsigklv28 | |
| hsigklv29 | |
| hsigklv31 | |
| hsigklv32 | |
| hsigklv33 | |
| hsigklv34 | |
| hsigklv35 | |
| hsigklv36 | |
| hsigklv37 | |
| hsigklv38 | |
| hsigklv39 | |
| hsigklv40 | |
| hsigklv41 | |
| hsigklv42 | |
| hsigklv43 | |
| hsigklv44 | |
| hsigklv45 | |
| hsigklv46 | |
| hsigklv49 | |
| hsigklv50 | |
| hsigklv51 | |
| hsigklv52 | |
| hsigklv53 | |
| hsigklv54a | |
| hsigklv56 | |
| hsigklv57 | |
| hsigklv58 | |
| hsigklv59 | |
| hsigklv60 | |
| hsigklv61 | |
| hsigklv62 | |
| hsigklv63 | |
| hsigklv65 | |
| hsigklv66 | |
| hsigklv68 | |
| hsigklv69 | |
| hsigklv71 | |
| hsigkvba | |
| hsigkvbb | |
| hsigkvbc | |
| hsigkvbd | |
| hsigkvbe | |
| hsigkvbf | |
| hsigkvc01 | |
| hsigkvc03 | |
| hsigkvc06 | |
| hsigkvc11 | |
| hsigkvc12 | |
| hsigkvc20 | |
| hsigkvc23 | |
| hsigkvc27 | |
| hsigkvc29 | |
| hsigrklc | |
| hsikcvjp1 | |
| hsikcvjp2 | |
| hsikcvjp3 | |
| hsikcvjp6 | |
| hsikcvjp7 | |
| hsld110vl | |
| hsld117vl | |
| hsld128vl | |
| hsld140vl | |
| hsld152vl | |
| hsld184vl | |
| hsld198vl | |
| hsld24vl | |
| hsmbcl1k1 | |
| hsmbcl1k2 | |
| hsmbcl2k2 | |
| hsmbcl5k4 | |
| hss10avl | |
| hss17bvl | |
| hss1a15vl | |
| HSU44792 | |
| HSU44794 | |
| HSU94422 | |
| hsz84852 | |
| hsz84853 | |
| humigk1dm | |
| humigk3am | |
| humigk3bm | |
| humigk3cm | |
| humigkacoa | |
| humigkacob | |
| humigkacoc | |
| humigkacoe | |
| humigkacof | |
| humigkb1aa | |
| humigkb1ab | |
| humigkb1ac | |
| humigkvra | |
| humigkvrb | |
| humigkvrc | |
| humigkvrd | |
| humigkvre | |
| humigkvrg | |
| humigkvrh | |
| humigkvri | |
| humigkx | |
| humigky1 | |
| humigky2 | |
| humigky4 | |
| humigky5 | |
| humigky6 | |
| humigl3ac | |
| humikc | |
| humikca | |
| humikcad | |
| humikcaf | |
| humikcag | |
| humikcah | |
| humikcai | |
| humikcaj | |
| humikcal | |
| humikcam | |
| humikcan | |
| humikcas | |
| humikcau | |
| humikcav | |
| humikcaw | |
| humikcax | |
| humikcay | |
| humikcaz | |
| humikcb | |
| humikcba | |
| humikcbb | |
| humikcbc | |
| humikcbd | |
| humikcbe | |
| humikcbf | |
| humikcbg | |
| humikcbh | |
| humikcbi | |
| humikcbj | |
| humikcbl | |
| humikcbm | |
| humikcbn | |
| humikcbo | |
| humikcbp | |
| humikcbq | |
| humikcbs | |
| humikcbt | |
| humikcbu | |
| humikcbv | |
| humikcbw | |
| humikcbx | |
| humikcbz | |
| humikcc | |
| humikcca | |
| humikccb | |
| humikccc | |
| humikccd | |
| humikcce | |
| humikccf | |
| humikccg | |
| humikcch | |
| humikcci | |
| humikccj | |
| humikcck | |
| humikcco | |
| humikccp | |
| humikccq | |
| humikccr | |
| humikccs | |
| humikcct | |
| humikccu | |
| humikccv | |
| humikccw | |
| humikcd | |
| humikcf | |
| humikcg | |
| humikch | |
| humikci | |
| humikck | |
| humikcm | |
| humikcn | |
| humikco | |
| humikcp | |
| humikcq | |
| humikcr | |
| humikcs | |
| humikct | |
| humikcu | |
| humikcv | |
| humikcva | |
| humikcvb | |
| humikcvc | |
| humikcvd | |
| humikcve | |
| humikcvf | |
| humikcvg | |
| humikcvh | |
| humikcvi | |
| humikcvj | |
| humikcw | |
| humikcx | |
| humikcy | |
| humikcz | |
| S46248 | |
| S82746 | |
| S82747 | |
| SU96396 | |
| SU96397 | |
| TABLE 28P |
| AA types seen in 154 kappa sequences having CDR1 of length 11 Tally |
| A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y | |
| 1 | 11 | 143 | R | ||||||||||||||||||
| 2 | 148 | 1 | 2 | 2 | 1 | A | |||||||||||||||
| 3 | 152 | 2 | S | ||||||||||||||||||
| 4 | 1 | 3 | 3 | 147 | Q | ||||||||||||||||
| 5 | 12 | 1 | 27 | 7 | 3 | 99 | 4 | 1 | S | ||||||||||||
| 6 | 1 | 81 | 1 | 71 | V | ||||||||||||||||
| 7 | 2 | 4 | 18 | 5 | 1 | 2 | 9 | 12 | 97 | 3 | 1 | S | |||||||||
| 8 | 3 | 5 | 1 | 2 | 1 | 31 | 1 | 10 | 87 | 12 | 1 | S | |||||||||
| 9 | 2 | 7 | 10 | 1 | 6 | 29 | 1 | 8 | 13 | 77 | Y | ||||||||||
| 10 | 2 | 150 | 1 | 1 | L | ||||||||||||||||
| 11 | 96 | 4 | 2 | 46 | 2 | 1 | 3 | A | |||||||||||||
| TABLEβ30P |
| SyntheticβKappaβlightβchainβgene |
| ! |
| ! |
| !βA27::JH1βwithβallβCDRsβreplacedβbyβstuffers. |
| !βEachβstufferβcontainsβatβleastβoneβstopβcodonβandβa |
| !βrestrictionβsiteβthatβwillβbeβuniqueβwithinβtheβdiversityβvector. |
| ! |
| βββββ1βGAGGACCATtβGGGCCCCβββββββββββββββββctccgagact |
| !ββββββScab......βEcoO109I |
| !βββββββββββββββββApaI. |
| !----------------------------------- |
| ! |
| ββββ28βββββββββCTCGAGββββcgca |
| !ββββββββββββββXhoI.. |
| !----------------------------------- |
| ! |
| ββββ38βacgcaatTAAβTGTgagttagβctcactcattβaggcaccccaβggcTTTACAcβtttatgcttc |
| !βββββββββββββ..-35..βββββββββPlacββββββββββββββββββββ..β10. |
| !----------------------------------- |
| ! |
| ββββ98βcggctcgtatβgttgtgtggaβattgtgagcgβgataacaattβtc |
| !----------------------------------- |
| ! |
| βββ140βacacaggaβaacagctatgac |
| !----------------------------------- |
| ! |
| βββ160βcatgattaβcgCCAAGCTTβTGGagcctttβtttttggagaβttttcaacβ(SEQβIDβNO:β54) |
| !βββββββββββββββββPflMI....... |
| !ββββββββββββββββββββHind3. |
| !----------------------------------- |
| ! |
| !ββββββββM13βIIIβsignalβsequenceβ(AAβseq)---------------------------> |
| !ββββββββββ1βββ2βββ3βββ4βββ5βββ6βββ7βββ8βββ9ββ10ββ11ββ12ββ13ββ14ββ15 |
| !ββββββββββMβββKβββKβββLβββLβββFβββAβββIβββPβββLβββVβββVβββPβββFβββY |
| βββ206ββββgtgβaagβaagβctcβctaβtttβgctβatcβccgβcttβgtcβgttβccgβtttβtac |
| !---------------------------------- |
| ! |
| !ββββββββ--Signal-->ββFR1-------------------------------------------> |
| !βββββββββ16ββ17ββ18ββ19ββ20ββ21ββ22ββ23ββ24ββ25ββ26ββ27ββ28ββ29ββ30 |
| !ββββββββββSβββHβββSβββAβββQβββSβββVβββLβββTβββQβββSβββPβββGβββTβββL |
| βββ251βββ|agc|cat|aGT|GCA|Caa|tcc|gtc|ctt|act|caa|tct|cct|ggc|act|ctt| |
| !ββββββββββββββββββApaLI... |
| !---------------------------------- |
| ! |
| !ββββββββ-----βFR1β------------------------------------->|βCDR1------> |
| !βββββββββ31ββ32ββ33ββ34ββ35ββ36ββ37ββ38ββ39ββ40ββ41ββ42ββ43ββ44ββ45 |
| !ββββββββββSβββLβββSβββPβββGβββEβββRβββAβββTβββLβββSβββCβββRβββAβββSββ(SEQβIDβNO:β55) |
