USRE50178E1 - Humanised antibodies - Google Patents
Humanised antibodies Download PDFInfo
- Publication number
- USRE50178E1 USRE50178E1 US17/464,970 US202117464970A USRE50178E US RE50178 E1 USRE50178 E1 US RE50178E1 US 202117464970 A US202117464970 A US 202117464970A US RE50178 E USRE50178 E US RE50178E
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- US
- United States
- Prior art keywords
- ser
- thr
- heavy chain
- residues
- gly
- Prior art date
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- C07K14/46—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans from vertebrates
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- C07K16/00—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
- C07K16/18—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
- C07K16/28—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants
- C07K16/2803—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants against the immunoglobulin superfamily
- C07K16/2809—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants against the immunoglobulin superfamily against the T-cell receptor (TcR)-CD3 complex
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K16/00—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
- C07K16/18—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans
- C07K16/28—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants
- C07K16/2803—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants against the immunoglobulin superfamily
- C07K16/2812—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants against the immunoglobulin superfamily against CD4
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K16/00—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
- C07K16/46—Hybrid immunoglobulins
- C07K16/461—Igs containing Ig-regions, -domains or -residues form different species
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K16/00—Immunoglobulins [IGs], e.g. monoclonal or polyclonal antibodies
- C07K16/46—Hybrid immunoglobulins
- C07K16/461—Igs containing Ig-regions, -domains or -residues form different species
- C07K16/464—Igs containing CDR-residues from one specie grafted between FR-residues from another
- C07K16/465—Igs containing CDR-residues from one specie grafted between FR-residues from another with additional modified FR-residues
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K38/00—Medicinal preparations containing peptides
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K2317/00—Immunoglobulins specific features
- C07K2317/20—Immunoglobulins specific features characterized by taxonomic origin
- C07K2317/24—Immunoglobulins specific features characterized by taxonomic origin containing regions, domains or residues from different species, e.g. chimeric, humanized or veneered
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K2317/00—Immunoglobulins specific features
- C07K2317/60—Immunoglobulins specific features characterized by non-natural combinations of immunoglobulin fragments
- C07K2317/64—Immunoglobulins specific features characterized by non-natural combinations of immunoglobulin fragments comprising a combination of variable region and constant region components
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K2319/00—Fusion polypeptide
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K2319/00—Fusion polypeptide
- C07K2319/01—Fusion polypeptide containing a localisation/targetting motif
- C07K2319/02—Fusion polypeptide containing a localisation/targetting motif containing a signal sequence
Definitions
- the present invention relates to humanised antibody molecules, to processes for their production using recombinant DNA technology, and to their therapeutic uses.
- humanised antibody molecule is used to describe a molecule having an antigen binding site derived from an immunoglobulin from a non-human species, and remaining immunoglobulin-derived parts of the molecule being derived from a human immunoglobulin.
- the antigen binding site typically comprises complementarity determining regions (CDRs) which determine the binding specificity of the antibody molecule and which are carried on appropriate framework regions in the variable domains.
- CDRs complementarity determining regions
- Natural immunoglobulins have been known for many years, as have the various fragments thereof, such as the Fab, (Fab′) 2 and Fc fragments, which can be derived by enzymatic cleavage. Natural immunoglobulins comprise a generally Y-shaped molecule having an antigen-binding site towards the end of each upper arm. The remainder of the structure, and particularly the stem of the Y, mediates the effector functions associated with immunoglobulins.
- Natural immunoglobulins have been used in assay, diagnosis and, to a more limited extent, therapy. However, such uses, especially in therapy, were hindered until recently by the polyclonal nature of natural immunoglobulins.
- a significant step towards the realisation of the potential of immunoglobulins as therapeutic agents was the discovery of procedures for the production of monoclonal antibodies (MAbs) of defined specificity (1).
- MAbs are produced by hybridomas which are fusions of rodent spleen cells with rodent myeloma cells. They are therefore essentially rodent proteins. There are very few reports of the production of human MAbs.
- HAMA Human Anti-Mouse Antibody
- OKT3 a mouse IgG2a/k MAb which recognises an antigen in the T-cell receptor-CD3 complex has been approved for use in many countries throughout the world as an immunosuppressant in the treatment of acute allograft rejection [Chatenoud et al (2) and Jeffers et al (3)].
- a significant HAMA response which may include a major anti-idiotype component, may build up on use.
- Such humanised chimeric antibodies still contain a significant proportion of non-human amino acid sequence, i.e. the complete non-human variable domains, and thus may still elicit some HAMA response, particularly if administered over a prolonged period [Begent et al (ref. 4)].
- CDRs complementarity determining regions
- the present invention relates to humanised antibody molecules prepared according to this alternative approach, i.e. CDR-grafted humanised antibody molecules.
- CDR-grafted humanised antibodies are much less likely to give rise to a HAMA response than humanised chimeric antibodies in view of the much lower proportion of non-human amino acid sequence which they contain.
- the first criterion is to use as the human acceptor the framework from a particular human immunoglobulin that is unusually homologous to the non-human donor immunoglobulin to be humanised, or to use a consensus framework from many human antibodies.
- the second criterion is to use the donor amino acid rather than the acceptor if the human acceptor residue is unusual and the donor residue is typical for human sequences at a specific residue of the framework.
- the third criterion is to use the donor framework amino acid residue rather than the acceptor at positions immediately adjacent to the CDRs.
- the fourth criterion is to use the donor amino acid residue at framework positions at which the amino acid is predicted to have a side chain atom within about 3 ⁇ of the CDRs in a three-dimensional immunoglobulin model and to be capable of interacting with the antigen or with the CDRs of the humanised immunoglobulin. It is proposed that criteria two, three or four may be applied in addition or alternatively to criterion one, and may be applied singly or in any combination.
- WO 90/07861 describes in detail the preparation of a single CDR-grafted humanised antibody, a humanised antibody having specificity for the p55 Tac protein of the IL-2 receptor.
- the donor CDRs were as defined by Kabat et al (7 and 8) and in addition the mouse donor residues were used in place of the human acceptor residues, at positions 27, 30, 48, 66, 67, 89, 91, 94, 103, 104, 105 and 107 in the heavy chain and at positions 48, 60 and 63 in the light chain, of the variable region frameworks.
- the humanised anti-Tac antibody obtained is reported to have an affinity for p55 of 3 ⁇ 10 9 M ⁇ 1 , about one-third of that of the murine MAb.
- the invention provides a CDR-grafted antibody heavy chain having a variable region domain comprising acceptor framework and donor antigen binding regions wherein the framework comprises donor residues at at least one of positions 6, 23, and/or 24, 48 and/or 49, 71 and/or 73, 75 and/or 76 and/or 78 and 88 and/or 91.
- the heavy chain framework comprises donor residues at positions 23, 24, 49, 71, 73 and 78 or at positions 23, 24 and 49.
- the residues at positions 71, 73 and 78 of the heavy chain framework are preferably either all acceptor or all donor residues.
- the heavy chain framework additionally comprises donor residues at one, some or all of positions 6, 37, 48 and 94. Also it is particularly preferred that residues at positions of the heavy chain framework which are commonly conserved across species, i.e. positions 2, 4, 25, 36, 39, 47, 93, 103, 104, 106 and 107, if not conserved between donor and acceptor, additionally comprise donor residues. Most preferably the heavy chain framework additionally comprises donor residues at positions 2, 4, 6, 25, 36, 37, 39, 47, 48, 93, 94, 103, 104, 106 and 107.
- heavy chain framework optionally comprises donor residues at one, some or all of positions:
- CDR-grafted antibody products comprising acceptor framework and donor antigen binding regions.
- the invention is widely applicable to the CDR-grafting of antibodies in general.
- the donor and acceptor antibodies may be derived from animals of the same species and even same antibody class or sub-class. More usually, however, the donor and acceptor antibodies are derived from animals of different species.
- the donor antibody is a non-human antibody, such as a rodent MAb, and the acceptor antibody is a human antibody.
- the donor antigen binding region typically comprises at least one CDR from the donor antibody.
- the donor antigen binding region comprises at least two and preferably all three CDRs of each of the heavy chain and/or light chain variable regions.
- the CDRs may comprise the Kabat CDRs, the structural loop CDRs or a composite of the Kabat and structural loop CDRs and any combination of any of these.
- the antigen binding regions of the CDR-grafted heavy chain variable domain comprise CDRs corresponding to the Kabat CDRs at CDR2 (residues 50-65) and CDR3 (residues 95-100) and a composite of the Kabat and structural loop CDRs at CDR1 (residues 26-35).
- residue designations given above and elsewhere in the present application are numbered according to the Kabat numbering [refs. (7) and (8)]. Thus the residue designations do not always correspond directly with the linear numbering of the amino acid residues.
- the actual linear amino acid sequence may contain fewer or additional amino acids than in the strict Kabat numbering corresponding to a shortening of, or insertion into, a structural component, whether framework or CDR, of the basic variable domain structure.
- the heavy chain variable region of the anti-Tac antibody described by Queen et al contains a single amino acid insert (residue 52a) after residue 52 of CDR2 and a three amino acid insert (residues 82a, 82b and 82c) after framework residue 82, in the Kabat numbering.
- the correct Kabat numbering of residues may be determined for a given antibody by alignment at regions of homology of the sequence of the antibody with a “standard” Kabat numbered sequence.
- the invention also provides in a second aspect a CDR-grafted antibody light chain having a variable region domain comprising acceptor framework and donor antigen binding regions wherein the framework comprises donor residues at at least one of positions 1 and/or 3 and 46 and/or 47.
- the CDR grafted light chain of the second aspect comprises donor residues at positions 46 and/or 47.
- the invention also provides in a third aspect a CDR-grafted antibody light chain having a variable region domain comprising acceptor framework and donor antigen binding regions wherein the framework comprises donor residues at at least one of positions 46, 48, 58 and 71.
- the framework comprises donor residues at all of positions 46, 48, 58 and 71.
- the framework additionally comprises donor residues at positions 36, 44, 47, 85 and 87.
- positions of the light chain framework which are commonly conserved across species, i.e. positions 2, 4, 6, 35, 49, 62, 64-69, 98, 99, 101 and 102, if not conserved between donor and acceptor, additionally comprise donor residues.
- the light chain framework additionally comprises donor residues at positions 2, 4, 6, 35, 36, 38, 44, 47, 49, 62, 64-69, 85, 87, 98, 99, 101 and 102.
- framework of the second or third aspects optionally comprises donor residues at one, some or all of positions:
- the antigen binding regions of the CDR-grafted light chain variable domain comprise CDRs corresponding to the Kabat CDRs at CDR1 (residue 24-34), CDR2 (residues 50-56) and CDR3 (residues 89-97).
- the invention further provides in a fourth aspect a CDR-grafted antibody molecule comprising at least one CDR-grafted heavy chain and at least one CDR-grafted light chain according to the first and second or first and third aspects of the invention.
- the humanised antibody molecules and chains of the present invention may comprise: a complete antibody molecule, having full length heavy and light chains; a fragment thereof, such as a Fab, (Fab′) 2 or FV fragment; a light chain or heavy chain monomer or dimer; or a single chain antibody, e.g. a single chain FV in which heavy and light chain variable regions are joined by a peptide linker; or any other CDR-grafted molecule with the same specificity as the original donor antibody.
- the CDR-grafted heavy and light chain variable region may be combined with other antibody domains as appropriate.
- the heavy or light chains or humanised antibody molecules of the present invention may have attached to them an effector or reporter molecule.
- it may have a macrocycle, for chelating a heavy metal atom, or a toxin, such as ricin, attached to it by a covalent bridging structure.
- the procedures of recombinant DNA technology may be used to produce an immunoglobulin molecule in which the Fc fragment or CH3 domain of a complete immunoglobulin molecule has been replaced by, or has attached thereto by peptide linkage, a functional non-immunoglobulin protein, such as an enzyme or toxin molecule.
- acceptor variable region framework sequences may be used having regard to class-type of the donor antibody from which the antigen binding regions are derived.
- the type of acceptor framework used is of the same/similar class/type as the donor antibody.
- the framework may be chosen to maximise/optimise homology with the donor antibody sequence particularly at positions close or adjacent to the CDRs.
- a high level of homology between donor and acceptor sequences is not important for application of the present invention.
- the present invention identifies a hierarchy of framework residue positions at which donor residues may be important or desirable for obtaining a CDR-grafted antibody product having satisfactory binding properties.
- the CDR-grafted products usually have binding affinities of at least 10 5 M ⁇ 1 , preferably at least about 10 8 M ⁇ 1 , or especially in the range 10 8 -10 12 M ⁇ 1 .
- the present invention is applicable to any combination of donor and acceptor antibodies irrespective of the level of homology between their sequences.
- a protocol for applying the invention to any particular donor-acceptor antibody pair is given hereinafter.
- human frameworks which may be used are KOL, NEWM, REI, EU, LAY and POM (refs. 4 and 5) and the like; for instance KOL and NEWM for the heavy chain and REI for the light chain and EU, LAY and POM for both the heavy chain and the light chain.
- the constant region domains of the products of the invention may be selected having regard to the proposed function of the antibody in particular the effector functions which may be required.
- the constant region domains may be human IgA, IgE, IgG or IgM domains.
- IgG human constant region domains may be used, especially of the IgG1 and IgG3 isotypes, when the humanised antibody molecule is intended for therapeutic uses, and antibody effector functions are required.
- IgG2 and IgG4 isotypes may be used when the humanised antibody molecule is intended for therapeutic purposes and antibody effector functions are not required, e.g. for simple blocking of lymphokine activity.
- the remainder of the antibody molecules need not comprise only protein sequences from immunoglobulins.
- a gene may be constructed in which a DNA sequence encoding part of a human immunoglobulin chain is fused to a DNA sequence encoding the amino acid sequence of a functional polypeptide such as an effector or reporter molecule.
- the CDR-grafted antibody heavy and light chain and antibody molecule products are produced by recombinant DNA technology.
- the invention also includes DNA sequences coding for the CDR-grafted heavy and light chains, cloning and expression vectors containing the DNA sequences, host cells transformed with the DNA sequences and processes for producing the CDR-grafted chains and antibody molecules comprising expressing the DNA sequences in the transformed host cells.
