Specific binding molecule
Specific binding molecules engineered to target the HLA-A11 restricted peptide VVVGADGVGK address the challenge of selectively targeting mutant KRAS peptides, achieving high specificity and affinity, and enabling effective cancer immunotherapy.
Patent Information
- Application Number
- JP2022567414
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-05-05
- Filing Date
- 2021-05-04
- Publication Date
- 2025-05-26
- Estimated Expiration
- 2041-05-04
AI Technical Summary
Current TCR-based therapeutics face challenges in effectively targeting mutant KRAS peptides while avoiding cross-recognition of wild-type peptides, which can lead to undesired targeting of normal healthy tissues.
Development of specific binding molecules comprising TCR CDR and framework regions that bind to the HLA-A11 restricted peptide VVVGADGVGK, with engineered CDR sequences to enhance affinity and specificity, allowing for the creation of novel immunotherapeutic agents for cancer treatment.
The specific binding molecules demonstrate high specificity and affinity for the target peptide-HLA complex, enabling potent and specific T cell activation and killing of cancer cells while minimizing recognition of normal tissues.
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Abstract
Description
[Technical field]
[0001] The present invention relates to specific binding molecules that bind to the HLA-restricted peptide VVVGADGVGK (SEQ ID NO: 1) derived from mutant KRAS. The specific binding molecules may comprise CDR sequences embedded within framework sequences. The CDR and framework sequences may correspond to T cell receptor (TCR) variable domains and may further comprise non-natural mutations compared to native TCR variable domains. The specific binding molecules of the present invention are particularly suitable for use as novel immunotherapeutic agents for the treatment of cancer. [Background technology]
[0002] 2. Background of the Invention Kirsten rat sarcoma viral oncogene homolog (KRAS) is a ubiquitously expressed small GTPase that drives cell signaling, survival and proliferation downstream of growth factor receptors (Uniprot no: P01116). Oncogenic somatic gain-of-function mutations in KRAS are well documented and reported to be present in approximately 20% of all human cancers, including pancreatic, colorectal, lung, endometrial, ovarian and prostate cancers (Cox et al., Nat Rev Drug Discov. 2014 Nov;13(11):828-51). Single amino acid substitutions can be responsible for generating mutant KRAS. In particular, mutations at the G12 position of KRAS have been reported to account for 83% of all mutations (Hobbs et al., Cancer Cell. 2016 Mar 14;29(3):251-253). Both G12D and G12V mutations are common in pancreatic and colon cancer. Several small molecule drugs targeting G12 mutant KRAS have been developed, but none are currently approved for therapeutic use. Thus, there is a need for more effective drugs that target mutant KRAS and a need for alternative small molecule drugs.
[0003] T cell receptors (TCRs) recognize short peptide antigens that are displayed on the surface of antigen-presenting cells in complex with major histocompatibility complex (MHC) molecules (in humans, MHC molecules are also known as human leukocyte antigens or HLA) (Davis et al., Annu Rev Immunol. 1998;16:523-44). TCRs that target the HLA-A*11 restricted peptide VVVGADGVGK (SEQ ID NO:1), a peptide derived from G12D mutant KRAS, are known in the art (Wang et al., Cancer Immunol Res. 2016 Mar;4(3):204-214). The development of TCR-based therapeutics targeting the VVVGADGVGK-HLA-A*11 complex is challenging because the TCR must be able to properly discriminate between mutant (tumor) peptides and non-mutated wild-type peptides that differ by only one amino acid. Cross-recognition of wild-type peptides may result in undesired targeting of normal healthy tissues. Summary of the Invention [Means for solving the problem]
[0004] Description of the Invention In a first aspect, the present invention provides a specific binding molecule having binding to VVVGADGVGK (SEQ ID NO: 1) complexed with HLA-A11, comprising a TCR α chain variable domain and / or a TCR β chain variable domain, each comprising FR1-CDR1-FR2-CDR2-FR3-CDR3-FR4 (FR is a framework region and CDR is a complementarity determining region), wherein: (a) the α chain CDRs have the following sequence: CDR1 - TRDTTYY (SEQ ID NO: 32), optionally with one or more mutations; CDR2 - RNSFDEQNE (SEQ ID NO: 33), optionally with one or more mutations; CDR3 - CALSGPSGAGSYQLTF (SEQ ID NO: 34), optionally with one or more mutations; and / or (b) the β chain CDRs have the following sequence: CDR1 - MNHEY (SEQ ID NO: 35), optionally with one or more mutations; CDR2 - SVGEGT (SEQ ID NO: 36), optionally with one or more mutations; CDR3 - CASSYGPGQHNSPLHF (SEQ ID NO: 37), optionally with one or more mutations; has.
[0005] In the specific binding molecule of the first aspect, the alpha chain variable domain framework region has the following framework sequence: FR1 - amino acids 1 to 26 of SEQ ID NO:2, FR2 - amino acids 34 to 50 of SEQ ID NO:2; FR3 - amino acids 60 to 91 of SEQ ID NO:2, FR4 - amino acids 108 to 117 of SEQ ID NO:2, or may comprise a sequence having at least 90%, at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98% or at least 99% identity to each of said sequences; and / or The β chain variable domain framework region has the following sequence: FR1 - amino acids 1 to 26 of SEQ ID NO:3; FR2 - amino acids 32 to 48 of SEQ ID NO:3; FR3 - amino acids 55 to 90 of SEQ ID NO:3; FR4 - amino acids 106 to 115 of SEQ ID NO: 3, Alternatively, it may comprise a sequence having at least 90%, at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98% or at least 99% identity to each of said sequences.
[0006] The present invention provides specific binding molecules comprising TCR CDRs and framework regions that bind to the HLA-A11 restricted peptide VVVGADGVGK (SEQ ID NO:1), which have particularly desirable therapeutic properties for the treatment of cancer. The specific binding molecule or binding fragment thereof comprises a TCR variable domain, which may correspond to that of a native TCR or, more preferably, the TCR variable domain may be engineered. The native TCR variable domain may also be referred to as the wild-type, natural, parental, non-mutated or scaffold domain. The specific binding molecule or binding fragment may be used to produce molecules with ideal therapeutic properties, such as supraphysiological affinity for the target, long binding half-life, high specificity for the target and good stability. The invention also encompasses bispecific or bifunctional or fusion molecules incorporating a specific binding molecule or binding fragment thereof and a T cell redirecting moiety. Such molecules can mediate a strong and specific response against cancer cells by redirecting and activating polyclonal T cell responses. Furthermore, the use of specific binding molecules with supraphysiological affinity facilitates the recognition and clearance of cancer cells presenting low levels of peptide-HLA. Alternatively, the specific binding molecules or binding fragments may be fused to other therapeutic and / or diagnostic agents and / or incorporated into genetically engineered T cells for adoptive therapy.
[0007] TCR domain sequences can be defined with reference to the IMGT nomenclature, which is widely known and accessible to those skilled in the art of TCRs. See, for example, LeFranc and LeFranc (2001), "T cell Receptor Factsbook", Academic Press; Lefranc (2011), Cold Spring Harb Protoc 2011(6): 595-603; Lefranc (2001), Curr Protoc Immunol Appendix 1: Appendix 100; and Lefranc (2003), Leukemia 17(1): 260-266. Briefly, the αβTCR consists of two disulfide-linked chains. Each chain (α and β) is generally considered to have two domains: a variable domain and a constant domain. A short linking region links the variable and constant domains, which is typically considered to be part of the α variable region. In addition, the β chain usually contains a short diversity region following the linking region. This region is also typically considered to be part of the beta variable region. The variable domain of each chain is located N-terminally and comprises three complementarity determining regions (CDRs) embedded in framework sequences (FR). The CDRs contain the recognition sites for binding to peptide-MHC. There are several genes encoding alpha chain variable (Valpha) regions and several genes encoding beta chain variable (Vbeta) regions, which are distinguished by framework, CDR1 and CDR2 sequences and a partially defined CDR3 sequence. The Vα and Vβ genes are designated using the prefixes “TRAV” and “TRBV”, respectively, in the IMGT nomenclature (Folch and Lefranc (2000), Exp Clin Immunogenet 17(1):42-54; Scaviner and Lefranc (2000), Exp Clin Immunogenet 17(2):83-96; LeFranc and LeFranc (2001), T cell Receptor Factsbook, Academic Press).Similarly, there are several joining or J genes for the α and β chains, called "TRAJ" or "TRBJ", respectively, and a diversity or D gene for the β chain, called "TRBD" (Folch and Lefranc (2000), Exp Clin Immunogenet 17(2):107-114; Scaviner and Lefranc (2000), Exp Clin Immunogenet 17(2):97-106; LeFranc and LeFranc (2001), "T cell Receptor Factsbook", Academic Press). The enormous diversity of T cell receptor chains results from a combination of rearrangements between the various V, J and D genes (including allelic variants), as well as joining diversity (Arstila et al. (1999), Science 286(5441):958-961; Robins et al. (2009), Blood 114(19):4099-4107). The constant or C regions of the TCR α and β chains are referred to as “TRAC” and “TRBC,” respectively (Lefranc (2001), Curr Protoc Immunol Appendix 1:Appendix 10).
[0008] As used herein, the term "specific binding molecule" refers to a molecule that can bind to a target antigen. Such molecules can take several different forms, as described herein. In addition, fragments of the specific binding molecules of the present invention are also contemplated. A fragment refers to a portion of a specific binding molecule that retains binding to a target antigen. The term "mutation" includes substitutions, insertions, and deletions. Mutations to a native specific binding molecule (also referred to as the parent, native, non-mutated, wild-type or scaffold specific binding molecule) can confer beneficial therapeutic properties (e.g., high affinity, high specificity, and high potency); for example, mutations can be made to VVVGADGVGK-HLA-A * 11. The binding affinity (k D ) and / or binding half-life (t 1 / 2 ) may be included.
[0009] The α chain framework regions FR1, FR2 and FR3 may comprise an amino acid sequence corresponding to that of the TRAV19*01 chain, and / or the β chain framework regions FR1, FR2 and FR3 may comprise an amino acid sequence corresponding to that of the TRBV6-2 / 3*01 chain. The FR4 region may include the junction regions of the alpha and beta variable chains (TRAJ and TRBJ, respectively). The TRAJ region may include an amino acid sequence corresponding to that of TRAJ28*01. The TRBJ region may include an amino acid sequence corresponding to that of TRBJ1-6*02.
[0010] There may be at least one mutation in the TCR alpha chain variable region. There may be 1 or 2 or 3 or 4 or 5 or 6 or 7 or 8 or 9 or 10 or 11 or 12 or 13 or 14 or 15 or 16 or 17 or 18 or more mutations in the alpha chain CDRs (i.e. in all three CDRs combined). For example there may be 17 mutations in the alpha chain CDRs or there may be 10 mutations. The one or more of the mutations may be selected from the following mutations with reference to the numbering of SEQ ID NO: 2: T31A, R51Q, N52P, S53W, F54W, D55G, E56S, Q57S, N58R, E59G, L94M, G96V, S98D, G99S or G99M, A100R or A100E or A100D, S102H, L105F. Thus, any or all of the above mutations may be present, optionally in combination with other mutations.
[0011] The mutated alpha chain CDRs may comprise one of the following groups of mutations (with reference to the numbering of SEQ ID NO:2): Group 1: T31A, R51Q, N52P, S53W, F54W, D55G, E56S, Q57S, N58R, E59G, L94M, G96V, S98D, G99S, A100R, S102H, L105F Group 2: T31A, R51Q, N52P, S53W, F54W, D55G, E56S, Q57S, N58R, E59G, L94M, G96V, S98D, G99M, A100E, S102H, L105F Group 3: T31A, R51Q, N52P, S53W, F54W, D55G, L94M, G96V, A100D, L105F
[0012] The alpha chain CDR1 may comprise the following sequence: TRDTTYY (SEQ ID NO:32), TRDTAYY (sequence number 38). The alpha chain CDR2 may comprise the following sequence: RNSFDEQNE (SEQ ID NO:33), QPWWGSSRG (SEQ ID NO:39), QPWWGEQNE (sequence number 40). The alpha chain CDR3 may comprise the following sequence: CALSGPSGAGSYQLTF (SEQ ID NO:34), CAMSVPDSRGHYQFTF (SEQ ID NO:41), CAMSVPDMEGHYQFTF (SEQ ID NO: 42), CAMSVPSGDGSYQFTF (sequence number 43).
