Chimeric Antigen Receptor

A CAR with a Fab antigen-binding domain effectively targets and kills cancer cells with bulky antigens by improving synapse formation and signaling, addressing the inefficiencies of classical CARs in bulky antigen recognition.

JP7733051B2Active Publication Date: 2025-09-02AUTOLUS LIMIED
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Patent Information

Application Number
JP2023064079
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-06-14
Filing Date
2023-04-11
Publication Date
2025-09-02
Estimated Expiration
2039-05-15

AI Technical Summary

Technical Problem

Chimeric antigen receptors (CARs) often fail to efficiently signal in response to antigens with bulky extracellular domains, leading to suboptimal synaptic distances and inhibition of tyrosine phosphorylation, which impedes effective target cell killing.

Method used

Development of a CAR with a Fab antigen-binding domain that targets antigens with bulky extracellular domains, such as CD22, CD21, CEACAM5, MUC1, or FcRL5, using specific VH and VL sequences to improve synapse formation and signaling efficiency.

Benefits of technology

Enhances CAR-mediated signaling and target cell killing of antigens with bulky extracellular domains, overcoming the limitations of classical CARs by maintaining optimal synaptic distances and preventing phosphatase interference.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a chimeric antigen receptor (CAR) which binds a target antigen having a bulky extracellular domain, where the CAR comprises a Fab antigen binding domain.SOLUTION: The present invention also provides nucleic acid sequences and constructs encoding such a CAR, cells expressing such a CAR, and therapeutic uses thereof. In a second aspect, there is provided a nucleic acid sequence which encodes a CAR according to the first aspect of the invention. In a third aspect, there is provided a nucleic acid construct which comprises a first nucleic acid sequence according to the second aspect of the invention, and a second nucleic acid sequence encoding a second chimeric antigen receptor which has a domain antibody (dAb) antigen binding domain or scFv antigen binding domain.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to chimeric antigen receptors (CARs). In particular, the present invention relates to CARs having a Fab-like antigen-binding domain. [Background technology]

[0002] Chimeric antigen receptor (CAR) Several immunotherapeutic agents have been described for use in cancer treatment, including therapeutic monoclonal antibodies (mAbs), bispecific T cell engagers, and chimeric antigen receptors (CARs).

[0003] Chimeric antigen receptors are proteins that combine the specificity of monoclonal antibodies (mAbs) with the effector functions of T cells. Their usual form is a type I transmembrane domain protein with an antigen-recognizing amino terminus (binder) and a transmembrane domain connected to an endodomain that transmits T cell activation signals.

[0004] The most common form of these molecules is a fusion of a single-chain variable fragment (scFv) derived from a monoclonal antibody that recognizes a target antigen, fused via a transmembrane domain to a signaling endodomain. Such molecules activate T cells in response to recognition of the target by the scFv. When T cells express such a CAR, the T cells recognize and kill target cells that express the target antigen. CARs against various tumor-associated antigens have been developed, and many are currently in clinical trials.

[0005] While CAR-T cell-mediated treatments have been successful with small target antigens (such as CD19 or GD2), chimeric antigen receptors often fail to signal in response to antigens with bulky extracellular domains.

[0006] Efficient downstream signaling following antigen encounter requires an appropriate distance for the synapse. When a T cell encounters an antigen-presenting cell (APC) (through TCR-peptide-MHC interaction), proteins at the interface passively segregate based on size. Phosphatases with large ectodomains (e.g., CD45 and CD148) are excluded from the area of ​​close contact between the T cell and APC (see Figure 1). The synapse formed by peptide-MHC-TCR interaction is optimal for occlusion of CD45. For CAR-T cells targeting smaller antigens, such as CD19, there is no barrier to synapse formation, and such antigens can be efficiently targeted with multiple epitopes. As shown in Figure 2, large proteins, such as CD22, pose unique challenges. Targeting membrane-distal epitopes on such proteins can result in suboptimal synaptic distances that allow phosphatases to enter the synapse and inhibit tyrosine phosphorylation. Although targeting the membrane-proximal region may improve synapse formation, steric occlusion of the epitope may result in suboptimal target ligation, allowing phosphatases to be present within the synapse and attenuating tyrosine phosphorylation (kinase activity), thereby transmitting the CAR signal. Summary of the Invention [Means for solving the problem]

[0007] Therefore, there is a need for alternative CAR T cell approaches that can kill target cells that express large or bulky target antigens. In certain embodiments, for example, the following are provided: (Item 1) A chimeric antigen receptor (CAR) that binds to a target antigen having a bulky extracellular domain, wherein the CAR comprises a Fab antigen-binding domain. (Item 2) 2. The CAR of item 1, wherein the target antigen has an extracellular domain of at least about 150 Å. (Item 3) 3. The CAR of item 1 or 2, wherein the target antigen has an extracellular domain of at least about 400 amino acids. (Item 4) The CAR of any preceding item, wherein the target antigen is CD22, CD21, CEACAM5, MUC1, or FcRL5. (Item 5) 5. The CAR of item 4, wherein the target antigen is CD22. (Item 6) the antigen-binding domain a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having complementarity determining regions (CDRs) with the following sequences: [ka] 6. The CAR according to item 5, comprising: (Item 7) The CAR of item 6, comprising a VH domain having the sequence set forth as SEQ ID NO: 65; and a VL domain having the sequence set forth as SEQ ID NO: 66. (Item 8) the antigen-binding domain comprising: a) a heavy chain variable region (VH) having complementarity-determining regions (CDRs) having the following sequences: [ka] and b) a light chain variable region (VL) having complementarity determining regions (CDRs) with the following sequences: [ka] 6. The CAR according to item 5, comprising: (Item 9) 7. The CAR of item 6, comprising a VH domain having the sequence set forth as SEQ ID NO: 99; and a VL domain having the sequence set forth as SEQ ID NO: 100. (Item 10) A nucleic acid sequence encoding a CAR according to any of the preceding items. (Item 11) The general structure is: VH-CH-spacer-TM-endo-coexpr-VL-CL and where: VH is a nucleic acid sequence encoding the heavy chain variable domain of the first polypeptide; CH is a nucleic acid sequence encoding the heavy chain constant domain of said first polypeptide; spacer is a nucleic acid sequence encoding a spacer of the first polypeptide; TM is a nucleic acid sequence encoding the transmembrane region of said first polypeptide; endo is a nucleic acid sequence encoding the endodomain of the first polypeptide; VL is a nucleic acid sequence encoding the light chain variable domain of the second polypeptide; CL is a nucleic acid sequence encoding the light chain constant domain of said second polypeptide; 11. The nucleic acid sequence of item 10, wherein coexpr is a nucleic acid sequence capable of coexpression of the first and second polypeptides. (Item 12) 12. A nucleic acid construct comprising the first nucleic acid sequence of item 10 or 11 and a second nucleic acid sequence encoding a second chimeric antigen receptor having a domain antibody (dAb) antigen-binding domain or an scFv antigen-binding domain. (Item 13) 12. A nucleic acid construct comprising the first nucleic acid sequence of item 10 or 11; a second nucleic acid sequence encoding a second chimeric antigen receptor having a domain antibody (dAb) antigen-binding domain; and a third nucleic acid sequence encoding a third CAR having an scFv antigen-binding domain. (Item 14) 14. The nucleic acid construct of item 13, wherein the first nucleic acid sequence encodes an anti-CD22 Fab CAR; the second nucleic acid sequence encodes an anti-CD79 dAb CAR; and the third nucleic acid sequence encodes an anti-CD19 scFv CAR. (Item 15) A vector comprising the nucleic acid sequence according to Item 10 or 11 or the nucleic acid construct according to any one of Items 12 to 14. (Item 16) A cell expressing the CAR according to any one of items 1 to 9. (Item 17) 10. A cell expressing the first CAR of any of items 1 to 9 and a second chimeric antigen receptor having a domain antibody (dAb) antigen-binding domain or an scFv antigen-binding domain. (Item 18) 10. A cell expressing a first CAR according to any of items 1 to 9, and a second CAR having a domain antibody (dAb) antigen-binding domain; and a third CAR having an scFv antigen-binding domain. (Item 19) the first CAR is an anti-CD22 Fab CAR; and the second CAR is an anti-CD79 17. The cell of item 16, wherein the third CAR is a dAb CAR; and the third CAR is an anti-CD19 scFv CAR. (Item 20) 20. A method for producing the cell of any one of Items 16 to 19, comprising the step of introducing ex vivo into a cell the nucleic acid sequence of Item 10 or 11; the nucleic acid construct of any one of Items 12 to 14; or the vector of Item 15. (Item 21) 20. A pharmaceutical composition comprising a plurality of cells according to any one of items 16 to 19, together with a pharmaceutically acceptable carrier, diluent, or excipient. (Item 22) Item 23. A method for treating cancer, comprising administering to a subject the pharmaceutical composition according to Item 19. 23. The method of item 22, wherein the cancer is a B-cell lymphoma or leukemia. (Item 24) 22. The pharmaceutical composition according to item 21 for use in the treatment of cancer. (Item 25) 20. Use of the cells according to any of items 16 to 19 in the manufacture of a pharmaceutical composition for treating cancer. [Brief explanation of the drawings]

[0008] [Figure 1] Schematic diagram showing the relative sizes of the extracellular domains of a Fab CAR (Fab), a classical CAR with an scFv antigen-binding domain (scFv), the phosphatase CD45, the CD4 / TCR / MHC complex, and the CD2:CD58 complex. When T cells interact with tumor cells through either TCR:MHC interactions or CAR:target antigen interactions, an immune synapse is formed, resulting in the elimination of phosphatases (such as CD45 and CD148).

[0009] [Figure 2] Schematic diagram showing the relative sizes of the extracellular domains of CD22, CD45, the CD4 / TCR / MHC complex, and the CD2:CD58 complex. CD22 has a very large and bulky extracellular domain. This makes it difficult to target with CAR T cells, as the combined length of the CAR and CD22 extracellular domains is too long for optimal T cell:target cell synapses, meaning that phosphatases (such as CD45 and CD148) are not efficiently eliminated.

[0010] [Figure 3] (A) Schematic diagram showing the T cell:target cell synapse for a FabCAR targeting CD22, and b) a classical scFv CAR targeting CD22. Surprisingly, even though the extracellular domain is longer and bulkier than the scFv CAR extracellular domain, the FabCAR appears to solve the problems associated with target antigens with large and bulky extracellular domains, resulting in improved CAR-mediated signaling upon target cell encounter and more efficient target cell killing.

[0011] [Figure 4]Graph comparing the killing of CD22-expressing target cells by T cells expressing FabCAR or scFv CAR. T cells were transduced with viral vectors expressing either Fab CAR or scFv CAR with a CD8 stalk spacer. The antigen-binding domain was based on the same anti-CD22 antibody (either 10C1 or 1D9-3). T cells were cocultured with CD22-expressing SupT1 target cells for 24 hours, and the absolute number of target cells and the number in CAR normalized according to the target number under non-transduced (NT) conditions were calculated. Normalized data are shown as the viability of target cells.

[0012] [Figure 5] Histogram showing T cell proliferation after 4 days of co-culture with target cells. CD56-depleted CAR-expressing T cells were co-cultured with Raji target cells and analyzed by flow cytometry to measure the dilution of Cell Trace Violet (CTV) that occurs upon T cell division. CTV-labeled T cells are excited with a 405 nm (violet) laser. The same panel of constructs was tested for the killing assay: 10C1 FabCAR; 10C1 scFv CAR with a CD8 stalk spacer; 1D9-3 FabCAR, and 1D9-3 scFv CAR with a CD8 stalk spacer.

[0013] [Figure 6] Different binding domain formats of chimeric antigen receptors: (a) Fab CAR format; (b) dAb CAR format; (c) scFv CAR format

[0014] [Figure 7] CAR OR gates targeting CD19, CD22, and CD79 using different CAR formats: (a) Two FMD-2A sequences can be used to generate a tricistronic cassette in which the coding sequences for the two receptors are separated; (b) An OR gate combining three different formats: scFv-CAR for CD19, Fab CAR for CD22, and dAb CAR for CD79.