- the DNA sequences which encode the donor amino acid sequence may be obtained by methods well known in the art.
- the donor coding sequences may be obtained by genomic cloning, or cDNA cloning from suitable hybridoma cell lines. Positive clones may be screened using appropriate probes for the heavy and light chain genes in question. Also PCR cloning may be used.
- DNA coding for acceptor e.g. human acceptor
- sequences may be obtained in any appropriate way.
- DNA sequences coding for preferred human acceptor frameworks such as KOL, REI, EU and NEWM, are widely available to workers in the art.
- DNA sequences coding for the CDR-grafted products may be synthed completely or in part using oligonucleotide synthesis techniques. Site-directed mutagenesis and polymerase chain reaction (PCR) techniques may be used as appropriate. For example oligonucleotide directed synthesis as described by Jones et al (ref. 20) may be used. Also oligonucleotide directed mutagenesis of a pre-existing variable region as, for example, described by Verhoeyen et al (ref. 5) or Riechmann et al (ref. 6) may be used. Also enzymatic filling in of gapped oligonucleotides using T 4 DNA polymerase as, for example, described by Queen et al (ref. 9) may be used.
- PCR polymerase chain reaction
- Any suitable host cell/vector system may be used for expression of the DNA sequences coding for the CDR-grafted heavy and light chains.
- Bacterial e.g. E. coli, and other microbial systems may be used, in particular for expression of antibody fragments such as FAb and (Fab′) 2 fragments, and especially FV fragments and single chain antibody fragments e.g. single chain FVs.
- Eucaryotic e.g. mammalian host cell expression systems may be used for production of larger CDR-grafted antibody products, including complete antibody molecules.
- Suitable mammalian host cells include CHO cells and myeloma or hybridoma cell lines.
- the present invention provides a process for producing a CDR-grafted antibody product comprising:
- the CDR-grafted product may comprise only heavy or light chain derived polypeptide, in which case only a heavy chain or light chain polypeptide coding sequence is used to transfect the host cells.
- the cell line may be transfected with two vectors, the first vector may contain an operon encoding a light chain-derived polypeptide and the second vector containing an operon encoding a heavy chain-derived polypeptide.
- the vectors are identical, except in so far as the coding sequences and selectable markers are concerned, so as to ensure as far as possible that each polypeptide chain is equally expressed.
- a single vector may be used, the vector including the sequences encoding both light chain- and heavy chain-derived polypeptides.
- the DNA in the coding sequences for the light and heavy chains may comprise cDNA or genomic DNA or both. However, it is preferred that the DNA sequence encoding the heavy or light chain comprises at least partially, genomic DNA, preferably a fusion of cDNA and genomic DNA.
- the present invention is applicable to antibodies of any appropriate specificity.
- the invention may be applied to the humanisation of non-human antibodies which are used for in vivo therapy or diagnosis.
- the antibodies may be site-specific antibodies such as tumour-specific or cell surface-specific antibodies, suitable for use in in vivo therapy or diagnosis, e.g. tumour imaging.
- cell surface-specific antibodies are anti-T cell antibodies, such as anti-CD3, and CD4 and adhesion molecules, such as CR3, ICAM and ELAM.
- the antibodies may have specificity for interleukins (including lymphokines, growth factors and stimulating factors), hormones and other biologically active compounds, and receptors for any of these.
- the antibodies may have specificity for any of the following: Interferons ⁇ , ⁇ , ⁇ or ⁇ , IL1, IL2, IL3, or IL4, etc., TNF, GCSF, GMCSF, EPO, hGH, or insulin, etc.
- the present invention also includes therapeutic and diagnostic compositions comprising the CDR-grafted products of the invention and uses of such compositions in therapy and diagnosis.
- the invention provides a therapeutic or diagnostic composition
- a therapeutic or diagnostic composition comprising a CDR-grafted antibody heavy or light chain or molecule according to previous aspects of the invention in combination with a pharmaceutically acceptable carrier, diluent or excipient.
- the invention provides a method of therapy or diagnosis comprising administering an effective amount of a CDR-grafted antibody heavy or light chain or molecule according to previous aspects of the invention to a human or animal subject.
- Heavy chain CDR1 residues 26-35
- CDR2 residues 50-65
- CDR3 residues 95-102
- Light chain CDR1 residues 24-34
- CDR2 residues 50-56
- CDR3 residues 89-97
- the CDRs (Complementary Determining Regions) were defined by Wu and Kabat (refs. 4 and 5) on the basis of an analysis of the variability of different regions of antibody variable regions. Three regions per domain were recognised. In the light chain the sequences are 24-24, 50-56, 89-97 (numbering according to Kabat (ref. 4), Eu Index) inclusive and in the heavy chain the sequences are 31-35, 50-65 and 95-102 inclusive.
- FIGS. 1 - 13 The present invention is now described, by way of example only, with reference to the accompanying FIGS. 1 - 13 .
- FIGS. 1 a and 1 b show DNA and amino acid sequences of the OKT3 light chain (SEQ ID NO: 4 and 5);
- FIGS. 2 a and b show DNA and amino acid sequences of the OKT3 heavy chain (SEQ ID NO: 6 and 7);
- FIG. 3 shows the alignment of the OKT3 light variable region amino acid sequence with that of the light variable region of the human antibody REI (SEQ ID NO: 5 and 8);
- FIG. 4 shows the alignment of the OKT3 heavy variable region amino acid sequence with that of the heavy variable region of the human antibody KOL (SEQ ID NO: 7 and 10);
- FIGS. 5 a-c show the heavy variable region amino acid sequences of OKT3, KOL and various corresponding CDR grafts (SEQ ID NO: 7 and 11-24);
- FIG. 6 shows the light variable region amino acid sequences of OKT3, REI and various corresponding CDR grafts (SEQ ID NO: 5, 8, 9, and 25-28);
- FIG. 7 shows a graph of binding assay results for various grafted OKT3 antibodies'
- FIG. 8 shows a graph of blocking assay results for various grafted OKT3 antibodies
- FIG. 9 shows a similar graph of blocking assay results
- FIGS. 10 a and b show similar graphs for both binding assay and blocking assay results
- FIGS. 11 a and b show further similar graphs for both binding assay and blocking assay results
- FIG. 12 shows a graph of competition assay results for a minimally grafted OKT3 antibody compared with the OKT3 murine reference standard
- FIG. 13 shows a similar graph of competition assay results comparing a fully grafted OKT3 antibody with the murine reference standard.
- Hybridoma cells producing antibody OKT3 were provided by Ortho (seedlot 4882.1) and were grown up in antibiotic free Dulbecco's Modified Eagles Medium (DMEM) supplemented with glutamine and 5% foetal calf serum, and divided to provide both an overgrown supernatant for evaluation and cells for extraction of RNA.
- the overgrown supernatant was shown to contain 250 ug/mL murine IgG2a/kappa antibody.
- the supernatant was negative for murine lambda light chain and IgG1, IgG2b, IgG3, IgA and IgM heavy chain. 20 mL of supernatant was assayed to confirm that the antibody present was OKT3.
- the assembly assay for intact mouse IgG in COS cell supernatants was an ELISA with the following format:
- the assembly assay for chimeric or CDR-grafted antibody in COS cell supernatants was an ELISA with the following format:
- HUT 78 cells human T cell line, CD3 positive
- Monolayers of HUT 78 cells were prepared onto 96 well ELISA plates using poly-L-lysine and glutaraldehyde. Samples were added to the monolayers for 1 hour at room temperature.
- HPB-ALL human peripheral blood acute lymphocytic leukemia
- Binding was measured by the following procedure: HPB-ALL cells were harvested from tissue culture. Cells were incubated at 4° C. for 1 hour with various dilutions of test antibody, positive control antibody, or negative control antibody. The cells were washed once and incubated at 4° C. for 1 hour with an FITC-labelled goat anti-human IgG (Fc-specific, mouse absorbed). The cells were washed twice and analysed by cytofluorography.
- Chimeric OKT3 was used as a positive control for direct binding.
- the HPB-ALL cells were incubated at 4° C. for 1 hour with various dilutions of test antibody or control antibody.
- a fixed saturating amount of FITC OKT3 was added.
- the samples were incubated for 1 hour at 4° C., washed twice and analysed by cytofluorography.
- FITC-labelled OKT3 was used as a positive control to determine maximum binding.
- Unlabelled murine OKT3 served as a reference standard for blocking.
- Negative controls were unstained cells with or without mock-transfected cell supernatant.
- the ability of the CDR-grafted OKT3 light chain to bind CD3-positive cells and block the binding of murine OKT3 was initially tested in combination with the chimeric OKT3 heave chain.
- the chimeric OKT3 heavy chain is composed of the murine OKT3 variable region and the human IgG4 constant region.
- the chimeric heavy chain gene is expressed in the same expression vector used for the CDR-grafted genes.
- the CDR-grafted light chain expression vector and the chimeric heavy chain expression vector were co-transfected into COS cells.
- the fully chimeric OKT3 antibody (chimeric light chain and chimeric heavy chain) was found to be fully capable of binding to CD3 positive cells and blocking the binding of murine OKT3 to these cells.
- the relative binding affinities of CDR-grafted anti-CD3 monoclonal antibodies were determined by competition binding (ref. 6) using the HPB-ALL human T cell line as a source of CD3 antigen, and fluorescein-conjugated murine OKT3 (Fl-OKT3) of known binding affinity as a tracer antibody.
- the binding affinity of Fl-OKT3 tracer antibody was determined by a direct binding assay in which increasing amounts of Fl-OKT3 were incubated with HPB-ALL (5 ⁇ 10 5 ) in PBS with 5% foetal calf serum for 60 min. at 4° C.
- Fluorescence intensity per antibody molecule was determined by using microbeads which have a predetermined number of mouse IgG antibody binding sites (Simply Cellular beads, Flow Cytometry Standards). F/P equals the fluorescence intensity of beads saturated with Fl-OKT3 divided by the number of binding sites per bead. The amount of bound and free Fl-OKT3 was calculated from the mean fluorescence intensity per cell, and the ratio of bound/free was plotted against the number of moles of antibody bound. A linear fit was used to determine the affinity of binding (absolute value of the slope).
- OKT3 producing cells were grown as described above and 1.2 ⁇ 10 9 cells harvested and mRNA extracted using the guanidinium/LiCl extraction procedure.
- cDNA was prepared by priming from Oligo-dT to generate full length cDNA. The cDNA was methylated and EcoR1 linkers added for cloning.
- the cDNA library was ligated to pSP65 vector DNA which had been EcoR1 cut and the 5′ phosphate groups removed by calf intestinal phosphatase (EcoR1/CIP). The ligation was used to transform high transformation efficiency Escherichia coli (E. coli) HB101.
- a cDNA library was prepared. 3600 colonies were screened for the light chain and 10000 colonies were screened for the heavy chain.
- E. coli colonies positive for either heavy or light chain probes were identified by oligonucleotide screening using the oligonucleotides: 5′ TCCAGATGTTAACTGCTCAC (SEQ ID NO: 1) for the light chain, which is complementary to a sequence in the mouse kappa constant region, and 5′ CAGGGGCCAGTGGATGGATAGAC (SEQ ID NO: 2) for the heavy chain which is complementary to a sequence in the mouse IgG2a constant CH1 domain region. 12 light chain and 9 heavy chain clones were identified and taken for second round screening. Positive clones from the second round of screening were grown up and DNA prepared. The sizes of the gene inserts were estimated by gel electrophoresis and inserts of a size capable of containing a full length cDNA were subcloned into M13 for DNA sequencing.
- FIGS. 1 (a) and 2 (a) DNA sequence for the 5′ untranslated regions, signal sequences, variable regions and 3′ untranslated regions of full length cDNAs [ FIGS. 1 (a) and 2 (a) ] were obtained and the corresponding amino acid sequences predicted [( FIGS. 1 (b) and 2 (b) ].
- FIG. 1 (a) the untranslated DNA regions are shown in uppercase, and in both FIGS. 1 and 2 the signal sequences are underlined.
- Celltech expression vectors are based on the plasmid pEE6hCMV (ref. 14).
- a polylinker for the insertion of genes to be expressed has been introduced after the major immediate early promoter/enhancer of the human Cytomegalovirus (hCMV).
- Marker genes for selection of the plasmid in transfected eukaryotic cells can be inserted as BamH1 cassettes in the unique BamH1 site of pEE6 hCMV; for instance, the neo marker to provide pEE6 hCMV neo. It is usual practice to insert the neo and gpt markers prior to insertion of the gene of interest, whereas the GS marker is inserted last because of the presence of internal EcoR1 sites in the cassette.
- the selectable markers are expressed from the SV40 late promoter which also provides an origin of replication so that the vectors can be used for expression in the COS cell transient expression system.
- mice sequences were excised from the M13 based vectors described above as EcoR1 fragments and cloned into either pEE6-hCMV-neo for the heavy chain and into EE6-hCMV-gpt for the light chain to yield vectors pJA136 and pJA135 respectively.
- Plasmids pJA135 and pJA136 were co-transfected into COS cells and supernatant from the transient expression experiment was shown to contain assembled antibody which bound to T-cell enriched lymphocytes. Metabolic labelling experiments using 35 S methionine showed expression and assembly of heavy and light chains.
- variable domain sequence A restriction site near the 3′ end of the variable domain sequence is identified and used to attach an oligonucleotide adapter coding for the remainder of the mouse variable region and a suitable restriction site for attachment to the constant region of choice.
- the mouse light chain cDNA sequence contains an Aval site near the 3′ end of the variable region [ FIG. 1 (a) ].
- the majority of the sequence of the variable region was isolated as a 396 bp. EcoR1-Aval fragment.
- An oligonucleotide adapter was designed to replace the remainder of the 3′ region of the variable region from the Aval site and to include the 5′ residues of the human constant region up to and including a unique Nar1 site which had been previously engineered into the constant region.
- Hind111 site was introduced to act as a marker for insertion of the linker.
- the linker was ligated to the V L fragment and the 413 bp EcoR1-Nar1 adapted fragment was purified from the ligation mixture.
