Hybrid antibody

A hybrid IgE/IgG antibody is designed to bind to both Fcε and FcRn receptors, addressing the limitations of IgE and IgG by extending half-life and improving tissue penetration for effective cancer treatment.

JP7862002B2Active Publication Date: 2026-05-19EPSILOGEN LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
EPSILOGEN LTD
Filing Date
2020-10-01
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

Existing antibodies, such as IgE and IgG, have limitations in terms of half-life and tissue penetration, which hampers their effectiveness in treating conditions like cancer, where improved properties are needed.

Method used

Development of a hybrid IgE/IgG antibody that combines the functionalities of both isotypes, allowing it to bind to both Fcε and FcRn receptors, with pH-dependent affinity, thereby extending half-life and enhancing tissue penetration.

Benefits of technology

The hybrid antibody achieves improved therapeutic efficacy by prolonging circulation time and enhancing tissue distribution, making it more effective in targeting and treating solid tumors.

✦ Generated by Eureka AI based on patent content.

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Abstract

Described herein are targeted hybrid antibodies for use in the treatment of cancer. The antibodies have the ability to bind to Fcε receptors and fetal Fc receptors, which can be achieved, for example, by replacing sequences or amino acids in the IgE constant domain with corresponding sequences and amino acids from IgG.
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Description

[Technical Field]

[0001] The present invention relates to the design of synthetic (non-naturally occurring) hybrid antibodies, particularly hybrid IgE antibodies, along with their therapeutic use. [Background technology]

[0002] Immunoglobulin E (IgE) is a class of antibodies (or immunoglobulin (Ig) "isotype") found only in mammals. IgE is synthesized by plasma cells. Like all antibody classes, the IgE monomer consists of two larger, identical heavy chains (ε chains) and two identical light chains (common to all antibody classes), with the ε chains containing four Ig-like constant domains (Cε1-Cε4).

[0003] What distinguishes different antibody classes is the properties of the heavy chain; IgE class heavy chains are larger and more glycosylated than the more common IgG class heavy chains. Each antibody chain consists of a series of immunoglobulin domains arranged in series. The N-terminal domains (one on the light chain and one on the heavy chain) contain a highly variable sequence region (variable domain) that enables broad binding to antigens. The remaining domains consist of highly conserved so-called constant (Fc) domains.

[0004] One function of IgE is immunity against parasites such as helminths. IgE also plays an essential role in type I hypersensitivity, which manifests as various allergic diseases such as allergic asthma, most types of sinusitis, allergic rhinitis, food allergies, and specific types of chronic urticaria and atopic dermatitis. IgE also plays a crucial role in responding to allergens such as anaphylactic drugs, bee stings, and antigen preparations used in desensitization immunotherapy.

[0005] Although IgE is typically the least abundant isotype, IgE levels in normal ("non-atopic") individuals are only 0.05% of Ig concentrations compared to 75% for IgG at 10 mg / ml, which is the isotype involved in most classical adaptive immune responses and can induce the most potent inflammatory response.

[0006] IgG is the primary type of antibody found in blood and extracellular fluid, enabling the control of infections in body tissues. By binding to many types of pathogens, including viruses, bacteria, and fungi, IgG protects the body from infection. IgG antibodies are large molecules with a molecular weight of approximately 150 kDa, composed of four peptide chains. Each molecule contains two identical gamma heavy chains of approximately 50 kDa and two identical light chains of approximately 25 kDa, thus forming a tetramer quaternary structure. The two heavy chains are linked to each other and to the light chains, respectively, by disulfide bonds. The resulting tetramer has two identical halves, which together form a Y-shape. Each bifurcated end contains an identical antigen-binding site.

[0007] Structural differences, due to the numerous effector cells and factors binding to different constant domains of each antibody class, confer different biological activities between antibody classes. The gamma chain of IgG binds to a broad family of receptors, including classical membrane-bound surface receptors as well as atypical intracellular receptors and cytoplasmic glycoproteins. Membrane-bound surface receptors include FcγRI(CD64), FcγRIIa, FcγRIIb, FcγRIIIa(CD16), and FcγRIIIb. Similarly, the epsilon chain of IgE binds to the high-affinity receptor FcεRI and the lower-affinity receptor FcεRII. Differential expression of these various receptors on various immune effector cells determines the type of immune response that can be produced by IgG and IgE.