[0013] For example, in the mutant α chain, CDR1 is TRDTAYY and CDR2 is QPWWGSSRG and CDR3 is CAMSVPDSRGHYQFTF Alternatively, CDR1 is TRDTAYY and CDR2 is QPWWGSSRG and CDR3 is CAMSVPDMEGHYQFTF Alternatively, CDR1 is TRDTAYY and CDR2 is QPWWGEQNE and CDR3 is CAMSVPSGDGSYQFTF It is. The mutant α chain may be paired with any β chain.
[0014] There may be at least one mutation in the TCR β chain variable region. There may be one or two or three or four or five or six or seven or eight or more mutations in the CDRs of the β chain (i.e. in the sum of all three CDRs). For example, there may be five mutations in the CDRs of the β chain, or there may be seven mutations. The one or more of the mutations may be selected from the following mutations with reference to the numbering of SEQ ID NO: 3: V50G, G51W, E52G, G53K, T54D, S94K, Y95V. Thus, any or all of the above mutations may be present, optionally in combination with other mutations.
[0015] The β chain CDRs may include one of the following groups of mutations (with reference to the numbering of SEQ ID NO:3): Group 1: V50G, G51W, E52G, G53K, T54D, S94K, Y95V Group 2: V50G, G51W, E52G, G53K, T54D.
[0016] The β chain CDR1 may comprise the following sequence: MNHEY (sequence number 35). The β chain CDR2 may comprise the following sequence: SVGEGT (SEQ ID NO:36), SGWGKD (sequence number 44). The β chain CDR3 may comprise the following sequence: CASSYGPGQHNSPLHF (SEQ ID NO:37), CASKVGPGQHNSPLHF (sequence number 45).
[0017] For example, in a mutant β chain, CDR1 is MNHEY, CDR2 is SGWGKD and CDR3 is CASKVGPGQHNSPLHF. Alternatively, CDR1 is MNHEY, CDR2 is SGWGKD and CDR3 is CASSYGPGQHNSPLHF. The mutant β chain may be paired with any α chain.
[0018] A preferred pairing of α and β chains comprises the following CDR sequences: The CDR1 of the α chain is TRDTAYY and CDR2 is QPWWGSSRG and CDR3 is CAMSVPDSRGHYQFTF and the CDR1 of the β chain is MNHEY, the CDR2 is SGWGKD, and the CDR3 is CASKVGPGQHNSPLHF; In the α chain, CDR1 is TRDTAYY and CDR2 is QPWWGSSRGand CDR3 is CAMSVPDMEGHYQFTF , in the β chain, CDR1 is MNHEY, CDR2 is SGWGKD, and CDR3 is CASSYGPGQHNSPLHF; The CDR1 of the α chain is TRDTAYY and CDR2 is QPWWGEQNE and CDR3 is CAMSVPSGDGSYQFTF and the CDR1 of the β chain is MNHEY, the CDR2 is SGWGKD, and the CDR3 is CASSYGPGQHNSPLHF.
[0019] Mutations within the CDRs preferably improve the binding affinity or specificity of the specific binding molecule to the VVVGADGVGK-HLA-A*11 complex, but may additionally or alternatively confer other advantages, such as improved stability in isolated form or improved potency when fused to an immune effector. Mutations at one or more positions may additionally or alternatively affect the interaction with the cognate pMHC complex at an adjacent position, for example by providing a more favorable angle for the interaction. Mutations may include those that result in reduced non-specific binding, i.e. reduced binding to alternative antigens compared to VVVGADGVGK-HLA-A*11. Mutations may include those that increase folding efficiency and / or stability and / or manufacturability. Some mutations may contribute to each of these properties, while others may, for example, contribute to affinity but not specificity, or to specificity but not affinity.
[0020] Typically, a total of at least 5, at least 10, at least 15 or more CDR mutations are required to obtain a specific binding molecule with pM affinity for the target antigen. A total of at least 5, at least 10 or at least 15 CDR mutations may be required to obtain a specific binding molecule with pM affinity for the target antigen. A specific binding molecule with pM affinity for the target antigen is particularly suitable for soluble therapeutic agents. A specific binding molecule for adoptive therapy applications may have a lower affinity for the target antigen and therefore may have fewer CDR mutations, for example up to 1, 2, 5 or more CDR mutations in total. In some cases, it may be possible to use a specific binding molecule with pM affinity to create a lower affinity molecule by reverting one or more CDR mutations back to the original native residue. In some cases, a native specific binding molecule (also referred to as a non-mutated specific binding molecule) may have a sufficiently high affinity for the target antigen without the need for mutations. It has been noted that the specific binding molecules of the invention, in their native form, have advantageous therapeutic properties, including high specificity. Without wishing to be bound by any particular theory, the inventors believe that the ability of the molecules of the invention to distinguish between WT and mutant Kras peptides is due, at least in part, to the different conformations that the mutant peptides adopt when bound to HLA.
[0021] Mutations may additionally or alternatively be made outside the CDRs, within the framework regions; such mutations may result in improved therapeutic properties of the specific binding molecule, for example improved binding and / or specificity and / or stability and / or yield of purified soluble forms. For example, the specific binding molecules of the invention may additionally or alternatively contain one or more mutations at the N-terminus of FR1 of one or both chains to improve the efficiency of N-terminal methionine cleavage. Removal of the N-terminal initial methionine is often important for protein function and stability. Insufficient cleavage may be detrimental for therapeutic agents, since it may result in heterogeneous protein products and / or the presence of the initial methionine may be immunogenic in humans. In some cases, an initial methionine may be present in the specific binding molecules of the invention.
[0022] Preferably, the α-chain variable domain of the specific binding molecule of the invention may comprise a respective framework amino acid sequence having at least 90%, at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98% or at least 99% identity to framework amino acid residues 1-26, 34-50, 60-91, 108-117 of SEQ ID NO: 2. The β-chain variable domain of the specific binding molecule of the invention may comprise a respective framework amino acid sequence having at least 90%, at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98% or at least 99% identity to framework amino acid residues 1-26, 32-48, 55-90, 106-115 of SEQ ID NO: 3. Alternatively, the percentage identities mentioned may be over the entire framework sequence when considered as a whole.
[0023] The α chain variable domain may comprise any one of the amino acid sequences of SEQ ID NOs: 4 to 6 (sequences shown in Figure 2), and the β chain variable domain may comprise any one of the amino acid sequences of SEQ ID NOs: 7 to 8 (sequences shown in Figure 3). [Table 1] For example, a specific binding molecule may comprise the following pair of α and β chain variable domains: A preferred TCR chain pair is SEQ ID NO:4 and SEQ ID NO:7.
[0024] Phenotypically silent variants of any of the specific binding molecules of the invention disclosed herein are also within the scope of the present invention. As used herein, the term "phenotypically silent variant" is understood to refer to a specific binding molecule having a TCR variable domain that incorporates, in addition to the mutations described above, one or more additional amino acid alterations (including substitutions, insertions and deletions), wherein said specific binding molecule has a phenotype similar to a corresponding specific binding molecule that does not possess said alterations. For purposes of this application, the phenotype of a specific binding molecule is defined as the binding affinity (K D and / or binding half-life) and specificity. Preferably, the phenotype of the soluble specific binding molecule bound to the immune effector includes, in addition to binding affinity and specificity, immune activation potency and purification yield. Phenotypically silent variants are characterized by a K value greater than or equal to the K value measured for the VVVGADGVGK-HLA-A*11 complex when measured under the same conditions (e.g., at 25° C. and / or on the same SPR chip) compared to a corresponding specific binding molecule without said alteration. D and / or K within 50%, more preferably within 30%, 25%, or 20% of the binding half-life D and / or binding half-life. Suitable conditions are further provided in Examples 1 and 2.
[0025] Furthermore, phenotypically silent variants may retain the same or substantially the same therapeutic window between binding to the VVVGADGVGK-HLA-A*11 complex and binding to the WT KRAS peptide and / or binding to one or more additional off-target peptide-HLA complexes. Phenotypically silent variants may retain the same or substantially the same therapeutic window between the potency of immune cell activation in response to cells presenting the VVVGADGVGK-HLA-A*11 complex and the potency of immune cell activation in response to cells presenting the WT KRAS peptide and / or one or more additional off-target peptide-HLA complexes. The therapeutic window may be calculated based on the lowest effective concentration ("LOEL") observed for normal cells and tumor cell lines. The therapeutic window may be at least a 100-fold difference, at least a 1000-fold difference, or more. Phenotypic variants may share the same or substantially the same recognition motif as determined by sequential mutagenesis techniques as further described below.
[0026] As known to those skilled in the art, it may be possible to produce specific binding molecules incorporating changes from those described above in the variable domains without altering the affinity or specificity of the interaction with the VVVGADGVGK-HLA-A*11 complex and / or other functional properties. In particular, such silent mutations may be incorporated in parts of the sequence known not to be directly involved in antigen binding (e.g., parts of the framework regions and / or CDRs that do not contact the antigen). Such variants are also within the scope of the present invention. As will be apparent to one of skill in the art, the sequences provided at the C-terminus and / or N-terminus may be shortened or extended by 1, 2, 3, 4, 5, 6 or more residues without substantially affecting the functional properties of the specific binding molecule. The sequences provided at the C-terminus and / or N-terminus may be shortened or extended by 1, 2, 3, 4 or 5 residues. All such variants are encompassed by the present invention. A phenotypically silent variant may contain one or more conservative substitutions and / or one or more tolerated substitutions. A tolerated substitution refers to a substitution that is phenotypically silent, even though it does not fall within the definition of a conservative substitution set forth below. Those skilled in the art will appreciate that various amino acids have similar properties and are therefore "conservative". Such one or more amino acids of a protein, polypeptide or peptide can often be substituted with one or more other such amino acids without eliminating the desired activity of the protein, polypeptide or peptide.
[0027] Thus, the amino acids glycine, alanine, valine, leucine and isoleucine (amino acids with aliphatic side chains) can often be substituted for one another. Of these possible substitutions, it is preferred to use glycine and alanine to substitute for one another (as they have relatively short side chains) and valine, leucine and isoleucine to substitute for one another (as they have longer aliphatic side chains that are hydrophobic). Other amino acids that can often be substituted for one another include: phenylalanine, tyrosine and tryptophan (amino acids with aromatic side chains); lysine, arginine and histidine (amino acids with basic side chains); aspartic acid and glutamic acid (amino acids with acidic side chains); asparagine and glutamine (amino acids with amide side chains); and cysteine and methionine (amino acids with sulfur-containing side chains). It should be understood that amino acid substitutions within the scope of the present invention can be made with naturally occurring or non-naturally occurring amino acids. For example, it is contemplated herein that the methyl group of alanine can be replaced with an ethyl group and / or minor changes can be made to the peptide backbone. Whether natural or synthetic amino acids are used, it is preferred that only L-amino acids are present.
[0028] Substitutions of this nature are often referred to as "conservative" or "semi-conservative" amino acid substitutions. Thus, the invention extends to the use of specific binding molecules comprising an amino acid sequence having one or more conservative substitutions and / or one or more tolerated substitutions in any of the above amino acid sequences, which amino acid sequence has at least 90% identity, such as at least 90%, at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98%, at least 99% or 100% identity to a specific binding molecule comprising amino acids 1-117 of SEQ ID NOs: 2, 4-6 and / or amino acids 1-115 of SEQ ID NOs: 7-8.