- the constant region was isolated as an Nar1-BamH1 fragment from an M13 clone NW361 and was ligated with the variable region DNA into an EcoR1/BamH1/C1P pSP65 treated vector in a three way reaction to yield plasmid JA143. Clones were isolated after transformation into E. coli and the linker and junction sequences were confirmed by the presence of the Hind111 site and by DNA sequencing.
- the construction of the first chimeric light chain gene produces a fusion of mouse and human amino acid sequences at the variable-constant region junction.
- the amino acids at the chimera junction are: . . . Leu-Glu-Ile-Asn-Arg(SEQ ID NO: 3)/-/Thr-Val-Ala-Ala
- variable region fragment was isolated as a 376 bp EcoR1-Aval fragment.
- the oligonucleotide linker was ligated to Nar1 cut pNW361 and then the adapted 396 bp constant region was isolated after recutting the modified pNW361 with EcoR1.
- the variable region fragment and the modified constant region fragment were ligated directly into EcoR1/C1P treated pEE6hCMVneo to yield pJA137. Initially all clones examined had the insert in the incorrect orientation. Therefore, the insert was re-isolated and recloned to turn the insert round and yield plasmid pJA141. Several clones with the insert in the correct orientation were obtained and the adapter sequence of one was confirmed by DNA sequencing
- the constant region isotype chosen for the heavy chain was human IgG4.
- the heavy chain cDNA sequence showed a Ban1 site near the 3′ end of the variable region [ FIG. 2 (a) ].
- the majority of the sequence of the variable region was isolated as a 426 bp. EcoR1/C1P/Ban1 fragment.
- An oligonucleotide adapter was designated to replace the remainder of the 3′ region of the variable region from the Ban1 site up to and including a unique HindIII site which had been previously engineered into the first two amino acids of the constant region.
- the linker was ligated to the V H fragment and the EcoR1-Hind111 adapted fragment was purified from the ligation mixture.
- variable region was ligated to the constant region by cutting pJA91 with EcoR1 and Hind111 removing the intron fragment and replacing it with the V H to yield pJA142. Clones were isolated after transformation in E. coli JM101 and the linker and junction sequences were confirmed by DNA sequencing. (N.B. The Hind111 site is lost on cloning).
- the chimeric light chain (version 1) was removed from pJA143 as an EcoR1 fragment and cloned into EcoR1/C1P treated pEE6hCMVneo expression vector to yield pJA145. Clones with the insert in the correct orientation were identified by restriction mapping.
- the chimeric light chain (version 2) was constructed as described above.
- the chimeric heavy chain gene was isolated from pJA142 as a 2.5 Kbp EcoR1/BamH1 fragment and cloned into the EcoR1/Bc11/C1P treated vector fragment of a derivative of pEE6hCMVgpt to yield plasmid pJA144.
- GS versions of pJA141 and pJA144 were constructed by replacing the neo and gpt cassettes by a BamH1/Sa11/C1P treatment of the plasmids, isolation of the vector fragment and ligation to a GS-containing fragment from the plasmid pRO49 to yield the light chain vector pJA179 and the heavy chain vector pJA180.
- plasmids were made by treating pJA179 or pJA180 with BamH1/C1P and ligating in a Bg111/Hind111 hCMV promoter cassette along with either the Hind111/BamH1 fragment from pJA141 into pJA180 to give the cH-cL-GS plasmid pJA182 or the Hind111/BamH1 fragment from pJA144 into pJA179 to give the cL-cH-GS plasmid pJA181.
- the chimeric antibody plasmid pJA145 (cL) and pJA144 (cH) were co-transfected into COS cells and supernatant from the transient expression experiment was shown to contain assembled antibody which bound to the HUT 78 human T-cell line. Metabolic labelling experiments using 35 S methionine showed expression and assembly of heavy and light chains. However the light chain mobility seen on reduced gels suggested that the potential glycosylation site was being glycosylated. Expression in COS cells in the presence of tunicamycin showed a reduction in size of the light chain to that shown for control chimeric antibodies and the OKT3 mouse light chain. Therefore JA141 was constructed and expressed.
- Stable cell lines have been prepared from plasmids pJA141/pJA144 and from pJA179/pJA180, pJA181 and pJA182 by transfection into CHO cells.
- the approach taken was to try to introduce sufficient mouse residues into a human variable region framework to generate antigen binding activity comparable to the mouse and chimeric antibodies.
- FIG. 3 shows an alignment of sequences for the human framework region RE1 and the OKT3 light variable region.
- the structural loops (LOOP) and CDRs (KABAT) believed to correspond to the antigen binding region are marked. Also marked are a number of other residues which may also contribute to antigen binding as described in 13.1(c).
- the residue type indicates the spatial location of each residue side chain, derived by examination of resolved structures from X-ray crystallography analysis. The key to this residue type designation is as follows:
- N near to CDR (From X-ray Structures)
- P Packing
- B Buried Non-Packing
- S Service
- E Exposed
- I Interface *—Interface —Packing/Part Exposed ?—Non-CDR Residues which may require to be left as Mouse sequence.
- Residues underlined in FIG. 3 are amino acids.
- RE1 was chosen as the human framework because the light chain is a kappa chain and the kappa variable regions show higher homology with the mouse sequences than a lambda light variable region, e.g. KOL (see below).
- RE1 was chosen in preference to another kappa light chain because the X-ray structure of the light chain has been determined so that a structural examination of individual residues could be made.
- FIG. 4 shows an alignment of sequences for the human framework region KOL and the OKT3 heavy variable region.
- the structural loops and CDRs believed to correspond to the antigen binding region are marked.
- Also marked are a number of other residues which may also contribute to antigen binding as described in 12.1(c).
- the residue type key and other indicators used in FIG. 4 are the same as those used in FIG. 3 .
- KOL was chosen as the heavy chain framework because the X-ray structure has been determined to a better resolution than, for example, NEWM and also the sequence alignment of OKT3 heavy variable region showed a slightly better homology to KOL than to NEWM.
- variable region domains were designed with mouse variable region optimal codon usage [Granthan and Perrin (ref. 15)] and used the B72.3 signal sequences [Whittle et al (ref. 13)].
- the sequences were designed to be attached to the constant region in the same way as for the chimeric genes described above.
- Some constructs contained the “Kozak consensus sequence” [Kozak (ref. 16)] directly linked to the 5′ of the signal sequence in the gene. This sequence motif is believed to have a beneficial role in translation initiation in eukaryotes.
- the sequence may be assembled by using oligonucleotides in a manner similar to Jones et al (ref. 17) or by simultaneously replacing all of the CDRs or loop regions by oligonucleotide directed site specific mutagenesis in a manner similar to Verhoeyen et al (ref. 2). Both strategies were used and a list of constructions is set out in Tables 1 and 2 and FIGS. 4 and 5 a -c. It was noted in several cases that the mutagenesis approach led to deletions and rearrangements in the gene being remodelled, while the success of the assembly approach was very sensitive to the quality of the oligonucleotides.
- Genes were isolated from M13 or SP65 based intermediate vectors and cloned into pEE6hCMVneo for the light chains and pEE6hCMVgpt for the heavy chains in a manner similar to that for the chimeric genes as described above.
- a construct designed to include mouse sequence based on loop length did not lead to active antibody in association with mH or cH.
- a construct designed to include mouse sequence based on Kabat CDRs demonstrated some weak binding in association with mH or cH.
- framework residues 1, 3, 46, 47 were changed from the human to the murine OKT3 equivalents based on the arguments outlined in Section 12.1 antigen binding was demonstrated when both of the new constructs, which were termed 121A and 221A were co-expressed with cH.
- residues 1 and 3 are not major contributing residues as the product of the gL221B gene shows little detectable binding activity in association with cH.
- gH341 gene co-expression of the gH341 gene with cL or mL has been variable and has tended to produce lower amounts of antibody than the cH/cL or mH/mL combinations.
- the kgL221A gene was co-expressed with kgH341, kgH341A or kgH341B.
- kgH221A/kgH341 very little material was produced in a normal COS cell expression.
- kgL221A/kgH341A or kgH221A/kgH341B amounts of antibody similar to gL/cH was produced.
- Antigen binding was detected when kgL221A/kgH341A or kgH221A/kgH341B combinations were expressed.
- the antigen binding was very similar to that of the chimeric antibody.
- CDRs Complementarity Determining Regions
- OKT3 amino acids 89, 90 and 97 are the same between OKT3 and RE1 ( FIG. 3 ).
- constructs based on the loop choice for CDR1 (gL121) and the Kabat choice (gL221) were made and co-expressed with mH or cH no evidence for antigen binding activity could be found for gL121, but trace activity could be detected for the gL221, suggesting that a single extra mouse residue in the grafted variable region could have some detectable effect. Both gene constructs were reasonably well expressed in the transient expression system.
- Additional CDR-grafted heavy chain genes were prepared substantially as described above. With reference to Table 2 the further heavy chain genes were based upon the gh341 (plasmid pJA178) and gH341A (plasmid pJA185) with either mouse OKT3 or human KOL residues at 6, 23, 24, 48, 49, 63, 71, 73, 76, 78, 88 and 91, as indicated.
- the CDR-grafted light chain genes used in these further experiments were gL221, gL221A, gL221B and gL221C as described above.
- the CDR-grafted heavy and light chain genes were co-expressed in COS cells either with one another in various combinations but also with the corresponding murine and chimeric heavy and light chain genes substantially as described above.
- the resultant antibody products were then assayed in binding and blocking assays with HPB-ALL cells as described above.
- FIGS. 7 and 8 The results of the assays for various grafted heavy chains co-expressed with the gL221C light chain are given in FIGS. 7 and 8 (for the JA184, JA185, JA197 and JA198 constructs—see Table 2), in FIG. 9 (for the JA183, JA184, JA185 and JA197 constructs) in FIGS. 10 a and b (for the chimeric, JA185, JA199, JA204, JA205, JA207, JA208 and JA209 constructs) and in FIGS. 11 a and b (for the JA183, JA184, JA185, JA198, JA203, JA205 and JA206 constructs).
- the assay used was as described above in section 3.3.
- the results obtained are given in FIG. 12 for the basic grafted product and in FIG. 13 for the fully grafted product.
- binding and blocking assay results indicate the following:
- the JA198 and JA207 constructs appear to have the best binding characteristics and similar binding abilities, both substantially the same as the chimeric and fully grafted gH341A products. This indicates that positions 88 and 91 and position 76 are not highly critical for maintaining the OKT3 binding ability; whereas at least some of positions 6, 23, 24, 48, 49, 71, 73 and 78 are more important.
- Anti OKT4A CDR-grafted heavy and light chain genes were prepared, expressed and tested substantially as described above in Example 1 for CDR-grafted OKT3.
- the CDR grafting of OKT4A is described in detail in Ortho patent application PCT/GB 90 . . . of even date herewith entitled “Humanised Antibodies”.
- the disclosure of this Ortho patent application PCT/GB 90 . . . is incorporated herein by reference.
- a number of CDR-grafted OKT4 antibodies have been prepared.
- the CDR-grafted OKT4A of choice is the combination of the grafted light chain LCDR2 and the grafted heavy chain HCDR10.
- the human acceptor framework used for the grafted light chains was RE1.
- the preferred LCDR2 light chain has human to mouse changes at positions 33, 34, 38, 49 and 89 in addition to the structural loop CDRs. Of these changed positions, positions 33, 34 and 89 fall within the preferred extended CDRs of the present invention (positions 33 and 34 in CDR1 and position 89 in CDR3).
- the human to murine changes at positions 38 and 49 corresponds to positions at which the amino acid residues are preferably donor murine amino acid residues in accordance with the present invention.
- a comparison of the amino acid sequences of the donor murine light chain variable domain and the RE1 human acceptor light chain variable further reveals that the murine and human residues are identical at all of positions 46, 48 and 71 and at all of positions 2, 4, 6, 35, 36, 44, 47, 62, 64-69, 85, 87, 98, 99 and 101 and 102.
- the amino acid residue at position 58 in LCDR2 is the human RE1 framework residue not the mouse OKT4 residue as would be preferred in accordance with the present invention.
- the human acceptor framework used for the grafted heavy chains was KOL.
- the preferred CDR graft HCDR10 heavy chain has human to mouse changes at positions 24, 35, 57, 58, 60, 88 and 91 in addition to the structural loop CDRs.
- positions 35 (CDR1) and positions 57, 58 and 60 (CDR2) fall within the preferred extended CDRs of the present invention.
- the human to mouse change at position 24 corresponds to a position at which the amino acid residue is a donor murine residue in accordance with the present invention.
- the human to mouse changes at positions 88 and 91 correspond to positions at which the amino acid residues are optionally donor murine residues.
- murine OKT4A and human KOL heavy chain variable amino acid sequences reveals that the murine and human residues are identical at all of positions 23, 49, 71, 73 and 78 and at all of positions 2, 4, 6, 25, 36, 37, 39, 47, 48, 93, 94, 103, 104, 106 and 107.
- OKT4A CDR-grafted heavy chain HCDR10 corresponds to a particularly preferred embodiment according to the present invention.
- a murine antibody, R6-5-D6 (EP 0314863) having specificity for Intercellular Adhesion Molecule 1 (ICAM-1) was CDR-grafted substantially as described above in previous examples. This work is described in greater detail in co-pending application, British Patent Application No. 9009549.8, the disclosure of which is incorporated herein by reference.
- the human EU framework was used as the acceptor framework for both heavy and light chains.
- the CDR-grafted antibody currently of choice is provided by co-expression of grafted light chain gL221A and grafted heavy chain gH341D which has a binding affinity for ICAM 1 of about 75% of that of the corresponding mouse-human chimeric antibody.
- gL221A has murine CDRs at positions 24-34 (CDR1), 50-56 (CDR2) and 89-97 (CDR3).
- CDR1 CDR1
- CDR2 CDR2
- CDR3 CDR3
- framework residues are also the murine amino acid. These residues were chosen after consideration of the possible contribution of these residues to domain packing and stability of the conformation of the antigen binding region.
- the residues which have been retained as mouse are at positions 2, 3, 48 (7), 60, 84, 85 and 87.
- Comparison of the murine anti-ICAM 1 and human EU light chain amino acid sequences reveals that the murine and human residues are identical at positions 46, 58 and 71.