[0015] [Figure 8] Graph showing the results of a FACS-based killing assay comparing target cell killing by T cells expressing a FabCAR with the 9A8 antigen-binding domain and T cells expressing a FabCAR with the 3B4 antigen-binding domain.

[0016] [Figure 9] Graph showing IL-2 release after 72 hours of co-culture with SupT1 target cells comparing T cells expressing FabCAR with the 9A8 antigen-binding domain and T cells expressing FabCAR with the 3B4 antigen-binding domain.

[0017] [Figure 10-1] Graph showing the results of a FACS-based killing assay comparing target cell killing by T cells expressing various anti-CD22 FabCARs. Target cells were either untransduced SupT1 cells (A); or SupT1 cells transduced to express CD22, exhibiting one of three CD22 expression levels: B - "ultra-low level," undetectable by flow cytometry; C - "low level," expressing an average of 255 copies of CD22 per cell; D - "high level," expressing an average of 78,916 copies of CD22 per cell. [Figure 10-2] Graph showing the results of a FACS-based killing assay comparing target cell killing by T cells expressing various anti-CD22 FabCARs. Target cells were either untransduced SupT1 cells (A); or SupT1 cells transduced to express CD22, exhibiting one of three CD22 expression levels: B - "ultra-low level," undetectable by flow cytometry; C - "low level," expressing an average of 255 copies of CD22 per cell; D - "high level," expressing an average of 78,916 copies of CD22 per cell.

[0018] [Figure 11] Schematic diagram showing the cross-pairing problem when expressing two FabCARs.

[0019] [Figure 12] Schematic diagram showing "Crossmab" and "Ortho-Fab" to avoid cross-pairing between FabCARs. DETAILED DESCRIPTION OF THE INVENTION

[0020] The inventors have found that it is possible to use a CAR with a Fab binding domain, as opposed to an scFv binding domain, to improve the efficiency of CAR-mediated targeting of bulky antigens and CAR-mediated killing of target cells expressing bulky target antigens.

[0021] Thus, in a first aspect, the present invention provides a chimeric antigen receptor (CAR) that binds to a target antigen having a bulky extracellular domain, wherein the CAR comprises a Fab antigen-binding domain.

[0022] The target antigen may have an extracellular domain of at least about 150 Å.

[0023] The target antigen may have an extracellular domain of at least about 400 amino acids.

[0024] The target antigen may be selected from the following group: CD22, CD21, CEACAM5, MUC1, or FcRL5. In particular, the target antigen may be CD22.

[0025] The antigen-binding domain may comprise: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having complementarity determining regions (CDRs) with the following sequences: [ka] .

[0026] The antigen-binding domain may comprise: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having complementarity determining regions (CDRs) with the following sequences: [ka] .

[0027] The CAR may comprise a VH domain having the sequence shown as SEQ ID NO:65; and a VL domain having the sequence shown as SEQ ID NO:66.

[0028] The CAR may comprise a VH domain having the sequence shown as SEQ ID NO:99; and a VL domain having the sequence shown as SEQ ID NO:100.

[0029] In a second aspect, there is provided a nucleic acid sequence encoding a CAR of the first aspect of the invention.

[0030] Nucleic acid sequences have the following general structure: VH-CH-spacer-TM-endo-coexpr-VL-CL and where: VH is a nucleic acid sequence encoding the heavy chain variable domain of the first polypeptide; CH is a nucleic acid sequence encoding the heavy chain constant domain of said first polypeptide; spacer is a nucleic acid sequence encoding a spacer of the first polypeptide; TM is a nucleic acid sequence encoding the transmembrane region of said first polypeptide; endo is a nucleic acid sequence encoding the endodomain of the first polypeptide; VL is a nucleic acid sequence encoding the light chain variable domain of the second polypeptide; CL is a nucleic acid sequence encoding the light chain constant domain of said second polypeptide; coexpr is a nucleic acid sequence allowing for the coexpression of said first and second polypeptides.

[0031] In a third aspect, there is provided a nucleic acid construct comprising a first nucleic acid sequence of the second aspect of the invention and a second nucleic acid sequence encoding a second chimeric antigen receptor having a domain antibody (dAb) antigen-binding domain or an scFv antigen-binding domain.

[0032] In particular, there is provided a nucleic acid construct comprising a first nucleic acid sequence of the second aspect of the invention; a second nucleic acid sequence encoding a second chimeric antigen receptor having a domain antibody (dAb) antigen-binding domain; and a third nucleic acid sequence encoding a third CAR having an scFv antigen-binding domain.

[0033] The first nucleic acid sequence can encode an anti-CD22 Fab CAR; the second nucleic acid sequence can encode an anti-CD79 dAb CAR; and the third nucleic acid sequence can encode an anti-CD19 scFv CAR.

[0034] In a fourth aspect, there is provided a vector comprising the nucleic acid sequence of the second aspect of the invention or the nucleic acid construct of the third aspect of the invention.

[0035] In a fifth aspect, there is provided a cell expressing a CAR of the second aspect of the invention.

[0036] In particular, there is provided a cell expressing a first CAR of the first aspect of the invention and a second chimeric antigen receptor having a domain antibody (dAb) antigen-binding domain or an scFv antigen-binding domain.

[0037] In particular, there is provided a cell expressing a first CAR of the first aspect of the invention; a second CAR having a domain antibody (dAb) antigen-binding domain; and a third CAR having an scFv antigen-binding domain.

[0038] The first CAR can be an anti-CD22 Fab CAR; the second CAR can be an anti-CD79 dAb CAR; and the third CAR can be an anti-CD19 scFv CAR.

[0039] In a sixth aspect, there is provided a method of producing a cell of the fifth aspect of the invention, the method comprising introducing into a cell ex vivo a nucleic acid sequence of the second aspect of the invention; a nucleic acid construct of the third aspect of the invention; or a vector of the fourth aspect of the invention.

[0040] In a seventh aspect, there is provided a pharmaceutical composition comprising a plurality of cells of the fifth aspect of the invention together with a pharmaceutically acceptable carrier, diluent or excipient.

[0041] In an eighth aspect, there is provided a method of treating cancer comprising administering to a subject the pharmaceutical composition of the seventh aspect of the invention.

[0042] The cancer can be, for example, a B-cell lymphoma or leukemia.

[0043] In a ninth aspect, there is provided a pharmaceutical composition according to the seventh aspect of the invention for use in the treatment of cancer.

[0044] In a tenth aspect, there is provided the use of a cell of the fifth aspect of the invention in the manufacture of a pharmaceutical composition for treating cancer.

[0045] The present invention provides chimeric antigen receptors that improve CAR-mediated signaling and target cell killing when targeting antigens with bulky extracellular domains, which are difficult to target using classical CARs because they form suboptimal T cell:target cell synapses.

[0046] The ability to target such antigens opens up entirely new possibilities for cancer treatment. Many potentially useful cancer target antigens have bulky extracellular domains, such as CD22, CD21, CEACAM5, MUC1, or FcRL5. The present invention provides improved constructs for targeting these antigens, which can be used as single targets and, importantly, can be included in strategies for targeting multiple antigens to improve the efficiency and safety of CAR-T cells. Chimeric Antigen Receptor

[0047] The present invention relates to a chimeric antigen receptor having a Fab antigen-binding domain.

[0048] Classical chimeric antigen receptors (CARs) are chimeric type I transmembrane proteins in which an extracellular antigen-recognition domain (binder) is connected to an intracellular signaling domain (endodomain). The binder is typically a single-chain variable fragment (scFv) derived from a monoclonal antibody (mAb) but can be based on other formats containing antibody-like antigen-binding sites. A spacer domain is usually required to separate the binder from the membrane and allow for proper orientation. A common spacer domain used is the Fc of IgG1. Depending on the antigen, smaller spacers, such as a stalk derived from CD8α or even just an IgG1 hinge, may be sufficient. The transmembrane domain anchors the protein within the cell membrane and connects the spacer to the endodomain.

[0049] Early CAR designs had endodomains derived from either the γ chain of FcεR1 or the intracellular portion of CD3ζ. Consequently, these first-generation receptors were sufficient to transmit immunological signals 1 and trigger T cell killing of cognate target cells, but they were unable to sufficiently activate T cells so that they proliferate and survive. To overcome this limitation, composite endodomains were constructed: fusion of the intracellular portion of a T cell costimulatory molecule with the intracellular portion of CD3ζ results in second-generation receptors that can simultaneously transmit activation and costimulatory signals after antigen recognition. The most commonly used costimulatory domain is that of CD28, which provides the most potent costimulatory signal (i.e., immunological signal 2, which triggers T cell proliferation). Several receptors have also been described, including those containing TNF receptor family endodomains (such as the closely related OX40 and 41BB, which transmit survival signals). Here, we describe even more potent third-generation CARs with endodomains capable of transmitting activation, proliferation, and survival signals.

[0050] When a CAR binds to a target antigen, this binding transmits an activation signal to the T cell in which the CAR is expressed. Thus, the CAR directs the specificity and cytotoxicity of the T cell to tumor cells expressing the targeted antigen.

[0051] Thus, a CAR typically comprises: (i) an antigen-binding domain; (ii) a spacer; (iii) a transmembrane domain; and (iii) an intracellular domain that comprises or is associated with a signaling domain. A CAR may have the following general structure:

[0052] Antigen-binding domain - spacer domain - transmembrane domain - intracellular signaling domain (endodomain). antigen-binding domain

[0053] The antigen-binding domain is the part of the chimeric receptor that recognizes the antigen. In classical CARs, the antigen-binding domain comprises a single-chain variable fragment (scFv) derived from a monoclonal antibody (see Figure 6c). CARs with domain antibody (dAb) antigen-binding domains or VHH antigen-binding domains have also been produced (see Figure 6b).

[0054] In the chimeric antigen receptor of the present invention, the antigen binding domain comprises, for example, the Fab fragment of a monoclonal antibody (see Figure 6a). FabCAR comprises two chains: one with an antibody-like light chain variable region (VL) and constant region (CL); and one with a heavy chain variable region (VH) and constant region (CH). One chain also comprises a transmembrane domain and an intracellular signaling domain. The receptor is assembled by the association between the CL and CH.

[0055] The two chains of a Fab CAR may have the following general structure: VH-CH-spacer-transmembrane domain-intracellular signaling domain; and VL-CL or VL-CL-spacer-transmembrane domain-intracellular signaling domain; and VH-CH

[0056] For the Fab-type chimeric receptors described herein, the antigen-binding domain is composed of a VH from one polypeptide chain and a VL from the other polypeptide chain.

[0057] The polypeptide chain may include a linker between the VH / VL domain and the CH / CL domain, which may exhibit flexibility and serve to spatially separate the VH / VL domain from the CH / CL domain.

[0058] Flexible linkers can be composed of small, non-polar residues such as glycine, threonine, and serine. nlinker (where n is the number of repeats), each linker can be less than 50, 40, 30, 20, or 10 amino acids in length. Constant Region Domain

[0059] There are two types of light chains in humans: kappa (κ) chains and lambda (λ) chains. The lambda class has four subtypes: λ1, λ2, λ3, and λ4. The light chain constant region of a Fab-type chimeric receptor can be derived from any of these light chain types.

[0060] The light chain constant domain of a chimeric receptor of the invention may have the sequence shown as SEQ ID NO:1, which is the kappa chain constant domain. SEQ ID NO: 1 [ka]

[0061] There are five types of mammalian immunoglobulin heavy chains: gamma, delta, alpha, mu, and epsilon (which define the immunoglobulin classes IgG, IgD, IgA, IgM, and IgE, respectively). The gamma, delta, and alpha heavy chains have a constant domain made up of three tandem Ig domains and a hinge that confers flexibility. The mu and epsilon heavy chains are made up of four domains.

[0062] The CH domain of a Fab-type chimeric receptor of the present invention may comprise the sequence shown as SEQ ID NO: 2, which is derived from a gamma immunoglobulin heavy chain. SEQ ID NO: 2 [ka] Spacer

[0063] Classical CARs contain a spacer sequence that connects the antigen-binding domain with the transmembrane domain and spatially separates the antigen-binding domain from the endodomain. The flexible spacer allows the antigen-binding domain to be oriented in different directions to facilitate binding.