[0029] "Identity", as known in the art, is a relationship between two or more polypeptide sequences or two or more polynucleotide sequences, as determined by sequence comparison. In the art, identity also means the degree of sequence relatedness, as appropriate, between polypeptide or polynucleotide sequences, as determined by the match of sequence alignment. Although there are several methods for measuring the identity between two polypeptide or two polynucleotide sequences, a commonly used method for determining identity is computer programmed. Preferred computer programs for determining identity between two sequences include, but are not limited to, the GCG program package (Devereux et al., Nucleic Acids Research, 12, 387 (1984)), BLASTP, BLASTN and FASTA (Atschul et al., J. Molec. Biol. 215, 403 (1990)), SIM - Alignment Tool for protein sequences (Xiaoquin Huang and Webb Miller: "A Time-Efficient, Linear-Space Local Similarity Algorithm" Advances in Applied Mathematics, vol.12 (1991), pp.337-357).
[0030] Amino acid sequences can be compared using a program such as the CLUSTAL program. This program compares amino acid sequences and, if necessary, inserts spaces into either sequence to find the best alignment. Amino acid identity or similarity (identity + conservation of amino acid type) can be calculated for the best alignment. Programs such as BLASTx align similar sequences for the longest length and assign a value for their goodness of fit. Thus, a comparison can be obtained that finds several similar regions, each with a different score. Both types of identity analysis are contemplated in the present invention. The percent identity of two amino acid sequences or two nucleic acid sequences is determined by aligning the sequences for optimal comparison (e.g., gaps can be introduced into the first sequence for best alignment) and comparing the amino acid residues or nucleotides at corresponding positions. The "best alignment" is the alignment of the two sequences that results in the highest percent identity. The percent identity is determined by the number of identical amino acid residues or nucleotides in the sequences being compared (i.e., % identity = number of identical positions / total number of positions x 100).
[0031] The determination of the percent identity between two sequences can be accomplished using a mathematical algorithm known to those skilled in the art. An example of a mathematical algorithm for comparing two sequences is the algorithm of Karlin and Altschul (1990) Proc. Natl. Acad. Sci. USA 87:2264-2268, modified as described in Karlin and Altschul (1993) Proc. Natl. Acad. Sci. USA 90:5873-5877. Such an algorithm is incorporated into the BLASTn and BLASTp programs of Altschul et al. (1990), J. Mol. Biol. 215:403-410. The determination of the percent identity between two nucleotide sequences can be performed using the BLASTn program. The determination of the percent identity between two protein sequences can be performed using the BLASTp program. To obtain gapped alignments for comparison purposes, Gapped BLAST can be used as described in Altschul et al. (1997), Nucleic acid Res. 25:3389-3402. Alternatively, PSI-Blast can be used to perform iterative searches that detect distant relatedness between molecules (supra). When using BLAST, Gapped BLAST and PSI-Blast programs, the default parameters of the respective programs (e.g., BLASTp and BLASTp) can be used. See http: / / www.ncbi.nlm.nih.gov. Default general parameters can include, for example, Word Size=3, Expect Threshold=10. Parameters can be selected to automatically adjust for short input sequences. Another example of a mathematical algorithm utilized for sequence comparison is the algorithm of Myers and Miller, CABIOS (1989). The ALIGN program (version 2.0), which is part of the CGC sequence alignment software package, incorporates such an algorithm.Other sequence analysis algorithms known in the art include ADVANCE and ADAM, described in Torellis and Robotti (1994), Comput. Appl. Biosci., 10: 3-5; and FASTA, described in Pearson and Lipman (1988), Proc. Natl. Acad. Sci. 85:2444-8. In FASTA, ktup is a control option that sets the sensitivity and speed of the search. For purposes of assessing percent identity in this disclosure, BLASTp with default parameters is used as the comparison method. In addition, where the percent identity given is a non-integer value for an amino acid, the resulting value is rounded down to the nearest integer (i.e., a sequence of 25 amino acids with 90% sequence identity would be "22.5" but would be "22"). Thus, in the example provided, a sequence in which 22 of the 25 amino acids are matched is within 90% sequence identity.
[0032] Mutations (including conservative and tolerated substitutions, insertions and deletions) may be introduced into the sequence, provided any suitable method is used. Such methods include, but are not limited to, polymerase chain reaction (PCR)-based methods, restriction enzyme-based cloning or ligation-independent cloning (LIC) procedures. These methods are detailed in many standard molecular biology textbooks. For further details regarding polymerase chain reaction (PCR) and restriction enzyme-based cloning, see Sambrook and Russell (2001), Molecular Cloning - A Laboratory Manual (3rd Edition) CSHL Press. Further information regarding ligation-independent cloning (LIC) procedures can be found in Rashtchian (1995), Curr Opin Biotechnol 6(1):30-6. The TCR sequences provided by the present invention may be obtained from solid phase synthesis or any other suitable method known in the art.
[0033] The specific binding molecules of the present invention have the property of binding to the VVVGADGVGK-HLA-A*11 complex. The specific binding molecules of the present invention have demonstrated a high degree of specificity for the VVVGADGVGK-HLA-A*11 complex, and are therefore particularly suitable for therapeutic applications. Specificity refers to the ability of the specific binding molecules of the present invention to recognize target cells that are antigen positive, while having a very small ability to recognize target cells that are antigen negative. Antigen positive cells are cells determined to express mutant KRAS or cells determined to present the VVVGADGVGK-HLA-A*11 complex. The specific binding molecules of the present invention may bind to a complex of the target peptide when bound to one or more HLA-A*11 subtypes, for example, the specific binding molecules of the present invention may bind to a complex of the target peptide when bound to HLA-A*1101, and / or the specific binding molecules of the present invention may bind to a complex of the target peptide when bound to HLA-A*1102.
[0034] Specificity can be measured in vitro, for example in a cell assay (e.g., as described in Examples 3 and 4). To test specificity, the specific binding specificity molecule may be in soluble form, bound to an immune effector and / or expressed on the surface of a cell (e.g., a T cell). Specificity may be determined by measuring the level of T cell activation in the presence of antigen-positive and antigen-negative target cells as described above. Extremely low recognition of antigen-negative target cells is defined as a level of less than 20%, preferably less than 10%, preferably less than 5%, more preferably less than 1% of the T cell activation level occurring in the presence of antigen-positive target cells, measured under the same conditions and at a therapeutically relevant TCR concentration. For soluble TCR bound to an immune effector, a therapeutically relevant concentration is less than 10%. -9M or less and / or up to 100-fold, preferably up to 1000-fold greater than the corresponding EC50 or IC50 value. Preferably, for a soluble specific binding molecule coupled to an immune effector, there is at least a 100-fold, at least a 1000-fold, at least a 10000-fold, at least a 10000-fold difference in EC50 or IC50 values between T cell activation against antigen-positive cells and T cell activation against antigen-negative cells - this difference may be referred to as the therapeutic window. Additionally or alternatively, the therapeutic window may be calculated based on the lowest effective concentration ("LOEL") observed for normal cells and tumor cell lines. Antigen-positive cells may be obtained by peptide-pulsing with an appropriate peptide concentration to obtain a level of antigen presentation comparable to cancer cells (e.g., 10-fold, as described in Bossi et al. (2013), Oncoimmunol. 1;2(11):e26840). -9 The antigen-positive cell may be a human cell that expresses or presents a wild-type KRAS peptide, or may naturally present the peptide. Preferably, both the antigen-positive cell and the antigen-negative cell are human cells. Preferably, the antigen-positive cell is a human cancer cell. The antigen-negative cell preferably includes one derived from healthy human tissue. The antigen-negative cell may include a cell that expresses or presents a wild-type KRAS peptide.
[0035] Specificity may additionally or alternatively relate to the ability of the specific binding molecule to bind to the VVVGADGVGK-HLA-A*11 complex and not to a panel of surrogate peptide-HLA complexes or to the WT KRAS peptide. This may be determined, for example, by the Biacore method of Examples 1 and 2. The panel may comprise at least 5, preferably at least 10, surrogate peptide-HLA complexes. The surrogate peptides may have a low level of sequence identity with SEQ ID NO: 1 and may be naturally presented. The surrogate peptides are preferably derived from proteins expressed in healthy human tissues. Binding of the specific binding molecule to the VVVGADGVGK-HLA-A*11 complex may be at least 2-fold, more preferably at least 10-fold or at least 100-fold or at least 1000-fold or at least 3000-fold greater than binding to other naturally presented peptide-HLA complexes.
[0036] An alternative or additional approach to determining the specificity of a specific binding molecule may be to identify the peptide recognition motif of the specific binding molecule using sequential mutagenesis (e.g., alanine scanning) of the target peptide. Residues that form part of the binding motif are those residues that are not tolerated for substitution. Non-tolerated substitutions may be defined as peptide positions where the binding affinity of the specific binding molecule is reduced by at least 50% or at least 80% compared to the binding affinity for the non-mutated peptide. Such approaches are further described for TCR in Cameron et al. (2013), Sci Transl Med. 2013 Aug 7; 5 (197):197ral03 and WO2014096803, but it is understood that the methods are also applicable to the specific binding molecules of the present invention. The specificity of the specific binding molecule in this case may be determined by identifying alternative motif-containing peptides, particularly alternative motif-containing peptides in the human proteome, and testing these peptides for binding to the specific binding molecule. Binding of the specific binding molecule to one or more alternative peptides may indicate a lack of specificity. In this case, further testing of the specificity of the specific binding molecule by cellular assays may be required. The low tolerance for (alanine) substitutions in the central part of the peptide indicates that the specific binding molecule has high specificity and therefore represents a low risk of cross-reactivity with alternative peptides.
[0037] The specific binding molecules of the present invention may have an ideal safety profile for use as therapeutic agents. In this case, the specific binding molecules may be in soluble form, preferably fused to immune effectors. Suitable immune effectors include, but are not limited to, cytokines (e.g., IL-2 and IFN-γ); superantigens and variants thereof; chemokines (e.g., IL-8, platelet factor 4, melanoma growth stimulating protein); antibodies and antibody-like scaffolds (including fragments, derivatives and variants thereof) that bind to antigens on immune cells (e.g., T cells or NK cells) (e.g., anti-CD3, anti-CD28 or anti-CD16); and Fc receptors or complement activators. An ideal safety profile means that the specific binding molecules of the present invention, in addition to having demonstrated good specificity, may also pass further preclinical safety tests. Examples of such tests include whole blood assays to confirm low cytokine release in the presence of whole blood (hence low risk of causing potential cytokine release syndrome in vivo) and alloreactivity tests to confirm low likelihood of recognizing alternative HLA types.
[0038] The specific binding molecules of the present invention may be capable of high-yield purification, especially for soluble forms of the specific binding molecules. The yield may be determined based on the amount of correctly folded material obtained at the end of the purification process relative to the original culture volume. High yield typically means a yield of 1 mg / L or more, or 2 mg / L or more, more preferably 3 mg / L or more, or 4 mg / L or more, or 5 mg / L or even higher. The mutated specific binding molecules of the invention preferably have a greater (i.e., stronger) K for the VVVGADGVGK-HLA-A*11 complex than the native TCR (also referred to as the non-mutated or scaffold TCR). D , e.g., K in the range of 1 pM to 1 μM D In one aspect, the specific binding molecule of the present invention has a K with respect to the complex of about 1 pM to about 400 nM, about 1 pM to about 1000 pM, about 1 pM to about 500 pM, or about 1 pM to about 100 pM. D(wherein about means ±10%). The specific binding molecule may additionally or alternatively have a binding half-life (T) with respect to the complex in the range of about 1 minute to about 60 hours, about 20 minutes to about 50 hours, or about 2 hours to about 35 hours, or about 4 hours to about 20 hours. 1 / 2 Preferably, the specific binding molecule of the present invention has a K of about 1 pM to about 200 pM with respect to the VVVGADGVGK-HLA-A*11 complex. D and / or has a binding half-life of about 4 hours to about 20 hours. Such high affinity is preferred for a soluble form of the specific binding molecule when conjugated to a therapeutic agent and / or a detectable label.