- gH341D has murine CDRs at positions 26-35 (CDR1), 50-56 (CDR2) and 94-100B (CDR3).
- murine residues were used in gH341D at positions 24, 48, 69, 71, 73, 80, 88 and 91.
- Comparison of the murine anti-ICAM 1 and human EU heavy chain amino acid sequences are identical at positions 23, 49 and 78.
- a number of murine anti-TNFa monoclonal antibodies were CDR-grafted substantially as described above in previous examples. These antibodies include the murine monoclonal antibodies designated 61 E71, hTNF1, hTNF3 and 101.4 A brief summary of the CDR-grafting of each of these antibodies is given below.
- the gL221/gH341(6) antibody was assessed in an L929 cell competition assay in which the antibody competes against the TNF receptor on L929 cells for binding to TNF in solution.
- the gL221/gH341(6) antibody was approximately 10% as active as murine 61E71.
- hTNF1 is a monoclonal antibody which recognises an epitope on human TNF-.
- the EU human framework was used for CDR-grafting of both the heavy and light variable domains.
- mice CDR-grafted heavy chain were used at positions 26-35 (CDR1), 50-65 (CDR2) and 95-102 (CDR3).
- Mouse residues were also used in the frameworks at positions 48, 67, 69, 71, 73, 76, 89, 91, 94 and 108.
- Comparison of the TNF1 mouse and EU human heavy chain residues reveals that these are identical at positions 23, 24, 29 and 78.
- mice CDR-grafted light chain In the CDR-grafted light chain (gLhTNF1) mouse CDRs wre used at positions 24-34 (CDR1), 50-56 (CDR2) and 89-97 (CDR3). In addition mouse residues were used in the frameworks at positions 3, 42, 48, 49, 83, 106 and 108. Comparison of the hTNF1 mouse and EU human light chain residues reveals that these are identical at positions 46, 58 and 71.
- the grafted hTNF1 heavy chain was co-expressed with the chimeric light chain and the binding ability of the product compared with that of the chimeric light chain/chimeric heavy chain product in a TNF binding assay.
- the grafted heavy chain product appeared to have binding ability for TNF slightly better than the fully chimeric product.
- a grafted heavy chain/grafted light chain product was co-expressed and compared with the fully chimeric product and found to have closely similar binding properties to the latter product.
- hTNF3 recognises an epitope on human TNF- ⁇ .
- the sequence of hTNF3 shows only 21 differences compared to 61E71 in the light and heavy chain variable regions, 10 in the light chain (2 in the CDRs at positions 50, 96 and 8 in the framework at 1, 19, 40, 45, 46, 76, 103 and 106) and 11 in the heavy chain (3 in the CDR regions at positions 52, 60 and 95 and 8 in the framework at 1, 10, 38, 40, 67, 73, 87 and 105).
- the light and heavy chains of the 61E71 and hTNF3 chimeric antibodies can be exchanged without loss of activity in the direct binding assay.
- 61E71 is an order of magnitude less able to compete with the TNF receptor on L929 cells for TNF-a compared to hTNF3.
- gL221 and gH341(+23, 24, 48, 49 71 and 73 as mouse) genes have been built for hTNF3 and tested and the resultant grafted antibody binds well to TNF-a, but competes very poorly in the L929 assay. It is possible that in this case also the framework residues identified for OKT3 programme may improve the competitive binding ability of this antibody.
- 101.4 is a further murine monoclonal antibody able to recognise human TNF-a.
- the heavy chain of this antibody shows good homology to KOL and so the CDR-grafting has been based on RE1 for the light chain and KOL for the heavy chain.
- Several grafted heavy chain genes have been constructed with conservative choices for the CDR's (gH341) and which have one or a small number of non-CDR residues at positions 73, 78 or 77-79 inclusive, as the mouse amino acids. These have been co-expressed with cL or gL221. In all cases binding to TNF equivalent to the chimeric antibody is seen and when co-expressed with cL the resultant antibodies are able to compete well in the L929 assay. However, with gL221 the resultant antibodies are at least an order of magnitude less able to compete for TNF against the TNF receptor on L929 cells.
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Abstract
Description
- 1 and 3,
- 72 and 76,
- 69 (if 48 is different between donor and acceptor),
- 38 and 46 (if 48 is the donor residue),
- 80 and 20 (if 69 is the donor residue),
- 67,
- 82 and 18 (if 67 is the donor residue),
- 91,
- 88, and
- any one or more of 9, 11, 41, 87, 108, 110 and 112.
- 1 and 3,
- 63,
- 60 (if 60 and 54 are able to form at potential saltbridge),
- 70 (if 70 and 24 are able to form a potential saltbridge),
- 73 and 21 (if 47 is different between donor and acceptor),
- 37 and 45 (if 47 is different between donor and acceptor),
- and
- any one or more of 10, 12, 40, 80, 103 and 105.
- (a) producing in an expression vector an operon having a DNA sequence which encodes an antibody heavy chain according to the first aspect of the invention;
and/or - (b) producing in an expression vector an operon having a DNA sequence which encodes a complementary antibody light chain according to the second or third aspect of the invention;
- (c) transfecting a host cell with the or each vector; and
- (d) culturing the transfected cell line to produce the CDR-grafted antibody product.
- 1. As a first step donor residues are substituted for acceptor residues in the CDRs. For this purpose the CDRs are preferably defined as follows:
Heavy chain | CDR1: | residues 26-35 | |
CDR2: | residues 50-65 | ||
CDR3: | residues 95-102 | ||
Light chain | CDR1: | residues 24-34 | |
CDR2: | residues 50-56 | ||
CDR3: | residues 89-97 | ||
- The positions at which donor residues are to be substituted for acceptor in the framework are then chosen as follows, first of all with respect to the heavy chain and subsequently with respect to the light chain.
2. Heavy Chain - 2.1 Choose donor residues at all of
positions positions - 2.2 Check that the following have the same amino acid in donor and acceptor sequences, and if not preferably choose the donor: 2, 4, 6, 25, 36, 37, 39, 47, 48, 93, 94, 103, 104, 106 and 107.
- 2.3 To further optimise affinity consider choosing donor residues at one, some or any of:
- i. 1, 3
- ii. 72, 76
- iii. If 48 is different between donor and acceptor sequences, consider 69
- iv. If at 48 the donor residue is chosen, consider 38 and 46
- v. If at 69 the donor residue is chosen, consider 80 and then 20
- vi. 67
- vii. If at 67 the donor residue is chosen, consider 82 and then 18
- viii. 91
- ix. 88
- x. 9, 11, 41, 87, 108, 110, 112
3. Light Chain
- 3.1 Choose donor at 46, 48, 58 and 71
- 3.2 Check that the following have the same amino acid in donor and acceptor sequences, if not preferably choose donor:
- 2, 4, 6, 35, 38, 44, 47, 49, 62, 64-69 inclusive, 85, 87, 98, 99, 101 and 102
- 3.3 To further optimise affinity consider choosing donor residues at one, some or any of:
- i. 1,3
- ii. 63
- iii. 60, if 60 and 54 are able to form potential saltbridge
- iv. 70 and 24 are able to form potential saltbridge
- v. 73, and 21 if 47 is different between donor and acceptor
- vi. 37, and 45 if 47 is different between donor and acceptor
- vii. 10, 12, 40, 80, 103, 105
Rationale
- 2.1 Surface residues near CDR [all numbering as in Kabat et al (ref. 7)].
- 2.1.1. Heavy Chain—Key residues are 23, 71 and 73. Other residues which may contribute to a lesser extent are 1, 3 and 76. Finally 25 is usually conserved but the murine residue should be used if there is a difference.
- 2.1.2 Light Chain—Many residues close to the CDRs, e.g. 63, 65, 67 and 69 are conserved. If conserved none of the surface residues in the light chain are likely to have a major effect. However, if the murine residue at these positions is unusual, then it would be of benefit to analyse the likely contribution more closely. Other residues which may also contribute to binding are 1 and 3, and also 60 and 70 if the residues at these positions and at 54 and 24 respectively are potentially able to form a salt bridge i.e. 60+54; 70+24.
- 2.2 Packing residues near the CDRs.
- 2.2.1. Heavy Chain—Key residues are 24, 49 and 78. Other key residues would be 36 if not a tryptophan, 94 if not an arginine, 104 and 106 if not glycines and 107 if not a threonine. Residues which may make a further contribution to stable packing of the heavy chain and hence improved affinity are 2, 4, 6, 38, 46, 67 and 69. 67 packs against the CDR residue 63 and this pair could be either both mouse or both human. Finally, residues which contribute to packing in this region but from a longer range are 18, 20, 80, 82 and 86. 82 packs against 67 and in
turn 18 packs against 82. 80 packs against 69 and inturn 20 packs against 80. 86 forms an H bond network with 38 and 46. Many of the mouse-human differences appear minor e.g. Leu-Ile, but could have an minor impact on correct packing which could translate into altered positioning of the CDRs. - 2.2.2. Light Chain—Key residues are 48, 58 and 71. Other key residues would be 6 if not glutamine, 35 if not tryptophan, 62 if not phenylalanine or tryosine, 64, 66, 68, 99 and 1010 if not glycines and 102 if not a threonine. Residues which make a further contribution are 2, 4, 37, 45 and 47. Finally
residues - 2.3. Residues at the variable domain interface between heavy and light chains—In both the light and heavy chains most of the non-CDR interface residues are conserved. If a conserved residue is replaced by a residue of different character, e.g. size or charge, it should be considered for retention as the murine residue.
- 2.3.1. Heavy Chain—Residues which need to be considered are 37 if the residue is not a valine but is of larger side chain volume or has a charge or polarity. Other residues are 39 if not a glutamine, 45 if not a leucine, 47 if not a tryptophan, 91 if not a phenylalanine or tyrosine, 93 if not an alanine and 103 if not a tryptophan.
Residue 89 is also at the interface but is not in a position where the side chain could be of great impact. - 2.3.2. Light Chain—Residues which need to be considered are 36, if not a tyrosine, 38 if not a glutamine, 44 if not a proline, 46, 49 if not a tyrosine,
residue 85, residue 87 if not a tyrosine and 98 if not a phenylalanine. - 2.4. Variable-Constant region interface—The elbow angle between variable and constant regions may be affected by alterations in packing of key residues in the variable region against the constant region which may affect the position of VL and VH with respect to one another. Therefore it is worth noting the residues likely to be in contact with the constant region. In the heavy chain the surface residues potentially in contact with the variable region are conserved between mouse and human antibodies therefore the variable region contact residues may influence the V-C interaction. In the light chain the amino acids found at a number of the constant region contact points vary, and the V & C regions are not in such close proximity as the heavy chain. Therefore the influences of the light chain V-C interface may be minor.
- 2.4.1. Heavy Chain—Contact residues are 7, 11, 41, 87, 108, 110, 112.
- 2.4.2. Light Chain—In the light chain potentially contacting residues are 10, 12, 40, 80, 83, 103 and 105.
(SEQ ID NO:3) |
Leu-Glu-Ile-Asn-Arg/ -/Thr-Val-Ala -Ala | |
VARIABLE CONSTANT |
This arrangement of sequence introduces a potential site for Asparagine (Asn) linked (N-linked) glycosylation at the V-C junction. Therefore, a second version of the chimeric light chain oligonucleotide adapter was designed in which the threonine (Thr), the first amino acid of the human constant region, was replaced with the equivalent amino acid from the mouse constant region, Alanine (Ala).
-
- (a) By examination of antibody X-ray crystal structures the antigen binding surface can be predominantly located on a series of loops, three per domain, which extend from the B-barrel framework.
- (b) By analysis of antibody variable domain sequences regions of hypervariability [termed the Complementarity Determining Regions (CDRs) by Wu and Kabat (ref. 5)] can be identified. In the most but not all cases these CDRs correspond to, but extend a short way beyond, the loop regions noted above.
- (c) Residues not identified by (a) and (b) may contribute to antigen binding directly or indirectly by affecting antigen binding site topology, or by inducing a stable packing of the individual variable domains and stabilising the inter-variable domain interaction. These residues may be identified either by superimposing the sequences for a given antibody on a known structure and looking at key residues for their contribution, or by sequence alignment analysis and noting “idiosyncratic” residues followed by examination of their structural location and likely effects.