| !ββββββββ|tcG|CTA|AGC|CCG|GGt|gaa|cgt|gct|acC|TTA|AGt|tgc|cgt|gct|tcc|(SEQβIDβNO:β54; |
| !βββββββββββEspI.....βββββββββββββββββββββββAflII... |
| !βββββββββββββββββββXmaI.... |
| ! |
| !---------------------------------- |
| !βForβCDR1: |
| !β<1>βADEFGHIKLMNPQRSTVWYββequimolar |
| !β<2>βS(0.2)βADEFGHIKLMNPQRTVWYβ(0.044βeach) |
| !β<3>βY(0.2)βADEFGHIKLMNPQRSTVWβ(0.044βeach) |
| !βInβaβpreferredβembodiment,βweβomitβcodonβ52βinβvgDNAβforβCDR1. |
| ! |
| !ββββββββββ-------βCDR1β--------------------->|---βFR2β---------------> |
| !ββββββββββββββ<1>βββββ<2>β<2>βxxxβ<3> |
| !ββββββββββ46ββ47ββ48ββ49ββ50ββ51ββ52ββ53ββ54ββ55ββ56ββ57ββ58ββ59ββ60 |
| !βββββββββββQβββSβββVβββSβββSβββSβββYβββLβββAβββWβββYβββQβββQβββKβββP |
| ββββββββββ|cag|tct|gtt|tcc|tct|tct|tat|ctt|gct|tgg|tat|caa|cag|aaA|CCT| |
| !ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββSexAI... |
| !----------------------------------- |
| !βForβCDR2: |
| !β<1>βADEFGHIKLMNPQRSTVWYββequimolar |
| !β<2>βS(0.2)βADEFGHIKLMNPQRTVWYβ(0.044βeach) |
| !β<4>βA(0.2)βDEFGHIKLMNPQRSTVWYβ(0.044βeach) |
| !βββββββββ-----βFR2β------------------------->|-------βCDR2β----------> |
| !ββββββββββββββββββββββββββββββββββββββββββββββ<1>βββββββββ<2>βββββ<4> |
| !ββββββββββ61ββ62ββ63ββ64ββ65ββ66ββ67ββ68ββ69ββ70ββ71ββ72ββ73ββ74ββ75 |
| !βββββββββββGβββQβββAβββPβββRβββLβββLβββIβββYβββGβββAβββSβββSβββRβββA |
| ββββββββββ|GGT|caG|GCG|CCg|cgt|tta|ctt|att|tat|ggt|gct|tct|tcc|cgc|gct| |
| !ββββSexAI....βββKasI....β(CDR1βinstalledβasβAFlII-(SexAIβorβKasI)βcassette.) |
| ! |
| !----------------------------------- |
| ! |
| !ββββββCDR2-->|---βFR3β-----------------------------------------------> |
| !ββββββββββ<1> |
| !ββββββββββ76ββ77ββ78ββ79ββ80ββ81ββ82ββ83ββ84ββ85ββ86ββ87ββ88ββ89ββ90 |
| !βββββββββββTβββGβββIβββPβββDβββRβββFβββSβββGβββSβββGβββSβββGβββTβββD |
| ββββββββββ|act|gGG|ATC|CCG|GAC|CGt|ttc|tct|ggc|tct|ggt|tca|ggt|act|gac| |
| !βββββββββββββββBamHI... |
| !ββββββββββββββββββββββRsrII..... |
| !ββ(CDR2βinstalledβasβ(SexAIβorβKasI)βtoβ(BamHIβorβRsrII)βcassette.) |
| !----------------------------------- |
| ! |
| !βββββββββ------βFR3β-------------------------------------------------> |
| !ββββββββββ91ββ92ββ93ββ94ββ95ββ96ββ97ββ98ββ99β100β101β102β103β104β105 |
| !βββββββββββFβββTβββLβββTβββIβββSβββRβββLβββEβββPβββEβββDβββFβββAβββV |
| βββ477ββββ|ttt|acc|ctt|act|att|TCT|AGA|ttg|gaa|cct|gaa|gac|ttc|gct|gtt| |
| !ββββββββββββββββββββββββββββββXbaI... |
| ! |
| !----------------------------------- |
| ! |
| !βββββββββ----------->|----CDR3-------------------------->|-----FR4---> |
| !ββββββββββββββββββββββββββββββ<3>β<1>β<1>β<1>βββββ<1> |
| !βββββββββ106β107β108β109β110β111β112β113β114β115β116β117β118β119β120 |
| !βββββββββββYβββYβββCβββQβββQβββYβββGβββSβββSβββPβββEβββTβββFβββGβββQ |
| ββββββββββ|tat|tat|tgC|CAa|cag|taT|GGt|tct|tct|cct|gaa|act|ttc|ggt|caa| |
| !ββββββββββββββββββββBstXI........... |
| ! |
| !----------------------------------- |
| ! |
| !βββββββββ-----FR4------------------->|ββββββ<-------βCkappaβ------------ |
| !βββββββββ121β122β123β124β125β126β127ββββββββ128β129β130β131β132β133β134 |
| !βββββββββββGβββTβββKβββVβββEβββIβββKβββββββββRβββTβββVβββAβββAβββPβββS |
| βββ510ββββ|ggt|aCC|AAG|Gtt|gaa|atc|aag|βββββ|CGT|ACG|gtt|gcc|gct|cct|agt| |
| !βββββββββββββββStyI....βββββββββββββββββββββBsiWI.. |
| ! |
| !ββ(CDR3βinstalledβasβXbaIβtoβ(StyIβorβBsiWI)βcassette.) |
| ! |
| !βββββββββ135β136β137β138β139β140β141β142β143β144β145β146β147β148β149 |
| !ββββββββββVβββFβββIβββFβββPβββPβββSβββDβββEβββQβββLβββKβββSβββGβββT |
| βββ552βββ|gtg|ttt|atc|ttt|cct|cct|tct|gac|gaa|CAA|TTG|aag|tca|ggt|act| |
| !βββββββββββββββββββββββββββββββββββββββββββββMfeI... |
| ! |
| !βββββββββ150β151β152β153β154β155β156β157β158β159β160β161β162β163β164 |
| !ββββββββββAβββSβββVβββVβββCβββLβββLβββNβββNβββFβββYβββPβββRβββEβββA |
| βββ597βββ|gct|tct|gtc|gta|tgt|ttg|ctc|aac|aat|ttc|tac|cCT|CGT|Gaa|gct| |
| !ββββββββββββββββββββββββββββββββββββββββββββββββββββββBssSI... |
| ! |
| !βββββββββ165β166β167β168β169β170β171β172β173β174β175β176β177β178β179 |
| !ββββββββββKβββVβββQβββWβββKβββVβββDβββNβββAβββLβββQβββSβββGβββNβββS |
| βββ642βββ|aaa|gtt|cag|tgg|aaa|gtc|gat|aAC|GCG|Ttg|cag|tcg|ggt|aac|agt| |
| !ββββββββββββββββββββββββββββββββββββββMluI.... |
| ! |
| !βββββββββ180β181β182β183β184β185β186β187β188β189β190β191β192β193β194 |
| !ββββββββββQβββEβββSβββVβββTβββEβββQβββDβββSβββKβββDβββSβββTβββYβββS |
| βββ687βββ|caa|gaa|tcc|gtc|act|gaa|cag|gat|agt|aag|gac|tct|acc|tac|tct| |
| ! |
| !βββββββββ195β196β197β198β199β200β201β202β203β204β205β206β207β208β209 |
| !ββββββββββLβββSβββSβββTβββLβββTβββLβββSβββKβββAβββDβββYβββEβββKβββH |
| βββ732βββ|ttg|tcc|tct|act|ctt|act|tta|tca|aag|gct|gat|tat|gag|aag|cat| |
| ! |
| !βββββββββ210β211β212β213β214β215β216β217β218β219β220β221β222β223β224 |
| !ββββββββββKβββVβββYβββAβββCβββEβββVβββTβββHβββQβββGβββLβββSβββSβββP |
| βββ777βββ|aag|gtc|tat|GCt|TGC|gaa|gtt|acc|cac|cag|ggt|ctG|AGC|TCc|cct| |
| !βββββββββββββββββββββββββββββββββββββββββββββββββββββββSacI.... |
| ! |
| !βββββββββ225β226β227β228β229β230β231β232β233β234 |
| !ββββββββββVβββTβββKβββSβββFβββNβββRβββGβββEβββCβββ.βββ.ββββββββββ(SEQβIDβNO:β332) |
| βββ822βββ|gtt|acc|aaa|agt|ttc|aaC|CGT|GGt|gaa|tgc|taa|tagβGGCGCGCC |
| !βββββββββββββββββββββββββββββββDsaI....ββββββββββββββββββAscI.... |
| !ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββBssHII |
| ! |
| βββ866βββacgcatctctaaβGCGGCCGCβaacaggaggagββββββββββββββββββββββββ(SEQβIDβNO:β333) |
| !βββββββββββββββββββββNotI.... |
| !ββββββββββββββββββββββEagI.. |
| TABLE 31P |
| Tally of 285 CDR2s of length 7 in human kappa |
| Tally | A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y |
| 1 | 51 | 62 | 7 | 95 | 1 | 11 | 15 | 2 | 1 | 2 | 6 | 6 | 3 | 22 | 1 | x | |||||
| 2 | 225 | 18 | 5 | 5 | 2 | 1 | 1 | 3 | 16 | 9 | A | ||||||||||
| 3 | 2 | 9 | 1 | 2 | 267 | 2 | 1 | 1 | S | ||||||||||||
| 4 | 2 | 1 | 5 | 4 | 9 | 1 | 77 | 4 | 93 | 80 | 2 | 7 | Sx | ||||||||