[0039] In another aspect, the mutated specific binding molecule of the invention has a K for the complex of about 50 nM to about 200 μM or about 100 nM to about 2 μM. D and / or may have a binding half-life of about 3 seconds to about 12 minutes for the complex. Such specific binding molecules may be preferred for adoptive therapy applications. Binding affinity (equilibrium constant K D ) and binding half-life (T 1 / 2 Methods for determining the binding affinity (denoted as K ) are known to those skilled in the art. In a preferred embodiment, the binding affinity and binding half-life are measured using Surface Plasmon Resonance (SPR) or Bio-Layer Interferometry (BLI) (e.g., using a BIAcore or Octet instrument, respectively). Suitable methods are provided in Examples 1 and 2. A doubling of the affinity of a specific binding molecule is represented by the K D It is understood that T is 1 / 2. 1 / 2 is ln2 / dissociation rate (k off ) Therefore, if T1 / 2 doubles, k off becomes 1 / 2. K of TCR D value and k offValues are typically measured for soluble forms of TCRs, i.e. forms truncated to remove residues of the cytoplasmic and transmembrane domains (including single chain TCRs and / or TCRs incorporating non-native disulfide bond or other dimerization domains). To account for variability between individual measurements, particularly for interactions with dissociation times of more than 20 hours, the binding affinity and / or binding half-life of a given specific binding molecule may be measured several times, for example three or more times, using the same assay protocol and the results averaged. To compare binding data between two samples (i.e. two different specific binding molecules and / or two preparations of the same specific binding molecule), measurements are preferably measured using the same assay conditions (e.g. temperature), such as those described in Examples 1 and 2.
[0040] Certain preferred mutated specific binding molecules of the present invention have a substantially higher binding affinity and / or binding half-life for the VVVGADGVGK-HLA-A*11 complex than that of the native TCR. Increasing the binding affinity of the native TCR may reduce the specificity of the TCR for its peptide-MHC ligand. This is demonstrated in Zhao et al. (2007), J. Immunol, 179:9, 5845-5854. However, the mutated specific binding molecules of the present invention remain specific for the VVVGADGVGK-HLA-A*11 complex, despite having a substantially higher binding affinity than the native TCR. Certain preferred mutated specific binding molecules of the invention are capable of generating highly potent T cell responses in vitro against antigen positive cells, particularly cells presenting antigen at low levels (i.e., on the order of 5-100). Such specific binding molecules may be in soluble form and linked to immune effectors (e.g., anti-CD3 antibodies). The T cell response measured may be release of T cell activation markers (e.g., interferon gamma or granzyme B) or target cell killing or other measures of T cell activation (e.g., T cell proliferation). Preferably, highly potent responses are those with EC50 or IC50 values in the pM range, such as EC50 or IC50 values of 1000 pM or less, or 500 pM or less, or 200 pM or less.
[0041] The specific binding molecules of the present invention may comprise a TCR variable domain. Preferably, the TCR variable domain comprises a heterodimer of an α chain and a β chain. Alternatively, the TCR variable domain may comprise a heterodimer of a γ chain and a δ chain. In some cases, the specific binding molecules of the present invention may comprise a dimer of a TCR variable domain, such as an αα or ββ homodimer (or a γγ or δδ homodimer). In the specific binding molecules of the invention, the variable domains and, if present, the constant domains and / or other domains may be organized in any suitable format / configuration. Examples of such configurations are well known in the antibody field. The skilled artisan will recognize the similarities between antibodies and TCRs and may apply the configurations to TCR variable and constant domains (Brinkman et al., MAbs. 2017 Feb-Mar; 9(2):182-212). For example, the variable domains may be arranged in a monoclonal TCR format, where the two chains are linked by disulfide bonds within the constant domains or within the variable domains, or the variable domains are fused to one or more dimerization domains. Alternatively, the variable domains may be arranged in a single chain format, with or without one or more constant domains, or the variable domains may be arranged in a diabody format. The specific binding molecules of the present invention may comprise at least one TCR constant domain or fragment thereof, such as the α-chain TRAC constant domain and / or the β-chain TRBC1 or TRBC2 constant domain. As will be appreciated by those skilled in the art, the terms TRAC and TRBC1 / 2 also encompass naturally occurring polymorphic variants, such as N→K at position 4 of TRAC (Bragado et al., International Immunology. 1994 Feb; 6(2): 223-30).
[0042] If present, one or both constant domains may contain mutations, substitutions or deletions with respect to the native constant domain sequence. The constant domains may be truncated, i.e., may have no transmembrane or cytoplasmic domains. Alternatively, the constant domains may be full length, meaning that the extracellular, transmembrane and cytoplasmic domains are all present. The sequences of the TRAC and TRBC domains may be modified by truncation or substitution to delete the native disulfide bond between Cys4 of exon 2 of TRAC and Cys2 of exon 2 of TRBC1 or TRBC2. The α and / or β chain constant domain sequences may have disulfide bonds introduced between residues of the respective constant domains, for example as described in WO 03 / 020763. Preferably, the α and β constant domains are modified by substitution of cysteine residues at Thr 48 of TRAC and Ser 57 of TRBC1 or TRBC2, with the cysteines forming a non-natural disulfide bond between the α and β constant domains of the TCR. TRBC1 or TRBC2 may additionally comprise a cysteine to alanine mutation at position 75 of the constant domain and an asparagine to aspartic acid mutation at position 89 of the constant domain. One or both of the extracellular constant domains present in the αβ heterodimer of the invention may be further shortened, for example by deleting up to 15 or up to 10 or up to 8 or up to 7 amino acids at one or both C-termini. One or both of the extracellular constant domains present in the αβ heterodimer of the invention may be shortened, for example by deleting up to 15 or up to 10 or up to 8 amino acids at one or both C-termini. The C-terminus of the α chain extracellular constant domain may be shortened, for example by deleting 8 amino acids. Alternatively, the TCR constant domains may be absent, rather than full-length or truncated constant domains. Thus, the specific binding molecules of the invention may be composed of the variable domains of the TCR α and β chains and, optionally, additional domains as described above. Additional domains include, but are not limited to, immune effector domains (e.g., antibody domains), Fc domains or albumin binding domains, therapeutic agents or detectable labels.
[0043] Single chain formats include, but are not limited to, αβTCR polypeptides of the Vα-L-Vβ, Vβ-L-Vα, Vα-Cα-L-Vβ, Vα-L-Vβ-Cβ or Vα-Cα-L-Vβ-Cβ types, where Vα and Vβ are the TCR α and β variable regions, respectively, Cα and Cβ are the TCR α and β constant regions, respectively, and L is a linker sequence (Weidanz et al. (1998), J Immunol Methods. Dec 1; 221(1-2): 59-76; Epel et al. (2002), Cancer Immunol Immunother. Nov; 51(10): 565-73; WO 2004 / 033685; WO9918129). Linker sequences are typically flexible in that they are made primarily of amino acids, such as glycine, alanine, and serine, that do not have bulky side chains that may limit flexibility. Alternatively, linkers with greater rigidity may be desirable. Usable or optimal lengths of linker sequences can be readily determined. In many cases, linker sequences are about 12 amino acids or less in length, such as 10 amino acids or less in length, or 2-10 amino acids in length. Linkers can be 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, or 30 amino acids in length. Examples of suitable linkers that may be used in the multi-domain binding molecules of the invention include, but are not limited to, GGGGS (SEQ ID NO: 18), GGGSG (SEQ ID NO: 19), GGSGG (SEQ ID NO: 20), GSGGG (SEQ ID NO: 21), GSGGGP (SEQ ID NO: 22), GGEPS (SEQ ID NO: 23), GGEGGGP (SEQ ID NO: 24) and GGEGGGSEGGGS (SEQ ID NO: 25) (described in WO2010 / 133828) and GGGSGGGG (SEQ ID NO: 26). Additional linkers may comprise a sequence having one or more of the following sequence motifs: GGGS (SEQ ID NO: 27), GGGGS (SEQ ID NO: 28), TVLRT (SEQ ID NO: 29), TVSSAS (SEQ ID NO: 30) and TVLSSAS (SEQ ID NO: 31). If present, one or both constant domains may be full length or may be truncated and / or contain mutations as described above. Preferably, the single chain TCR is soluble.In a particular embodiment, the single chain TCRs of the invention may have disulfide bonds introduced between residues of each constant domain as described in WO 2004 / 033685. Single chain TCRs are further described in WO 2004 / 033685; WO 98 / 39482; WO 01 / 62908; Weidanz et al. (1998), J Immunol Methods 221(1-2): 59-76; Hoo et al. (1992), Proc Natl Acad Sci USA 89(10): 4759-4763; Schodin (1996), Mol Immunol 33(9): 819-829).
[0044] The TCR variable domains may be arranged in a diabody format, in which two single chain fragments dimerize in a head to tail orientation to generate a compact molecule with a molecular weight similar to that of a tandem scFv (approximately 50 kDa). The present invention also encompasses particles that display the specific binding molecules of the present invention, which are included in a particle library. Such particles include, but are not limited to, phages, yeast cells, ribosomes, or mammalian cells. Methods for producing such particles and libraries are known in the art (see, for example, WO2004 / 044004; WO01 / 48145; Chervin et al. (2008), J. Immuno. Methods 339.2:175-184). The specific binding molecules of the invention are useful for delivery of detectable labels or therapeutic agents to antigen-presenting cells and tissues containing antigen-presenting cells. Thus, they may be linked (covalently or otherwise) to a detectable label (for diagnostic purposes, where the specific binding molecule is used to detect the presence of cells presenting the cognate antigen); and / or a therapeutic agent (including an immune effector); and / or a pharmacokinetic (PK)-modifying moiety. Examples of PK-modifying moieties include, but are not limited to, PEG (Dozier et al. (2015), Int J Mol Sci. Oct 28;16(10):25831-64 and Jevsevar et al. (2010), Biotechnol J. Jan;5(1):113-28), PASylation (Schlapschy et al. (2013), Protein Eng Des Sel. Aug;26(8):489-501), albumin and albumin binding domains (Dennis et al. (2002), J Biol Chem. Sep 20;277(38):35035-43) and / or unstructured polypeptides (Schellenberger et al. (2009), Nat Biotechnol. Dec;27(12):1186-90). Further PK-modifying moieties include antibody Fc fragments. The PK-modifying moiety may serve to extend the in vivo half-life of the specific binding molecules of the invention.
[0045] The immunoglobulin Fc domain, if used, can be the Fc region of any antibody. The Fc region is the antibody tail region that interacts with cell surface Fc receptors and several proteins of the complement system. The Fc region typically comprises two polypeptide chains, both of which have two or three heavy chain constant domains (termed CH2, CH3, and CH4) and a hinge region. The two chains are linked by a disulfide bond within the hinge region. The Fc domains of immunoglobulin subclasses IgG1, IgG2, and IgG4 bind to FcRn and undergo FcRn-mediated recycling, providing a long circulating half-life (3-4 weeks). The interaction of IgG with FcRn is localized to the Fc region covering a portion of the CH2 and CH3 domains. Immunoglobulin Fcs suitable for use in the present invention include, but are not limited to, the Fc domains of IgG1 or IgG4. Preferably, the Fc domain is derived from a human sequence. The Fc region may also preferably contain KiH mutations that facilitate dimerization, or may contain mutations that prevent interaction with activating receptors (i.e., functionally silent molecules). The immunoglobulin Fc domain may be fused to the C- or N-terminus of other domains (i.e., TCR variable domains and / or TCR constant domains and / or immune effector domains) in any suitable order or configuration. The immunoglobulin Fc may be fused to one or more other domains (i.e., TCR variable domains and / or TCR constant domains and / or immune effector domains) via linkers. The linker sequence is typically flexible in that it is made primarily of amino acids that do not have bulky side chains that may limit flexibility, such as glycine, alanine, and serine. Alternatively, a linker with greater rigidity may be desirable. The usable or optimal length of the linker sequence can be readily determined. In many cases, the linker sequence is about 12 amino acids or less in length, such as 10 amino acids or less in length, or 2-10 amino acids in length. The linker can be 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29 or 30 amino acids in length.Examples of suitable linkers that may be used in the multi-domain binding molecules of the present invention include, but are not limited to, GGGGS (SEQ ID NO: 18), GGGSG (SEQ ID NO: 19), GGSGG (SEQ ID NO: 20), GSGGG (SEQ ID NO: 21), GSGGGP (SEQ ID NO: 22), GGEPS (SEQ ID NO: 23), GGEGGGP (SEQ ID NO: 24) and GGEGGGSEGGGS (SEQ ID NO: 25) (described in WO2010 / 133828) and GGGSGGGG (SEQ ID NO: 26). Additional linkers may include sequences having one or more of the following sequence motifs: GGGS (SEQ ID NO: 27), GGGGS (SEQ ID NO: 28), TVLRT (SEQ ID NO: 29), TVSSAS (SEQ ID NO: 30) and TVLSSAS (SEQ ID NO: 31). When fused to a TCR, the immunoglobulin Fc may be fused to either the α or β chain, with or without a linker. Additionally, individual chains of the Fc may be fused to individual chains of the TCR.