12.1.1. Light Chain
N—near to CDR (From X-ray Structures) | |
P—Packing | B—Buried Non-Packing |
S—Surface | E—Exposed |
I—Interface | *—Interface |
—Packing/Part Exposed | |
?—Non-CDR Residues which may require | |
to be left as Mouse sequence. | |
TABLE 1 |
CDR-GRAFTED GENE CONSTRUCTS |
METHOD OF | KOZAK SEQUENCE |
CODE | MOUSE SEQUENCE CONTENT | CONSTRUCTION | − | + |
LIGHT CHAIN ALL HUMAN FRAMEWORK RE1 |
121 | 26-32, 50-56, 91-96 inclusive | SDM and gene assembly | + | n.d. |
121A | 26-32, 50-56, 91-96 inclusive | Partial gene assembly | n.d. | + |
+1, 3, 46, 47 | ||||
121B | 26-32, 50-56, 91-96 inclusive | Partial gene assembly | n.d. | + |
+46, 47 | ||||
221 | 24-24, 50-56, 91-96 inclusive | Partial gene assembly | + | + |
221A | 24-34, 50-56, 91-96 inclusive | Partial gene assembly | + | + |
+1, 3, 46, 47 | ||||
221B | 24-34, 50-56, 91-96 inclusive | Partial gene assembly | + | + |
+1, 3 | ||||
221C | 24-34, 50-56, 91-96 inclusive | Partial gene assembly | + | + |
HEAVY CHAIN ALL HUMAN FRAMEWORK KOL |
121 | 26-32, 50-56, 95-100B inclusive | Gene assembly | n.d | + |
131 | 26-32, 50-58, 95-100B inclusive | Gene assembly | n.d. | + |
141 | 26-32, 50-65, 95-100B inclusive | Partial gene assembly | + | n.d. |
321 | 26-35, 50-56, 95-100B inclusive | Partial gene assembly | + | n.d. |
331 | 26-35, 50-58, 95-100B inclusive | Partial gene assembly | + | |
Gene assembly | + | |||
341 | 26-35, 50-65, 95-100B inclusive | SDM | + | |
Partial gene assembly | + | |||
341A | 26-35, 50-65, 95-100B inclusive | Gene assembly | n.d. | + |
+6, 23, 24, 48, 49, 71, 73, 76, | ||||
78, 88, 91 (+63 = human) | ||||
341B | 26-35, 50-65, 95-100B inclusive | Gene assembly | n.d. | + |
+48, 49, 71, 73, 76, 78, 88, 91 | ||||
(+63 + human) (SEQ ID NO:8-28) | ||||
KEY | ||||
n.d. not done | ||||
SDM Site directed mutagenesis | ||||
Gene assembly Variable region assembled entirely from oligonucleotides | ||||
Partial gene assembly Variable region assembled by combination of restriction fragments either from other genes originally created by SDM and gene assembly or by oligonucleotide assembly of part of the variable region and reconstruction with restriction fragments from other genes originally created by SDM and gene assembly |
14. Expression of CDR-Grafted Genes
14.1. Production of Antibody Consisting of Grafted Light (gL) Chains with Mouse Heavy (mH) or Chimeric Heavy (cH) Chains
TABLE 2 |
OKT3 HEAVY |
1. gH341 and derivatives |
RES NUM | 6 23 24 48 49 63 71 73 76 78 88 91 | |
OKT3vh | Q K A I G F T K S A A Y | |
gH341 | E S S V A F R N N L G F | JA178 |
gH341A | Q K A I G V T K S A A Y | JA185 |
gH341E | Q K A I G V T K S A G G | JA198 |
gH341* | Q K A I G V T K N A G F | JA207 |
gH341* | Q K A I G V R N N A G F | JA209 |
gH341D | Q K A I G V T K N L G F | JA197 |
gH341* | Q K A I G V R N N L G F | JA199 |
gH341C | Q K A V A F R N N L G F | JA184 |
gH341* | Q S A I G V T K S A A Y | JA203 |
gH341* | E S A I G V T K S A A Y | JA205 |
gH341B | E S S I G V T K S A A Y | JA183 |
gH341* | Q S A I G V T K S A G F | JA204 |
gH341* | E S A I G V T K S A G F | JA206 |
gH341* | Q S A I G V T K N A G F | JA208 |
KOL | E S S V A R N N L G F | |
OKT3 LIGHT CHAIN CDR GRAFTS |
2. gL221 and derivatives |
(SEQ ID NO:7, 10, and 11-24) |
|
1 3 46 47 | |
OKT3v1 | Q V R W | |
GL221 | D Q L L | DA221 |
gL221A | Q V R W | DA221A |
gL221B | Q V L L | DA221B |
GL221C | D Q R W | DA221C |
RE1 | D Q L L | (SEQ ID NO:5, 8, 9, and 25-28) |
- (a) B72.3 Light Chain
- CDR-grafting of this light chain was accomplished by direct transfer of the murine CDRs into the framework of the human light chain RE1. The regions transferred were:
| Residues | ||
1 | 24-34 | ||
2 | 50-56 | ||
3 | 90-96 | ||
-
- The activity of the resulting grafted light chain was assessed by co-expression in COS cells, of genes for the combinations:
- B72.3 cH/B72.3 cL
- and
- B72.3 cH/B72.3 gL
- Supernatants were assayed for antibody concentration and for the ability to bind to microtiter plates coated with mucin. The results obtained indicated that, in combination with the B72.3 cH chain, B72.3 cL and B72.3 gL had similar binding properties.
- The activity of the resulting grafted light chain was assessed by co-expression in COS cells, of genes for the combinations:
- (b) B72.3 heavy chain
- i. Choice of framework
- At the outset it was necessary to make a choice of human framework. Simply put, the question was as follows: Was it necessary to use the framework regions from an antibody whose crystal structure was known or could the choice be made on some other criteria?
- For B72.3 heavy chain, it was reasoned that, while knowledge of structure was important, transfer of the CDRs from mouse to human frameworks might be facilitated if the overall homology between the donor and receptor frameworks was maximised. Comparison of the B72.3 heavy chain sequence with those in Kabat (ref. 4) for human heavy chains showed clearly that B72.3 had poor homology for KOL and NEWM (for which crystal structures are available) but was very homologous to the heavy chain for EU.
- On this basis, EU was chosen for the CDR-grafting and the following residues transferred as CDRs.
| Residues | ||
1 | 27-36 | ||
2 | 50-63 | ||
3 | 93-102 | ||
-
- ii. Results with grafted heavy chain genes
- Expression of grafted heavy chain genes containing all human framework regions with either gL or cL genes produced a grafted antibody with little ability to bind to mucin. The grafted antibody had about 1% the activity of the chimeric antibody. In these experiments, however, it was noted that the activity of the grafted antibody could be increased to ˜10% of B72.3 by exposure to pHs of 2-3.5.
- This observation provided a clue as to how the activity of the grafted antibody could be improved without acid treatment. It was postulated that acid exposure brought about the protonation of an acidic residue (pKa of aspartic acid=3.86 and of glutamine acid=4.25) which in turn caused a change in structure of the CDR loops, or allowed better access of antigen. From comparison of the sequences of B72.3 (ref. 13) and EU (refs. 4 and 5), it was clear that, in going from the mouse to human frameworks, only two positions had been changed in such a way that acidic residues had been introduced. These positions are at residues 73 and 81, where K to E and Q to E changes had been made, respectively.
- Which of these positions might be important was determined by examining the crystal structure of the KOL antibody. In KOL heavy chain, position 81 is far removed from either of the CDR loops.
- Position 73, however, is close to both
CDRs - iii. Framework changes in B72.3 gH gene
- On the basis of the above analysis, E73 was mutated to a lysine (K). It was found that this change had a dramatic effect on the ability of the grafted Ab to bind to mucin. Further the ability of the grafted B72.3 produced by the mutated gH/gL combination to bind to mucin was similar to that of the B72.3 chimeric antibody.
- iv. Other framework changes
- In the course of the above experiments, other changes were made in the heavy chain framework regions. Within the accuracy of the assays used, none of the changes, either along or together, appeared beneficial.
- v. Other
- All assays used measured the ability of the grafted Ab to bind to mucin and, as a whole, indicated that the single framework change at position 73 is sufficient to generate an antibody with similar binding properties to B72.3.
- Comparison of the B72.3 murine and EU heavy chain sequences reveals that the mouse and human residues are identical at
positions - Thus the mutated CDR-grafted B72.3 heavy chain corresponds to a preferred embodiment of the present invention.
- 1. Kohler & Milstein, Nature, 265, 295-497, 1975.
- 2. Chatenoud et al, (1986), J. Immunol. 137, 830-838.
- 3. Jeffers et al, (1986), Transplantation, 41, 572-578.
- 4. Begent et al, Br. J. Cancer 62: 487 (1990).
- 5. Verhoeyen et al, Science, 239, 1534-1536, 1988.
- 6. Riechmann et al, Nature, 332, 323-324, 1988.
- 7. Kabat, E. A., Wu, T. T., Reid-Miller, M., Perry, H. M., Gottesman, K. S., 1987, in Sequences of Proteins of Immunological Interest, US Department of Health and Human Services, NIH, USA.
- 8. Wu, T. T., and Kabat, E. A., 1970, J. Exp. Med. 132 211-250.
- 9. Queen et al, (1989), Proc. Natl. Acad. Sci. USA, 86, 10029-10033 and WO 90/07861
- 10. Maniatis et al, Molecular Cloning, Cold Spring Harbor, N.Y., 1989.
- 11. Primrose and Old, Principles of Gene Manipulation, Blackwell, Oxford, 1980.
- 12. Sanger, F., Nicklen, S., Coulson, A. R., 1977, Proc. Natl. Acad. Sci. USA, 74 5463
- 13. Kramer, W., Drutsa, V., Jansen, H. -W., Kramer, B., Plugfelder, M., Fritz, H. -J., 1984, Nucl. Acids Res. 12, 9441
- 14. Whittle, N., Adair, J., Lloyd, J. C., Jenkins, E., Devine, J., Schlom, J., Raubitshek, A., Colcher, D., Bodmer, M., 1987,
Protein Engineering 1, 499. - 15. Sikder, S. S., Akolkar, P. N., Kaledas, P. M., Morrison, S. L., Kabat, E. A., 1985, J. Immunol. 135, 4215.
- 16. Wallick, S. C., Kabat, E. A., Morrison, S. L., 1988, J. Exp. Med. 168, 1099
- 17. Bebbington, C. R., Published International Patent Application WO 89/01036.
- 18. Granthan and Perrin 1986,
Immunology Today 7, 160. - 19. Kozak, M., 1987, J. Mol. Biol. 196, 947.
- 20. Jones, T. P., Dear, P. H., Foote, J., Neuberger, M. S., Winter, G., 1986, Nature, 321, 522
- 21. Harwood et al, Br. J. Cancer, 54, 75-82 (1986).
SEQUENCE LISTING |
<160> NUMBER OF SEQ ID NOS: 28 |
<210> SEQ ID NO 1 |
<211> LENGTH: 20 |
<212> TYPE: DNA |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 1 |
tccagatgtt aactgctcac 20 |
<210> SEQ ID NO 2 |
<211> LENGTH: 23 |
<212> TYPE: DNA |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 2 |
caggggccag tggatggata gac 23 |
<210> SEQ ID NO 3 |
<211> LENGTH: 9 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 3 |
Leu Glu Ile Asn Arg Thr Val Ala Ala |
1 5 |
<210> SEQ ID NO 4 |
<211> LENGTH: 943 |
<212> TYPE: DNA |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<220> FEATURE: |
<221> NAME/KEY: CDS |
<222> LOCATION: (18)..(722) |
<400> SEQUENCE: 4 |
gaattcccaa agacaaa atg gat ttt caa gtg cag att ttc agc ttc ctg 50 |
Met Asp Phe Gln Val Gln Ile Phe Ser Phe Leu |
1 5 10 |
cta atc agt gcc tca gtc ata ata tcc aga gga caa att gtt ctc acc 98 |
Leu Ile Ser Ala Ser Val Ile Ile Ser Arg Gly Gln Ile Val Leu Thr |
15 20 25 |
cag tct cca gca atc atg tct gca tct cca ggg gag aag gtc acc atg 146 |