| 5 | 1 | 2 | 80 | 200 | 2 | R | |||||||||||||||
| 6 | 162 | 7 | 36 | 4 | 4 | 1 | 3 | 3 | 63 | 2 | Ax | ||||||||||
| 7 | 5 | 1 | 3 | 1 | 1 | 2 | 2 | 1 | 125 | 144 | x | ||||||||||
| TABLE 32P |
| Tally of 166 CDR3s of length 9 from human kappa. |
| Tally | A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y |
| 1 | 4 | 8 | 21 | 131 | 1 | 1 | Q | ||||||||||||||
| 2 | 1 | 9 | 2 | 1 | 153 | Q | |||||||||||||||
| 3 | 14 | 4 | 4 | 3 | 6 | 4 | 1 | 1 | 3 | 21 | 16 | 3 | 4 | 82 | Yx | ||||||
| 4 | 1 | 9 | 1 | 2 | 37 | 4 | 2 | 2 | 15 | 1 | 33 | 2 | 20 | 7 | 1 | 29 | x | ||||
| 5 | 2 | 2 | 6 | 3 | 4 | 5 | 3 | 28 | 17 | 7 | 65 | 19 | 1 | 1 | 3 | x | |||||
| 6 | 7 | 1 | 11 | 2 | 3 | 8 | 1 | 4 | 3 | 41 | 33 | 5 | 28 | 19 | x | ||||||
| 7 | 1 | 2 | 6 | 146 | 2 | 2 | 5 | 2 | P | ||||||||||||
| 8 | 2 | 4 | 1 | 2 | 21 | 7 | 3 | 5 | 1 | 38 | 7 | 4 | 25 | 1 | 3 | 1 | 16 | 25 | x | ||
| 9 | 3 | 2 | 1 | 1 | 2 | 157 | T | ||||||||||||||
| TABLE 33P |
| lengths of CDRs in 93 human lambda chains |
| 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | 10 | 11 | 12 | 13 | 14 | 15 | 16 | 17 | 18+ | |
| CDR1 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 23 | 7 | 15 | 46 | 0 | 0 | 0 | 2 |
| CDR2 | 5 | 0 | 0 | 1 | 0 | 0 | 0 | 80 | 2 | 0 | 0 | 1 | 4 | 0 | 0 | 0 | 0 | 0 | 1 |
| CDR3 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 0 | 1 | 16 | 28 | 27 | 6 | 1 | 0 | 4 | 6 | 4 | 0 |
| TABLE 34P |
| Tally of 46 CDR1s of length 14 from human lambda chains |
| Tally | A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y |
| 1 | 2 | 2 | 1 | 41 | T | ||||||||||||||||
| 2 | 43 | 3 | G | ||||||||||||||||||
| 3 | 2 | 1 | 1 | 6 | 36 | TGx | |||||||||||||||
| 4 | 1 | 45 | S | ||||||||||||||||||
| 5 | 5 | 1 | 40 | S | |||||||||||||||||
| 6 | 39 | 1 | 4 | 2 | DNx | ||||||||||||||||
| 7 | 8 | 1 | 37 | V | |||||||||||||||||
| 8 | 1 | 42 | 2 | 1 | G | ||||||||||||||||
| 9 | 4 | 1 | 35 | 1 | 2 | 3 | TGx | ||||||||||||||
| 10 | 1 | 1 | 3 | 1 | 2 | 38 | Yx | ||||||||||||||
| 11 | 4 | 1 | 35 | 6 | DNx | ||||||||||||||||
| 12 | 3 | 1 | 2 | 1 | 1 | 2 | 36 | Yx | |||||||||||||
| 13 | 1 | 2 | 43 | V | |||||||||||||||||
| 14 | 1 | 4 | 41 | S | |||||||||||||||||
| TABLEβ35P |
| Synthticβhumanβlambda-chainβgene |
| !βLambdaβ14-7(A)β2a2::JH2::Clambda |
| !βAAβsequenceβtested |
| ! |
| βββββ1βGAGGACCATtβGGGCCCCβttactccgtgac |
| !ββββββScab......βEcoO109I |
| !βββββββββββββββββApaI.. |
| !----------------------------------------------- |
| ! |
| !ββββββββββββββ-----------FR1--------------------------------------------> |
| !βββββββββββββββ1βββ2βββ3βββ4βββ5βββ6βββ7βββ8βββ9ββ10ββ11ββ12ββ13ββ14ββ15 |
| !βββββββSβββAβββQβββSβββAβββLβββTβββQβββPβββAβββSβββVβββSβββGβββSβββPβββG |
| ββββ30βaGT|GCA|Caa|tcc|gct|ctc|act|cag|cct|GCT|AGC|gtt|tcc|gGG|TcA|CCt|GGT| |
| !βββββββApaLI...βββββββββββββββββββββββββββNheI...ββββββββββBstEII... |
| !ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββSexAI.... |
| !----------------------------------------------- |
| ! |
| !βForβCDR1, |
| !β<1>β=β0.27βT,β0.27βG,β0.027β{ADEFHIKLMNPQRSVWY}ββnoβC |
| !β<2>β=β0.27βD,β0.27βN,β0.027β{AEFGHIKLMPQRSTVWY}ββnoβC |
| !β<3>β=β0.36βY,β0.0355{ADEFGHIKLMNPQRSTVW}βββββββββnoβC |
| !ββββββββββββββββββββββββββββββββββββTβββGββ<1>ββSβββSββ<2>ββVβββG |
| !ββββββ------FR1------------------>β|-----CDR1--------------------- |
| !βββββββ16ββ17ββ18ββ19ββ20ββ21ββ22ββ23ββ24ββ25ββ26ββ27ββ28ββ29ββ30 |
| !ββββββββQβββSβββIβββTβββIβββSβββCβββTβββGβββTβββSβββSβββDβββVβββG |
| βββββββ|caa|agt|atc|act|att|tct|TGT|ACA|ggt|act|tct|tct|gat|gtt|ggc| |
| !βββββββββββββββββββββββββββββββBsrGI.. |
| ! |
| !βaβsecondβvgβschemeβforβCDR1βgivesβsegmentsβofβlengthβ11: |
| !βG23<2><4>L<4><4><4><3><4><4>βwhere |
| !β<4>β=βequimolarβ{ADEFGHIKLMNPQRSTVWY}βnoβC |
| !------------------------------------------------------- |
| ! |
| !βββββββ<1>β<3>β<2>β<3>ββVβββSβ=βvgβSchemeβ#1,βlengthβ=β14 |
| !βββββββ-----CDR1------------->|--------FR2------------------------- |
| !βββββββ31ββ32ββ33ββ34ββ35ββ36ββ37ββ38ββ39ββ40ββ41ββ42ββ43ββ44ββ45 |
| !ββββββββGβββYβββNβββYβββVβββSβββWβββYβββQβββQβββHβββPβββGβββKβββA |
| βββββββ|ggt|tac|aat|tac|gtt|tct|tgg|tat|caa|caa|caC|CCG|GGc|aaG|GCG| |
| !βββββββββββββββββββββββββββββββββββββββββββββββββXmaI....ββββKasI..... |
| !βββββββββββββββββββββββββββββββββββββββββββββββββAvaI.... |
| !------------------------------------------------------------------- |
| ! |
| !βββββββββββββββββββββββββββββββ<4>β<4>β<4>β<2>ββRβββPβββS |
| !βββββββ--FR2----------------->β|------CDR2--------------->|-----FR3-- |
| !βββββββ46ββ47ββ48ββ49ββ50ββ51ββ52ββ53ββ54ββ55ββ56ββ57ββ58ββ59ββ60 |
| !ββββββββPβββKβββLβββMβββIβββYβββEβββVβββSβββNβββRβββPβββSβββGβββV |
| βββββββ|CCg|aag|ttg|atg|atc|tac|gaa|gtt|tcc|aat|cgt|cct|tct|ggt|gtt| |
| !βKasI.... |
| !------------------------------------------------------------------- |
| ! |
| !ββββββ-------FR3---------------------------------------------------- |
| !βββββββ61ββ62ββ63ββ64ββ65ββ66ββ67ββ68ββ69ββ70ββ71ββ72ββ73ββ74ββ75 |
| !ββββββββSβββNβββRβββFβββSβββGβββSβββKβββSβββGβββNβββTβββAβββSβββL |
| βββββββ|agc|aat|cgt|ttc|TCC|GGA|tct|aaa|tcc|ggt|aat|acc|gcA|AGC|TTa| |
| !βββββββββββββββββββββββBspEI..ββββββββββ|ββββββββββββββββHindIII. |
| !ββββββββββββββββββββββββββββBsaBI........(blunt) |
| !------------------------------------------------------------------- |
| ! |
| !ββββββ-------FR3-------------------------------------------------->| |
| !βββββββ76ββ77ββ78ββ79ββ80ββ81ββ82ββ83ββ84ββ85ββ86ββ87ββ88ββ89ββ90 |
| !ββββββββTβββIβββSβββGβββLβββQβββAβββEβββDβββEβββAβββDβββYβββYβββC |
| βββββββ|act|atc|tct|ggt|CTG|CAG|gct|gaa|gac|gag|gct|gac|tac|tat|tgt| |
| !βββββββββββββββββββββββPstI... |
| ! |
| !------------------------------------------------------------------- |
| ! |
| !β<5>β=β0.36βS,β0.0355{ADEFGHIKLMNPQRTVWY}ββnoβC |
| ! |
| !βββββββ<4>β<5>β<4>β<2>β<4>ββSββ<4>β<4>β<4>β<4>ββV |
| !ββββββ-----CDR3---------------------------------->|---FR4--------- |