[0064] In FabCARs (Figure 6A), a spacer allows the two polypeptide chains to dimerize, as seen in classical chimeric antigen receptors (Figure 6C) and dAb CARs (Figure 6B). The two polypeptide chains may contain, for example, one or more cysteine ​​residues suitable for forming disulfide bridge(s). An IgG1-derived hinge is suitable in this regard. A spacer based on an IgG1 hinge may have the sequence shown as SEQ ID NO: 3. SEQ ID NO:3 (human IgG1 hinge): [ka]

[0065] Alternatively, the hinge spacer may have the sequence shown as SEQ ID NO:4. Sequence number 4 (hinge spacer) [ka]

[0066] In the FabCAR of the present invention, as shown in Figure 6A, the two polypeptides of the dimeric FabCAR are identical. These polypeptides have the same antigen-binding domain derived from the same antibody and bind to the same epitope on the same target antigen. The first and second polypeptides in the dimer are simply copies of polypeptides encoded from the same transcript. Transmembrane domain

[0067] The transmembrane domain is the part of the chimeric receptor that spans the membrane. The transmembrane domain can be any thermodynamically stable protein structure within the membrane. It is typically an α-helix composed of several hydrophobic residues. The transmembrane domain of any transmembrane protein can be used to provide the transmembrane portion of the chimeric receptor. The sequence and total length of the transmembrane domain of a protein can be determined by those skilled in the art using the TMHMM algorithm (http: / / www.cbs.dtu.dk / services / TMHMM-2.0 / ). Alternatively, an artificially designed TM domain can be used. End Domain

[0068] The endodomain is the signaling portion of a chimeric receptor. It can be part of or associated with the intracellular domain of the chimeric receptor. After antigen recognition, receptors cluster, native CD45 and CD148 are excluded from the synapse, and a signal is transmitted to the cell. The most commonly used endodomain component is that of CD3-zeta, which contains three ITAMs. This transmits an activation signal to T cells after antigen binding. CD3-zeta may not provide a sufficient activation signal, and additional costimulatory signaling may be required. Costimulatory signals promote T cell proliferation and survival. There are two main types of costimulatory signals: those belonging to the Ig family (CD28, ICOS) and those belonging to the TNF family (OX40, 41BB, CD27, GITR, etc.). For example, chimeric CD28 and OX40 can be used together with CD3-zeta to transmit proliferation / survival signals, or all three can be used together.

[0069] The endodomain may include: (i) an ITAM-containing endodomain (such as the endodomain from CD3 zeta); and / or (ii) a costimulatory domain (such as the endodomain from CD28 or ICOS); and / or (iii) a domain that transmits survival signals (e.g., TNF receptor family endodomains (OX-40, 4-1BB, CD27, or GITR, etc.)

[0070] Several systems have been described in which the antigen recognition moiety resides on a separate molecule from the signaling moiety (such as those described in WO015 / 150771; WO2016 / 124930, and WO2016 / 030691). Thus, the chimeric receptors of the present invention can comprise an antigen-binding component comprising an antigen-binding domain and a transmembrane domain, which component is capable of interacting with a separate intracellular signaling component comprising a signaling domain. The vectors of the present invention can express chimeric receptor signaling systems comprising such antigen-binding components and intracellular signaling components.

[0071] The chimeric receptor may contain a signal peptide so that when the signal peptide is expressed inside the cell, the nascent protein is targeted to the endoplasmic reticulum and then to the cell surface, where it is expressed. The signal peptide may be at the amino terminus of the molecule. target antigen

[0072] A "target antigen" is an entity that is specifically recognized and bound by the antigen-binding domain of a chimeric receptor of the present invention.

[0073] The target antigen can be an antigen present on a cancer cell (e.g., a tumor-associated antigen).

[0074] The target antigen may have a relatively long and / or bulky extracellular domain. The size of the extracellular domain of CD45 is 216 Å. Depending on the spacer typically used, the antigen-binding domain of a classical CAR ranges from 25 to 75 Å. As such, antigens longer than 150 Å are difficult to target due to poor synapse formation, which results in the presence of phosphatases within the synapse.

[0075] The target antigen may have an extracellular domain greater than about 150 Å, for example, the target antigen may have an extracellular domain that is 150-400 Å, 200-350 Å, or 250-310 Å in size.

[0076] There is a correlation between the molecular size and amino acid length of the extracellular domain of a target antigen. Examples of the size and number of amino acids of extracellular domains for both antigens with small extracellular domains (EpCAM, CD19) and antigens with bulky extracellular domains (CEACAM5, CD22) are shown in the table below. [Table 3]

[0077] The target antigen may have an extracellular domain that is greater than about 400 amino acids in length, for example, the target antigen may have an extracellular domain that is 400-1000, 500-900, 600-800, or 600-700 amino acids in size.

[0078] The extracellular domain of CD22 has seven IgG-like domains in its extracellular domain. The target antigen of the chimeric receptor of the present invention can be at least four, five, six, or seven Ig-like domains in length. The extracellular domain of CD21 has 21 short consensus repeats (SCRs), each of approximately 60 amino acids. The target antigen of the chimeric receptor of the present invention can be at least 15, 17, 19, or 21 CSRs in length.

[0079] The target antigen can have an extracellular domain that is longer than the optimal intracellular distance between the T cell and the target cell at the T cell:target cell synapse. The target cell can have an extracellular domain that is at least 40, 50, 60, or 70 nM.

[0080] The target antigen can be CD22, CD21, CEACAM5, MUC1, or FCRL5. CD22

[0081] CD22 has seven extracellular IgG-like domains, commonly identified as Ig domain 1 through Ig domain 7, with Ig domain 7 being most proximal to the B cell membrane and Ig domain 1 being most distal from the B cell membrane.

[0082] The location of the Ig domains with respect to the amino acid sequence of CD22 (http: / / www.uniprot.org / uniprot / P20273) is summarized in the table below: [Table 4]

[0083] Examples of anti-CD22 CARs with antigen-binding domains derived from m971, HA22, and BL22 scFvs are described in Haso et al. (Blood; 2013; 121(7)). The antibodies HA22 and BL22 bind to an epitope on Ig domain 5 of CD22.

[0084] Other anti-CD22 antibodies are known, including the murine anti-human CD22 antibodies 1D9-3, 3B4-13, 7G6-6, 6C4-6, 4D9-12, 5H4-9, 10C1-D9, 15G7-2, 2B12-8, 2C4-4, and 3E10-7; and the humanized anti-human CD22 antibodies LT22 and inotuzumab (G5_44). Table 1 summarizes the VH, VL, and CDR sequences (bold and underlined) for each antibody, and the location of the target epitope on CD22. Table 1 [Table 1-1] [Table 1-2] [Table 1-3] [Table 1-4]

[0085] The antigen binding domain of a FabCAR that binds to CD22 may comprise a VH and / or VL sequence from any of the CD22 antibodies listed in Table 1, or a variant thereof having at least 70, 80, 90, or 90% sequence identity and that retains the ability to bind to CD22. CD21

[0086] CD21, also known as CR2, is a protein expressed on mature B cells and follicular dendritic cells that participates in the complement system. On mature B cells, CD21 forms a B cell coreceptor complex with CD19 and CD81. When membrane IgM binds to an antigen, CD21 binds to the antigen via the bound C3d.

[0087] Mature CD21 is 1,408 amino acids long, containing 21 short consensus repeats (SCRs) of approximately 60 amino acids each, in addition to transmembrane and cytoplasmic regions.

[0088] Commercially available monoclonal antibodies against CD21 are known (such as MAB4909 (MDS Systems) and EP3093, SP186, Bu32, SP199, 1F8, and LT21 (Abcam)). CEACAM5

[0089] Carcinoembryonic antigen-related cell adhesion molecule 5 (CEACAM5) is a member of the carcinoembryonic antigen (CEA) gene family, a series of closely related glycoproteins involved in cell adhesion. CEACAM5 is produced in gastrointestinal tissues during fetal development but is also expressed by several cancers, including lung, pancreatic, cervical, and gastrointestinal cancers.

[0090] CEACAM5 consists of 642 amino acids, has a molecular mass of approximately 70 kDa, and contains 28 potential N-linked glycosylation sites. The protein contains an Ig variable region (IgV)-like domain (designated N) followed by six Ig constant region (IgC)-type 2-like domains (designated A1, B1, A2, B2, A3, and B3).

[0091] Commercially available monoclonal antibodies against CEACAM5 (EPR20721 (Abcam) and the like) are known. MUC1

[0092] Mucin 1 (MUC1) is a glycoprotein whose extracellular domain is heavily O-glycosylated. Mucins line the apical surface of epithelial cells in the lungs, stomach, small intestine, eyes, and several other organs. Mucins protect the body from infection by pathogens that bind to oligosaccharides in the extracellular domain, thereby preventing the pathogens from reaching the cell surface. Overexpression of MUC1 is often associated with colon cancer, breast cancer, ovarian cancer, lung cancer, and pancreatic cancer.

[0093] MUC1 has a core protein with a molecular weight of 120-225 kDa, which increases to 250-500 kDa upon glycosylation. MUC1 covers 200-500 nm of the cell surface. The extracellular domain contains a 20-amino acid variable repeat (VNTR) domain, with the number of repeats varying from 20 to 120 across individuals. The most common alleles contain 41 and 85 repeats. These repeats are rich in serine, threonine, and proline residues, which are amenable to heavy O-glycosylation.

[0094] Commercially available monoclonal antibodies against MUC1 are known (such as EPR1203, EP1024Y, HMFG1, NCRC48, SM3, MH1, and 115D8 (Abcam)). FCRL5

[0095] Fc receptor-like protein 5 (FCRL5) is a member of the immunoglobulin receptor superfamily. Fc receptor-like family FCRL5 is a single-pass type I membrane protein containing eight immunoglobulin-like C2-type domains. The mature protein is 106 kDa.

[0096] FCRL5 has a cytoplasmic tail containing two inhibitory ITIM phosphorylation signaling motifs. FCRL5 inhibits B cell antigen receptor signaling by recruiting SHP1 upon B cell antigen receptor costimulation, thereby attenuating calcium influx and protein tyrosine phosphorylation. Costimulation of FCRL5 and B cell antigen receptor promotes the proliferation and differentiation of naive B cells. FCRL5 is expressed on both mature B cells and plasma cells and is induced by EBV proteins. FCRL5 is overexpressed on malignant B cells from patients with hairy cell leukemia, chronic lymphocytic leukemia, mantle cell lymphoma, and multiple myeloma.

[0097] Commercially available monoclonal antibodies against FCRL5 (such as CD307e (ThermoFisher) and REA391 (Miltenyi Biotec)) are known.

[0098] We also generated four novel anti-FCRL5 antibodies, whose VH, VL, and CDR sequences are summarized in Table 2. CDR sequences are in bold and underlined. Table 2 [Table 2-1] [Table 2-2]

[0099] OR gate The CAR of the present invention may be used in combination with one or more other activating or inhibitory chimeric antigen receptors. For example, the CAR of the present invention may be used in combination with one or more CARs in a "logic gate", where the CAR combination can detect the specific expression pattern of at least two target antigens when expressed by cells such as T cells. When the at least two target antigens are arbitrarily designated as antigen A and antigen B, three possible options are as follows: "OR gate" - T cells trigger when either antigen A or antigen B is present on the target cell "AND gate" - T cells trigger when both antigens A and B are present on the target cell "AND NOT gate" - T cells trigger when antigen A is present alone on the target cell, but T cells do not trigger when both antigens A and B are present on the target cell

[0100] Engineered T cells expressing these CAR combinations can be tailored to be exquisitely specific for cancer cells based on their specific expression (or lack of expression) of two or more markers.

[0101] Such "logic gates" are described, for example, in WO2015 / 075469, WO2015 / 075470, and WO2015 / 075470.