Gln Ser Pro Ala Ile Met Ser Ala Ser Pro Gly Glu Lys Val Thr Met |
30 35 40 |
acc tgc agt gcc agc tca agt gta agt tac atg aac tgg tac cag cag 194 |
Thr Cys Ser Ala Ser Ser Ser Val Ser Tyr Met Asn Trp Tyr Gln Gln |
45 50 55 |
aag tca ggc acc tcc ccc aaa aga tgg att tat gac aca tcc aaa ctg 242 |
Lys Ser Gly Thr Ser Pro Lys Arg Trp Ile Tyr Asp Thr Ser Lys Leu |
60 65 70 75 |
gct tct gga gtc cct gct cac ttc agg ggc agt ggg tct ggg acc tct 290 |
Ala Ser Gly Val Pro Ala His Phe Arg Gly Ser Gly Ser Gly Thr Ser |
80 85 90 |
tac tct ctc aca atc agc ggc atg gag gct gaa gat gct gcc act tat 338 |
Tyr Ser Leu Thr Ile Ser Gly Met Glu Ala Glu Asp Ala Ala Thr Tyr |
95 100 105 |
tac tgc cag cag tgg agt agt aac cca ttc acg ttc ggc tcg ggg aca 386 |
Tyr Cys Gln Gln Trp Ser Ser Asn Pro Phe Thr Phe Gly Ser Gly Thr |
110 115 120 |
aag ttg gaa ata aac cgg gct gat act gca cca act gta tcc atc ttc 434 |
Lys Leu Glu Ile Asn Arg Ala Asp Thr Ala Pro Thr Val Ser Ile Phe |
125 130 135 |
cca cca tcc agt gag cag tta aca tct gga ggt gcc tca gtc gtg tgc 482 |
Pro Pro Ser Ser Glu Gln Leu Thr Ser Gly Gly Ala Ser Val Val Cys |
140 145 150 155 |
ttc ttg aac aac ttc tac ccc aaa gac atc aat gtc aag tgg aag att 530 |
Phe Leu Asn Asn Phe Tyr Pro Lys Asp Ile Asn Val Lys Trp Lys Ile |
160 165 170 |
gat ggc agt gaa cga caa aat ggc gtc ctg aac agt tgg act gat cag 578 |
Asp Gly Ser Glu Arg Gln Asn Gly Val Leu Asn Ser Trp Thr Asp Gln |
175 180 185 |
gac agc aaa gac agc acc tac agc atg agc agc acc ctc acg ttg acc 626 |
Asp Ser Lys Asp Ser Thr Tyr Ser Met Ser Ser Thr Leu Thr Leu Thr |
190 195 200 |
aag gac gag tat gaa cga cat aac agc tat acc tgt gag gcc act cac 674 |
Lys Asp Glu Tyr Glu Arg His Asn Ser Tyr Thr Cys Glu Ala Thr His |
205 210 215 |
aag aca tca act tca ccc att gtc aag agc ttc aac agg aat gag tgt 722 |
Lys Thr Ser Thr Ser Pro Ile Val Lys Ser Phe Asn Arg Asn Glu Cys |
220 225 230 235 |
tagagacaaa ggtcctgaga cgccaccacc agctcccagc tccatcctat cttcccttct 782 |
aaggtcttgg aggcttcccc acaagcgctt accactgttg cggtgctcta aacctcctcc 842 |
cacctccttc tcctcctcct ccctttcctt ggcttttatc atgctaatat ttgcagaaaa 902 |
tattcaataa agtgagtctt tgccttgaaa aaaaaaaaaa a 943 |
<210> SEQ ID NO 5 |
<211> LENGTH: 235 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 5 |
Met Asp Phe Gln Val Gln Ile Phe Ser Phe Leu Leu Ile Ser Ala Ser |
1 5 10 15 |
Val Ile Ile Ser Arg Gly Gln Ile Val Leu Thr Gln Ser Pro Ala Ile |
20 25 30 |
Met Ser Ala Ser Pro Gly Glu Lys Val Thr Met Thr Cys Ser Ala Ser |
35 40 45 |
Ser Ser Val Ser Tyr Met Asn Trp Tyr Gln Gln Lys Ser Gly Thr Ser |
50 55 60 |
Pro Lys Arg Trp Ile Tyr Asp Thr Ser Lys Leu Ala Ser Gly Val Pro |
65 70 75 80 |
Ala His Phe Arg Gly Ser Gly Ser Gly Thr Ser Tyr Ser Leu Thr Ile |
85 90 95 |
Ser Gly Met Glu Ala Glu Asp Ala Ala Thr Tyr Tyr Cys Gln Gln Trp |
100 105 110 |
Ser Ser Asn Pro Phe Thr Phe Gly Ser Gly Thr Lys Leu Glu Ile Asn |
115 120 125 |
Arg Ala Asp Thr Ala Pro Thr Val Ser Ile Phe Pro Pro Ser Ser Glu |
130 135 140 |
Gln Leu Thr Ser Gly Gly Ala Ser Val Val Cys Phe Leu Asn Asn Phe |
145 150 155 160 |
Tyr Pro Lys Asp Ile Asn Val Lys Trp Lys Ile Asp Gly Ser Glu Arg |
165 170 175 |
Gln Asn Gly Val Leu Asn Ser Trp Thr Asp Gln Asp Ser Lys Asp Ser |
180 185 190 |
Thr Tyr Ser Met Ser Ser Thr Leu Thr Leu Thr Lys Asp Glu Tyr Glu |
195 200 205 |
Arg His Asn Ser Tyr Thr Cys Glu Ala Thr His Lys Thr Ser Thr Ser |
210 215 220 |
Pro Ile Val Lys Ser Phe Asn Arg Asn Glu Cys |
225 230 235 |
<210> SEQ ID NO 6 |
<211> LENGTH: 1570 |
<212> TYPE: DNA |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<220> FEATURE: |
<221> NAME/KEY: CDS |
<222> LOCATION: (41)..(1444) |
<400> SEQUENCE: 6 |
gaattcccct ctccacagac actgaaaact ctgactcaac atg gaa agg cac tgg 55 |
Met Glu Arg His Trp |
1 5 |
atc ttt cta ctc ctg ttg tca gta act gca ggt gtc cac tcc cag gtc 103 |
Ile Phe Leu Leu Leu Leu Ser Val Thr Ala Gly Val His Ser Gln Val |
10 15 20 |
cag ctg cag cag tct ggg gct gaa ctg gca aga cct ggg gcc tca gtg 151 |
Gln Leu Gln Gln Ser Gly Ala Glu Leu Ala Arg Pro Gly Ala Ser Val |
25 30 35 |
aag atg tcc tgc aag gct tct ggc tac acc ttt act agg tac acg atg 199 |
Lys Met Ser Cys Lys Ala Ser Gly Tyr Thr Phe Thr Arg Tyr Thr Met |
40 45 50 |
cac tgg gta aaa cag agg cct gga cag ggt ctg gaa tgg att gga tac 247 |
His Trp Val Lys Gln Arg Pro Gly Gln Gly Leu Glu Trp Ile Gly Tyr |
55 60 65 |
att aat cct agc cgt ggt tat act aat tac att cag aag ttc aag gac 295 |
Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Ile Gln Lys Phe Lys Asp |
70 75 80 85 |
aag gcc aca ttg act aca gac aaa tcc tcc agc aca gcc tac atg caa 343 |
Lys Ala Thr Leu Thr Thr Asp Lys Ser Ser Ser Thr Ala Tyr Met Gln |
90 95 100 |
ctg agc agc ctg aca tct gag gac tct gca gtc tat tac tgt gca aga 391 |
Leu Ser Ser Leu Thr Ser Glu Asp Ser Ala Val Tyr Tyr Cys Ala Arg |
105 110 115 |
tat tat gat gat cat tac tgc ctt gac tac tgg ggc caa ggc acc act 439 |
Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp Gly Gln Gly Thr Thr |
120 125 130 |
ctc aca gtc tcc tca gcc aaa aca aca gcc cca tcg gtc tat cca ctg 487 |
Leu Thr Val Ser Ser Ala Lys Thr Thr Ala Pro Ser Val Tyr Pro Leu |
135 140 145 |
gcc cct gtg tgt gga gat aca act ggc tcc tcg gtg act cta gga tgc 535 |
Ala Pro Val Cys Gly Asp Thr Thr Gly Ser Ser Val Thr Leu Gly Cys |
150 155 160 165 |
ctg gtc aag ggt tat ttc cct gag cca gtg acc ttg acc tgg aac tct 583 |
Leu Val Lys Gly Tyr Phe Pro Glu Pro Val Thr Leu Thr Trp Asn Ser |
170 175 180 |
gga tcc ctg tcc agt ggt gtg cac acc ttc cca gct gtc ctg cag tct 631 |
Gly Ser Leu Ser Ser Gly Val His Thr Phe Pro Ala Val Leu Gln Ser |
185 190 195 |
gac ctc tac acc ctc agc agc tca gtg act gta acc tcg agc acc tgg 679 |
Asp Leu Tyr Thr Leu Ser Ser Ser Val Thr Val Thr Ser Ser Thr Trp |
200 205 210 |
ccc agc cag tcc atc acc tgc aat gtg gcc cac ccg gca agc agc acc 727 |
Pro Ser Gln Ser Ile Thr Cys Asn Val Ala His Pro Ala Ser Ser Thr |
215 220 225 |
aag gtg gac aag aaa att gag ccc aga ggg ccc aca atc aag ccc tgt 775 |
Lys Val Asp Lys Lys Ile Glu Pro Arg Gly Pro Thr Ile Lys Pro Cys |
230 235 240 245 |
cct cca tgc aaa tgc cca gca cct aac ctc ttg ggt gga cca tcc gtc 823 |
Pro Pro Cys Lys Cys Pro Ala Pro Asn Leu Leu Gly Gly Pro Ser Val |
250 255 260 |
ttc atc ttc cct cca aag atc aag gat gta ctc atg atc tcc ctg agc 871 |
Phe Ile Phe Pro Pro Lys Ile Lys Asp Val Leu Met Ile Ser Leu Ser |
265 270 275 |
ccc ata gtc aca tgt gtg gtg gtg gat gtg agc gag gat gac cca gat 919 |
Pro Ile Val Thr Cys Val Val Val Asp Val Ser Glu Asp Asp Pro Asp |
280 285 290 |
gtc cag atc agc tgg ttt gtg aac aac gtg gaa gta cac aca gct cag 967 |
Val Gln Ile Ser Trp Phe Val Asn Asn Val Glu Val His Thr Ala Gln |
295 300 305 |
aca caa acc cat aga gag gat tac aac agt act ctc cgg gtg gtc agt 1015 |
Thr Gln Thr His Arg Glu Asp Tyr Asn Ser Thr Leu Arg Val Val Ser |
310 315 320 325 |
gcc ctc ccc atc cag cac cag gac tgg atg agt ggc aag gag ttc aaa 1063 |
Ala Leu Pro Ile Gln His Gln Asp Trp Met Ser Gly Lys Glu Phe Lys |
330 335 340 |
tgc aag gtc aac aac aaa gac ctc cca gcg ccc atc gag aga acc atc 1111 |
Cys Lys Val Asn Asn Lys Asp Leu Pro Ala Pro Ile Glu Arg Thr Ile |
345 350 355 |
tca aaa ccc aaa ggg tca gta aga gct cca cag gta tat gtc ttg cct 1159 |
Ser Lys Pro Lys Gly Ser Val Arg Ala Pro Gln Val Tyr Val Leu Pro |
360 365 370 |
cca cca gaa gaa gag atg act aag aaa cag gtc act ctg acc tgc atg 1207 |
Pro Pro Glu Glu Glu Met Thr Lys Lys Gln Val Thr Leu Thr Cys Met |
375 380 385 |
gtc aca gac ttc atg cct gaa gac att tac gtg gag tgg acc aac aac 1255 |
Val Thr Asp Phe Met Pro Glu Asp Ile Tyr Val Glu Trp Thr Asn Asn |
390 395 400 405 |
ggg aaa aca gag cta aac tac aag aac act gaa cca gtc ctg gac tct 1303 |
Gly Lys Thr Glu Leu Asn Tyr Lys Asn Thr Glu Pro Val Leu Asp Ser |
410 415 420 |
gat ggt tct tac ttc atg tac agc aag ctg aga gtg gaa aag aag aac 1351 |
Asp Gly Ser Tyr Phe Met Tyr Ser Lys Leu Arg Val Glu Lys Lys Asn |
425 430 435 |
tgg gtg gaa aga aat agc tac tcc tgt tca gtg gtc cac gag ggt ctg 1399 |
Trp Val Glu Arg Asn Ser Tyr Ser Cys Ser Val Val His Glu Gly Leu |
440 445 450 |
cac aat cac cac acg act aag agc ttc tcc cgg act ccg ggt aaa 1444 |
His Asn His His Thr Thr Lys Ser Phe Ser Arg Thr Pro Gly Lys |
455 460 465 |
tgagctcagc acccacaaaa ctctcaggtc caaagagaca cccacactca tctccatgct 1504 |
tcccttgtat aaataaagca cccagcaatg cctgggacca tgtaaaaaaa aaaaaaaaag 1564 |
gaattc 1570 |
<210> SEQ ID NO 7 |
<211> LENGTH: 468 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 7 |
Met Glu Arg His Trp Ile Phe Leu Leu Leu Leu Ser Val Thr Ala Gly |
1 5 10 15 |
Val His Ser Gln Val Gln Leu Gln Gln Ser Gly Ala Glu Leu Ala Arg |
20 25 30 |
Pro Gly Ala Ser Val Lys Met Ser Cys Lys Ala Ser Gly Tyr Thr Phe |
35 40 45 |
Thr Arg Tyr Thr Met His Trp Val Lys Gln Arg Pro Gly Gln Gly Leu |
50 55 60 |
Glu Trp Ile Gly Tyr Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Ile |
65 70 75 80 |
Gln Lys Phe Lys Asp Lys Ala Thr Leu Thr Thr Asp Lys Ser Ser Ser |
85 90 95 |
Thr Ala Tyr Met Gln Leu Ser Ser Leu Thr Ser Glu Asp Ser Ala Val |
100 105 110 |
Tyr Tyr Cys Ala Arg Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp |
115 120 125 |
Gly Gln Gly Thr Thr Leu Thr Val Ser Ser Ala Lys Thr Thr Ala Pro |
130 135 140 |
Ser Val Tyr Pro Leu Ala Pro Val Cys Gly Asp Thr Thr Gly Ser Ser |
145 150 155 160 |
Val Thr Leu Gly Cys Leu Val Lys Gly Tyr Phe Pro Glu Pro Val Thr |
165 170 175 |
Leu Thr Trp Asn Ser Gly Ser Leu Ser Ser Gly Val His Thr Phe Pro |
180 185 190 |
Ala Val Leu Gln Ser Asp Leu Tyr Thr Leu Ser Ser Ser Val Thr Val |
195 200 205 |
Thr Ser Ser Thr Trp Pro Ser Gln Ser Ile Thr Cys Asn Val Ala His |
210 215 220 |
Pro Ala Ser Ser Thr Lys Val Asp Lys Lys Ile Glu Pro Arg Gly Pro |
225 230 235 240 |
Thr Ile Lys Pro Cys Pro Pro Cys Lys Cys Pro Ala Pro Asn Leu Leu |
245 250 255 |
Gly Gly Pro Ser Val Phe Ile Phe Pro Pro Lys Ile Lys Asp Val Leu |
260 265 270 |
Met Ile Ser Leu Ser Pro Ile Val Thr Cys Val Val Val Asp Val Ser |
275 280 285 |
Glu Asp Asp Pro Asp Val Gln Ile Ser Trp Phe Val Asn Asn Val Glu |
290 295 300 |
Val His Thr Ala Gln Thr Gln Thr His Arg Glu Asp Tyr Asn Ser Thr |
305 310 315 320 |
Leu Arg Val Val Ser Ala Leu Pro Ile Gln His Gln Asp Trp Met Ser |
325 330 335 |
Gly Lys Glu Phe Lys Cys Lys Val Asn Asn Lys Asp Leu Pro Ala Pro |
340 345 350 |
Ile Glu Arg Thr Ile Ser Lys Pro Lys Gly Ser Val Arg Ala Pro Gln |
355 360 365 |
Val Tyr Val Leu Pro Pro Pro Glu Glu Glu Met Thr Lys Lys Gln Val |
370 375 380 |
Thr Leu Thr Cys Met Val Thr Asp Phe Met Pro Glu Asp Ile Tyr Val |
385 390 395 400 |
Glu Trp Thr Asn Asn Gly Lys Thr Glu Leu Asn Tyr Lys Asn Thr Glu |
405 410 415 |