| !βββββββ91ββ92ββ93ββ94ββ95ββ96ββ97ββ98ββ99β100β101β102β103β104β105 |
| !ββββββββSβββSβββYβββTβββSβββSβββSβββTβββLβββVβββVβββFβββGβββGβββG |
| βββββββ|tct|tct|tac|act|tct|tct|agt|acc|ctt|gtt|gtc|ttc|ggc|ggt|GGT| |
| !βββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββKpnI... |
| ! |
| !------------------------------------------------------------------------ |
| ! |
| !ββββββ-------FR4--------------> |
| !βββββββ106β107β108β109β110β111β112β113β114β115β116β117β118β119β120 |
| !ββββββββTβββKβββLβββTβββVβββLβββGβββQβββPβββKβββAβββAβββPβββSβββV |
| βββ279β|ACC|aaa|ctt|act|gtc|ctc|gGT|CAA|CCT|aAG|Gct|gct|cct|tcc|gtt| |
| !βββKpnI...ββββββββββββββββββββββHindII.. |
| !βββββββββββββββββββββββββββββββββββββββBsu36I... |
| ! |
| !βββββββ121β122β123β124β125β126β127β128β129β130β131β132β133β134β135 |
| !ββββββββTβββLβββFβββPβββPβββSβββSβββEβββEβββLβββQβββAβββNβββKβββA |
| βββ324β|act|ctc|ttc|cct|cct|agt|tct|GAA|GAG|Ctt|caa|gct|aac|aag|gct| |
| !βββββββββββββββββββββββββββββββββββSapI..... |
| ! |
| !βββββββ136β137β138β139β140β141β142β143β144β145β146β147β148β149β150 |
| !ββββββββTβββLβββVβββCβββLβββIβββSβββDβββFβββYβββPβββGβββAβββVβββT |
| βββ369β|act|ctt|gtt|tgc|tTG|ATC|Agt|gac|ttt|tat|cct|ggt|gct|gtt|act| |
| !ββββββββββββββββββββββββBClI.... |
| ! |
| !βββββββ151β152β153β154β155β156β157β158β159β160β161β162β163β164β165 |
| !ββββββββVβββAβββWβββKβββAβββDβββSβββSβββPβββVβββKβββAβββGβββVβββE |
| βββ414β|gtc|gct|tgg|aaa|gcc|gat|tct|tct|cct|gtt|aaa|gct|ggt|gtt|GAG| |
| !βββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββBsmBI... |
| ! |
| !βββββββ166β167β168β169β170β171β172β173β174β175β176β177β178β179β180 |
| !ββββββββTβββTβββTβββPβββSβββKβββQβββSβββNβββNβββKβββYβββAβββAβββS |
| βββ459β|ACG|acc|act|cct|tct|aaa|caa|tct|aac|aat|aag|tac|gct|gcG|AGC| |
| !βBsmBI....βββββββββββββββββββββββββββββββββββββββββββββββββββSacI.... |
| ! |
| !βββββββ181β182β183β184β185β186β187β188β189β190β191β192β193β194β195 |
| !ββββββββSβββYβββLβββSβββLβββTβββPβββEβββQβββWβββKβββSβββHβββKβββS |
| βββ504β|TCt|tat|ctt|tct|ctc|acc|cct|gaa|caa|tgg|aag|tct|cat|aaa|tcc| |
| !ββSacI... |
| ! |
| !βββββββ196β197β198β199β200β201β202β203β204β205β206β207β208β209β210 |
| !ββββββββYβββSβββCβββQβββVβββTβββHβββEβββGβββSβββTβββVβββEβββKβββT |
| βββ549β|tat|tcc|tgt|caa|gtt|acT|CAT|GAa|ggt|tct|acc|gtt|gaa|aag|act| |
| !βββββββββββββββββββββββββββββBspHI... |
| ! |
| !βββββββ211β212β213β214β215β216β217β218β219 |
| !ββββββββVβββAβββPβββTβββEβββCβββSβββ.βββ.βββββββββββββββββββββββ(SEQβIDβNO:β57) |
| βββ594β|gtt|gcc|cct|act|gag|tgt|tct|tag|tga|GGCGCGCC |
| !βββββββββββββββββββββββββββββββββββββββββββAscI.... |
| !ββββββββββββββββββββββββββββββββββββββββββββBssHII |
| ! |
| βββ629ββaacgatgttcβaagβGCGGCCGCβaacaggaggagββββββββββββββββββββββ(SEQβIDβNO:β56) |
| !ββββββββββββββββββββββNotI....βScab....... |
| TABLE 36P |
| Tally of 23 CDR1s of length 11 from human lambda chains |
| Tally | A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y |
| 1 | 1 | 6 | 10 | 6 | x | ||||||||||||||||
| 2 | 1 | 1 | 21 | G | |||||||||||||||||
| 3 | 15 | 1 | 7 | DNx | |||||||||||||||||
| 4 | 2 | 1 | 1 | 3 | 7 | 1 | 8 | X | |||||||||||||
| 5 | 7 | 16 | L | ||||||||||||||||||
| 6 | 11 | 1 | 2 | 8 | 1 | X | |||||||||||||||
| 7 | 1 | 1 | 1 | 2 | 2 | 1 | 14 | 1 | X | ||||||||||||
| 8 | 1 | 10 | 1 | 1 | 1 | 2 | 7 | X | |||||||||||||
| 9 | 2 | 6 | 15 | Yx | |||||||||||||||||
| 10 | 11 | 1 | 11 | X | |||||||||||||||||
| 11 | 3 | 7 | 9 | 2 | 2 | X | |||||||||||||||
| TABLE 37P |
| Tally of 80 CDR2s of length 7 from human lambda chains |
| Tally | A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y |
| 1 | 1 | 14 | 32 | 1 | 13 | 3 | 1 | 4 | 5 | 1 | 2 | 3 | X | ||||||||
| 2 | 18 | 2 | 8 | 16 | 2 | 34 | X | ||||||||||||||
| 3 | 1 | 2 | 1 | 31 | 39 | 4 | 2 | X | |||||||||||||
| 4 | 6 | 4 | 1 | 14 | 1 | 41 | 8 | 1 | 1 | 2 | 1 | DNx | |||||||||
| 5 | 1 | 1 | 78 | R | |||||||||||||||||
| 6 | 1 | 77 | 2 | P | |||||||||||||||||
| 7 | 2 | 78 | S | ||||||||||||||||||
| TABLE 38P |
| Tally of 27 CDR3s of length 11 from human lambda chains |
| Tally | A | C | D | E | F | G | H | I | K | L | M | N | P | Q | R | S | T | V | W | Y |
| 1 | 4 | 5 | 6 | 5 | 4 | 3 | X | ||||||||||||||
| 2 | 3 | 1 | 2 | 14 | 5 | 2 | Sx | ||||||||||||||
| 3 | 1 | 7 | 13 | 6 | X | ||||||||||||||||
| 4 | 19 | 2 | 1 | 1 | 4 | DNx | |||||||||||||||
| 5 | 1 | 4 | 2 | 2 | 2 | 1 | 13 | 2 | X | ||||||||||||
| 6 | 1 | 3 | 1 | 21 | 1 | S | |||||||||||||||
| 7 | 1 | 7 | 12 | 1 | 4 | 2 | X | ||||||||||||||
| 8 | 2 | 1 | 10 | 1 | 6 | 6 | 1 | X | |||||||||||||
| 9 | 3 | 1 | 8 | 10 | 3 | 1 | 1 | X | |||||||||||||
| 10 | 1 | 4 | 1 | 1 | 1 | 3 | 1 | 1 | 6 | 5 | 3 | X | |||||||||
| 11 | 2 | 25 | V | ||||||||||||||||||
| TABLEβ40P |
| SyntheticβKappaβlightβchainβgeneβwithβstuffers |
| ! |
| !βA27::JH1βwithβallβCDRsβreplacedβbyβstuffers. |
| !βEachβstufferβcontainsβatβleastβoneβstopβcodonβandβa |
| !βrestrictionβsiteβthatβwillβbeβuniqueβwithinβtheβdiversityβvector. |
| ! |
| ββββ1βGAGGACCATtβGGGCCCCβββββββββββββββββctccgagact |
| !βββββScab......βEcoO109I |
| !ββββββββββββββββApaI. |
| !---------------------------------- |
| ! |
| βββ28βββββββββCTCGAGββββcgca |
| !βββββββββββββXhoI.. |
| !---------------------------------- |
| βββ38βacgcaatTAAβTGTgagttagβctcactcattβaggcaccccaβggcTTTACAcβtttatgcttc |
| !ββββββββββββ..β35..βββββββββPlacββββββββββββββββββββ..β10. |
| !---------------------------------- |
| ! |
| βββ98βcggctcgtatβgttgtgtggaβattgtgagcgβgataacaattβtc |
| !---------------------------------- |
| ! |
| ββ140βacacaggaβaacagctatgac |
| !---------------------------------- |
| ! |
| ββ160βcatgattaβcgCCAAGCTTβTGGagcctttβtttttggagaβttttcaac |
| !ββββββββββββββββPflMI....... |
| !ββββββββββββββββββHind3. |
| !---------------------------------- |
| ! |
| !ββββββββM13βIIIβsignalβsequenceβ(AAβseq)---------------------------> |
| !ββββββββββ1βββ2βββ3βββ4βββ5βββ6βββ7βββ8βββ9ββ10ββ11ββ12ββ13ββ14ββ15 |