[0102] An "OR gate" contains two or more stimulatory CARs, each directed against a distinct target antigen expressed by the target cell. The advantage of an OR gate is that the number of effectively targetable antigens on the target cell increases, since the effectiveness becomes antigen A + antigen B. This is particularly important for antigens that are expressed at variable or low densities on the target cell, since the level of a single antigen may be below the threshold required for effective targeting by CAR-T cells. OR gates also avoid the phenomenon of antigen escape. For example, some lymphomas and leukemias become CD19-negative after CD19 is targeted: if this phenomenon occurs, using an OR gate that targets CD19 in combination with another antigen provides a "backup" antigen.

[0103] The FabCAR of the present invention can be used in an OR gate in combination with a second CAR directed against a second target antigen expressed by the target cell.

[0104] For an anti-CD22 FabCAR, the OR gate may include a CAR against a second antigen expressed in B cells (such as CD19, CD20, or CD79).

[0105] The second CAR may have any suitable antigen binding domain (e.g., an scFv, domain antibody (dAb), or Fab-based binding domain).

[0106] The second CAR may comprise a spacer that sterically separates the antigen-binding domain from the transmembrane domain and provides flexibility. Various sequences are commonly used as spacers for CARs (e.g., IgG1 Fc region, IgG1 hinge (above), or human CD8 stalk). The spacer may comprise, for example, a coiled-coil domain as described in WO2016 / 151315.

[0107] The second CAR comprises an activation endodomain. The second CAR may comprise, for example, an endodomain derived from CD3ζ. The second CAR may comprise one or more of the above-mentioned costimulatory domains. For example, the second CAR may comprise an endodomain derived from CD28, OX-40, or 4-1BB.

[0108] The FabCARs of the present invention can be used in a triple OR gate, including a second CAR directed against a second antigen and a third CAR directed against a third antigen expressed by the target cell.

[0109] For an anti-CD22 FabCAR, the triple OR gate may include CARs against a second and third antigen expressed in B cells (such as CD19, CD20, or CD79).

[0110] In particular, the present invention provides a triple OR gate that includes: (i) anti-CD22 FabCAR; (ii) anti-CD79 dAb CAR); and (iii) anti-CD19 scFv CAR (see Figure 7b). Dual Car

[0111] An OR gate of the present invention may contain two (or more) Fab CARs.

[0112] A problem associated with the expression of two Fab CARs is cross- or mis-pairing events that result in non-functional CARs (Figure 11). To circumvent this, "Crossmab" and / or "Ortho-Fab" formats can be used, as shown schematically in Figure 12.

[0113] A "Crossmab" involves switching the CL and CH1 domains between the chains so that in one molecule the variable light chain (VL) is connected to a heavy chain constant domain (CH); and in the other molecule the variable heavy chain (VH) is connected to a light chain constant domain (CL) (Figure 12, Crossmab 1 and 2).

[0114] A nucleic acid construct encoding a FabCAR in crossmab format may have the following structure: VH-CL-spacer-TM-endo-coexpr-VL-CH or VL-CH-spacer-TM-endo-coexpr-VH-CL where: VH is a nucleic acid sequence encoding the heavy chain variable region; CH is a nucleic acid sequence encoding the heavy chain constant region spacer is a nucleic acid encoding a spacer; TM is a nucleic acid sequence encoding a transmembrane domain; endo is a nucleic acid sequence encoding the endodomain; coexpr is a nucleic acid sequence that enables coexpression of the first and second polypeptides; VL is a nucleic acid sequence encoding the light chain variable region; CL is a nucleic acid sequence encoding the light chain constant region.

[0115] "Ortho-Fab" has mutations introduced to avoid alternative combinations. For example, amino acids with bulky side chains can be engineered into one chain (e.g., CL) to create a protrusion, and the matching domain (e.g., CH) can be engineered to accommodate the protrusion. Alternatively, or in addition, charged side chains can be engineered into one chain (e.g., VH engineered to have a positively charged amino acid), and the matching domain (e.g., VL) engineered to have a negatively charged amino acid.

[0116] A dual FabCAR of the invention may comprise a CD19 Fab CAR with CDRs shown as SEQ ID NOs: 69-74 in wild-type Fab CAR format; and a CD22 Fab CAR with CDRs shown as SEQ ID NOs: 93-98 in orthoFab or crossmab1 Fab CAR format. CD79 binder

[0117] The term "CD79" or "cluster of differentiation 79" refers to a protein present on the surface of B cells. This protein comprises two transmembrane proteins, CD79a and CD79b, which form a disulfide-linked heterodimer and are members of the immunoglobulin (Ig) gene superfamily. The transmembrane CD79a and CD79b proteins couple at their extracellular ends to one of five different types of transmembrane Ig molecules (IgM, IgD, IgG, IgE, or IgA), which are disulfide-linked proteins composed of two Ig heavy chains and two Ig light chains. This combination of CD79 and immunoglobulins on the B cell surface forms the B cell signaling receptor (BCR). The cytoplasmic domains of CD79a and CD79b contain immunoreceptor tyrosine-based activation motifs (ITAMs), which transmit activation signals to B cells upon antigen-induced BCR aggregation.

[0118] CD79 expression is restricted to pre-B cells and mature B cells (excluding plasma cells). CD79 is also expressed in the majority of B-cell-derived malignancies. This narrow expression pattern makes it a promising target for targeted cancer therapy with minimal targeting of normal tissues.

[0119] The terms "CD79a" or "CD79A" refer to B-cell antigen receptor complex-associated protein alpha chain, also known as Ig-alpha, MB-1 membrane glycoprotein, membrane-bound immunoglobulin-associated protein, and surface IgM-associated protein. Human isoforms of CD79a are listed in the Uniprot database as of April 20, 2018, under accession numbers P11912.1 (isoform 1 or long chain) and P11912.2 (isoform 2 or short chain).

[0120] The terms "CD79b" or "CD79B" refer to the B-cell antigen receptor complex-associated protein beta chain, also known as Ig-beta, B-cell-specific glycoprotein B29, and immunoglobulin-associated B29 protein. Human isoforms of CD79b are listed in the Uniprot database as of April 20, 2018 under accession numbers P40259-1 (long isoform), P40259-2 (short isoform), and P40259-3 (isoform 3).

[0121] Activated B lymphocytes have increased amounts of short or truncated CD79 isoforms. In a specific embodiment, the invention relates to a CAR that specifically binds to CD79a. In a preferred embodiment, the CAR binds to the unspliced ​​portion or CD79a ectodomain (i.e., residues 33-143 of CD79a isoform 1, shown below as SEQ ID NO: 67 (Uniprot Accession No. P11912.1)). In another specific embodiment, the invention relates to a CAR that specifically binds to CD79b. In another preferred embodiment, the CAR binds to the unspliced ​​portion or CD79b ectodomain (i.e., residues 29-159 of the long chain of CD79b isoform, shown below as SEQ ID NO: 68 (Uniprot Accession No. P40259-1)). CD79a isoform 1 - SEQ ID NO: 67 [ka] CD79b isoform 2 - SEQ ID NO: 68 [ka]

[0122] The present invention provides an OR gate comprising a chimeric antigen receptor (CAR) that binds to CD79.

[0123] The CAR can specifically bind to CD79A. For example, the CAR can bind to the unspliced ​​portion of the CD79A ectodomain (residues 33-143 of SEQ ID NO: 67).

[0124] The CAR can specifically bind to CD79B. For example, the CAR can bind to the unspliced ​​portion of the CD79B ectodomain (residues 29-159 of SEQ ID NO: 68).

[0125] A number of anti-CD79 antibodies are known in the art (eg, JCB117, SN8, CB3.1, and 2F2 (polatuzumab)).

[0126] The CD79 binding domain may comprise: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having CDRs with the following sequences: [ka] .

[0127] The anti-CD79 CAR may comprise the following VH sequence: SEQ ID NO: 11 - VH sequence from mouse monoclonal antibody [ka]

[0128] The anti-CD79 CAR may comprise the following VL sequence: SEQ ID NO: 12 - VL sequence from mouse monoclonal antibody [ka]

[0129] The anti-CD79 CAR may comprise the following scFv sequence: SEQ ID NO: 13 (Mouse anti-Macaca fascicularis CD79b 10D10 scFv) [ka] [ka]

[0130] Alternatively, an anti-CD79 CAR may comprise an antigen binding domain comprising: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having CDRs with the following sequences: [ka] .

[0131] The anti-CD79 CAR may comprise the following VH sequence: SEQ ID NO: 20 - VH sequence derived from mouse monoclonal antibody [ka]

[0132] The anti-CD79 CAR may comprise the following VL sequence: SEQ ID NO: 21 - VL sequence from mouse monoclonal antibody [ka]

[0133] The anti-CD79 CAR may comprise the following scFv sequence: SEQ ID NO: 22 (humanized anti-CD79b-v17 scFv) [ka]

[0134] Alternatively, an anti-CD79 CAR may comprise an antigen binding domain comprising: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having CDRs with the following sequences: [ka] .

[0135] The anti-CD79 CAR may comprise the following VH sequence: SEQ ID NO: 24 - VH sequence derived from mouse monoclonal antibody [ka]

[0136] The anti-CD79 CAR may comprise the following VL sequence: SEQ ID NO: 21 - VL sequence from mouse monoclonal antibody [ka]

[0137] The anti-CD79 CAR may comprise the following scFv sequence: SEQ ID NO: 25 (humanized anti-CD79b v18 scFv) [ka]

[0138] Alternatively, an anti-CD79 CAR may comprise an antigen binding domain comprising: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having CDRs with the following sequences: [ka] .

[0139] The anti-CD79 CAR may comprise the following VH sequence: SEQ ID NO: 24 - VH sequence derived from mouse monoclonal antibody [ka]

[0140] The anti-CD79 CAR may comprise the following VL sequence: SEQ ID NO: 27 - VL sequence from mouse monoclonal antibody [ka]

[0141] The anti-CD79 CAR may comprise the following scFv sequence: SEQ ID NO: 28 (humanized anti-CD79b v28 scFv) [ka]

[0142] Alternatively, an anti-CD79 CAR may comprise an antigen binding domain comprising: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having CDRs with the following sequences: [ka]

[0143] The anti-CD79 CAR may comprise the following VH sequence: SEQ ID NO: 24 - VH sequence derived from mouse monoclonal antibody [ka]

[0144] The anti-CD79 CAR may comprise the following VL sequence: SEQ ID NO: 30 - VL sequence from mouse monoclonal antibody [ka]

[0145] The anti-CD79 CAR may comprise the following scFv sequence: SEQ ID NO: 31 (humanized anti-CD79b v32 scFv) [ka]

[0146] Alternatively, an anti-CD79 CAR may comprise an antigen binding domain comprising: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having CDRs with the following sequences: [ka] .

[0147] The anti-CD79 CAR may comprise the following VH sequence: SEQ ID NO: 32 - VH sequence derived from mouse monoclonal antibody [ka]

[0148] The anti-CD79 CAR may comprise the following VL sequence: SEQ ID NO: 33 - VL sequence from mouse monoclonal antibody [ka]

[0149] The anti-CD79 CAR may comprise the following scFv sequence: SEQ ID NO: 34 (mouse anti-CD79b SN8 scFv) [ka]

[0150] Alternatively, an anti-CD79 CAR may comprise an antigen binding domain comprising: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having CDRs with the following sequences: [ka] .

[0151] The anti-CD79 CAR may comprise the following VH sequence: SEQ ID NO: 24 - VH sequence derived from mouse monoclonal antibody [ka]

[0152] The anti-CD79 CAR may comprise the following VL sequence: SEQ ID NO: 27 - VL sequence from mouse monoclonal antibody [ka]

[0153] The anti-CD79 CAR may comprise the following scFv sequence: SEQ ID NO: 28 (humanized anti-CD79b 2F2 scFv) [ka]

[0154] Alternatively, an anti-CD79 CAR may comprise an antigen binding domain comprising: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having CDRs with the following sequences: [ka] .