[0008] Among atypical FcγRs, the neonatal Fc receptor (FcRn) has gained notoriety due to its close influence on IgG biology and its ability to bind to albumin. FcRn functions as a recycling or transcytosis receptor, involved in maintaining IgG and albumin in circulation and in the bidirectional transport of these two ligands across polarized cell walls. FcRn is also understood to act as an immune receptor by interacting with the IgG immune complex (IC) and promoting antigen presentation of peptides derived from it.

[0009] Fetal Fc receptors (FcRn) belong to a broad and functionally diverse family of MHC molecules. Unlike classical MHC family members, FcRn possesses little diversity and cannot present antigens. Instead, through its ability to bind to IgG and albumin with high affinity at low pH, FcRn regulates the serum half-lives of both these proteins. IgG enjoys a substantially longer serum half-life than similarly sized globular proteins, including IgE, which does not bind to FcRn (approximately 21 days for IgG and less than 2 days for IgE). In addition, FcRn plays a crucial role in immunity at mucosal and systemic sites, both through its ability to influence the lifespan of IgG and through its participation in congenital and adaptive immune responses.

[0010] FcRn expression is now recognized as widespread, present throughout life, and expressed by a wide variety of parenchymal cell types in many different species. These include vascular endothelium (including the central nervous system), most epithelial cell types such as the placenta (syntiotrophoblast), epidermis (keratinocytes), intestine (enterocytes), renal glomeruli (podocytes), bronchi, mammary glands (ducts and acinars), retinal pigment epithelial cells, renal proximal tubular cells (PTCs), hepatocytes, melanocytes, and cells of the choroid, ciliary body, and iris in the eye. FcRn is also widely expressed by hematopoietic cells, including monocytes, macrophages, dendritic cells (DCs), neutrophils, and B cells, where it is detected in considerable amounts on the cell surface, in contrast to polarized epithelial cells (Zhu X et al (2001) J. Immunol. 166(5):3266-76).

[0011] Of the four IgG subclasses in humans (IgG1, IgG2, IgG3, and IgG4), the binding affinity to FcRn ranges from 20 nM (IgG1) to 80 nM (IgG4) (West AP Jr, Bjorkman PJ (2000) Biochemistry 39(32):9698-708). Structural studies have shown that FcRn binds to IgG in a 1:1 or 2:1 stoichiometric ratio, respectively, under non-equilibrium or equilibrium conditions (Popov S. et al (1996) Mol. Immunol. 33(6):521-30; Sanchez LM et al (1999) Biochemistry 38(29):9471-6). FcRn binds independently to both sites of the IgG homodimer with the same affinity (Haberger M. et al (2015) mAbs 7:331-43), but the avidity effect resulting from 2:1 complex formation is known to be important for extending the half-life.

[0012] Biochemical and crystallographic data indicate that neither FcRn nor IgG undergoes significant conformational changes upon binding at pH 6.0. The key residues in IgG4 thought to influence binding to FcRn are Ile253, Ser254, Lys288, Thr307, Gln311, Asn434, and His435. In IgG1, it is the protonation of histidine residues in the Cγ2-Cγ3 hinge region that enables binding (Martin WL et al (2001) Molecular Cell 7:867-877). Due to their pKa, the histidine residues are protonated at approximately pH 6, which allows for interaction with FcRn residues Glu115 and Asp130. As pH increases above 6, histidine protonation is gradually lost, which explains the pH dependence of the interaction (Oganesyan V. et al, above; Raghavan M. et al (1995) Biochemistry 34:14649-57; Kim JK et al (1999) Eur J Immunol. 29:2819-2825). This allows for the formation of a salt bridge at the FcRn-Fc interface, specifically at the acidic residue in the C-terminal portion of the α2 domain in FcRn (West et al, above; Martin et al, above; Vaughn DE, Bjorkman PJ. (1998) Structure 6:63-73). In addition to the heavy chain interaction, β2m also forms contact with IgG via the Ile1 residue (Shields RL et al (2001) J. Biol. Chem. 276:6591-604). The FcRn binding site on IgG is clearly distinguishable from and far removed from the classical FcγR binding site, which requires glycosylation at the Asn297 residue in the Fc region of IgG (Tao MH, Morrison SL (1989) J. Immunol. 143:2595-601).