| !ββββββββββMβββKβββKβββLβββLβββFβββAβββIβββPβββLβββVβββVβββPβββFβββY |
| ββ206βββββgtgβaagβaagβctcβctaβtttβgctβatcβccgβcttβgtcβgttβccgβtttβtac |
| !---------------------------------- |
| ! |
| !ββββββββ--Signal-->ββFR1-------------------------------------------> |
| !βββββββββ16ββ17ββ18ββ19ββ20ββ21ββ22ββ23ββ24ββ25ββ26ββ27ββ28ββ29ββ30 |
| !ββββββββββSβββHβββSβββAβββQβββSβββVβββLβββTβββQβββSβββPβββGβββTβββL |
| ββ251ββββ|agc|cat|aGT|GCA|Caa|tcc|gtc|ctt|act|caa|tct|cct|ggc|act|ctt| |
| !ββββββββββββββββββApaLI... |
| !---------------------------------- |
| ! |
| !ββββββββ-----βFR1β--------------------------------->|-------Stuffer-> |
| !βββββββββ31ββ32ββ33ββ34ββ35ββ36ββ37ββ38ββ39ββ40ββ41ββ42ββ43 |
| !ββββββββββSβββLβββSβββPβββGβββEβββRβββAβββTβββLβββSβββ|βββ| |
| ββ296ββββ|tcG|CTA|AGC|CCG|GGt|gaa|cgt|gct|acC|TTA|AGt|TAG|TAA|gct|ccc| |
| !βββββββββββEspI.....βββββββββββββββββββββββAflII... |
| !βββββββββββββββββββXmaI.... |
| !---------------------------------- |
| ! |
| !βββββββββ-------βStufferβforβCDR1------------------------->|-βFR2β--> |
| !βββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββ59ββ60 |
| !ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββKβββP |
| ββ341ββββ|AGG|CCT|ctt|TGA|tct|ββββββββββββββββββββββββββββββg|aaA|CCT| |
| !βββββββββStuI...βββββββββββββββββββββββββββββββββββββββββββββββSexAI... |
| !---------------------------------- |
| ! |
| !ββββββββ-----βFR2β------|-----------StufferβforβCDR2----------------> |
| !βββββββββ61ββ62ββ63ββ64ββ65ββ66 |
| !ββββββββββGβββQβββAβββPβββRβββ|βββ| |
| ββ363ββββ|GGT|caG|GCG|CCg|cgt|TAA|TGA|aβAGCGCTβaaβTGGCCAβacaβgtg |
| !βββSexAI....βββKasI....ββββββββββββββββAfeI..ββββMscI.. |
| !---------------------------------- |
| ! |
| !ββStuffer-->|---βFR3β-----------------------------------------------> |
| !βββββββββ<1> |
| !βββββββββ76ββ77ββ78ββ79ββ80ββ81ββ82ββ83ββ84ββ85ββ86ββ87ββ88ββ89ββ90 |
| !ββββββββββTβββGβββIβββPβββDβββRβββFβββSβββGβββSβββGβββSβββGβββTβββD |
| ββ405ββββ|act|gGG|ATC|CCG|GAC|CGt|ttc|tct|ggc|tct|ggt|tca|ggt|act|gac| |
| !ββββββββββββββBamHI... |
| !βββββββββββββββββββββRsrII..... |
| !---------------------------------- |
| ! |
| !ββββββββ------βFR3β---------------------STUFFERβforβCDR3------------------> |
| !βββββββββ91ββ92ββ93ββ94ββ95ββ96ββ97 |
| !ββββββββββFβββTβββLβββTβββIβββSβββRβββ|βββ| |
| ββ450ββββ|ttt|acc|ctt|act|att|TCT|AGA|TAA|TGA|βGTTAACβTAGβaccβTACGTAβaccβtag |
| !βββββββββββββββββββββββββββββXbaI...ββββββββββHpaI..βββββββββSnaBI. |
| !---------------------------------- |
| ! |
| ! |
| !β------------------------CDR3βstuffer------------------>|-----FR4---> |
| !ββββββββββββββββββββββββββββββββββββββββββββββββββββββββ118β119β120 |
| !ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββFβββGβββQ |
| ββ501ββββββββββββββββββββββββββββββββββββββββββββββββββββ|ttc|ggt|caa| |
| !---------------------------------- |
| ! |
| !ββββββββ-----FR4------------------->|ββββββ<-------βCkappaβ------------ |
| !ββββββββ121β122β123β124β125β126β127ββββββββ128β129β130β131β132β133β134 |
| !ββββββββββGβββTβββKβββVβββEβββIβββKβββββββββRβββTβββVβββAβββAβββPβββS |
| ββ510ββββ|ggt|aCC|AAG|Gtt|gaa|atc|aag|βββββ|CGT|ACG|gtt|gcc|gct|cct|agt| |
| !ββββββββββββββStyI....βββββββββββββββββββββBsiWI.. |
| ! |
| !(CDR3βinstalledβasβXbaIβtoβ(StyIβorβBsiWI)βcassette.) |
| ! |
| !βββββββββββ135β136β137β138β139β140β141β142β143β144β145β146β147β148β149 |
| !ββββββββββββVβββFβββIβββFβββPβββPβββSβββDβββEβββQβββLβββKβββSβββGβββTβββββ(SEQβIDβNO:β96) |
| ββ552ββββββ|gtg|ttt|atc|ttt|cct|cct|tct|gac|gaa|CAA|TTG|aag|tca|ggt|act| |
| !βββββββββββββββββββββββββββββββββββββββββββββββMfeI... |
| ! |
| ! |
| ββ866ββacgcatctctaaβGCGGCCGCβaacaggaggagβββββββββββββββββββββββ(SEQβIDβNO:β95) |
| !βββββββββββββββββββNotI.... |
| !ββββββββββββββββββββEagI.. |
| TABLEβ41P |
| VariegatedβDNAβforβkappaβchains |
| !---------------------------------------------------------------- |
| !βKappaβchains |
| !βForβCDR1: |
| !β<1>βADEFGHIKLMNPQRSTVWYββequimolar |
| !β<2>βS(0.2)βADEFGHIKLMNPQRTVWYβ(0.044βeach) |
| !β<3>βY(0.2)βADEFGHIKLMNPQRSTVWβ(0.044βeach) |
| !β<4>βA(0.2)βDEFGHIKLMNPQRSTVWYβ(0.044βeach) |
| (Ka1vg600)βββββββββββββββββββββ5β²-gct|acC|TTA|AGt|tgc|cgt|gct|tcc|cag- |
| ββββββ|<1>|gtt|<2>|<2>|ββββ<3>|ctt|gct|tgg|tat|caa|cag|aaA|CC-3β²ββ(SEQβIDβNO:β66) |
| (Ka2vg650)ββββββ5β²-caG|GCG|CCg|cgt|tta|ctt|att|tat|<1>|gct|tct|<2>|cgc|<4>|- |
| ββββββββββββββββββ|<1>|gGG|ATC|CCG|GAC|CGt|ttc|tct|ggt|tctcacc-3β²β(SEQβIDβNO:β71) |
| (Ka3vg670)β5β²-ββββββββββββββββββββββββββββββββββββββββββββgac|ttc|gct|gtt|- |
| βββββββββββββ|tat|tat|tgC|CAa|cag|<3>|<1>|<1>|<1>|cct|<1>|act|ttc|ggt|caa|- |
| βββββββββββββ|ggt|aCC|AAG|Gtt|g-3β²βββ(SEQβIDβNO:β77) |
| TABLEβ42P |
| VariegatedβDNAβforβlambdaβchains |
| !------------------------ |
| !βForβCDR1, |
| !β<1>β=β0.27βT,β0.27βG,β0.027β{ADEFHIKLMNPQRSVWY}βnoβC |
| !β<2>β=β0.27βD,β0.27βN,β0.027β{AEFGHIKLMPQRSTVWY}βnoβC |
| !β<3>β=β0.36βY,β0.0355{ADEFGHIKLMNPQRSTVW}ββββββββnoβC |
| !β<4>β=βequimolarβ{ADEFGHIKLMNPQRSTVWY}βnoβC |
| !β<5>β=β0.36βS,β0.0355{ADEFGHIKLMNPQRTVWY}ββnoβC |
| (Lm1vg710)β5β²-gt|atc|act|att|tct|TGT|ACA|ggt|<1>|tct|tct|<2>|gtt|ggc|- |
| βββββββ|<1>|<3>|<2>|<3>|gtt|tct|tgg|tat|caa|caa|caC|CC-3β²βββββββ(SEQβIDβNO:β83) |
| !------------------------------------------------- |
| (Lm2vg750)ββββββββββββββββββββββββββββββ5β²-G|CCg|aag|ttg|atg|atc|tac|- |
| βββ<4>|<4>|<4>|<2>|cgt|cct|tct|ggt|gtc|agc|aat|c-3β²βββββββββββββ(SEQβIDβNO:β88) |
| (Lm3vg817)ββ5β²-ββββββββββββββββββββββββgac|gag|gct|gac|tac|tat|tgt|- |
| βββββββ|<4>|<5>|<4>|<2>|<4>|tct|<4>|<4>|<4>|<4>|gtc|ttc|ggc|ggt|GGT|- |
| ββββββ|ACC|aaa|ctt|ac-3β²ββββ(SEQβIDβNO:β93) |
| !---------------------------------------------------------------- |
| TABLEβ43P |
| ConstantβDNAβforβSyntheticβLibrary |
| !βCDR3βlibraryβcomponents |
| (Ctop25)β5β²-gctctggtcaaβC|TTA|AGg|gct|gag|g-3β²ββ(SEQβIDβNO:β58) |
| (CtprmA)β5β²-gctctggtcaaβC|TTA|AGg|gct|gag|gac- |