[0155] The anti-CD79 CAR may comprise the following VH sequence: SEQ ID NO: 36 - VH sequence derived from mouse monoclonal antibody [ka]

[0156] The anti-CD79 CAR may comprise the following VL sequence: SEQ ID NO: 37 - VL sequence from mouse monoclonal antibody [ka]

[0157] The anti-CD79 CAR may comprise the following scFv sequence: SEQ ID NO: 38 (mouse anti-CD79a scFv) [ka]

[0158] It may be possible to introduce one or more mutations (substitutions, additions, or deletions) into each CDR without negatively affecting CD79-binding activity. Each CDR may have, for example, one, two, or three amino acid mutations. CD19 binder

[0159] Several anti-CD19 antibodies have previously been described in the CAR format, such as fmc63, 4G7, SJ25C1, CAT19 (described in WO2016 / 139487) and CD19ALAb (described in WO2016 / 102965).

[0160] An anti-CD19 CAR for use in the double or triple OR gates of the present invention may comprise an antigen-binding domain (such as an scFv-type antigen-binding domain derived from one of these anti-CD19 antibodies).

[0161] The CD19 binding domain may comprise: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having CDRs with the following sequences: [ka] .

[0162] It may be possible to introduce one or more mutations (substitutions, additions, or deletions) into each CDR without negatively affecting CD19 binding activity. Each CDR may have, for example, one, two, or three amino acid mutations.

[0163] The CDRs can be in the form of a single-chain variable fragment (scFv), which is a fusion protein of the heavy chain variable region (VH) and light chain variable region (VL) of an antibody connected by a short linker peptide of 10 to about 25 amino acids. The orientation of the scFv can be VH-VL (i.e., the VH is at the amino terminal end of the CAR molecule, and the VL domain is linked to a spacer, followed by a transmembrane domain and an endodomain).

[0164] The CDRs can be grafted onto the framework of a human antibody or scFv. For example, the CAR of the present invention can comprise a CD19 binding domain consisting of or comprising one of the following sequences:

[0165] The anti-CD19 CAR may comprise the following VH sequence: SEQ ID NO: 75 - VH sequence derived from mouse monoclonal antibody [ka]

[0166] The anti-CD19 CAR may comprise the following VL sequence: SEQ ID NO: 76 - VL sequence from mouse monoclonal antibody [ka]

[0167] The anti-CD19 CAR may comprise the following scFv sequence: SEQ ID NO: 77 - VH-VL scFv sequence derived from mouse monoclonal antibody [ka]

[0168] Alternatively, an anti-CD19 CAR may comprise an antigen binding domain comprising: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having CDRs with the following sequences: [ka] .

[0169] It may be possible to introduce one or more mutations (substitutions, additions, or deletions) into each CDR without negatively affecting CD19 binding activity. Each CDR may have, for example, one, two, or three amino acid mutations.

[0170] The CAR of the invention may comprise one of the following amino acid sequences: SEQ ID NO: 84 (Mouse CD19ALAb scFv sequence) [ka] SEQ ID NO: 85 (Humanized CD19ALAb scFv sequence - heavy chain 19, kappa 16) [ka] SEQ ID NO: 86 (Humanized CD19ALAb scFv sequence - heavy chain 19, kappa 7) [ka]

[0171] The scFv can be in a VH-VL orientation (as shown in SEQ ID NOs: 84, 85, and 86) or a VL-VH orientation.

[0172] The CAR of the invention may comprise one of the following VH sequences: SEQ ID NO: 87 (Mouse CD19ALAb VH sequence) [ka] SEQ ID NO: 88 (humanized CD19ALAb VH sequence) [ka]

[0173] The anti-CD19 CAR may comprise one of the following VL sequences: SEQ ID NO: 89 (Mouse CD19ALAb VL sequence) [ka] SEQ ID NO: 90 (humanized CD19ALAb VL sequence, kappa 16) [ka] SEQ ID NO: 91 (humanized CD19ALAb VL sequence, kappa 7) [ka]

[0174] CARs may comprise variants of the sequences set forth as SEQ ID NOs: 84-91 having at least 80, 85, 90, 95, 98, or 99% sequence identity, provided that the variant sequences retain the ability to bind to CD19 (when combined with a complementary VL or VH domain, as appropriate).

[0175] The percent identity between two polypeptide sequences can be readily determined by programs such as BLAST, which is freely available at http: / / blast.ncbi.nlm.nih.gov. nucleic acid construct

[0176] The present invention also provides nucleic acid constructs encoding the chimeric receptors of the present invention.

[0177] A nucleic acid construct encoding a FabCAR (Figure 6A) can have the following structure: VH-CH-spacer-TM-endo-coexpr-VL-CL or VL-CL-spacer-TM-endo-coexpr-VH-CH where: VH is a nucleic acid sequence encoding the heavy chain variable region; CH is a nucleic acid sequence encoding the heavy chain constant region spacer is a nucleic acid encoding a spacer; TM is a nucleic acid sequence encoding a transmembrane domain; endo is a nucleic acid sequence encoding the endodomain; coexpr is a nucleic acid sequence that enables coexpression of the first and second polypeptides; VL is a nucleic acid sequence encoding the light chain variable region; CL is a nucleic acid sequence encoding the light chain constant region.

[0178] For both of the above structures, the nucleic acid sequences encoding the two polypeptides can be in either order in the construct.

[0179] Contains two or more CARs, at least one of which Also provided is a nucleic acid construct encoding an OR gate, wherein the OR gate is a FabCAR of the invention.

[0180] The nucleic acid construct encoding the double OR gate may have the following structure: VH-CH-spacer1-TM1-endo1-coexpr1-VL-CL-coexpr2-AgBD-spacer2-TM2-endo2; or VL-CL-spacer-TM1-endo1-coexpr1-VH-CH-coexpr2-AgBD-spacer2-TM2-endo2 where: VH is a nucleic acid sequence encoding the heavy chain variable region of the first CAR; CH is a nucleic acid sequence encoding the heavy chain constant region of the first CAR; spacer1 is a nucleic acid sequence encoding the spacer of the first CAR; TM1 is a nucleic acid sequence encoding the transmembrane domain of the first CAR; endo1 is a nucleic acid sequence encoding the endodomain of the first CAR; coexpr1 and coexpr2 may be the same or different and are nucleic acid sequences that allow for the coexpression of the first CAR; and the first and second polypeptides of the first and second CARs; VL is a nucleic acid sequence encoding the light chain variable region of the first CAR; CL is a nucleic acid sequence encoding the light chain constant region of the first CAR; AgBD is a nucleic acid sequence encoding the antigen-binding domain of the second CAR; spacer2 is a nucleic acid sequence encoding the spacer of the second CAR; TM2 is a nucleic acid sequence encoding the transmembrane domain of the second CAR; endo2 is a nucleic acid sequence encoding the endodomain of the second CAR.

[0181] The antigen-binding domain of the second CAR can be, for example, an scFv or a dAb.

[0182] For both of the above constructs, the nucleic acid sequences encoding the two polypeptides of the first CAR; the nucleic acid sequences encoding the first and second CARs can be present in any order within the construct.

[0183] Also provided is a nucleic acid construct encoding a triple OR gate comprising three CARs, one of which is a FabCAR of the invention.

[0184] The nucleic acid construct encoding the triple OR gate may have the following structure: VH-CH-spacer1-TM1-endo1-coexpr1-VL-CL-coexpr2-AgBD2-spacer2-TM2-endo2-coexpr3-AgBD3-spacer3-TM3-endo3; or VL-CL-spacer1-TM1-endo1-coexpr1-VH-CH-coexpr2-AgBD2-spacer2-TM2-endo2-coexpr3-AgBD3-spacer3-TM3 where: VH is a nucleic acid sequence encoding the heavy chain variable region of the first CAR; CH is a nucleic acid sequence encoding the heavy chain constant region of the first CAR; spacer1 is a nucleic acid sequence encoding the spacer of the first CAR; TM1 is a nucleic acid sequence encoding the transmembrane domain of the first CAR; endo1 is a nucleic acid sequence encoding the endodomain of the first CAR; coexpr1, coexpr2, and coexpr3 may be the same or different and are nucleic acid sequences capable of coexpression of the first CAR; and the first and second polypeptides of the first, second, and third CARs; VL is a nucleic acid sequence encoding the light chain variable region of the first CAR; CL is a nucleic acid sequence encoding the light chain constant region of the first CAR; AgBD2 is a nucleic acid sequence encoding the antigen-binding domain of the second CAR; spacer2 is a nucleic acid sequence encoding the spacer of the second CAR; TM2 is a nucleic acid sequence encoding the transmembrane domain of the second CAR; endo2 is a nucleic acid sequence encoding the endodomain of the second CAR; AgBD3 is a nucleic acid sequence encoding the antigen-binding domain of the third CAR; spacer3 is a nucleic acid sequence encoding the spacer of the third CAR; TM3 is a nucleic acid sequence encoding the third transmembrane domain of the CAR; endo3 is a nucleic acid sequence encoding the endodomain of the third CAR.

[0185] The antigen-binding domains of the second and third CARs can be, for example, scFvs or dAbs. In particular, one CAR can have a dAb antigen-binding domain and the other an scFv antigen-binding domain.

[0186] In particular, the construct may be as shown in Figure 7a. The construct may encode three CARs (i.e., a Fab CAR against CD22; a dAb CAR against CD79, and an scFV CAR against CD19) as shown in Figure 7b.

[0187] As used herein, the terms "polynucleotide," "nucleotide," and "nucleic acid" are intended to be synonymous with each other.

[0188] Those skilled in the art will understand that many different polynucleotides and nucleic acids can encode the same polypeptide as a result of the degeneracy of the genetic code. Furthermore, those skilled in the art will understand that, using routine techniques, nucleotides that do not affect the polypeptide sequence encoded by the polynucleotides described herein can be substituted to reflect the codon usage of any particular host organism in which the polypeptide will be expressed.

[0189] The nucleic acids of the present invention may comprise DNA or RNA. The nucleic acids of the present invention may be single-stranded or double-stranded. The nucleic acids of the present invention may also be polynucleotides that contain synthetic or modified nucleotides within the nucleic acids of the present invention. Several different types of modifications to oligonucleotides are known in the art. These modifications include methylphosphonate and phosphorothioate backbones, and the addition of acridine or polylysine chains at the 3' and / or 5' ends of the molecule. It should be understood that polynucleotides can be modified for the uses described herein by any method available in the art. Such modifications may be performed to enhance the in vivo activity and longevity of the polynucleotide of interest.

[0190] The terms "variant," "homologue," or "derivative" in reference to a nucleotide sequence include any substitution, variation, modification, replacement, deletion, or addition of one (or more) nucleic acid(s) from or to said sequence.

[0191] In the above construct, "coexpr" is a nucleic acid sequence that allows for the co-expression of two polypeptides as separate entities. Coexpr can be a sequence that encodes a cleavage site(s), such that the nucleic acid construct produces both polypeptides linked by the cleavage site(s). The cleavage site can be self-cleaving, such that when the polypeptides are produced, they are immediately cleaved into separate peptides without the need for any external cleavage activity.

[0192] The cleavage site can be any sequence that allows the two polypeptides to become separated.

[0193] The term "cleavage" is used herein for convenience, although cleavage sites may separate peptides into separate entities by mechanisms other than classical cleavage. For example, for the foot-and-mouth disease virus (FMDV) 2A self-cleaving peptide (see below), various models have been proposed to explain the "cleavage" activity: proteolytic activity by host cell proteinases, autoproteolysis, or translational effects (Donnelly et al. (2001) J. Gen. Virol. 82:1027-1041). The exact mechanism of such "cleavage" is not important for purposes of the present invention, as long as the cleavage site, when placed between the nucleic acid sequences encoding the proteins, results in expression of the proteins as separate entities.

[0194] The cleavage site may be, for example, a furin cleavage site, a tobacco etch virus (TEV) cleavage site, or may encode a self-cleaving peptide.

[0195] A "self-cleaving peptide" refers to a peptide that functions such that when a protein and polypeptide comprising the self-cleaving peptide is produced, it is immediately "cleaved" or separated into individual and separate first and second polypeptides without the need for any external cleavage activity.