[0046] Preferably, the Fc region may be derived from an IgG1 or IgG4 subclass. The two chains may comprise the CH2 and CH3 constant domains and all or part of the hinge region. The hinge region may substantially or partially correspond to the hinge region of IgG1, IgG2, IgG3 or IgG4. The hinge may comprise all or part of the core hinge domain and all or part of the lower hinge region. Preferably, the hinge region contains at least one disulfide bond linking the two chains. The Fc region may contain mutations with respect to the WT sequence. Mutations include substitutions, insertions and deletions. Such mutations may be made for the purpose of introducing desirable therapeutic properties. For example, knob-into-hole (KiH) mutations may be engineered into the CH3 domain to facilitate heterodimerization. In this case, one chain is engineered to contain a bulky protruding residue (i.e., knob), e.g., Y, and the other chain is engineered to contain a complementation pocket (i.e., hole). Suitable locations for KiH mutations are known in the art. Additionally or alternatively, mutations may be introduced that abolish or reduce binding to Fcy receptors and / or increase binding to FcRn, and / or that prevent Fab arm exchange or remove protease sites. Additionally or alternatively, mutations may be made to improve manufacturability, e.g., to remove or alter glycosylation sites.
[0047] The PK-modifying moiety can also be an albumin binding domain, which can also act to extend half-life. As is known in the art, albumin has a long circulating half-life of 19 days, due in part to its size (above the renal threshold), its specific interactions and recycling via FcRn. Attachment to albumin is a well-known strategy to improve the circulating half-life of therapeutic molecules in vivo. Albumin may be attached non-covalently by using specific albumin binding domains, or covalently by conjugation or direct gene fusion. Examples of therapeutic molecules in which attachment to albumin has been utilized to improve half-life can be found in Sleep et al., Biochim Biophys Acta. 2013 Dec;1830(12):5526-34. The albumin binding domain may be any moiety capable of binding to albumin, including any known albumin binding moiety. The albumin binding domain may be selected from endogenous or exogenous ligands, small organic molecules, fatty acids, peptides and proteins that specifically bind to albumin. Examples of suitable albumin binding domains include short peptides such as those described in Dennis et al., J Biol Chem. 2002 Sep 20; 277(38): 35035-43 (e.g. the peptide QRLMEDICLPRWGCLWEDDF); proteins engineered to bind albumin, such as antibodies, antibody fragments and antibody-like scaffolds, such as the Albudab® marketed by GSK (O'Connor-Semmes et al., Clin Pharmacol Ther. 2014 Dec; 96(6): 704-12) and the Nanobodies® marketed by Ablynx (Van Roy et al., Arthritis Res Ther. 2015 May 20; 17: 135); and proteins based on albumin binding domains found in nature, such as the Streptococcal protein G protein (Stork et al., Eng Des Sel. 2007 Nov;20(11):569-76), such as Albumod® marketed by Affibody. Preferably, the albumin is human serum albumin (HSA). The affinity of the albumin binding domain for human albumin can be in the picomolar to micromolar range. Considering the extremely high concentration of albumin in human serum (35-50 mg / ml, approximately 0.6 mM), it is calculated that substantially all of the albumin binding domain will bind to albumin in vivo.
[0048] The albumin binding moiety may be fused to the C- or N-terminus of the other domains (i.e., the TCR variable domain and / or the TCR constant domain and / or the immune effector domain) in any suitable order or form. The albumin binding moiety may be fused to one or more of the other domains (i.e., the TCR variable domain and / or the TCR constant domain and / or the immune effector domain) via a linker. The linker sequence is typically flexible in that it is made primarily of amino acids that do not have bulky side chains that may limit flexibility, such as glycine, alanine and serine. Alternatively, a linker with greater rigidity may be desirable. Usable or optimal lengths of the linker sequence can be readily determined. In many cases, the linker sequence is about 12 amino acids or less in length, such as 10 amino acids or less in length, or between 2 and 10 amino acids in length. The linker may be 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29 or 30 amino acids in length. Examples of suitable linkers that may be used in the multidomain binding molecules of the invention include, but are not limited to, GGGGS (SEQ ID NO: 18), GGGSG (SEQ ID NO: 19), GGSGG (SEQ ID NO: 20), GSGGG (SEQ ID NO: 21), GSGGGP (SEQ ID NO: 22), GGEPS (SEQ ID NO: 23), GGEGGGP (SEQ ID NO: 24) and GGEGGGSEGGGS (SEQ ID NO: 25) (described in WO 2010 / 133828) and GGGSGGGG (SEQ ID NO: 26). Additional linkers may comprise a sequence having one or more of the following sequence motifs: GGGS (SEQ ID NO: 27), GGGGS (SEQ ID NO: 28), TVLRT (SEQ ID NO: 29), TVSSAS (SEQ ID NO: 30) and TVLSSAS (SEQ ID NO: 31). The albumin binding site, when linked to the TCR, may be linked to either the α or β chain, with or without a linker.
[0049] Detectable labels for diagnostic purposes include, for example, fluorescent labels, radioactive labels, enzymes, nucleic acid probes and imaging agents. For some purposes, the specific binding molecules of the present invention may aggregate into complexes comprising several specific binding molecules to form multivalent specific binding molecule complexes. There are human proteins that contain multimerization domains that can be used to prepare multivalent specific binding molecule complexes. For example, the tetramerization domain of p53 has been utilized to generate tetrameric scFv antibody fragments that exhibit increased serum persistence and significantly reduced dissociation rates compared to monomeric scFv fragments (Willuda et al. (2001) J. Biol. Chem. 276 (17) 14385-14392). Hemoglobin also has a tetramerization domain that can be used for this type of application. The multivalent specific binding molecule complexes of the present invention may have improved binding capacity for the complex compared to the non-multimeric native T cell receptor heterodimers of the present invention (also referred to as parent, native, non-mutated wild type or scaffold T cell receptor heterodimers). Thus, multivalent complexes of the specific binding molecules of the present invention are also included in the present invention. Such multivalent specific binding molecule complexes according to the invention are particularly useful for tracking or targeting cells presenting specific antigens in vitro or in vivo, and are also useful as intermediates for the preparation of further multivalent specific binding molecule complexes having such uses. Therapeutic agents that may be combined with the specific binding molecules of the present invention include immune modulators and effectors, radioactive compounds, enzymes (e.g., perforin) or chemotherapeutic agents (e.g., cisplatin). To ensure that the therapeutic effect is exerted at the desired location, the agent may be present inside a liposome or other nanoparticulate structure linked to the specific binding molecule such that the compound is slowly released. This prevents damaging effects during transport through the body and ensures that the agent has its maximum effect after binding of the specific binding molecule to the appropriate antigen-presenting cells.
[0050] Examples of suitable therapeutic agents include, but are not limited to: Antibodies or fragments thereof, including anti-T cell or NK cell determinant antibodies (e.g., anti-CD3, anti-CD28 or anti-CD16); Alternative protein scaffolds with antibody-like binding properties (e.g. DARPins) Immunostimulants, i.e. immune effector molecules that stimulate the immune response, such as cytokines (e.g. IL-2 and IFN-γ); · Chemokines, such as IL-8, platelet factor 4, melanoma growth stimulatory protein, etc.; Activators of the complement pathway or Fc receptors Checkpoint inhibitors, e.g., those targeting PD1 or PD-L1 Small molecule cytotoxic agents, i.e., compounds with a molecular weight of less than 700 daltons that have the ability to kill mammalian cells. Such compounds may also contain toxic metals that can have a cytotoxic effect. Additionally, these small molecule cytotoxic agents are also understood to include prodrugs, i.e., compounds that break down or are transformed under physiological conditions to release a cytotoxic agent. Examples of such agents include cisplatin, maytansine derivatives, rachelmycin, calicheamicin, docetaxel, etoposide, gemcitabine, ifosfamide, irinotecan, melphalan, mitoxantrone, sorfimer sodiumphotofrin II, temozolmide, topotecan, trimetrexate, arbourlate, auristatin E, vincristine and doxorubicin; Peptide cytotoxins, i.e. proteins or fragments thereof capable of killing mammalian cells, such as ricin, diphtheria toxin, Pseudomonas exotoxin A, DNAase and RNAase; Radionuclides, i.e. unstable isotopes of elements that decay with the simultaneous emission of one or more alpha or beta particles or gamma rays, such as iodine-131, rhenium-186, indium-111, yttrium-90, bismuth-210 and 213, actinium-225 and astatine-213; chelating agents may be used to facilitate binding of these radionuclides to the TCR or its multimers; Superantigens and their variants · TCR-HLA fusions, where the peptide is derived from a common human pathogen, such as Epstein-Barr Virus (EBV); Heterologous protein domains, Homologous protein domains, Viral / Bacterial protein domains, Viral / Bacterial peptides.
[0051] Soluble specific binding molecules of the invention linked to an immune effector (usually by fusion to the N- or C-terminus of the α- or β-chain or both chains in any suitable manner) are preferred. The N-terminus of the TCR may be linked to the C-terminus of the immune effector polypeptide. Particularly preferred immune effectors are anti-CD3 antibodies or functional fragments or variants of said anti-CD3 antibodies. As used herein, the term "antibody" encompasses such fragments and variants. Examples of anti-CD3 antibodies include, but are not limited to, OKT3, UCHT-1, BMA-031, and 12F6. Antibody fragments and variants / analogs suitable for use in the compositions and methods described herein include minibodies, diabodies, Fab fragments, F(ab') 2 Further examples encompassed by the term antibody include Nanobodies. TM(constructs sold by Ablynx, Belgium, comprising synthetic single immunoglobulin variable heavy domains derived from camelid (e.g. camel or llama) antibodies), domain antibodies comprising affinity matured single immunoglobulin variable heavy domains or immunoglobulin variable light domains (Domantis, Belgium), and alternative protein scaffolds exhibiting antibody-like binding properties, such as Affibodies comprising an engineered Protein A scaffold (Affibody, Sweden) or Anticalins comprising engineered anticalins (Pieris, Germany) or DARPins comprising engineered ankyrin repeat proteins (Molecular Partners, Switzerland). Examples of preferred configurations of fusion molecules include those described in WO2010133828, WO2019012138 and WO2019012141.
[0052] The specific binding molecule of the present invention is a first polypeptide chain comprising an alpha chain variable domain and a first binding region of an antibody variable domain; and a second polypeptide chain comprising a β chain variable domain and a second binding region of the variable domain of said antibody. It may include, Here, each polypeptide chain is associated in such a way that the specific binding molecule can simultaneously bind to the VVVGADGVGK (SEQ ID NO: 1)-HLA-A*11 complex and the antigen of the antibody.