| !βββββββββββββββββββββββAflII... |
| ββββββββββββ|acc|gct|gtc|tac|tac|tgc|gcc-3β²βββββ(SEQβIDβNO:β59) |
| ! |
| (CBprmB)[RC]β5β²-|tac|ttc|gat|tac|ttg|ggc|caa|GGT|ACC|ctG|GTC|ACC|tcgctccacc-3β²(SEQβIDβNO:β60) |
| !ββββββββββββββββββββββββββββββββββββββββββββββββββββββBstEII... |
| (CBot25)[Rc]βββββββββββββββββββββββββββββ5β²-|GGT|ACC|ctG|GTC|ACC|tcgctccacc-3β²(SEQβIDβNO:β61) |
| !---------------------------------------------------------------- |
| !βKappaβchains |
| (Ka1Top610)β5β²-ggtctcagtt- |
| ββββββββββββG|CTA|AGC|CCG|GGt|gaa|cgt|gct|acC|TTA|AGt|tgc|cgt|gct|tcc|cag-3β²ββ(SEQβIDβNO:β62) |
| (Ka1STp615)β5β²-ggtctcagtt- |
| ββββββββββββG|CTA|AGC|CCG|GGt|g-3β²ββ(SEQβIDβNO:β63) |
| (Ka1Bot620)β[RC]ββββββββββββ5β²-ctt|gct|tgg|tat|caa|cag|aaA|- |
| ββββββββββββββββββββCCt|GGT|caG|GCG|CCβaagtcgtgtc-3β²ββ(SEQβIDβNO:β64) |
| (Ka1SB625)ββ[RC]β5β²-cctβ|GGT|caG|GCG|CCβaagtcgtgtc-3β²β(SEQβIDβNO:β65) |
| ! |
| (Ka2Tshort657)β5β²-cacgagtcctA|CCT|GGT|- |
| βββββββββββββββββββcaG|GC-3β²βββ(SEQβIDβNO:β68) |
| (Ka2Tlong655)ββ5β²-cacgagtcctA|CCT|GGT|- |
| ββββββββββββββββββcaG|GCG|CCg|cgt|tta|ctt|att|tat-3β²ββ(SEQβIDβNO:β69) |
| (Ka2Bshort660)β[RC]β5β²-ββββββββββ|GAC|CGt|ttc|tct|ggt|tctcacc-3β²β(SEQβIDβNO:β70) |
| !--------------------------------------------------------------- |
| (Ka3Tlon672)5β²-βββββββgacgagtcctβTCT|AGA|ttg|gaa|cct|gaa|gac|ttc|gct|gtt|- |
| βββββββββββββ|tat|tat|tgC|CAa|cβ-3β²ββ(SEQβIDβNO:β72) |
| (Ka3BotL682)βββββββββββββββββββββββββββββββββββββ[RC]5β²-act|ttc|ggt|caa|- |
| βββββββββββββ|ggt|aCC|AAG|Gtt|gaa|atc|aag|ββββ|CGT|ACG|tcacaggtgag-3β²ββ(SEQβIDβNO:β73) |
| (Ka3Bsho694)β[RC]5β²-ββββββββββgaa|atc|aag|βββββ|CGT|ACG|βtcacaggtgag-3β²(SEQβIDβNO:β74) |
| !----------------------------------------------------------------- |
| (Lm1TPri75)β5β²-gacgagtcctβGG|TcA|CCt|GGT|-3β²ββ(SEQβIDβNO:β78) |
| (Lm1TLo715)β5β²-gacgagtcctβGG|TcA|CCt|GGt|- |
| βββββββββcaa|agt|atc|act|att|tct|TGT|ACA|ggt-3β²ββ(SEQβIDβNO:β79) |
| (Lm1BLo724)[RC]β5β²-gtt|tct|tgg|tat|caa|caa|caC|CCG|GGc|aaG|GCG|- |
| βββββββββAGAβTCTββtcacaggtgag-3β²ββ(SEQβIDβNO:β80) |
| (Lm1BSh737)[RC]β5β²-βββββββββββββββββββββββββββββββββGc|aaG|GCG|- |
| βββββββββAGAβTCTβtcacaggtgag-3β²βββ(SEQβIDβNO:β81) |
| !------------------------------------------------- |
| (Lm2TSh757)ββ5β²-gagcagaggaβC|CCG|GGc|aaG|GC-3β²ββ(SEQβIDβNO:β84) |
| (Lm2TLo753)ββ5β²-gagcagaggaβC|CCG|GGc|aaG|GCG|CCg|aag|ttg|atg|atc|tac|-3β²β(SEQβIDβNO:β85) |
| (Lm2BLo762)[RC]β5β²-cgt|cct|tct|ggt|gtc|agc|aat|cgt|ttc|TCC|GGA|tcacaggtgag-3β²ββ(SEQβIDβNO:β86) |
| (Lm2BSh765)[RC]β5β²-ββββββββββββββββββββββββββββcgt|ttc|TCC|GGA|tcacaggtgag-3β²ββ(SEQβIDβNO:β87) |
| !------------------------------------------------- |
| (Lm3TSh822)βββββββββ5β²-CTG|CAG|gct|gaa|gac|gag|gct|gacβββββββββββββ-3β²ββ(SEQβIDβNO:β89) |
| (Lm3TLo819)βββββββββ5β²-CTG|CAG|gct|gaa|gac|gag|gct|gac|tac|tat|tgt|-3β²ββ(SEQβIDβNO:β90) |
| (Lm3BLo825)β[RC]βββββββββββββββββββββββββββββ5β²-gtc|ttc|ggc|ggt|GGT|- |
| ββββββ|ACC|aaa|ctt|act|gtc|ctc|gGT|CAA|CCT|aAG|Gβacacaggtgag-3β²βββββββββ(SEQβIDβNO:β91) |
| (Lm3BSh832)β[RC]βββ5β²-βββββββc|gGT|CAA|CCT|aAG|Gβacacaggtgag-3β²βββββββββ(SEQβIDβNO:β92) |
| !---------------------------------------------------------------- |
| TABLEβ48P |
| Synthticβhumanβlambda-chainβgeneβwithβstuffersβinβplaceβofβCDRs |
| !βLambdaβ14-7(A)β2a2::JH2::Clambda |
| !βAAβsequenceβtested |
| ! |
| βββββ1βGAGGACCATtβGGGCCCCβttactccgtgac |
| !ββββββScab......βEcoO109I |
| !βββββββββββββββββApaI.. |
| !----------------------------------------------- |
| ! |
| !ββββββββββββββ-----------FR1--------------------------------------------> |
| !βββββββββββββββ1βββ2βββ3βββ4βββ5βββ6βββ7βββ8βββ9ββ10ββ11ββ12ββ13ββ14ββ15 |
| !βββββββSβββAβββQβββSβββAβββLβββTβββQβββPβββAβββSβββVβββSβββGβββSβββPβββG |
| ββββ30βaGT|GCA|Caa|tcc|gct|ctc|act|cag|cct|GCT|AGC|gtt|tcc|gGG|TcA|CCt|GGT| |
| !βββββββApaLI...βββββββββββββββββββββββββββNheI...ββββββββββBstEII... |
| !ββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββSexAI.... |
| !----------------------------------------------- |
| ! |
| !ββββββ------FR1------------------>β|-----stufferβforβCDR1--------- |
| !βββββββ16ββ17ββ18ββ19ββ20ββ21ββ22ββ23 |
| !ββββββββQβββSβββIβββTβββIβββSβββCβββT |
| ββββ81β|caa|agt|atc|act|att|tct|TGT|ACA|tctβTAGβTGAβctc |
| !βββββββββββββββββββββββββββββββBsrGI.. |
| !------------------------------------------------------- |
| ! |
| !βββββββ-----Stuffer--------------------------->-------------------- |
| !βββββββ31ββ32ββ33ββ34ββ35ββ36ββ37ββ38ββ39ββ40ββ41ββ42ββ43ββ44ββ45 |
| !ββββββββRβββSβββ|βββ|βββPβββ|βββββββββββββββββββHβββPβββGβββKβββA |
| βββ117ββAGAβTCTβTAAβTGAβccgβtagβββββββββββββββββcaC|CCG|GGc|aaG|GCG| |
| !βββββββBglIIβββββββββββββββββββββββββββββββββββββXmaI....ββββKasI..... |
| !βββββββββββββββββββββββββββββββββββββββββββββββββAvaI.... |
| !------------------------------------------------------------------- |
| ! |
| !βββββββ--|-------------Stufferβ-------------------------------------> |
| !ββββββββP |
| βββ150β|CCg|TAA|TGA|atcβtCGβTACβGββββββββββββββββββββββββct|ggt|gtt| |
| !βKasI....βββββββββββββββBsiWI... |
| !------------------------------------------------------------------- |
| ! |
| !ββββββ-------FR3---------------------------------------------------- |
| !βββββββ61ββ62ββ63ββ64ββ65ββ66ββ67ββ68ββ69ββ70ββ71ββ72ββ73ββ74ββ75 |
| !ββββββββSβββNβββRβββFβββSβββGβββSβββKβββSβββGβββNβββTβββAβββSβββL |
| βββ177β|agc|aat|cgt|ttc|TCC|GGA|tct|aaa|tcc|ggt|aat|acc|gcA|AGC|TTa| |
| !βββββββββββββββββββββββBspEI..ββββββββββ|ββββββββββββββββHindIII. |
| !ββββββββββββββββββββββββββββBsaBI........(blunt) |
| !------------------------------------------------------------------- |
| ! |
| !ββββββ-------FR3------------->|--Stuffer-------------------------->| |
| !βββββββ76ββ77ββ78ββ79ββ80ββ81ββ82ββ83ββ84ββ85ββ86ββ87ββ88ββ89ββ90 |
| !ββββββββTβββIβββSβββGβββLβββQ |
| βββ222β|act|atc|tct|ggt|CTG|CAG|gttβctgβtagβttcβCAATTGβcttβtagβtgaβccc |