[0196] The self-cleaving peptide can be a 2A self-cleaving peptide from an aphthovirus or cardiovirus. The primary 2A / 2B cleavage of aphthoviruses and cardioviruses is mediated by 2A "cleavage" at its own C-terminus. In apthoviruses (such as foot-and-mouth disease virus (FMDV) and equine rhinitis A virus), the 2A region is a short stretch of approximately 18 amino acids that, together with the N-terminal residue of protein 2B (a conserved proline residue), represents an autonomous element that can mediate "cleavage" at its own C-terminus (Donelly et al. (2001) supra).

[0197] "2A-like" sequences have been found in picornaviruses other than aphthoviruses or cardioviruses, "picornavirus-like" insect viruses, type C rotaviruses, and repeat sequences within Trypanosoma spp. and bacterial sequences (Donnelly et al. (2001) supra).

[0198] The cleavage site may include the 2A-like sequence (RAEGRGSLLTCGDVEENPGP) shown as SEQ ID NO:92. vector

[0199] The present invention also provides a vector or kit of vectors comprising one or more nucleic acid sequences encoding the chimeric receptor of the invention, which can be used to introduce the nucleic acid sequence(s) into a host cell such that the host cell expresses the chimeric polypeptide of the first aspect of the invention.

[0200] The vector may be, for example, a plasmid or a viral vector (such as a retroviral or lentiviral vector), or a transposon-based vector or synthetic mRNA.

[0201] The vector may be capable of transfecting or transducing T cells or NK cells. cell

[0202] The present invention provides cells comprising the chimeric antigen receptor of the present invention. The cells may comprise two or more CARs (e.g., the cells may comprise the double or triple CARs described above).

[0203] The cell may contain a nucleic acid or vector of the invention.

[0204] The cell can be a cytolytic immune cell (such as a T cell or an NK cell).

[0205] T cells or T lymphocytes are a type of lymphocyte that play a central role in cell-mediated immunity. They can be distinguished from other lymphocytes (such as B cells and natural killer cells (NK cells)) by the presence of a T cell receptor (TCR) on the cell surface. There are various types of T cells, as summarized below.

[0206] T helper cells (TH cells) assist other white blood cells in immunological processes, including the maturation of B cells into plasma cells and memory B cells and the activation of cytotoxic T cells and macrophages. TH cells express CD4 on their surface. TH cells become activated when peptide antigens are presented by MHC class II molecules on the surface of antigen-presenting cells (APCs). These cells can differentiate into one of several subtypes (TH1, TH2, TH3, TH17, Th9, or THF) that secrete different cytokines to facilitate different types of immune responses.

[0207] Cytolytic T cells (TC cells, or CTLs) destroy virus-infected and tumor cells and are also involved in graft rejection. CTLs express CD8 on their surface. These cells recognize their targets by binding to antigens associated with MHC class I, which is present on the surface of all nucleated cells. Through IL-10, adenosine, and other molecules secreted by regulatory T cells, CD8+ cells can be inactivated into an anergic state, thereby preventing autoimmune diseases such as experimental autoimmune encephalomyelitis.

[0208] Memory T cells are a subset of antigen-specific T cells that persist for long periods after recovery from infection. Memory T cells rapidly expand into large numbers of effector T cells upon re-exposure to their cognate antigen, thus providing the immune system with a "memory" of past infection. Memory T cells include three subtypes: central memory T cells (TCM cells) and two types of effector memory T cells (TEM cells and TEMRA cells). Memory cells can be either CD4+ or CD8+. Memory T cells typically express the cell surface protein CD45RO.

[0209] Regulatory T cells (Treg cells), formerly known as suppressor T cells, are essential for maintaining immune tolerance. Their primary role is to shut down T cell-mediated immunity toward the end of an immune response and to suppress autoreactive T cells that have escaped the negative selection process in the thymus.

[0210] Two main classes of CD4+ Treg cells have been described: intrinsic and adaptive Treg cells.

[0211] Endogenous Treg cells (also known as CD4+CD25+FoxP3+ Treg cells) arise in the thymus and are involved in the interaction of developing T cells with both myeloid (CD11c+) and plasmacytoid (CD123+) dendritic cells activated by TSLP. Endogenous Treg cells can be distinguished from other T cells by the presence of an intracellular molecule called FoxP3. Mutation of the FOXP3 gene blocks the development of regulatory T cells and can lead to the fatal autoimmune disease IPEX.

[0212] Adaptive Treg cells (also known as Tr1 cells or Th3 cells) can arise during a normal immune response.

[0213] The cells can be natural killer cells (or NK cells). NK cells can be part of the innate immune system. NK cells respond rapidly to endogenous signals from virus-infected cells in an MHC-dependent manner.

[0214] NK cells (belonging to the innate lymphoid cell group) are defined as large granular lymphocytes (LGLs) and constitute a third cell type differentiated from a common lymphoid progenitor cell that generates B and T lymphocytes. NK cells are known to differentiate and mature in the bone marrow, lymph nodes, spleen, tonsils, and thymus, and then enter the circulation.

[0215] The cells of the present invention can be any of the cell types described above.

[0216] The T cells or NK cells of the first aspect of the invention can be produced ex vivo in hematopoietic stem cell transplants from the patient's own peripheral blood (first party), or from donor peripheral blood (second party) or peripheral blood from an unrelated donor (third party).

[0217] Alternatively, the T or NK cells of the first aspect of the invention may be derived from ex vivo differentiation of induced or embryonic progenitor cells into T or NK cells. Alternatively, immortalized T or NK cells may be used which retain lytic function and can act as therapeutics. T cell lines may be used.

[0218] In all of these embodiments, the chimeric polypeptide-expressing cells are generated by introducing DNA or RNA encoding the chimeric polypeptide by one of a number of means, including transduction with a viral vector, transfection with DNA or RNA.

[0219] The cells of the present invention may be ex vivo T cells or NK cells derived from a subject. The T cells or NK cells may be derived from a peripheral blood mononuclear cell (PBMC) sample. The T cells or NK cells may be activated and / or expanded, for example, by treatment with an anti-CD3 monoclonal antibody, before being transduced with a nucleic acid encoding a molecule from which the chimeric polypeptide of the first aspect of the present invention is derived.

[0220] The T or NK cells of the present invention can be generated by: (i) isolation of a sample containing T or NK cells from a subject listed above or from another source; and (ii) transduction or transfection of T or NK cells with one or more nucleic acid sequences encoding the chimeric polypeptide.

[0221] The T or NK cells can then be purified (eg, selected based on expression of the antigen-binding domain of the antigen-binding polypeptide). Pharmaceutical Composition

[0222] The present invention also relates to a pharmaceutical composition comprising a plurality of cells according to the invention.

[0223] The pharmaceutical composition may further comprise a pharmaceutically acceptable carrier, diluent or excipient.The pharmaceutical composition may optionally comprise one or more additional pharmaceutically active polypeptides and / or compounds.Such a formulation may be, for example, in a form suitable for intravenous infusion. Treatment method

[0224] The present invention provides methods for treating and / or preventing disease, comprising administering to a subject cells of the present invention (eg, in a pharmaceutical composition described above).

[0225] Methods of treating disease relate to therapeutic uses of the cells of the invention, wherein the cells can be administered to a subject already suffering from a disease or condition to alleviate, relieve, or ameliorate at least one symptom associated with the disease and / or to slow, reduce, or block the progression of the disease.

[0226] The method for preventing disease relates to the prophylactic use of the cells of the present invention. Herein, such cells can be administered to a subject who is not yet afflicted and / or does not show any symptoms of the disease to prevent or impair the cause of the disease, or to reduce or prevent the occurrence of at least one symptom associated with the disease. The subject may have a predisposition to the disease or may be considered at risk of developing the disease.

[0227] The method may include the following steps: (i) isolating a sample containing T or NK cells; (ii) transducing or transfecting such cells with a nucleic acid sequence or vector provided by the present invention; (iii) administering cells from (ii) to a subject.

[0228] A sample containing T cells or NK cells can be isolated, for example, from the subject or other source. T cells or NK cells can be isolated from the patient's own peripheral blood (first party), or in hematopoietic stem cell transplantation from donor peripheral blood (second party) or peripheral blood from an unrelated donor (third party).

[0229] The present invention provides cells expressing the chimeric polypeptide of the present invention for use in the treatment and / or prevention of disease.

[0230] The present invention also relates to the use of a cell expressing a chimeric polypeptide of the present invention in the manufacture of a medicament for the treatment and / or prevention of a disease.

[0231] The disease to be treated and / or prevented by the methods of the present invention may be a cancerous disease (such as bladder cancer, breast cancer, colon cancer, endometrial cancer, kidney cancer (renal cell carcinoma), leukemia, lung cancer, melanoma, non-Hodgkin's lymphoma, pancreatic cancer, prostate cancer, and thyroid cancer).

[0232] The disease can be multiple myeloma (MM), B-cell acute lymphoblastic leukemia (B-ALL), chronic lymphocytic leukemia (CLL), neuroblastoma, T-cell acute lymphoblastic leukemia (T-ALL), or diffuse large B-cell lymphoma (DLBCL).

[0233] The cells of the present invention may be capable of killing target cells, such as cancer cells. Target cells may be characterized by the presence of tumor-secreted ligands or chemokine ligands near the target cells. Target cells may be characterized by the presence of soluble ligands along with the expression of tumor-associated antigens (TAA) on the target cell surface.

[0234] The cells and pharmaceutical compositions of the present invention may be for use in the treatment and / or prevention of the above-mentioned diseases. Further Aspects

[0235] The present invention also provides a novel CD22-binding antibody designated 9A8-1. The VH, VL, and CDR sequences of 9A8 are shown in Table 1 above.

[0236] This antibody shows particularly good efficacy in CARs. For example, as shown in Example 3 below, 9A8-1 in FabCAR format showed improved target cell killing and cytokine release over an equivalent CAR with the alternative CD22 binder 3B4.

[0237] The present invention also provides aspects summarized in the following numbered paragraphs.

[0238] 1. An antigen-binding domain comprising: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having complementarity determining regions (CDRs) with the following sequences: [ka]

[0239] 2. The antigen-binding domain of paragraph 1, comprising a VH domain having the sequence set forth as SEQ ID NO: 65; and a VL domain having the sequence set forth as SEQ ID NO: 66.

[0240] 3. An antibody comprising an antigen-binding domain according to paragraph 1 or 2.

[0241] 4. An antibody-drug conjugate (ADC) or bispecific T cell engager (BiTE) comprising the antibody of paragraph 3.

[0242] 5. A chimeric antigen receptor (CAR) comprising an antigen-binding domain according to paragraph 1 or 2.

[0243] 6. The CAR of paragraph 5, which is a FabCAR.

[0244] 7. The CAR of paragraph 5, which is an scFv CAR.

[0245] 8. A nucleic acid sequence encoding the antigen-binding domain of paragraph 1 or 2, and the antibody of paragraph 3, the ADC or BiTE of paragraph 4, or the CAR of any of paragraphs 5-7.

[0246] 9. The nucleic acid sequence of claim 8, encoding a CAR according to any of paragraphs 5 to 7, having a GC content of at least 60%.

[0247] 10. The nucleic acid sequence of claim 8, encoding a CAR according to any of paragraphs 5 to 7, having a GC content of about 64%.

[0248] 11. A nucleic acid sequence according to any one of claims 8 to 10, comprising the elongation factor-1 alpha (EF1α) promoter.

[0249] 12. A nucleic acid construct comprising a first nucleic acid sequence according to any one of claims 8 to 11 encoding a CAR according to any one of paragraphs 5 to 7, and a second nucleic acid sequence encoding an anti-CD19 CAR.

[0250] 13. The nucleic acid construct of claim 12, wherein the antigen binding domain of the anti-CD19 CAR comprises: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having CDRs with the following sequences: [ka] .

[0251] 14. The nucleic acid construct of claim 13, wherein the antigen-binding domain of the anti-CD19 CAR comprises a VH domain set forth in SEQ ID NO: 75 and a VL domain set forth in SEQ ID NO: 76.