[0053] Also provided herein is a bispecific polypeptide molecule selected from the group of molecules comprising a first polypeptide chain and a second polypeptide chain, wherein: The first polypeptide chain comprises a first binding region (VD1) of an antibody variable domain that specifically binds to a cell surface antigen of a human immune effector cell, a first binding region (VR1) of a TCR variable domain that specifically binds to an MHC-binding peptide epitope, and a first linker (LINK1) connecting the two domains; the second polypeptide chain comprises a second binding region (VR2) of a variable domain of a TCR that specifically binds to an MHC-binding peptide epitope, a second binding region (VD2) of a variable domain of an antibody that specifically binds to a cell surface antigen of a human immune effector cell, and a second linker (LINK2) connecting the two domains; wherein the first binding domain (VD1) and the second binding domain (VD2) associate to form a first binding site (VD1)(VD2) that binds to a cell surface antigen of the human immune effector cell; the first binding region (VR1) and the second binding region (VR2) associate to form a second binding site (VR1)(VR2) that binds to the MHC-binding peptide epitope; wherein the two polypeptide chains are fused to a human IgG hinge domain and / or a human IgG Fc domain or a dimerization portion thereof, wherein the two polypeptide chains are connected by covalent and / or non-covalent bonds between the hinge domains and / or Fc domains, wherein the bispecific polypeptide molecule is capable of simultaneously binding to the cell surface molecule and to the MHC-binding peptide epitope, wherein the order of the binding regions in the two polypeptide chains is selected from VD1-VR1 and VR2-VD2, or VD1-VR2 and VR1-VD2, or VD2-VR1 and VR2-VD1, or VD2-VR2 and VR1-VD1, and the domains are connected by either LINK1 or LINK2, and the MHC-binding peptide epitope is the VVVGADGVGK complex and the MHC is HLA-A*11.
[0054] The specific binding molecule and the anti-CD3 antibody may be linked by a covalent bond or a non-covalent bond. The covalent bond may be direct or indirect through a linker sequence. The linker sequence is usually flexible in that it is made up primarily of amino acids, such as glycine, alanine, and serine, that do not have bulky side chains that may limit flexibility. Alternatively, a linker with greater rigidity may be desirable. A usable or optimal length of the linker sequence can be readily determined. In many cases, the linker sequence is about 12 amino acids or less in length, such as 10 amino acids or less in length, or 2-10 amino acids in length. Examples of suitable linkers that may be used in the multi-domain binding molecules of the invention include, but are not limited to, GGGGS (SEQ ID NO: 18), GGGSG (SEQ ID NO: 19), GGSGG (SEQ ID NO: 20), GSGGG (SEQ ID NO: 21), GSGGGP (SEQ ID NO: 22), GGEPS (SEQ ID NO: 23), GGEGGGP (SEQ ID NO: 24) and GGEGGGSEGGGS (SEQ ID NO: 25) (described in WO2010 / 133828) and GGGSGGGG (SEQ ID NO: 26). Additional linkers may include sequences having one or more of the following sequence motifs: GGGS (SEQ ID NO: 27), GGGGS (SEQ ID NO: 28), TVLRT (SEQ ID NO: 29), TVSSAS (SEQ ID NO: 30) and TVLSSAS (SEQ ID NO: 31). Specific embodiments of the anti-CD3 specific binding molecule fusion construct of the present invention include α-chain and β-chain pairings, in which the α-chain is composed of a TCR variable domain comprising the amino acid sequences of SEQ ID NOs: 4 to 6, and / or the β-chain is composed of a TCR variable domain comprising the amino acid sequences of SEQ ID NOs: 7 to 8. The α-chain and β-chain may further comprise a constant region comprising a non-natural disulfide bond. The constant domain of the α-chain may be truncated by deleting 8 amino acids. The N- or C-terminus of the α-chain and / or β-chain may be fused to an anti-CD3 scFv antibody fragment via a linker selected from SEQ ID NOs: 18 to 31. Specific preferred embodiments of such anti-CD3 specific binding molecule fusion constructs are shown in the following table and FIG. 3.
[0055] [Table 2] Preferred specific binding molecules linked to anti-CD3 include SEQ ID NO:9 and SEQ ID NO:10. Also included within the scope of the present invention are functional variants (phenotypically silent variants) of said anti-CD3-TCR fusion constructs, which are preferably functionally equivalent despite having at least 90% identity to the reference sequence, such as at least 90%, at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98%, at least 99% or 100% identity.
[0056] In a further aspect, the invention provides a nucleic acid encoding a specific binding molecule or a specific binding molecule-anti-CD3 fusion of the invention. In some embodiments, the nucleic acid is a cDNA. In some embodiments, the nucleic acid may be an mRNA (e.g., an mRNA-encoded bispecific molecule (Stadler et al., Nat Med. 2017 Jul;23(7):815-817)). In some embodiments, the invention provides a nucleic acid comprising a sequence encoding an alpha chain variable domain of a TCR of the invention. In some embodiments, the invention provides a nucleic acid comprising a sequence encoding a beta chain variable domain of a specific binding molecule of the invention. The nucleic acid may be non-naturally occurring and / or purified and / or engineered. The nucleic acid sequence may be codon-optimized depending on the expression system used. As known to the skilled artisan, the expression system may comprise bacterial cells, such as E. coli, or yeast cells or mammalian cells or insect cells, or the expression system may be a cell-free expression system. In some embodiments, the molecule may be an mRNA-encoded bispecific antibody. In another aspect, the present invention provides a vector comprising the nucleic acid of the present invention.Preferably, the vector is a TCR expression vector.Suitable TCR expression vectors include, for example, gamma retroviral vectors, more preferably lentiviral vectors.Further details can be found in Zhang (2012) and references therein (Zhang et al., Adv Drug Deliv Rev. 2012 Jun 1;64(8):756-762). The present invention also provides a cell comprising a vector of the invention, preferably a TCR expression vector. Suitable cells include mammalian cells, preferably immune cells, even more preferably T cells. The vector may comprise the nucleic acid of the invention encoding the α-chain and the β-chain in a single open reading frame, or each in two separate open reading frames. Another aspect provides a cell comprising a first expression vector comprising a nucleic acid encoding the α-chain of a specific binding molecule of the invention and a second expression vector comprising a nucleic acid encoding the β-chain of a specific binding molecule of the invention. The cell is particularly useful for adoptive therapy. The cell of the invention may be isolated and / or recombinant and / or non-naturally occurring and / or engineered.
[0057] Since the specific binding molecules of the invention are useful for adoptive therapy, the invention encompasses non-naturally occurring and / or purified and / or engineered cells, particularly T cells, that present the specific binding molecules of the invention. The invention also provides an expanded population of T cells that present the specific binding molecules of the invention. There are several suitable methods for transfection of T cells with nucleic acids (e.g., DNA, cDNA or RNA) that encode the specific binding molecules of the invention (see, e.g., Robbins et al. (2008) J Immunol. 180:6116-6131). T cells expressing the specific binding molecules of the invention are suitable for use in adoptive therapy-based cancer treatment. As known to those skilled in the art, there are several suitable methods that allow for the implementation of adoptive therapy (see, e.g., Rosenberg et al. (2008), Nat Rev Cancer 8(4)). As is well known in the art, in vivo production of proteins (including proteins that contain specific binding molecules of the present invention) can result in post-translational modifications. Glycosylation is one such modification and involves the covalent addition of oligosaccharide moieties to defined amino acids in a polypeptide chain. For example, asparagine or serine / threonine residues are well-known sites for oligosaccharide addition. The glycosylation status of a particular protein depends on several factors, including the protein sequence, protein conformation, and availability of specific enzymes. Furthermore, the glycosylation status (i.e., oligosaccharide type, covalent linkages, and total number of additions) can affect the function of the protein. Thus, control of glycosylation is often desirable when producing recombinant proteins. Controlled glycosylation has been used to improve antibody-based therapeutics (Jefferis et al. (2009) Nat Rev Drug Discov Mar;8(3):226-34). For specific binding molecules of the invention, glycosylation may be controlled, for example, by using specific cell lines (including, but not limited to, mammalian cell lines, such as Chinese Hamster Ovary (CHO) cells or Human Embryonic Kidney (HEK) cells) or by chemical modification. Such modifications may be desirable because glycosylation can improve pharmacokinetics, reduce immunogenicity, and more closely mimic native human proteins (Sinclair and Elliott (2005), Pharm Sci. Aug; 94(8):1626-35). In some cases, mutations may be introduced to control and / or alter post-translational modifications.
[0058] For administration to a patient, the specific binding molecules of the invention (preferably conjugated to a detectable label or therapeutic agent or expressed in transfected T cells), or specific binding molecule-anti-CD3 fusion molecules, nucleic acids, expression vectors or cells of the invention may be provided together with one or more pharma- ceutically acceptable carriers or excipients as part of a sterile pharmaceutical composition. This pharmaceutical composition may be in any suitable form (depending on the desired method of administration to the patient). The pharmaceutical composition may be provided in unit dosage form, typically in a hermetically sealed container, and may be provided as part of a kit. Such a kit will usually (but not necessarily) include instructions for use. The kit may include a number of unit dosage forms. The pharmaceutical compositions may be adapted for administration by any suitable route, for example parenteral (including subcutaneous, intramuscular, intrathecal or intravenous), enteral (including oral or rectal), inhalation or intranasal. Such compositions may be prepared by any method known in the art of pharmacy, for example by mixing the active ingredient with the carrier or excipient under sterile conditions. The dosage of the substance of the invention can vary widely depending on the disease or disorder to be treated, the age and condition of the individual to be treated, etc. A suitable dosage range for the specific binding molecule-anti-CD3 fusion molecule can be 25ng / kg to 50μg / kg or 1μg to 1g. The physician will ultimately determine the appropriate dosage to be used. Examples of suitable dosing regimens are provided in WO2017208018. The specific binding molecules, specific binding molecule-anti-CD3 fusion molecules, pharmaceutical compositions, vectors, nucleic acids and cells of the invention may be provided in a substantially pure form, for example at least 80%, at least 85%, at least 90%, at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98%, at least 99% or 100% pure.
[0059] The present invention also provides: The specific binding molecules, specific binding molecule-anti-CD3 fusion molecules, nucleic acids, pharmaceutical compositions or cells of the invention for use in medicine, preferably for use in methods of treating cancer (including but not limited to pancreatic cancer, colorectal cancer, lung cancer (including non-small cell lung cancer), ovarian cancer (including clear cell carcinoma, endometrioid carcinoma, mucinous carcinoma), gastrointestinal cancer (including bile duct cancer, gallbladder cancer, small intestine cancer, ampullary cancer, appendix cancer) and endometrial cancer), particularly preferred cancer indications are pancreatic cancer and colorectal cancer. Use of the specific binding molecule, specific binding molecule-anti-CD3 fusion molecule, nucleic acid, pharmaceutical composition or cell of the invention in the manufacture of a medicament for treating cancer, including but not limited to pancreatic cancer, colorectal cancer, lung cancer (including non-small cell lung cancer), ovarian cancer (including clear cell carcinoma, endometrioid carcinoma, mucinous carcinoma), gastrointestinal cancer (including bile duct carcinoma, gallbladder carcinoma, small intestine carcinoma, papillary carcinoma, appendix carcinoma) and endometrial cancer. Particularly preferred cancer indications are pancreatic cancer and colorectal cancer. A method for treating cancer, including but not limited to pancreatic cancer, colorectal cancer, lung cancer (including non-small cell lung cancer), ovarian cancer (including clear cell, endometriosis, mucinous), gastrointestinal cancer (including bile duct, gallbladder, small intestine, papillary, appendix, appendix) and endometrial cancer, comprising administering to a subject in need of treatment a therapeutically effective amount of a specific binding molecule-anti-CD3 fusion molecule. Particularly preferred cancer indications are pancreatic and colorectal cancer. An injectable formulation for administration to a human subject comprising a specific binding molecule, specific binding molecule-anti-CD3 fusion molecule, nucleic acid, pharmaceutical composition or cell of the invention.