Pro Val Leu Asp Ser Asp Gly Ser Tyr Phe Met Tyr Ser Lys Leu Arg |
420 425 430 |
Val Glu Lys Lys Asn Trp Val Glu Arg Asn Ser Tyr Ser Cys Ser Val |
435 440 445 |
Val His Glu Gly Leu His Asn His His Thr Thr Lys Ser Phe Ser Arg |
450 455 460 |
Thr Pro Gly Lys |
465 |
<210> SEQ ID NO 8 |
<211> LENGTH: 85 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 8 |
Asp Ile Gln Met Thr Gln Ser Pro Ser Ser Leu Ser Ala Ser Val Gly |
1 5 10 15 |
Asp Arg Val Thr Ile Thr Cys Gln Ala Ser Gln Asp Ile Ile Lys Tyr |
20 25 30 |
Leu Asn Trp Tyr Gln Gln Thr Pro Gly Lys Ala Pro Lys Leu Leu Ile |
35 40 45 |
Thr Glu Ala Ser Asn Leu Gln Ala Gly Val Pro Ser Arg Phe Ser Gly |
50 55 60 |
Ser Gly Ser Gly Thr Asp Tyr Thr Phe Thr Ile Ser Ser Leu Gln Pro |
65 70 75 80 |
Glu Asp Ile Ala Thr |
85 |
<210> SEQ ID NO 9 |
<211> LENGTH: 23 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 9 |
Tyr Tyr Cys Gln Gln Tyr Gln Ser Leu Pro Tyr Thr Phe Gly Gln Gly |
1 5 10 15 |
Thr Lys Leu Gln Ile Thr Arg |
20 |
<210> SEQ ID NO 10 |
<211> LENGTH: 126 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 10 |
Gln Val Gln Leu Val Glu Ser Gly Gly Gly Val Val Gln Pro Gly Arg |
1 5 10 15 |
Ser Leu Arg Leu Ser Cys Ser Ser Ser Gly Phe Ile Phe Ser Ser Tyr |
20 25 30 |
Ala Met Tyr Trp Val Arg Gln Ala Pro Gly Lys Gly Leu Glu Trp Val |
35 40 45 |
Ala Ile Ile Trp Asp Asp Gly Ser Asp Gln His Tyr Ala Asp Ser Val |
50 55 60 |
Lys Gly Arg Phe Thr Ile Ser Arg Asp Asn Ser Lys Asn Thr Leu Phe |
65 70 75 80 |
Leu Gln Met Asp Ser Leu Arg Pro Glu Asp Thr Gly Val Tyr Phe Cys |
85 90 95 |
Ala Arg Asp Gly Gly His Gly Phe Cys Ser Ser Ala Ser Cys Phe Gly |
100 105 110 |
Pro Asp Tyr Trp Gly Gln Gly Thr Pro Val Thr Val Ser Ser |
115 120 125 |
<210> SEQ ID NO 11 |
<211> LENGTH: 119 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 11 |
Gln Val Gln Leu Val Glu Ser Gly Gly Gly Val Val Gln Pro Gly Arg |
1 5 10 15 |
Ser Leu Arg Leu Ser Cys Ser Ser Ser Gly Tyr Thr Phe Thr Arg Tyr |
20 25 30 |
Thr Met His Trp Val Arg Gln Ala Pro Gly Lys Gly Leu Glu Trp Val |
35 40 45 |
Ala Tyr Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Asn Gln Lys Phe |
50 55 60 |
Lys Asp Arg Phe Thr Ile Ser Arg Asp Asn Ser Lys Asn Thr Leu Phe |
65 70 75 80 |
Leu Gln Met Asp Ser Leu Arg Pro Glu Asp Thr Gly Val Tyr Phe Cys |
85 90 95 |
Ala Arg Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp Gly Gln Gly |
100 105 110 |
Thr Thr Leu Thr Val Ser Ser |
115 |
<210> SEQ ID NO 12 |
<211> LENGTH: 119 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 12 |
Gln Val Gln Leu Val Gln Ser Gly Gly Gly Val Val Gln Pro Gly Arg |
1 5 10 15 |
Ser Leu Arg Leu Ser Cys Lys Ala Ser Gly Tyr Thr Phe Thr Arg Tyr |
20 25 30 |
Thr Met His Trp Val Arg Gln Ala Pro Gly Lys Gly Leu Glu Trp Ile |
35 40 45 |
Gly Tyr Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Asn Gln Lys Val |
50 55 60 |
Lys Asp Arg Phe Thr Ile Ser Thr Asp Lys Ser Lys Ser Thr Ala Phe |
65 70 75 80 |
Leu Gln Met Asp Ser Leu Arg Pro Glu Asp Thr Ala Val Tyr Tyr Cys |
85 90 95 |
Ala Arg Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp Gly Gln Gly |
100 105 110 |
Thr Thr Leu Thr Val Ser Ser |
115 |
<210> SEQ ID NO 13 |
<211> LENGTH: 119 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 13 |
Gln Val Gln Leu Val Gln Ser Gly Gly Gly Val Val Gln Pro Gly Arg |
1 5 10 15 |
Ser Leu Arg Leu Ser Cys Lys Ala Ser Gly Tyr Thr Phe Thr Arg Tyr |
20 25 30 |
Thr Met His Trp Val Arg Gln Ala Pro Gly Lys Gly Leu Glu Trp Ile |
35 40 45 |
Gly Tyr Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Asn Gln Lys Val |
50 55 60 |
Lys Asp Arg Phe Thr Ile Ser Thr Asp Lys Ser Lys Ser Thr Ala Phe |
65 70 75 80 |
Leu Gln Met Asp Ser Leu Arg Pro Glu Asp Thr Gly Val Tyr Phe Cys |
85 90 95 |
Ala Arg Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp Gly Gln Gly |
100 105 110 |
Thr Thr Leu Thr Val Ser Ser |
115 |
<210> SEQ ID NO 14 |
<211> LENGTH: 119 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 14 |
Gln Val Gln Leu Val Gln Ser Gly Gly Gly Val Val Gln Pro Gly Arg |
1 5 10 15 |
Ser Leu Arg Leu Ser Cys Lys Ala Ser Gly Tyr Thr Phe Thr Arg Tyr |
20 25 30 |
Thr Met His Trp Val Arg Gln Ala Pro Gly Lys Gly Leu Glu Trp Ile |
35 40 45 |
Gly Tyr Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Asn Gln Lys Val |
50 55 60 |
Lys Asp Arg Phe Thr Ile Ser Thr Asp Lys Ser Lys Asn Thr Ala Phe |
65 70 75 80 |
Leu Gln Met Asp Ser Leu Arg Pro Glu Asp Thr Gly Val Tyr Phe Cys |
85 90 95 |
Ala Arg Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp Gly Gln Gly |
100 105 110 |
Thr Thr Leu Thr Val Ser Ser |
115 |
<210> SEQ ID NO 15 |
<211> LENGTH: 119 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 15 |
Gln Val Gln Leu Val Gln Ser Gly Gly Gly Val Val Gln Pro Gly Arg |
1 5 10 15 |
Ser Leu Arg Leu Ser Cys Lys Ala Ser Gly Tyr Thr Phe Thr Arg Tyr |
20 25 30 |
Thr Met His Trp Val Arg Gln Ala Pro Gly Lys Gly Leu Glu Trp Ile |
35 40 45 |
Gly Tyr Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Asn Gln Lys Val |
50 55 60 |
Lys Asp Arg Phe Thr Ile Ser Arg Asp Asn Ser Lys Asn Thr Ala Phe |
65 70 75 80 |
Leu Gln Met Asp Ser Leu Arg Pro Glu Asp Thr Gly Val Tyr Phe Cys |
85 90 95 |
Ala Arg Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp Gly Gln Gly |
100 105 110 |
Thr Thr Leu Thr Val Ser Ser |
115 |
<210> SEQ ID NO 16 |
<211> LENGTH: 119 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 16 |
Gln Val Gln Leu Val Gln Ser Gly Gly Gly Val Val Gln Pro Gly Arg |
1 5 10 15 |
Ser Leu Arg Leu Ser Cys Lys Ala Ser Gly Tyr Thr Phe Thr Arg Tyr |
20 25 30 |
Thr Met His Trp Val Arg Gln Ala Pro Cys Lys Gly Leu Glu Trp Ile |
35 40 45 |
Gly Tyr Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Asn Gln Lys Val |
50 55 60 |
Lys Asp Arg Phe Thr Ile Ser Thr Asp Lys Ser Lys Asn Thr Leu Phe |
65 70 75 80 |
Leu Gln Met Asp Ser Leu Arg Pro Glu Asp Thr Gly Val Tyr Phe Cys |
85 90 95 |
Ala Arg Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp Gly Gln Gly |
100 105 110 |
Thr Thr Leu Thr Val Ser Ser |
115 |
<210> SEQ ID NO 17 |
<211> LENGTH: 119 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 17 |
Gln Val Gln Leu Val Gln Ser Gly Gly Gly Val Val Gln Pro Gly Arg |
1 5 10 15 |
Ser Leu Arg Leu Ser Cys Lys Ala Ser Gly Tyr Thr Phe Thr Arg Tyr |
20 25 30 |
Thr Met His Trp Val Arg Gln Ala Pro Cys Lys Gly Leu Glu Trp Ile |
35 40 45 |
Gly Tyr Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Asn Gln Lys Val |
50 55 60 |
Lys Asp Arg Phe Thr Ile Ser Arg Asp Asn Ser Lys Asn Thr Leu Phe |
65 70 75 80 |
Leu Gln Met Asp Ser Leu Arg Pro Glu Asp Thr Gly Val Tyr Phe Cys |
85 90 95 |
Ala Arg Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp Gly Gln Gly |
100 105 110 |
Thr Thr Leu Thr Val Ser Ser |
115 |
<210> SEQ ID NO 18 |
<211> LENGTH: 119 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 18 |
Gln Val Gln Leu Val Gln Ser Gly Gly Gly Val Val Gln Pro Gly Arg |
1 5 10 15 |
Ser Leu Arg Leu Ser Cys Lys Ala Ser Gly Tyr Thr Phe Thr Arg Tyr |
20 25 30 |
Thr Met His Trp Val Arg Gln Ala Pro Cys Lys Gly Leu Glu Trp Val |
35 40 45 |
Ala Tyr Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Asn Gln Lys Val |
50 55 60 |
Lys Asp Arg Phe Thr Ile Ser Thr Asp Lys Ser Lys Ser Thr Ala Phe |
65 70 75 80 |
Leu Gln Met Asp Ser Leu Arg Pro Glu Asp Thr Gly Val Tyr Phe Cys |
85 90 95 |
Ala Arg Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp Gly Gln Gly |
100 105 110 |
Thr Thr Leu Thr Val Ser Ser |
115 |
<210> SEQ ID NO 19 |
<211> LENGTH: 119 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 19 |
Gln Val Gln Leu Val Gln Ser Gly Gly Gly Val Val Gln Pro Gly Arg |
1 5 10 15 |
Ser Leu Arg Leu Ser Cys Ser Ala Ser Gly Tyr Thr Phe Thr Arg Tyr |
20 25 30 |
Thr Met His Trp Val Arg Gln Ala Pro Cys Lys Gly Leu Glu Trp Ile |
35 40 45 |
Gly Tyr Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Asn Gln Lys Val |
50 55 60 |
Lys Asp Arg Phe Thr Ile Ser Thr Asp Lys Ser Lys Ser Thr Ala Phe |
65 70 75 80 |
Leu Gln Met Asp Ser Leu Arg Pro Glu Asp Thr Ala Val Tyr Tyr Cys |
85 90 95 |
Ala Arg Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp Gly Gln Gly |
100 105 110 |
Thr Thr Leu Thr Val Ser Ser |
115 |
<210> SEQ ID NO 20 |
<211> LENGTH: 119 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 20 |
Gln Val Gln Leu Val Glu Ser Gly Gly Gly Val Val Gln Pro Gly Arg |
1 5 10 15 |
Ser Leu Arg Leu Ser Cys Ser Ala Ser Gly Tyr Thr Phe Thr Arg Tyr |
20 25 30 |
Thr Met His Trp Val Arg Gln Ala Pro Cys Lys Gly Leu Glu Trp Ile |
35 40 45 |
Gly Tyr Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Asn Gln Lys Val |
50 55 60 |
Lys Asp Arg Phe Thr Ile Ser Thr Asp Lys Ser Lys Ser Thr Ala Phe |
65 70 75 80 |
Leu Gln Met Asp Ser Leu Arg Pro Glu Asp Thr Ala Val Tyr Tyr Cys |
85 90 95 |
Ala Arg Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp Gly Gln Gly |
100 105 110 |
Thr Thr Leu Thr Val Ser Ser |
115 |
<210> SEQ ID NO 21 |
<211> LENGTH: 119 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 21 |
Gln Val Gln Leu Val Glu Ser Gly Gly Gly Val Val Gln Pro Gly Arg |
1 5 10 15 |
Ser Leu Arg Leu Ser Cys Ser Ser Ser Gly Tyr Thr Phe Thr Arg Tyr |
20 25 30 |
Thr Met His Trp Val Arg Gln Ala Pro Cys Lys Gly Leu Glu Trp Ile |
35 40 45 |
Gly Tyr Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Asn Gln Lys Val |
50 55 60 |
Lys Asp Arg Phe Thr Ile Ser Thr Asp Lys Ser Lys Ser Thr Ala Phe |
65 70 75 80 |
Leu Gln Met Asp Ser Leu Arg Pro Glu Asp Thr Ala Val Tyr Tyr Cys |
85 90 95 |
Ala Arg Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp Gly Gln Gly |
100 105 110 |
Thr Thr Leu Thr Val Ser Ser |
115 |
<210> SEQ ID NO 22 |
<211> LENGTH: 119 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 22 |
Gln Val Gln Leu Val Gln Ser Gly Gly Gly Val Val Gln Pro Gly Arg |
1 5 10 15 |
Ser Leu Arg Leu Ser Cys Ser Ala Ser Gly Tyr Thr Phe Thr Arg Tyr |
20 25 30 |
Thr Met His Trp Val Arg Gln Ala Pro Cys Lys Gly Leu Glu Trp Ile |
35 40 45 |
Gly Tyr Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Asn Gln Lys Val |
50 55 60 |
Lys Asp Arg Phe Thr Ile Ser Thr Asp Lys Ser Lys Ser Thr Ala Phe |
65 70 75 80 |
Leu Gln Met Asp Ser Leu Arg Pro Glu Asp Thr Gly Val Tyr Phe Cys |
85 90 95 |
Ala Arg Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp Gly Gln Gly |
100 105 110 |
Thr Thr Leu Thr Val Ser Ser |
115 |
<210> SEQ ID NO 23 |
<211> LENGTH: 119 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 23 |
Gln Val Gln Leu Val Glu Ser Gly Gly Gly Val Val Gln Pro Gly Arg |
1 5 10 15 |
Ser Leu Arg Leu Ser Cys Ser Ala Ser Gly Tyr Thr Phe Thr Arg Tyr |
20 25 30 |
Thr Met His Trp Val Arg Gln Ala Pro Cys Lys Gly Leu Glu Trp Ile |