[0252] 15. The nucleic acid construct of any one of claims 12 to 14, wherein the anti-CD22 CAR is in Fab format and has the following general structure: VH-CH-spacer1-TM1-endo1-coexpr1-VL-CL-coexpr2-AgBD-spacer2-TM2-endo2; VL-CL-spacer-TM1-endo1-coexpr1-VH-CH-coexpr2-AgBD-spacer2-TM2-endo2; AgBD-spacer2-TM2-endo2-VH-CH-spacer1-TM1-endo1-coexpr2-VL-CL; AgBD-spacer2-TM2-endo2-coexpr1-VL-CL-spacer-TM1-endo1-coexpr2-VH-CH VL-CL-coexpr1-VH-CH-spacer1-TM1-endo1--coexpr2-AgBD-spacer2-TM2-endo2; VH-CH-coexpr1-VL-CL-spacer-TM1-endo1-coexpr2-AgBD-spacer2-TM2-endo2; AgBD-spacer2-TM2-endo2-VL-CL-coexpr2-VH-CH-spacer1-TM1-endo1; or AgBD-spacer2-TM2-endo2-coexpr1-VH-CH-coexpr2-VL-CL-spacer-TM1-endo1 where: VH is a nucleic acid sequence encoding the heavy chain variable region of the first CAR; CH is a nucleic acid sequence encoding the heavy chain constant region of the first CAR; spacer1 is a nucleic acid sequence encoding the spacer of the first CAR; TM1 is a nucleic acid sequence encoding the transmembrane domain of the first CAR; endo1 is a nucleic acid sequence encoding the endodomain of the first CAR; coexpr1 and coexpr2 may be the same or different and are nucleic acid sequences that allow for the coexpression of the first and second polypeptides of the first CAR; and the second CAR; VL is a nucleic acid sequence encoding the light chain variable region of the first CAR; CL is a nucleic acid sequence encoding the light chain constant region of the first CAR; AgBD is a nucleic acid sequence encoding the antigen-binding domain of the second CAR; spacer2 is a nucleic acid sequence encoding the spacer of the second CAR; TM2 is a nucleic acid sequence encoding the transmembrane domain of the second CAR; endo2 is a nucleic acid sequence encoding the endodomain of the second CAR.

[0253] 16. The nucleic acid construct according to any one of claims 12 to 14, wherein the anti-CD22 CAR is in ScFv format and has the following general structure: AgBD1-spacer1-TM1-endo1-coexpr-AgBD2-spacer2-TM2-endo2; or AgBD2-spacer2-TM2-endo2-coexpr-AgBD1-spacer1-TM1-endo1 where: AgBD1 is a nucleic acid sequence encoding the antigen-binding domain of the first CAR; spacer1 is a nucleic acid sequence encoding the spacer of the first CAR; TM1 is a nucleic acid sequence encoding the transmembrane domain of the first CAR; endo1 is a nucleic acid sequence encoding the endodomain of the first CAR; coexpr is a nucleic acid sequence capable of co-expression of the first and second CARs; AgBD2 is a nucleic acid sequence encoding the antigen-binding domain of the second CAR; spacer2 is a nucleic acid sequence encoding the spacer of the second CAR; TM2 is a nucleic acid sequence encoding the transmembrane domain of the second CAR; endo2 is a nucleic acid sequence encoding the endodomain of the second CAR.

[0254] 17. A vector comprising a nucleic acid sequence according to any one of paragraphs 8 to 11 or a nucleic acid construct according to any one of paragraphs 12 to 16.

[0255] 18. A kit of vectors comprising: a first vector comprising a first nucleic acid sequence as defined in any of paragraphs 12 to 16; and a second vector comprising a second nucleic acid sequence as defined in any of paragraphs 12 to 16.

[0256] 19. The vector or vector kit of paragraph 17 or 18, which is a retroviral vector(s).

[0257] 20. The vector or vector kit of paragraph 17 or 18, which is a lentiviral vector(s).

[0258] 21. A cell expressing a CAR according to any of paragraphs 5 to 7.

[0259] 22. A cell co-expressing a first CAR according to any of paragraphs 5 to 7 and a second CAR that is an anti-CD19 CAR.

[0260] 23. The cell of claim 22, wherein the antigen binding domain of the anti-CD19 CAR comprises: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having CDRs with the following sequences: [ka] .

[0261] 24. The cell of paragraph 23, wherein the antigen-binding domain of the anti-CD19 CAR comprises the VH domain set forth in SEQ ID NO: 75 and the VL domain set forth in SEQ ID NO: 76.

[0262] 25. A method for producing a cell according to any one of paragraphs 21 to 24, comprising the step of introducing into a cell ex vivo a nucleic acid sequence encoding a CAR according to any one of paragraphs 8 to 11; a nucleic acid construct according to any one of paragraphs 12 to 16, or a vector or kit of vectors according to any one of paragraphs 17 to 20.

[0263] 26. A pharmaceutical composition comprising a plurality of cells according to any of paragraphs 21 to 24, together with a pharmaceutically acceptable carrier, diluent or excipient.

[0264] 27. A method of treating cancer, comprising administering to a subject the pharmaceutical composition of paragraph 26.

[0265] 28. The method of paragraph 27, wherein the cancer is B-cell leukemia or lymphoma.

[0266] 29. Cells according to any of paragraphs 21 to 24 for use in the treatment of cancer.

[0267] 30. Use of a cell according to any of paragraphs 21 to 24 in the manufacture of a pharmaceutical composition for treating cancer.

[0268] For example, the general features of the chimeric antigen receptors, nucleic acid sequences and constructs, vectors, cells, pharmaceutical compositions, and methods of making and using the cells described in the preceding section also apply to the corresponding components described in the paragraphs above.

[0269] The present invention also provides a novel CD22-binding antibody designated 1G3-4. The VH, VL, and CDR sequences of 1G3-4 are shown in Table 1 above.

[0270] This antibody shows particularly good efficacy in CARs. For example, as shown in Example 3 below, 9A8-1 in FabCAR format showed improved target cell killing and cytokine release over an equivalent CAR with the alternative CD22 binder 3B4.

[0271] The present invention also provides aspects summarized in the following numbered paragraphs.

[0272] A1. An antigen-binding domain comprising: a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and b) a light chain variable region (VL) having complementarity determining regions (CDRs) with the following sequences: [ka] .

[0273] A2. The antigen-binding domain of paragraph A1, comprising: a VH domain having the sequence set forth as SEQ ID NO: 99; and a VL domain having the sequence set forth as SEQ ID NO: 100.

[0274] A3. An antibody comprising an antigen-binding domain according to paragraph A1 or A2.

[0275] A4. An antibody-drug conjugate (ADC) or bispecific T cell engager (BiTE) comprising an antibody described in paragraph A3.

[0276] A5. A chimeric antigen receptor (CAR) comprising an antigen binding domain according to paragraph A1 or A2.

[0277] A6. The CAR of paragraph A5, which is a FabCAR.

[0278] A7. A nucleic acid sequence encoding an antigen-binding domain of paragraph A1 or A2, and an antibody of paragraph A3, an ADC or BiTE of paragraph A4, or a CAR of paragraph A5 or A6.

[0279] A8. A vector comprising a nucleic acid sequence according to paragraph A7.

[0280] A9. A cell expressing a CAR described in paragraph A5 or A6.

[0281] A10. A method of producing a cell according to paragraph A9, comprising introducing into a cell a nucleic acid sequence encoding a CAR according to paragraph A7.

[0282] A11. A pharmaceutical composition comprising a plurality of the cells of paragraph A9, together with a pharmaceutically acceptable carrier, diluent, or excipient.

[0283] A12. A method of treating cancer comprising administering to a subject the pharmaceutical composition of paragraph A11.

[0284] A13. The method of paragraph A12, wherein the cancer is a B-cell leukemia or lymphoma.

[0285] A14. The cells of paragraph A9 for use in the treatment of cancer.

[0286] A15. Use of a cell according to paragraph A9 in the manufacture of a pharmaceutical composition for treating cancer.

[0287] B1. An antigen-binding domain comprising: ai) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and bi) a light chain variable region (VL) having complementarity-determining regions (CDRs) with the following sequences: [ka] or aii) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and bii) a light chain variable region (VL) having complementarity-determining regions (CDRs) with the following sequences: [ka] or aiii) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: [ka] and biii) a light chain variable region (VL) having complementarity-determining regions (CDRs) with the following sequences: [ka] .

[0288] B2. An antigen-binding domain according to paragraph 1, comprising i) a VH domain having the sequence set forth as SEQ ID NO: 107; and a VL domain having the sequence set forth as SEQ ID NO: 108; or ii) a VH domain having the sequence set forth as SEQ ID NO: 109; and a VL domain having the sequence set forth as SEQ ID NO: 110; or iii) a VH domain having the sequence set forth as SEQ ID NO: 111; and a VL domain having the sequence set forth as SEQ ID NO: 112.

[0289] B3. An antibody comprising an antigen-binding domain according to paragraph B1 or B2.

[0290] B4. An antibody-drug conjugate (ADC) or bispecific T cell engager (BiTE) comprising an antibody described in paragraph B3.

[0291] B5. A chimeric antigen receptor (CAR) comprising an antigen binding domain according to paragraph B1 or B2.

[0292] B6. The CAR of paragraph B5, which is a FabCAR.

[0293] B7. A nucleic acid sequence encoding an antigen-binding domain of paragraph B1 or B2, and an antibody of paragraph B3, an ADC or BiTE of paragraph B4, or a CAR of paragraph B5 or B6.

[0294] B8. A vector comprising a nucleic acid sequence according to paragraph B7.

[0295] B9. A cell expressing a CAR according to paragraph B5 or B6.

[0296] B10. A method of producing a cell according to paragraph B9, comprising introducing into a cell a nucleic acid sequence encoding a CAR according to paragraph B7.

[0297] B11. A pharmaceutical composition comprising a plurality of the cells of paragraph B9, together with a pharmaceutically acceptable carrier, diluent, or excipient.

[0298] B12. A method of treating cancer comprising administering to a subject the pharmaceutical composition of paragraph B11.

[0299] B13. The method of paragraph B12, wherein the cancer is a B-cell leukemia or lymphoma.

[0300] B14. The cells of paragraph B9 for use in the treatment of cancer.

[0301] B15. Use of a cell according to paragraph B9 in the manufacture of a pharmaceutical composition for treating cancer.

[0302] For example, the general features of the chimeric antigen receptors, nucleic acid sequences and constructs, vectors, cells, pharmaceutical compositions, and methods of making and using the cells described in the preceding section also apply to the corresponding components described in the paragraphs above.

[0303] The present invention will now be further illustrated by examples which are intended to assist those skilled in the art in the practice of the invention and are not intended to limit the scope of the invention in any way. [Example]

[0304] We conducted a series of experiments to compare the effects of FabCARs with scFv CARs, based on the same antibody against target cells expressing an antigen with a bulky extracellular domain (CD22). CAR-T cells expressing the two types of CARs were compared in terms of cytotoxicity and proliferation. Example 1 - FACs-Based Killing (FBK)

[0305] A panel of CARs was generated as summarized below, and their cytotoxicity was compared to CD22-expressing target cells. NT: non-transduced 10C1-D9 Fab: FabCAR based on 10C1 mAb

[0306] All CARs had second-generation endodomains containing the CD3ζ domain and the 4-1BB costimulatory domain.

[0307] T cells were co-cultured with CD22-expressing SupT1 target cells at a 1:1 ratio. 5 × 10 cells per well 4 Assays were performed in 96-well plates in a total volume of 0.2 ml using transduced T cells and an equal number of target cells. Co-cultures were set up after normalization for transduction efficiency. FBK was performed 24 hours after incubation.

[0308] The FBK results are shown in Figure 4. For both CD22 binders tested: 10C1 and 1D9-3, CARs with Fab antigen-binding domains outperformed equivalent CARs with scFv antigen-binding domains in terms of target cell killing. Example 2 - Proliferation Assay (PA)

[0309] To measure proliferation, the same panel of CAR-expressing T cells described in Example 1 was labeled with the dye Cell Trace Violet (CTV), a fluorescent dye that is hydrolyzed and retained intracellularly. CTV is excited by a 405 nm (violet) laser, and fluorescence can be detected in the Pacific Blue channel. The CTV dye was reconstituted to 5 mM in DMSO. T cells were cultured at 2 x 10 in PBS. 6 T cells were resuspended at 1000 cells / ml and 1 ul / ml CTV was added. T cells were incubated with CTV for 20 minutes at 37°C. Cells were then quenched by adding 5 ml of complete medium. After a 5-minute incubation, T cells were washed and resuspended in 2 ml of complete medium. An additional 10 minutes of incubation at room temperature resulted in acetic acid hydrolysis and dye retention.