[0013] Given the expanding use of monoclonal antibodies (mAbs) as therapies in a wide range of human diseases, including chronic inflammation, infections, cancer, autoimmune diseases, cardiovascular diseases, and transplant medicine, FcRn has emerged as a major modifier of mAb efficacy (Chan AC, Carter PJ (2010) Nat. Rev. Immunol. 10:301-16; Weiner LM et al (2010) Nat. Rev. Immunol. 10:317-27). This is directly related to the persistence of therapeutic antibodies in the bloodstream, which in turn can increase localization to target sites. pH-dependent binding and FcRn-dependent recycling are crucial to ensure a long circulating half-life of IgG. Importantly, proper release of IgG from cells requires limited binding at neutral pH, and increasing mAb affinity to FcRn at acidic pH correlates with half-life extension. Therefore, IgG Fc modifications that optimize pH-dependent binding to FcRn are being explored to modulate pharmacokinetics and increase the half-life of IgG mAbs (Dall'Acqua WF et al (2006) J. Biol. Chem. 281:23514-24; Yeung YA et al (2009) J. Immunol. 182:7663-1; Zalevsky J. et al (2010) Nat. Biotechnol. 28:157-9).

[0014] IgE is mostly known for its harmful role in allergy, but several studies have long suggested a natural tumor surveillance function for this antibody isotype (Jensen-Jarolim E. et al (2008) Allergy 63: 1255-1266; Jensen-Jarolim E., Pawelec G. (2012) Cancer Immunol. Immunother. 61: 1355-1357). Pioneering investigations using IgG and IgE antibodies for the same epitope specificity, tested in parallel, revealed a higher potential of IgE from the perspective of cell damage (Gould H.J. et al (1999) Eur. J. Immunol. 29: 3527-3537).

[0015] IgE has evolved to kill multicellular parasites that inhabit tissues and confers upon it several key properties that ideally suit it for use in the treatment of solid tumors that are mostly present in tissues. The epsilon constant region of IgE has an unparalleled high affinity for its cognate receptor (FcεRI) on the surface of immune effector cells including macrophages, monocytes, basophils, and eosinophils (Ka for FcεRI is approximately 10 10 / M, and Ka for the CD23 trimeric complex is approximately 10 8 ~10 9(M; Gould HJ, Sutton BJ (2008) Nat. Rev. Immunol. 8: 205-217). This interaction is up to 10,000 times greater than the affinity that the gamma chain of IgG has for its homologous receptor, resulting in the majority of IgE molecules permanently attached to the surface of immune effector cells (Fridman WH (1991) FASEB J. 5: 2684-2690). The latter are therefore primed and can immediately destroy cells expressing antigens recognized by IgE. As a result, IgE can penetrate tissues more effectively than IgG and can stimulate significantly greater levels of both antibody-dependent cell-mediated phagocytosis (ADCP) and antibody-dependent cell-mediated cytotoxicity (ADCC), the two main mechanisms by which immune effector cells can kill tumor cells. Due to its rapid binding to Fcε receptors on cells, IgE is rapidly removed from circulation and has a significantly longer tissue half-life than IgG (2 weeks vs. 2-3 days), which is advantageous in terms of side effects due to the compound's short duration in the bloodstream and also supports its role in killing solid tumors.

[0016] Furthermore, since IgE antibodies bound to Fcε receptors on mast cells, for example, can penetrate malignant tumors using those cells as a shuttle system, potential IgE immunotherapy should be effectively distributed to tumor tissue, and this transport would be highly efficient because mast cells are immune cells present in tissues (St John AL, Abraham SN (2013) J. Immunol. 190: 4458-4463).

[0017] Other possible advantages include the high sensitivity of IgE effector cells to activation by antigen, as well as the speed and magnitude of the response, which can be most impressively seen during allergic and anaphylactic reactions that typically begin within minutes of allergen exposure. At the same time, this is also the greatest concern regarding the use of IgE-based immunotherapy against cancer: Recombinant IgE applied intravenously always carries the risk of anaphylactic reactions. Therefore, the careful selection of target epitopes is extremely important in this regard.

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[0019] Therefore, there is a need for antibodies that have improved properties compared to both IgE and IgG isotypes, and that are useful, for example, in the treatment of cancer. [Means for solving the problem]

[0020] Despite the advantages of IgE over IgG in a solid tumor background, IgG possesses certain functions that IgE lacks, such as a longer half-life compared to IgE. Therefore, by leveraging the high degree of structural similarity between immunoglobulin domains, the present invention provides, in one embodiment, an IgE / IgG hybrid antibody possessing the combined functionality of IgG and IgE isotypes.