[0060] The specific binding molecules, specific binding molecule-anti-CD3 fusion molecules, nucleic acids, pharmaceutical compositions or cells of the invention may be administered by injection, for example, intravenously, subcutaneously, or directly into the tumor. The human subject may be of the HLA-A*02 subtype. The patient may be screened prior to treatment to confirm expression of mutant Kras proteins and / or the presence of mutant peptides. Additionally or alternatively, the patient may be screened for HLA-A11. Where tumor treatment is intended, the tumor may be a solid or liquid tumor. The method of treatment may further comprise administering one or more additional anti-neoplastic agents separately, in combination or sequentially.
[0061] The terms "treatment," "treat," "treating" and similar expressions are meant to include slowing, halting, or reversing the progression of cancer. These terms also include palliating, ameliorating, attenuating, eliminating, or relieving one or more symptoms of a disease or pathological condition, even if the cancer is not actually eliminated and the progression of the cancer itself is not slowed, halted, or reversed. "Therapeutically effective amount" means the amount of a compound or a pharma- ceutically acceptable salt thereof administered to a subject that elicits a biological or medical response in the subject or a desired therapeutic effect in the subject. Therapeutically effective amounts can be readily determined by the attending physician, as one skilled in the art, by using known techniques and by observing results obtained under analogous circumstances. In determining the effective amount for a subject, several factors are taken into account by the attending physician, including, but not limited to, the following: size, age, and general health; the particular disease or disorder involved; the extent or severity of the disease or disorder involved; the response of the individual subject; the particular compound administered; the form of administration; the bioavailability characteristics of the formulation administered; the administration regimen selected; the use of concomitant drugs; and other relevant circumstances. Preferred features of each aspect of the invention are relevant to each of the other aspects mutatis mutandis. Prior art documents referred to herein are incorporated to the fullest extent permitted by law. [Brief description of the drawings]
[0062] [Figure 1] Figure 1 shows the amino acid sequences of the α and β variable and constant domains of the soluble scaffold TCR. The CDR sequences are underlined. [Diagram 2] Figure 2 shows examples of amino acid sequences of mutant TCR α and β variable domains, with the CDRs underlined and mutations relative to the WT sequence shown in bold. [Diagram 3]FIG. 3 shows examples of amino acid sequences of TCR-anti-CD3 fusion proteins incorporating mutated TCR variable domains. [Figure 4] Figure 44 provides an exemplary graph showing that TCR-anti-CD3 fusion proteins can drive stronger T cell activation in the presence of cells pulsed with mutant KRAS peptide (designated VVV(D)K-RASG12D) compared to cells pulsed with WT KRAS peptide (designated VVV(G)wt K-RAS). IFNy release is used as a readout for T cell activation. [Diagram 5] Figure 5 provides an exemplary graph showing that TCR-anti-CD3 fusion proteins can drive strong T cell activation in the presence of cancer cell lines expressing mutant KRAS (Panc-1xA11β2M and CL40). Cell lines NCI-H2030 and SK-Mel-28 express WT KRAS. IFNy release is used as a readout for T cell activation. [Figure 6] Figure 6 provides an exemplary graph showing that TCR-anti-CD3 fusions mediate potent killing of a cancer cell line expressing a mutant KRAS peptide (CL40) compared to a cell line expressing a WT KRAS peptide (SK-Mel-28). The percentage of target cells remaining after 72 hours is used as a marker of target cell death. [Figure 7] Figure 7 is an exemplary graph showing that TCR-anti-CD3 fusion proteins at concentrations of 1 nM or less have little or no activity against cell lines derived from normal tissues (normal cells). Panc-1xA11β2M and SK-Mel-28 cells are positive and negative controls, respectively. IFNy release is used as a readout for T cell activation. EXAMPLES
[0063] The invention is further described in the following non-limiting examples. Working Example Example 1 - Isolation and characterization of WT TCR a) Preparation of soluble WT TCR TCRs recognizing the VVVGADGVGK-HLA-A*11 complex were identified from donor PBMCs using known T cell cloning methods, and the TCR chains were then identified by RACE. WT TCR was prepared as a soluble αβ heterodimer as previously described (Boulter et al., Protein Eng. 2003 Sep;16(9):707-11 and WO03 / 020763). Briefly, DNA sequences encoding the α and β extracellular regions of the soluble TCR comprising the amino acid sequences provided in SEQ ID NOs: 1 and 2 were separately cloned into expression plasmids using standard methods and separately transformed into E. coli strain Rosetta 2(DE3)pLysS. For expression, cells were grown in autoinduction medium supplemented with 1% glycerol (+100 μg / ml ampicillin and 34 μg / ml chloramphenicol) for 2 hours at 37° C., after which the temperature was reduced to 30° C. and incubated overnight. The harvested cell pellet was lysed in BugBuster protein extraction reagent (Merck Millipore). The inclusion body pellet was collected by centrifugation, washed twice in Triton buffer (50 mM Tris-HCl pH 8.1, 0.5% Triton-X100, 100 mM NaCl, 10 mM NaEDTA) and finally resuspended in detergent-free buffer (50 mM Tris-HCl pH 8.1, 100 mM NaCl, 10 mM NaEDTA).
[0064] For refolding, the inclusion bodies were first mixed and diluted in solubilization / denaturation buffer (6 M guanidine-HCl, 50 mM Tris HCl pH 8.1, 100 mM NaCl, 10 mM EDTA, 20 mM DTT) followed by incubation for 30 min at 37° C. Refolding was then initiated by further dilution in refold buffer (100 mM Tris pH 8.1, 800 or 400 mM L-arginine HCl, 2 mM EDTA, 4 M urea, 6.5 mM cysteamine hydrochloride and 1.9 mM cystamine dihydrochloride). The refolded mixture was diluted with 10 L of H2O per 1 L.2 The mixture was dialyzed against 0 for 18-20 hours at 5°C ± 3°C. The dialysis buffer was then exchanged twice with 10 mM Tris pH 8.1 (10 L) and dialysis was continued for another 15 hours. The dialysis mixture was then filtered through a 0.45 μm cellulose filter. The sample was then applied to a POROS® 50HQ anion exchange column and bound proteins were eluted with a gradient of 0-500 mM NaCl in 20 mM Tris pH 8.1 over 6 column volumes. Peak fractions were identified by SDS PAGE, then pooled and concentrated. The concentrated sample was then applied to a Superdex® 200 Increase 10 / 300 GL gel filtration column (GE Healthcare) pre-equilibrated with Dulbecco's PBS buffer. Peak fractions were pooled and concentrated.
[0065] b) Biophysical characterization of soluble WT TCR Binding of soluble TCR to the VVVGADGVGK-HLA-A*11 complex was assessed using surface plasmon resonance (SPR). Binding specificity was determined by measuring cross-recognition of the non-mutated KRAS peptide VVVGAGGVGK with additional peptides with high sequence homology and / or the same binding motif identified by alanine scanning. Cross-reactivity against an additional pool of commonly presented HLA-A11 peptides of various lengths was also assessed (referred to as CPmix). First, truncated and biotinylated HLA-A11 heavy chain and human β2-microglobulin (β2m) were prepared as inclusion bodies from E. coli and refolded and purified as previously described (Garboczi, Hung, & Wiley, 1992; O'Callaghan et al., 1999). Biotinylated peptide-HLA monomers were then immobilized on streptavidin-coupled CM-5 series S sensor chips. Equilibrium binding constants were determined using serial dilutions of soluble TCR injected at a constant flow rate of 10-30 μl / min onto a flow cell coated with approximately 500 response units (RU) of peptide-HLA complex. Equilibrium responses were normalized by subtracting the bulk buffer response on a control flow cell without peptide-HLA for each TCR concentration. K D Values are obtained by non-linear curve fitting using Prism 8 software and the Langmuir binding isotherm Binding = C x Max / (C + KD), where "Binding" is the equilibrium binding (RU) at concentration C of injected TCR and Max is the maximum binding. All measurements are performed at 25°C in Dulbecco's PBS buffer supplemented with 0.005% surfactant P20.
[0066] result The binding characteristics of the interaction of soluble WT TCR with various peptide-HLA-A11 complexes are shown below. [Table 3]
[0067] These data indicate that the WT TCR can specifically bind the VVVGADGVGK-HLA-A*11 complex and discriminate between mutated and non-mutated KRAS peptides. Moreover, no binding to several additional peptides, including those with high levels of sequence homology, was detected.
[0068] Example 2 - Generation of high affinity TCR and TCR-anti-CD3 fusion proteins Using the soluble WT TCR described in Example 1 as a template, phage display and random mutagenesis techniques known in the art were used to identify mutations that increase the binding affinity of the TCR for peptide-HLA complexes (see, e.g., Li et al., Nat Biotechnol. 2005 Mar;23(3):349-54). The non-mutated KRAS peptide was used for exclusion during the phage display process. A high affinity TCR was then prepared as a bispecific fusion protein comprising the soluble TCR fused to an anti-CD3 scFV. a) Preparation of TCR-anti-CD3 fusion proteins The same process was followed as described for soluble TCR in Example 1, except that the TCR β chain was fused to an anti-CD3 single chain antibody via a linker. Also, the concentrations of the redox reagents in the refolding step were 1 mM cystamine dihydrochloride, 10 mM cysteamine hydrochloride). Finally, a cation exchange step was added after the anion exchange step. In this case, the peak fractions of the anion exchange were diluted 20-fold in 40 mM MES (pH 6.2) and applied to a POROS® 50HS cation exchange column. Bound proteins were eluted using a gradient of 0-500 mM NaCl in 40 mM MES. The peak fractions were pooled, adjusted to 200 mM Tris pH 8.1, concentrated and applied directly to a gel filtration matrix.
[0069] b) Biophysical characterization of TCR-anti-CD3 fusion proteins Binding analysis was performed using an SPR method similar to that described in Example 1. Except for high affinity interactions, binding parameters were determined by single cycle kinetic analysis. Five different concentrations of soluble TCR or fusion protein were injected at a flow rate of 50-60 μl / min over a flow cell coated with approximately 50-200 RU of peptide-HLA complex. Typically, 60-200 μl of soluble TCR or fusion molecule was injected at the highest concentration of 2-100 nM, with two-fold serial dilutions used for the other four injections. The lowest concentration was injected first. To measure the dissociation phase, buffer was injected until ≥ 10% dissociation occurred, typically after 1-3 hours. Kinetic parameters were calculated using the manufacturer's software. The dissociation phase was fitted to a first-order exponential decay equation to allow calculation of the half-life. The equilibrium constant K D k off / k on Calculated from.
[0070] [Table 4] These data indicate that the high-affinity variants retain binding specificity to the VVVGADGVGK-HLA-A*11 complex and can discriminate between mutated and non-mutated KRAS peptides.
[0071] Example 3 - Intracellular analysis of soluble TCR-anti-CD3 fusion proteins Soluble TCR-anti-CD3 fusion proteins mediate potent and specific T cell activation a) Peptide-pulsed cells The TCR-anti-CD3 fusion proteins were tested for their ability to mediate T cell activation in the presence of target cells pulsed with either the mutant G12D peptide or the WT peptide. T cell activation was assessed using IFNγ release and detected using an ELISPOT assay kit. HLA-A11 positive SUP-B15 cells were used as target cells and pulsed with 10 μM peptide. HLA-A11+ PBMCs obtained from donor blood were used as effector cells. The effector to target ratio was 1:1. The assay was performed using a human IFN-γ ELISPOT kit (BD Biosciences) according to the manufacturer's instructions. Briefly, ELISpot plates were coated with IFNy antibodies 1-7 days before the assay. On the day of the assay, ELISPOT plates were blocked with 100 μl of assay medium (R10). After removal of the block, target cells were plated at 50,000 / well in 50 μl. Fusion proteins were titrated to obtain final concentrations spanning the expected biological activity range (typically log or half log dilutions with a top concentration of 10 nM) and added to the wells in a volume of 50 μl. Effector cells were thawed from liquid nitrogen, counted, and plated at 40-50,000 cells / well in 50 μl (the exact cell number used for each experiment is donor dependent and can be adjusted to produce a response within the appropriate range for the assay). The final volume of each well was brought to 200 μl with R10. Plates / cells were cultured overnight and the following day plates were washed and assayed according to the manufacturer's instructions, allowed to dry at room temperature for at least 2 hours, after which spots were counted using a CTL analyzer with Immunospot software (Cellular Technology Limited). Dose-response curves were plotted using PRISM software. Controls included samples prepared with i) target and / or effector only, ii) effector and 10 nM TCR-anti-CD3 fusion.