[0310] Labeled T cells were co-cultured with Raji target cells for 4 days. 5 × 10 cells per well 4 Assays were performed in 96-well plates in a total volume of 0.2 ml using equal numbers of transduced T cells and target cells (1:1 ratio). At four time points throughout the day, T cells were analyzed by flow cytometry to measure the dilution of CTV that occurred as T cells divided. The number of T cells present at the end of co-culture was calculated and expressed as fold expansion compared to the input number of T cells.

[0311] Figure 5 shows that for both CD22 binders tested: 10C1 and 1D9-3, T cells expressing CARs with Fab antigen-binding domains proliferated more than equivalent CARs with scFv antigen-binding domains. The area under the curve for both FabCAR constructs was shifted further along the x-axis compared to the equivalent scFvCAR construct.

[0312] Example 3 - Investigation of the efficacy of anti-CD22 antibody 9A8-1 in FabCAR format.

[0313] A CAR panel was generated as summarized below, and its cytotoxicity was compared to CD22-expressing SupT1 target cells. NT: non-transduced 3B4: FabCAR based on 3B4 mAb 9A8: FabCAR based on 9A8-1 mAb

[0314] All CARs had second-generation endodomains containing the CD3ζ domain and the 4-1BB costimulatory domain.

[0315] First, we investigated the ability of CAR-expressing T cells to kill target cells. T cells were co-cultured with CD22-expressing SupT1 target cells at an E:T ratio of 1:4. FACS-based killing assays were performed after 72 hours of incubation as described below.

[0316] The FBK results are shown in Figure 8. CARs with the 9A8 antigen-binding domain were superior to equivalent CARs with the 3B4 antigen-binding domain in terms of target cell killing.

[0317] Next, we compared the two CARs for cytokine release. After 72 hours of coculture with CD22-expressing SupT1 target cells, IL-2 expression was examined by ELISA as described below. The results are shown in Figure 9. Surprisingly, IL-2 release levels were higher for the CAR with the 9A8 antigen-binding domain than for the equivalent CAR with the 3B4 antigen-binding domain.

[0318] Example 4 - Investigation of the efficacy of anti-CD22 antibody 1g3-4 in FabCAR format. The CAR panel was prepared as summarized below: NT: non-transduced Fmc63: anti-CD19 CAR (negative control) 10C1: Anti-CD22 FabCAR based on 10C1 mAb 3B4:Anti-CD22 FabCAR based on 3B4 mAb 7G6:Anti-CD22 FabCAR based on 7G6 mAb 9F8-2: Anti-CD22 FabCAR based on 9F8-2 mAb 9A8-1: Anti-CD22 FabCAR based on 9A8-1 mAb 1G3-4: Anti-CD22 FabCAR based on 1G3-4 mAb 9F9-6: Anti-CD22 FabCAR based on 9F9-6 mAb

[0319] All CARs had second-generation endodomains containing the CD3ζ domain and the 4-1BB costimulatory domain.

[0320] The ability of CAR-expressing T cells to kill SupT1 target cells was investigated. SupT1 cells were either left untransduced (Figure 10, panel A) or transduced to express CD22. The transduced target cells were sorted into three populations: a population with undetectable CD22 expression levels by flow cytometry (Figure 10, panel B); a population with low CD22 expression levels, averaging 255 copies per cell (Figure 10, panel C); and a population with high CD22 expression levels, averaging 78,916 copies per cell (Figure 10, panel D).

[0321] T cells were co-cultured with CD22-expressing SupT1 target cells at an E:T ratio of 1:4. FACS-based killing assays were performed after 72 hours of incubation as described below.

[0322] The results of FBK are shown in Figure 10. All anti-CD22 FabCARs effectively killed target cells expressing high levels of the target antigen (Figure 10D). However, FabCARs carrying the 9A8 antigen-binding domain or the 1G3-4 antigen-binding domain killed target cells even with very low levels of target antigen expression (Panel B). Transduction

[0323] Retrovirus was generated by transiently transfecting 293T cells with the RDF plasmid (RD114 envelope), gag / pol plasmid, and CART cell plasmid using Gene Juice (EMD Millipore), and viral supernatant was collected at 48 and 72 hours. T cells were stimulated in TC-treated T175 flasks using 0.5 μg / mL of anti-CD3 and anti-CD28 antibodies and maintained in 100 U / mL IL-2. TC-untreated 6-well plates were coated with Retronectin according to the manufacturer's instructions (Takara Bio), and after 24 hours of incubation at 4°C, T cells were transduced. 3 ml of viral supernatant was plated followed by 1 ml of activated T cells (concentration 1 × 10 6 cells / ml) was added, followed by the addition of 100 U / mL IL-2, followed by centrifugation at 1000 xg for 40 minutes at room temperature, and incubation at 37°C and 5% CO2 for 2-3 days. NK cell and NKT cell depletion

[0324] CD56 depletion (STEMCELL 18055) was performed using the EasySep™ Human CD56 Positive Selection Kit. Cytotoxicity assay

[0325] To measure cytotoxicity, CART cells were cocultured with SupT1-NT and SupT1 CD22 at an effector:target ratio of 4:1 (200,000:50,000 cells) in TC-treated 96-well plates. After 72 hours, cells were read by staining with anti-hCD34-APC (FAB7227A), anti-CD2-FITC, and anti-CD3-PeCy7 (300419) to distinguish effector and target cells. Dead cells were excluded using 7-AAD cell viability dye (420403), and cells were washed with phosphate-buffered saline (10010023) between incubations. Cytotoxicity was read using a MACSQuant® Analyzer 10 flow cytometer (Miltenyi Biotec). Cytokine release

[0326] IL-2 production by CAR T cells was measured by collecting supernatants from 72-hour co-cultures at an E:T ratio of 4:1 and analyzing them by ELISA after freezing at -20°C. Human IFN-γ ELISA MAX™ Deluxe Sets (BioLegend, 430106) and IL-2 ELISA MAX™ Deluxe Cytokine analysis was performed using Sets (BioLegend, 431806) according to the manufacturer's protocol. ELISA signals were measured using a Varioskan LUX Multimode microplate reader (Thermo Fisher).

[0327] This application claims the benefit of UK Patent Application No. 1807866.7 filed May 15, 2018 and UK Patent Application No. 1809773.3 filed June 14, 2018, both of which are incorporated herein by reference in their entirety.

[0328] All publications mentioned in the above specification are herein incorporated by reference. Various modifications and variations of the described methods and systems of the invention will be apparent to those skilled in the art without departing from the scope and spirit of the invention. Although the invention has been described in connection with specific preferred embodiments, it should be understood that the invention as claimed should not be unduly limited to such specific embodiments. Indeed, various modifications of the described modes for carrying out the invention that are obvious to those skilled in molecular biology or related fields are intended to be within the scope of the following claims.

Claims

1. A chimeric antigen receptor (CAR) that binds to a target antigen having a bulky extracellular domain, the CAR comprising a Fab antigen-binding domain, a CD8 stalk and transmembrane domain, a 4-1BB costimulatory domain, and a CD3ζ endodomain, wherein the target antigen is CD22, and the Fab antigen-binding domain is a) a heavy chain variable region (VH) having complementarity determining regions (CDRs) with the following sequences: CDR1-NFAMA (SEQ ID NO: 93) CDR2 - SISTGGGNTYYRDSVKG (SEQ ID NO: 94) CDR3 - QRNYYDGSYDYEGYTMDA (SEQ ID NO: 95); and b) a light chain variable region (VL) having complementarity determining regions (CDRs) with the following sequences: CDR1 - RSSQDIGNYLT (SEQ ID NO: 96) CDR2 - GAIKLED (SEQ ID NO: 97) CDR3 - LQSIQYP (SEQ ID NO: 98) A chimeric antigen receptor (CAR) comprising:

2. The CAR of claim 1, wherein the target antigen has an extracellular domain of at least about 150 Å.

3. The CAR of claim 1 or 2, wherein the target antigen has an extracellular domain of at least about 400 amino acids.

4. The CAR according to any one of claims 1 to 3, comprising a VH domain having the sequence shown as SEQ ID NO: 65; and a VL domain having the sequence shown as SEQ ID NO:

66.

5. the antigen-binding domain comprising: a) a heavy chain variable region (VH) having complementarity-determining regions (CDRs) having the following sequences: 【Chemistry 83】 and b) a light chain variable region (VL) having complementarity determining regions (CDRs) with the following sequences: 【Chemistry 84】 The CAR according to any one of claims 1 to 3, comprising:

6. The CAR of claim 5, comprising a VH domain having the sequence shown as SEQ ID NO: 99; and a VL domain having the sequence shown as SEQ ID NO:

100.

7. A nucleic acid encoding a CAR described in any one of claims 1 to 6.

8. The general structure is: VH-CH-spacer-TM-endo-coexpr-VL-CL and where: VH is a nucleic acid sequence encoding the heavy chain variable domain of the first polypeptide; CH is a nucleic acid sequence encoding the heavy chain constant domain of said first polypeptide; spacer is a nucleic acid sequence encoding a spacer of the first polypeptide; TM is a nucleic acid sequence encoding the transmembrane region of said first polypeptide; endo is a nucleic acid sequence encoding the endodomain of said first polypeptide; VL is a nucleic acid sequence encoding the light chain variable domain of the second polypeptide; CL is a nucleic acid sequence encoding the light chain constant domain of said second polypeptide; 8. The nucleic acid of claim 7, wherein coexpr is a nucleic acid sequence that allows for coexpression of the first and second polypeptides.

9. 9. A nucleic acid construct comprising a first nucleic acid of claim 7 or 8 and a second nucleic acid encoding a second chimeric antigen receptor having a domain antibody (dAb) or scFv antigen-binding domain.

10. 9. A nucleic acid construct comprising: a first nucleic acid of claim 7 or 8; a second nucleic acid encoding a second chimeric antigen receptor having a domain antibody (dAb) antigen-binding domain; and a third nucleic acid encoding a third CAR having an scFv antigen-binding domain.

11. 11. The nucleic acid construct of claim 10, wherein the first nucleic acid encodes an anti-CD22 Fab CAR; the second nucleic acid encodes an anti-CD79 dAb CAR; and the third nucleic acid encodes an anti-CD19 scFv CAR.

12. A vector comprising the nucleic acid according to claim 7 or 8 or the nucleic acid construct according to any one of claims 9 to 11.

13. A cell expressing the CAR according to any one of claims 1 to 6.

14. A cell expressing the first CAR according to any one of claims 1 to 6, and a second chimeric antigen receptor having a domain antibody (dAb) or scFv antigen-binding domain.

15. A cell expressing a first CAR according to any one of claims 1 to 6, a second CAR having a domain antibody (dAb) antigen-binding domain, and a third CAR having an scFv antigen-binding domain.

16. 14. The cell of claim 13, wherein the first CAR is an anti-CD22 Fab CAR; the second CAR is an anti-CD79 dAb CAR; and the third CAR is an anti-CD19 scFv CAR.

17. A method for producing a cell according to any one of claims 13 to 16, comprising the step of introducing ex vivo into a cell a nucleic acid according to claim 7 or 8; a nucleic acid construct according to any one of claims 9 to 11; or a vector according to claim 12.

18. A pharmaceutical composition comprising a plurality of cells according to any one of claims 13 to 16, together with a pharmaceutically acceptable carrier, diluent or excipient.

19. 20. The pharmaceutical composition of claim 18 for treating cancer in a subject.

20. 20. The pharmaceutical composition of claim 19, wherein the cancer is a B-cell lymphoma or leukemia.

21. Use of the cells according to any one of claims 13 to 16 in the manufacture of a pharmaceutical composition for treating cancer.

22. A pharmaceutical composition for treating cancer, comprising the cells according to any one of claims 13 to 16.

Citation Information

Patent Citations

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