| !βββββββββββββββββββββββPstI...βββββββββββββββββMfeI.. |
| !------------------------------------------------------------------- |
| ! |
| !ββββββ-----Stuffer------------------------------->|---FR4--------- |
| !ββββββββββββββββββββββββββββββββββββββββββββββββββββββ103β104β105 |
| !ββββββββββββββββββββββββββββββββββββββββββββββββββββββββGβββGβββG |
| βββ270βββββββββββββββββββββββββββββββββββββββββββββββββ|ggc|ggt|GGT| |
| !βββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββββKpnI... |
| !---------------------------------------------------------------------- |
| ! |
| !ββββββ-------FR4--------------> |
| !βββββββ106β107β108β109β110β111β112β113β114β115β116β117β118β119β120 |
| !ββββββββTβββKβββLβββTβββVβββLβββGβββQβββPβββKβββAβββAβββPβββSβββV |
| βββ279β|ACC|aaa|ctt|act|gtc|ctc|gGT|CAA|CCT|aAG|Gct|gct|cct|tcc|gtt| |
| !βββKpnI...ββββββββββββββββββββββHincII.. |
| !βββββββββββββββββββββββββββββββββββββββBsu36I... |
| ! |
| !βββββββ121β122β123β124β125β126β127β128β129β130β131β132β133β134β135 |
| !ββββββββTβββLβββFβββPβββPβββSβββSβββEβββEβββLβββQβββAβββNβββKβββA |
| βββ324β|act|ctc|ttc|cct|cct|agt|tct|GAA|GAG|Ctt|caa|gct|aac|aag|gct| |
| !βββββββββββββββββββββββββββββββββββSapI..... |
| ! |
| !βββββββ136β137β138β139β140β141β142β143β144β145β146β147β148β149β150 |
| !ββββββββTβββLβββVβββCβββLβββIβββSβββDβββFβββYβββPβββGβββAβββVβββTββ(SEQβIDβNO:β98) |
| βββ369β|act|ctt|gtt|tgc|tTG|ATC|Agt|gac|ttt|tat|cct|ggt|gct|gtt|act|β(SEQβIDβNO:β97) |
| !ββββββββββββββββββββββBclI.... |
| TABLEβ50P |
| 3-23::CDR3::JH4βStuffersβinβplaceβofβCDRs |
| ββββββββββββββββββββββββββββββββββFR1(DP47/V3-23)--------------- |
| βββββββββββ20ββ21ββ22βββββββββββββ23ββ24ββ25ββ26ββ27ββ28ββ29ββ30 |
| ββββββββββββAβββMβββAββββββββββββββEβββVβββQβββLβββLβββEβββSβββG |
| ctgtctgaacββCCβatgβgccββββββββββββgaa|gtt|CAA|TTG|tta|gag|tct|ggt| |
| Scab......ββNcoI....βββββββββββββββββββββ|βMfeIββ| |
| ββββββ--------------FR1-------------------------------------------- |
| βββββββ31β32β33β34β35β36β37β38β39β40β41β42β43β44β45 |
| ββββββββGββGββLββVββQββPββGββGββSββLββRββLββSββCββA |
| ββββββ|ggc|ggt|ctt|gtt|cag|cct|ggt|ggt|tct|tta|cgt|ctt|tct|tgc|gct| |
| ββββββ----FR1-------------------->|...CDR1βstuffer....|---FR2------ |
| βββββββ46ββ47ββ48ββ49ββ50ββ51ββ52ββ53ββ54ββ55ββ56ββ57ββ58ββ59ββ60 |
| ββββββββAβββSβββGβββFβββTβββFβββSβββSβββYβββAβββ|βββ|βββWβββVβββR |
| ββββββ|gct|TCC|GGA|ttc|act|ttc|tct|tCG|TAC|Gct|TAG|TAA|tgg|gtt|cgC| |
| ββββββββββ|βBspEIβ|βββββββββββββββββ|βBsiWI|βββββββββββββββββββββ|BstXI. |
| βββββββ-------FR2-------------------------------->|...CDR2βstuffer. |
| βββββββ61ββ62ββ63ββ64ββ65ββ66ββ67ββ68ββ69ββ70ββ71ββ72ββ73ββ74ββ75 |
| ββββββββQβββAβββPβββGβββKβββGβββLβββEβββWβββVβββSβββ|βββpβββrβββ| |
| ββββββ|CAa|gct|ccT|GGt|aaa|ggt|ttg|gag|tgg|gtt|tct|TAA|CCT|AGG|TAG| |
| ββ...BstXIββββββββββ|ββββββββββββββββββββββββββββββββββAvrII.. |
| βββββ.....CDR2βstuffer....................................|---FR3--- |
| β--------FR3-------------------------------------------------- |
| βββ91ββ92ββ93ββ94ββ95ββ96ββ97ββ98ββ99β100β101β102β103β104β105 |
| βββTβββIβββSβββRβββDβββNβββSβββKβββNβββTβββLβββYβββLβββQβββM |
| β|act|atc|TCT|AGA|gac|aac|tct|aag|aat|act|ctc|tac|ttg|cag|atg| |
| βββββββββ|βXbaIββ| |
| β---FR3-----------..>βStuffer------------->| |
| ββ106β107β108β109β110 |
| βββNβββSβββLβββRβββAββ(SEQβIDβNO:β53) |
| β|aac|agC|TTA|AGg|gct|TAGβTAAβAGGβcctβTAAβ(SEQβIDβNO:β52) |
| ββββββββ|AflIIβ|ββββββββββββββStuI... |
| β|-----βFR4β---(JH4)------------------------------------------ |
| ββYβββFβββDβββYβββWβββGβββQβββGβββTβββLβββVβββTβββVβββSβββSββββββ(SEQβIDβNO:β26) |
| |tat|ttc|gat|tat|tgg|ggt|caa|GGT|ACC|ctG|GTC|ACC|gtc|tct|agt|...β(SEQβIDβNO:β25) |
| βββββββββββββββββββββββββ|βKpnI|ββ|βBstEIIβ| |
1-43. (canceled)
44. A focused library of DNA plasmids or genetic packages comprising the DNA plasmids, the focused library comprising multiple different sets of variegated DNA molecules, each of which comprises a DNA sequence that encodes an antibody light chain variable domain having both frame work (FW) regions and complementary determining regions (CDR), wherein each light chain variable domain comprises antibody light chain FW1, antibody light chain CDR1, antibody heavy chain FW2, antibody light chain CDR2, antibody light chain FW3, antibody light chain CDR3, and antibody light chain FW4 in a DNA molecule arranged in the orientation of FW1-CDR1-FW2-CDR2-FW3-CDR3-FW4, and wherein:
(a) a first collection of antibody light chains that are kappa light chains, which comprises a plurality of LCΞΊ CDR3 regions selected from the group consisting of:
(1) QQ<3><1><1><1>P<1>T (SEQ ID NO:16), wherein <1> is a mixture of amino acid residues A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, W, Y; and <3> is a mixture of amino acid residues Y, A, D, E, F, G, H, I, K, L, M, N, P, Q, R, T, V, and W;
(2) QQ<3><3><1><1><1>P (SEQ ID NO:103), wherein <1> and <3> are as defined in (1) above;
(3) QQ<3><2><1><1>PP<1>T (SEQ ID NO:17), wherein <1> and <3> are as defined in (1) above and <2> is a mixture of amino acid residues S, A, D, E, F, G, H, I, K, L, M, N, P, Q, R, T, V, W, and Y; and
(4) a mixture of any of (1) to (3) set forth above; or
(b) a second collection of antibody light chains that are lambda light chains, which comprise a plurality of LCΞ» CDR3 regions selected from the group consisting of:
(1) <4><5><4><2><4>S<4><4><4><4>V (SEQ ID NO:106), wherein <2> is a mixture of amino acid residues D, N, A, E, F, G, H, I, K, L, M, P, Q, R, S, T, V, W, and Y; <4> is a mixture of amino acid residues A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, and W; and <5> is a mixture of amino acid residues S, A, D, E, F, G, H, I, K, L, M, N, P, Q, R, T, V, W, and Y;
(2) <5>SY<1><5>S<5><1><4>V (SEQ ID NO:19), wherein <1> is a mixture of amino acid residues A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, W, and Y; and <4> and <5> are as defined in (1) above; and