[0072] result The TCR-anti-CD3 fusion proteins of the present invention resulted in potent and specific T cell activation in the presence of cells presenting the mutant Kras peptide (VVVGADGVGK) HLA-A*11 complex. In each case, there was at least a 100-fold difference in the concentration required for T cell activation between the mutant and WT peptides, indicating that the TCR-anti-CD3 fusion proteins were able to fully discriminate between the mutant and WT peptides. A graph of the five TCR-anti-CD3 fusion proteins is shown in Figure 4.
[0073] b) Cell line T cell activation by TCR-anti-CD3 fusion proteins was further tested using cell lines that were either positive or negative for the antigen. In this example, the following human cancer cell lines were used as target cells: Panc-1xA11β2M (pancreatic) antigen positive (KRAS G12D positive; HLA-A11 and β2M transduced) · CL40 (colorectal) antigen positive (KRAS G12D positive) SK-Mel-28 (melanoma) antigen negative (wt KRAS positive) · NCI-H2030 (lung) antigen negative (KRAS G12C positive). Cell lines were treated with a six-point concentration range of TCR-anti-CD3 fusion proteins and co-cultured with HLA-A11+ PBMCs obtained from donor blood at an effector to target ratio of 0.8: 1. IFNy release was measured by ELISPOT assay as described above.
[0074] result The TCR-anti-CD3 fusion proteins of the present invention mediate potent T cell activation in the presence of cells naturally presenting mutant KRAS peptides, with EC50 values in the picomolar range (≦1000 pM). Cell lines presenting the WT peptide or alternative mutant peptides produced little or no T cell activation at TCR-anti-CD3 fusion concentrations of 1 nM or less. A graph of the two TCR-anti-CD3 fusion proteins is shown in FIG. 5.
[0075] c) Soluble TCR-anti-CD3 fusion proteins mediate potent and specific killing of cancer cell lines TCR-anti-CD3 fusion proteins were tested for their ability to drive T cell-mediated killing of cancer cell lines that were either positive or negative for the antigen. In this example, CL40 and SK-Mel-28 were used as positive and negative target cells, respectively. Target cells were treated with a seven-point concentration range of TCR-anti-CD3 fusion proteins and co-cultured with HLA-A11+ PBMCs in the presence of a caspase-sensitive green fluorescent probe for 72 hours using the IncuCyte ZOOM platform. Images were acquired every 2 hours to detect the killing of red fluorescent target cells by redirected T cells and analyzed using Incucyte ZOOM software. Dose-response curves were plotted using PRISM software, and IC 50 The value was calculated.
[0076] result The IC50 values for each TCR-anti-CD3 fusion protein in the presence of antigen positive cells are shown in the table below. A graph of the four TCR-anti-CD3 fusion proteins is shown in Figure 6. [Table 5]
[0077] These data show that the TCR-anti-CD3 fusion proteins of the invention drive potent T cell-mediated killing of colorectal cancer cell lines that naturally present the VVVGADGVGK-HLA-A*11 complex. IC50 values are in the picomolar range (≦1000 pM). Little or no T cell killing of SK-Mel-28 cells was observed at TCR-anti-CD3 fusion concentrations below 1 nM.
[0078] Example 4 - Further specificity testing of TCR-anti-CD3 fusion proteins The TCR-anti-CD3 fusion proteins were further tested for their suitability as therapeutic agents by assessing T cell activation in the presence of a panel of cell lines derived from normal healthy tissues. Cell lines were treated with a six-point concentration range of TCR-anti-CD3 fusion proteins and co-cultured with HLA-A11+ PBMCs obtained from donor blood at an effector to target ratio of 1:1. IFNy release was measured by ELISPOT assay as described above. Panc-1xA11 and SK-Mel-28 were used as positive and negative controls, respectively.
[0079] result These data indicate that the TCR-anti-CD3 fusion proteins of the invention elicit minimal or no T cell activity against a variety of normal tissues at concentrations <1 nM. A graph of the two TCR-anti-CD3 fusion proteins is shown in Figure 7.
Claims
1. A specific binding molecule comprising a TCR alpha chain variable domain and a TCR beta chain variable domain each comprising FR1-CDR1-FR2-CDR2-FR3-CDR3-FR4 (FR is a framework region and CDR is a complementarity determining region), each having specific binding properties for the VVVGADGVGK (SEQ ID NO: 1)-HLA-A*11 complex, CDR1 in the α chain CDR is TRDTTYY (SEQ ID NO: 32), CDR2 is RNSFDEQNE (SEQ ID NO: 33), and CDR3 is CALSGPSGAGSYQLTF (SEQ ID NO: 34); and CDR1 in the β chain CDR is MNHEY (SEQ ID NO: 35), CDR2 is SVGEGT (SEQ ID NO: 36), and CDR3 is CASSYGPGQHNSPLHF (SEQ ID NO: 37). or CDR1 in the α chain is TRDTAYY, CDR2 is QPWWGSSRG, and CDR3 is CAMSVPDMEGHYQFTF, and CDR1 in the β chain is MNHEY, CDR2 is SGWGKD, and CDR3 is CASKVGPGQHNSPLHF. or CDR1 in the α chain is TRDTAYY, CDR2 is QPWWGSSRG, and CDR3 is CAMSVPDMEGHYQFF, and CDR1 in the β chain is MNHEY, CDR2 is SGWGKD, and CDR3 is CAMSVPDMEGHYQFTF; or CDR1 in the α chain is TRDTAYY, CDR2 is QPWWGEQNE, and CDR3 is CAMSVPSGDGSYQFTF; and CDR1 in the β chain is MNHEY, CDR2 is SGWGKD, and CDR3 is CASSYGPGQHNSPLHF. Specific binding molecules.
2. The alpha chain variable domain framework region has the following sequence: FR1 - amino acids 1 to 26 of SEQ ID NO:2, FR2 - amino acids 34 to 50 of SEQ ID NO:2, FR3 - amino acids 60 to 91 of SEQ ID NO:2, FR4 - amino acids 108 to 117 of SEQ ID NO:2, or a sequence having at least 90%, at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98% or at least 99% identity to each of the above sequences, and / or the β chain variable domain framework region comprises the following sequence: FR1 - amino acids 1 to 26 of SEQ ID NO:3; FR2 - amino acids 32 to 48 of SEQ ID NO:3; FR3 - amino acids 55 to 90 of SEQ ID NO:3; FR4 - amino acids 106 to 115 of SEQ ID NO:3, or a respective sequence having at least 90, 91, 92, 93, 94, 95, 96, 97, 98 or 99% identity to said sequence.
3. The α chain variable domain and the β chain variable domain are 【Table 1】 The specific binding molecule according to claim 1 or 2, wherein the specific binding molecule is selected from a combination of amino acid sequences as follows:
4. The specific binding molecule according to any one of claims 1 to 3, which is an α-β heterodimer and has an α chain TRAC constant domain sequence and a β chain TRBC1 or TRBC2 constant domain sequence.
5. (a) a non-native covalent disulfide bond links a residue of the α chain constant domain to a residue of the β chain constant domain; (b) in single chain form of the type Vα-L-Vβ, Vβ-L-Vα, Vα-Cα-L-Vβ, Vα-L-Vβ-Cβ, where Vα and Vβ are the variable regions of TCR α and β, respectively, Cα and Cβ are the constant regions of TCR α and β, respectively, and L is a linker sequence; or (c) a first polypeptide chain comprising the α chain variable domain and a first binding region of an antibody variable domain; and a second polypeptide chain comprising the beta chain variable domain and a second binding region of the variable domain of the antibody; wherein the respective polypeptide chains are associated such that the specific binding molecule can simultaneously bind to the VVVGADGVGK (SEQ ID NO: 1)-HLA-A*11 complex and the antigen of the antibody. The specific binding molecule of claim 4.
6. A specific binding molecule according to any one of claims 1 to 5 linked to a detectable label and / or a therapeutic agent and / or a PK modifying moiety.
7. The specific binding molecule of claim 6 , wherein the anti-CD3 antibody is covalently linked to the C-terminus or N-terminus of the α-chain or β-chain of the TCR, optionally via a linker sequence.
8. an alpha chain amino acid sequence set forth in SEQ ID NO: 9, 12 or 15, or an alpha chain amino acid sequence having at least 90% identity to the amino acid sequence set forth in SEQ ID NO: 9, 12 or 15, for example at least 90%, at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98%, at least 99% or 100% identity; A β-chain amino acid sequence set forth in SEQ ID NO: 10, 11, 13, 14, 16, or 17, or a β-chain amino acid sequence having at least 90% identity to the amino acid sequence set forth in SEQ ID NO: 10, 11, 13, 14, 16, or 17, for example, at least 90%, at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98%, at least 99%, or 100% identity. The specific binding molecule-anti-CD3 antibody fusion molecule having specific binding properties for the VVVGADGVGK (SEQ ID NO: 1)-HLA-A*11 complex described in claim 7, comprising:
9. (a) an α chain amino acid sequence of SEQ ID NO:9 and a β chain amino acid sequence of SEQ ID NO:10; (b) an α chain amino acid sequence of SEQ ID NO:9 and a β chain amino acid sequence of SEQ ID NO:11; (c) an α chain amino acid sequence of SEQ ID NO:12 and a β chain amino acid sequence of SEQ ID NO:13; (d) an α chain amino acid sequence of SEQ ID NO:12 and a β chain amino acid sequence of SEQ ID NO:14; (e) an α chain amino acid sequence of SEQ ID NO: 15 and a β chain amino acid sequence of SEQ ID NO: 16; or (f) the specific binding molecule-anti-CD3 antibody fusion molecule of claim 8, comprising an alpha chain amino acid sequence of SEQ ID NO:15 and a beta chain amino acid sequence of SEQ ID NO:
17.
10. A nucleic acid encoding a TCR α chain and / or a TCR β chain according to any one of claims 1 to 9.
11. An expression vector comprising the nucleic acid of claim 10.
12. the below described: (a) an expression vector according to claim 11 encoding the TCR α and β variable chains as defined in any one of claims 1 to 9 in a single open reading frame or in two different open reading frames; or (b) a first expression vector comprising a nucleic acid encoding an alpha variable chain of a TCR as defined in any one of claims 1 to 9, and a second expression vector comprising a nucleic acid encoding a beta variable chain of a TCR as defined in any one of claims 1 to 9. A cell having
13. A purified and / or engineered cell presenting a specific binding molecule according to any one of claims 1 to 9.
14. The cell described in claim 13, which is a T cell.
15. A pharmaceutical composition comprising the specific binding molecule of any one of claims 1 to 7, the specific binding molecule-anti-CD3 antibody fusion molecule of claim 8 or 9, the nucleic acid of claim 10, the expression vector of claim 11, and / or the cell of any one of claims 12 to 14, together with one or more pharma- ceutically acceptable carriers or excipients.
16. A pharmaceutical comprising at least one selected from the group consisting of the specific binding molecule according to any one of claims 1 to 7, the specific binding molecule-anti-CD3 antibody fusion molecule according to claim 8 or 9, the nucleic acid according to claim 10, and the cell according to any one of claims 12 to 14.
17. 17. A pharmaceutical composition according to claim 15 or a medicament according to claim 16 for use in a method for treating cancer.
18. a) maintaining the cell according to any one of claims 12 to 14 under optimal conditions for expression of a specific binding molecule chain; and b) a method for producing a specific binding molecule according to any one of claims 1 to 7 or a specific binding molecule-anti-CD3 antibody fusion molecule according to claim 8 or 9, comprising isolating the specific binding molecule chain.