35 40 45 |
Gly Tyr Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Asn Gln Lys Val |
50 55 60 |
Lys Asp Arg Phe Thr Ile Ser Thr Asp Lys Ser Lys Ser Thr Ala Phe |
65 70 75 80 |
Leu Gln Met Asp Ser Leu Arg Pro Glu Asp Thr Gly Val Tyr Phe Cys |
85 90 95 |
Ala Arg Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp Gly Gln Gly |
100 105 110 |
Thr Thr Leu Thr Val Ser Ser |
115 |
<210> SEQ ID NO 24 |
<211> LENGTH: 119 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 24 |
Gln Val Gln Leu Val Gln Ser Gly Gly Gly Val Val Gln Pro Gly Arg |
1 5 10 15 |
Ser Leu Arg Leu Ser Cys Ser Ala Ser Gly Tyr Thr Phe Thr Arg Tyr |
20 25 30 |
Thr Met His Trp Val Arg Gln Ala Pro Cys Lys Gly Leu Glu Trp Ile |
35 40 45 |
Gly Tyr Ile Asn Pro Ser Arg Gly Tyr Thr Asn Tyr Asn Gln Lys Val |
50 55 60 |
Lys Asp Arg Phe Thr Ile Ser Thr Asp Lys Ser Lys Ser Thr Ala Phe |
65 70 75 80 |
Leu Gln Met Asp Ser Leu Arg Pro Glu Asp Thr Gly Val Tyr Phe Cys |
85 90 95 |
Ala Arg Tyr Tyr Asp Asp His Tyr Cys Leu Asp Tyr Trp Gly Gln Gly |
100 105 110 |
Thr Thr Leu Thr Val Ser Ser |
115 |
<210> SEQ ID NO 25 |
<211> LENGTH: 107 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 25 |
Asp Ile Gln Met Thr Gln Ser Pro Ser Ser Leu Ser Ala Ser Val Gly |
1 5 10 15 |
Asp Arg Val Thr Ile Thr Cys Ser Ala Ser Ser Ser Val Ser Tyr Met |
20 25 30 |
Asn Trp Tyr Gly Gln Thr Pro Gly Lys Ala Pro Lys Leu Leu Ile Tyr |
35 40 45 |
Asp Thr Ser Lys Leu Ala Ser Gly Val Pro Ser Arg Phe Ser Gly Ser |
50 55 60 |
Gly Ser Gly Thr Asp Tyr Thr Phe Thr Ile Ser Ser Leu Gln Pro Glu |
65 70 75 80 |
Asp Ile Ala Thr Tyr Tyr Cys Gln Gln Trp Ser Ser Asn Pro Phe Thr |
85 90 95 |
Phe Gly Gln Gly Thr Lys Leu Gln Ile Thr Arg |
100 105 |
<210> SEQ ID NO 26 |
<211> LENGTH: 107 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 26 |
Gln Ile Val Met Thr Gln Ser Pro Ser Ser Leu Ser Ala Ser Val Gly |
1 5 10 15 |
Asp Arg Val Thr Ile Thr Cys Ser Ala Ser Ser Ser Val Ser Tyr Met |
20 25 30 |
Asn Trp Tyr Gln Gln Thr Pro Gly Lys Ala Pro Lys Arg Trp Ile Tyr |
35 40 45 |
Asp Thr Ser Lys Leu Ala Ser Gly Val Pro Ser Arg Phe Ser Gly Ser |
50 55 60 |
Gly Ser Gly Thr Asp Tyr Thr Phe Thr Ile Ser Ser Leu Gln Pro Glu |
65 70 75 80 |
Asp Ile Ala Thr Tyr Tyr Cys Gln Gln Trp Ser Ser Asn Pro Phe Thr |
85 90 95 |
Phe Gly Gln Gly Thr Lys Leu Gln Ile Thr Arg |
100 105 |
<210> SEQ ID NO 27 |
<211> LENGTH: 107 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 27 |
Gln Ile Val Met Thr Gln Ser Pro Ser Ser Leu Ser Ala Ser Val Gly |
1 5 10 15 |
Asp Arg Val Thr Ile Thr Cys Ser Ala Ser Ser Ser Val Ser Tyr Met |
20 25 30 |
Asn Trp Tyr Gln Gln Thr Pro Gly Lys Ala Pro Lys Leu Leu Ile Tyr |
35 40 45 |
Asp Thr Ser Lys Leu Ala Ser Gly Val Pro Ser Arg Phe Ser Gly Ser |
50 55 60 |
Gly Ser Gly Thr Asp Tyr Thr Phe Thr Ile Ser Ser Leu Gln Pro Glu |
65 70 75 80 |
Asp Ile Ala Thr Tyr Tyr Cys Gln Gln Trp Ser Ser Asn Pro Phe Thr |
85 90 95 |
Phe Gly Gln Gly Thr Lys Leu Gln Ile Thr Arg |
100 105 |
<210> SEQ ID NO 28 |
<211> LENGTH: 107 |
<212> TYPE: PRT |
<213> ORGANISM: Artificial Sequence |
<220> FEATURE: |
<223> OTHER INFORMATION: Synthetic Sequence |
<400> SEQUENCE: 28 |
Asp Ile Gln Met Thr Gln Ser Pro Ser Ser Leu Ser Ala Ser Val Gly |
1 5 10 15 |
Asp Arg Val Thr Ile Thr Cys Ser Ala Ser Ser Ser Val Ser Tyr Met |
20 25 30 |
Asn Trp Tyr Gln Gln Thr Pro Gly Lys Ala Pro Lys Arg Trp Ile Tyr |
35 40 45 |
Asp Thr Ser Lys Leu Ala Ser Gly Val Pro Ser Arg Phe Ser Gly Ser |
50 55 60 |
Gly Ser Gly Thr Asp Tyr Thr Phe Thr Ile Ser Ser Leu Gln Pro Glu |
65 70 75 80 |
Asp Ile Ala Thr Tyr Tyr Cys Gln Gln Trp Ser Ser Asn Pro Phe Thr |
85 90 95 |
Phe Gly Gln Gly Thr Lys Leu Gln Ile Thr Arg |
100 105 |
Claims (20)
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US17/464,970 USRE50178E1 (en) | 1989-12-21 | 2021-09-02 | Humanised antibodies |
Applications Claiming Priority (7)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
GB898928874A GB8928874D0 (en) | 1989-12-21 | 1989-12-21 | Humanised antibodies |
PCT/GB1990/002017 WO1991009967A1 (en) | 1989-12-21 | 1990-12-21 | Humanised antibodies |
US74332991A | 1991-09-17 | 1991-09-17 | |
US08/303,569 US5859205A (en) | 1989-12-21 | 1994-09-07 | Humanised antibodies |
US08/485,686 US7566771B1 (en) | 1989-12-21 | 1995-06-07 | Humanised antibodies |
US16/378,731 USRE48787E1 (en) | 1989-12-21 | 2019-04-09 | Humanised antibodies |
US17/464,970 USRE50178E1 (en) | 1989-12-21 | 2021-09-02 | Humanised antibodies |
Related Parent Applications (2)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US08/485,686 Reissue US7566771B1 (en) | 1989-12-21 | 1995-06-07 | Humanised antibodies |
US16/378,731 Continuation USRE48787E1 (en) | 1989-12-21 | 2019-04-09 | Humanised antibodies |
Publications (1)
Publication Number | Publication Date |
---|---|
USRE50178E1 true USRE50178E1 (en) | 2024-10-22 |
Family
ID=10668300
Family Applications (11)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US08/116,247 Expired - Lifetime US5929212A (en) | 1989-12-21 | 1993-09-03 | CD3 specific recombinant antibody |
US10/704,352 Expired - Fee Related US7241877B2 (en) | 1989-12-21 | 2003-11-07 | Humanised antibodies |
US10/703,344 Expired - Fee Related US7262050B2 (en) | 1989-12-21 | 2003-11-07 | Humanised antibodies |
US10/703,963 Expired - Fee Related US7244832B2 (en) | 1989-12-21 | 2003-11-07 | Humanised antibodies |
US10/704,071 Expired - Fee Related US7244615B2 (en) | 1989-12-21 | 2003-11-07 | Humanized antibodies |
US10/937,971 Abandoned US20050123534A1 (en) | 1989-12-21 | 2004-09-10 | Humanised antibodies |
US10/937,949 Abandoned US20050136054A1 (en) | 1989-12-21 | 2004-09-10 | Humanised antibodies |
US10/938,117 Abandoned US20060029593A1 (en) | 1989-12-21 | 2004-09-10 | Humanised antibodies |
US11/284,261 Abandoned US20060073137A1 (en) | 1989-12-21 | 2005-11-21 | Humanised antibodies |
US11/284,260 Abandoned US20060073136A1 (en) | 1989-12-21 | 2005-11-21 | Humanised antibodies |
US17/464,970 Active USRE50178E1 (en) | 1989-12-21 | 2021-09-02 | Humanised antibodies |
Family Applications Before (10)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US08/116,247 Expired - Lifetime US5929212A (en) | 1989-12-21 | 1993-09-03 | CD3 specific recombinant antibody |
US10/704,352 Expired - Fee Related US7241877B2 (en) | 1989-12-21 | 2003-11-07 | Humanised antibodies |
US10/703,344 Expired - Fee Related US7262050B2 (en) | 1989-12-21 | 2003-11-07 | Humanised antibodies |
US10/703,963 Expired - Fee Related US7244832B2 (en) | 1989-12-21 | 2003-11-07 | Humanised antibodies |
US10/704,071 Expired - Fee Related US7244615B2 (en) | 1989-12-21 | 2003-11-07 | Humanized antibodies |
US10/937,971 Abandoned US20050123534A1 (en) | 1989-12-21 | 2004-09-10 | Humanised antibodies |
US10/937,949 Abandoned US20050136054A1 (en) | 1989-12-21 | 2004-09-10 | Humanised antibodies |
US10/938,117 Abandoned US20060029593A1 (en) | 1989-12-21 | 2004-09-10 | Humanised antibodies |
US11/284,261 Abandoned US20060073137A1 (en) | 1989-12-21 | 2005-11-21 | Humanised antibodies |
US11/284,260 Abandoned US20060073136A1 (en) | 1989-12-21 | 2005-11-21 | Humanised antibodies |
Country Status (21)
Country | Link |
---|---|
US (11) | US5929212A (en) |
EP (5) | EP0460167B1 (en) |
JP (4) | JP3452062B2 (en) |
KR (3) | KR100197956B1 (en) |
AT (4) | ATE159299T1 (en) |
AU (4) | AU631481B2 (en) |
BG (1) | BG60462B1 (en) |
BR (1) | BR9007197A (en) |
CA (3) | CA2050479C (en) |
DE (4) | DE69022982T2 (en) |
DK (4) | DK0460178T3 (en) |
ES (4) | ES2079638T3 (en) |
FI (4) | FI108776B (en) |
GB (4) | GB8928874D0 (en) |
GR (2) | GR3017734T3 (en) |
HU (4) | HU215383B (en) |
NO (5) | NO913229L (en) |
RO (3) | RO114298B1 (en) |
RU (1) | RU2112037C1 (en) |
WO (3) | WO1991009968A1 (en) |
ZA (1) | ZA9110129B (en) |
Families Citing this family (1333)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US5800815A (en) * | 1903-05-05 | 1998-09-01 | Cytel Corporation | Antibodies to P-selectin and their uses |
CU22545A1 (en) * | 1994-11-18 | 1999-03-31 | Centro Inmunologia Molecular | OBTAINING A CHEMICAL AND HUMANIZED ANTIBODY AGAINST THE RECEPTOR OF THE EPIDERMAL GROWTH FACTOR FOR DIAGNOSTIC AND THERAPEUTIC USE |
US6054561A (en) * | 1984-02-08 | 2000-04-25 | Chiron Corporation | Antigen-binding sites of antibody molecules specific for cancer antigens |
US6548640B1 (en) | 1986-03-27 | 2003-04-15 | Btg International Limited | Altered antibodies |
US5449760A (en) * | 1987-12-31 | 1995-09-12 | Tanox Biosystems, Inc. | Monoclonal antibodies that bind to soluble IGE but do not bind IGE on IGE expressing B lymphocytes or basophils |
US5530101A (en) | 1988-12-28 | 1996-06-25 | Protein Design Labs, Inc. | Humanized immunoglobulins |
EP0839536A1 (en) * | 1989-10-27 | 1998-05-06 | Arch Development Corporation | Methods and compositions for promoting immunopotentiation |
US6406696B1 (en) | 1989-10-27 | 2002-06-18 | Tolerance Therapeutics, Inc. | Methods of stimulating the immune system with anti-CD3 antibodies |
US6750325B1 (en) * | 1989-12-21 | 2004-06-15 | Celltech R&D Limited | CD3 specific recombinant antibody |
US5859205A (en) | 1989-12-21 | 1999-01-12 | Celltech Limited | Humanised antibodies |
GB8928874D0 (en) * | 1989-12-21 | 1990-02-28 | Celltech Ltd | Humanised antibodies |
US7037496B2 (en) | 1989-12-27 | 2006-05-02 | Centocor, Inc. | Chimeric immunoglobulin for CD4 receptors |
GB9014932D0 (en) | 1990-07-05 | 1990-08-22 | Celltech Ltd | Recombinant dna product and method |
US5770429A (en) * | 1990-08-29 | 1998-06-23 | Genpharm International, Inc. | Transgenic non-human animals capable of producing heterologous antibodies |
GB9020282D0 (en) * | 1990-09-17 | 1990-10-31 | Gorman Scott D | Altered antibodies and their preparation |
GB9021679D0 (en) * | 1990-10-05 | 1990-11-21 | Gorman Scott David | Antibody preparation |
GB9022543D0 (en) * | 1990-10-17 | 1990-11-28 | Wellcome Found | Antibody production |
US6399062B1 (en) * | 1990-11-06 | 2002-06-04 | The United States Of America As Represented By The Secretary Of The Navy | Murine monoclonal antibody protective against Plasmodium vivax malaria |
AU662891B2 (en) * | 1990-11-27 | 1995-09-21 | Biogen Idec Ma Inc. | Anti CD-4 antibodies blocking HIV-induced syncytia |
US5994510A (en) * | 1990-12-21 | 1999-11-30 | Celltech Therapeutics Limited | Recombinant antibodies specific for TNFα |
GB9109645D0 (en) * | 1991-05-03 | 1991-06-26 | Celltech Ltd | Recombinant antibodies |
GB9104498D0 (en) * | 1991-03-04 | 1991-04-17 | Ks Biomedix Ltd | Antibody |
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