(3) a mixture of (1) and (2) set forth above.
45. The focused library of claim 44, wherein the first collection of antibody light chains are kappa light chains, which further comprise:
(a) a plurality of LCK CDR1 regions selected from the group consisting of:
(1) RASQ<1>V<2><2><3>LA (SEQ ID NO:14), wherein <1> is a mixture of amino acid residues A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, W, and Y; <2> is a mixture of amino acid residues S, A, D, E, F, G, H, I, K, L, M, N, P, Q, R, T, V, W, Y; and <3> is a mixture of amino acid residues Y, A, D, E, F, G, H, I, K, L, M, N, P, Q, R, T, V, W and S; and
(2) RASQ<1>V<2><2><2><3>LA (SEQ ID NO:15); wherein <1>, <2>, and <3> are as defined in (1) above; and
(3) a mixture of (1) and (2) set forth above;
(b) a plurality of LCΞΊ CDR2 regions <1>AS<2>R<4><1>(SEQ ID NO:102), wherein <1> is a mixture of amino acid residues A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, W, and Y; <2> is a mixture of amino acid residues S, A, D, E, F, G, H, I, K, L, M, N, P, Q, R, T, V, W, and Y; and <4> is a mixture of amino acid residues A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, W, and Y; or
both (a) and (b).
46. The focused library of claim 44, wherein the library is a library of DNA plasmids.
47. The focused library of claim 44, wherein the library is a library of genetic packages comprising the DNA plasmids.
48. The focused library of DNA plasmids of claim 44, wherein the DNA plasmids are in yeast cells.
49. The focused library of claim 48, wherein the yeast cells display the plurality of antibody light chain variable regions.
50. The focused library of claim 44, wherein the DNA plasmids are yeast DNA plasmids.
51. The focused library of claim 44, wherein the LCK CDR3s (1), (2), and (3) are present in the library in a ratio of 0.65:0.1:0.25.
52. The focused library of claim 45, wherein the LCΞΊ CDR1s (1) and (2) are present in the library in a ratio of 0.68:0.32.
53. The focused library of claim 52, wherein the first collection of antibody light chains are kappa light chains, and wherein the library further comprises a second set of variegated DNA molecules encoding a second collection of antibody light chains, which are lambda light chains comprising a plurality of LCΞ» CDR3 regions selected from the group consisting of:
(1) <4><5><4><2><4>S<4><4><4><4>V (SEQ ID NO:106), wherein <2> is a mixture of amino acid residues D, N, A, E, F, G, H, I, K, L, M, P, Q, R, S, T, V, W, and Y; <4> is a mixture of amino acid residues A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, and W; and <5> is a mixture of amino acid residues S, A, D, E, F, G, H, I, K, L, M, N, P, Q, R, T, V, W, and Y;
(2) <5>SY<1><5>S<5><1><4>V (SEQ ID NO:19), wherein <1> is a mixture of amino acid residues A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, W, and Y; and <4> and <5> are as defined in (1) above; and
(3) a mixture of (1) and (2) set forth above.
54. The focused library of claim 53, wherein the second collection of antibody light chains further comprises:
(a) a plurality of LCΞ» CDR1 regions selected from the group consisting of:
(1) TG<1>SS<2>VG<1><3><2><3>VS (SEQ ID NO:18), wherein <1> is a mixture of amino acid residues T, G, A, D, E, F, H, I, K, L, M, N, P, Q, R, S, V, W, and Y, <2> is a mixture of amino acid residues D, N, A, E, F, G, H, I, K, L, M, P, Q, R, S, T, V, W, and Y, and <3> is a mixture of amino acid residues Y, A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, and W;
(2) G<2><4>L<4><4><4><3><4><4>; (SEQ ID NO:104), wherein <2> is as defined in (1) above, <3> is a mixture of amino acid residues Y, A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, W, and <4> is a mixture of amino acid residues A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, W, and Y; and
(b) a plurality of LCΞ» CDR2 regions <4><4><4><2>RPS (SEQ ID NO:105), wherein <2> is a mixture of amino acid residues D, N, A, E, F, G, H, I, K, L, M, P, Q, R, S, T, V, W, and Y, and <4> is a mixture of amino acid residues A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, and W; or
both (a) and (b)
55. The focused library of claim 54, wherein the LCΞ» CDR3s (1) and (2) are present in the library in an equimolar mixture.
56. The focused library of claim 54, the LCΞ» CDR1s (1) and (2) are present in the library in a ratio of 0.67:0.33.
57. The focused library of claim 44, wherein the first collection of antibody light chains are lambda chains, which further comprise
(a) a plurality of LCΞ» CDR1 regions selected from the group consisting of:
(1) TG<1>SS<2>VG<1><3><2><3>VS (SEQ ID NO:18), wherein <1> is a mixture of amino acid residues T, G, A, D, E, F, H, I, K, L, M, N, P, Q, R, S, V, W, and Y, <2> is a mixture of amino acid residues D, N and, A, E, F, G, H, I, K, L, M, P, Q, R, S, T, V, W, and Y, and <3> is a mixture of amino acid residues Y, A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, and W;
(2) G<2><4>L<4><4><4><3><4><4>; (SEQ ID NO:104), wherein <2> is as defined in (1) above, <3> is a mixture of amino acid residues Y, A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, W, and <4> is a mixture of amino acid residues A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, W, and Y; and
(3) a mixture of (1) and (2) set forth above;
(b) a plurality of LCΞ» CDR2 regions <4><4><4><2>RPS (SEQ ID NO:105), wherein <2> is a mixture of amino acid residues D, N, A, E, F, G, H, I, K, L, M, P, Q, R, S, T, V, W, and Y and <4> is a mixture of amino acid residues A, D, E, F, G, H, I, K, L, M, N, P, Q, R, S, T, V, and W; or
both (a) and (b).
58. The focused library of claim 57, wherein the LCΞ» CDR3s (1) and (2) are present in the library in an equimolar mixture.
59. The focused library of claim 57, wherein the LCΞ» CDR1s (1) and (2) are present in the library in a ratio of 0.67:0.33.