[0021] In one embodiment, the present invention provides a hybrid antibody that binds to the Fcε receptor and the embryonic Fc receptor (FcRn). In this context, “binding” typically refers to binding via one or more constant domains of the hybrid antibody, i.e., “binding” does not refer to the specificity of the hybrid antibody binding to the target antigen via its variable domains. Preferably, the hybrid antibody binds to FcRn in a pH-dependent manner. For example, the hybrid antibody may have a higher affinity for FcRn at pH 6.0 than at pH 7.4.

[0022] The term "hybrid" as used herein refers to an antibody whose structure is derived from more than one class of antibodies. In the present invention, it is typically the hybrid Fc region, thereby providing the antibody with the ability to bind to immune system cell surface receptors that associate with various classes of antibodies. Typically, a hybrid antibody can bind to and activate both Fcε and FcRn receptors, thereby transducing receptor signaling and effector functions in immune system cells that express these receptors.

[0023] In one embodiment, the antibody of the present invention comprises one or more heavy chain constant domains derived from an IgE antibody (e.g., derived from an ε-heavy chain). For example, the antibody may comprise one or more domains selected from Cε1, Cε2, Cε3, and Cε4. Preferably, the antibody comprises at least a Cε3 domain, more preferably at least Cε2, Cε3, and Cε4 domains.

[0024] In one embodiment, the hybrid antibody may comprise a tetrameric IgE having an Fc region containing IgE-derived CH2, CH3, and CH4 domains (i.e., Cε2, Cε3, and Cε4 domains), where one or more of the constant domains may contain one or more amino acid substitutions identified as being related to FcRn binding in IgG. FcRn binding may be provided by one or more amino acid substitutions in at least one Fc domain of the tetrameric IgE. The fragment crystallisable / constant region (Fc region) is the tail region of the antibody that interacts with cell surface Fc receptors and some proteins of the complement system. This property allows the antibody to activate the immune system.

[0025] Amino acid substitutions can occur in either or both of the Cε3 and Cε4 domains of IgE. The substitution may involve replacing a native residue in IgE with an amino acid found at the corresponding position in IgG, thereby conferring the FcRn binding properties of IgG to IgE. For example, the Cε3Cε4 domain of IgE may contain one or more His substitutions, thereby enabling FcRn binding by IgE (e.g., in a pH-dependent manner). Tetrameric IgE may contain a Fab domain and an Fc domain, the Fc domain containing at least the Cε2, Cε3, and Cε4 domains.

[0026] In another embodiment, the hybrid antibody comprises a tetrameric IgE having an Fc region containing IgE-derived CH2, CH3, and CH4 domains (i.e., Cε2, Cε3, and Cε4 domains), where one or more of the constant domains may contain all or some of the binding sites for FcRn derived from the IgG antibody. The FcRn receptor binding site or sequence may be provided by one or more sequences derived from IgG, found in one or more of the constant domains of IgG. Structural regions on IgE that exhibit homology to regions on IgG to which FcRn binds may be identified. Once such regions are identified, amino acid and / or sequence substitutions may then be performed to enable the transfer of IgG functionality to the IgE background.

[0027] Therefore, in one embodiment, the hybrid antibody includes an IgE Cε3 domain containing a histidine residue at position 78. For example, the hybrid antibody may include the IgE CH3 domain as defined in SEQ ID NO: 2, or a variant or fragment thereof containing the T78H mutation. In this context, numbering refers to the amino acid residue position from the start of the IgE Cε3 domain, i.e., the amino acid residue at the N-terminus of the IgE Cε3 domain is position 1. Provided that the sequence retains the functional characteristics of the antibody containing SEQ ID NO: 2 and the T78H mutation, such as binding to the Fcε receptor and FcRn, the variants and fragments of SEQ ID NO: 2 include a sequence having at least 85%, 90%, 95%, or 99% sequence identity with the sequence of SEQ ID NO: 2, for example, over at least 30, 50, or 100 amino acid residues of SEQ ID NO: 2, or over the full length of SEQ ID NO: 2 and fragments of similar length.

[0028] In another embodiment, the hybrid antibody includes an IgE Cε4 domain containing a histidine residue at position 95. For example, the hybrid antibody may include the IgE CH4 domain as defined in SEQ ID NO: 3, or a variant or fragment thereof containing the S95H mutation. In another embodiment, the hybrid antibody includes an IgE Cε4 domain containing a histidine residue at position 98. For example, the hybrid antibody may include the IgE CH4 domain as defined in SEQ ID NO: 3, or a variant or fragment thereof containing the Q98H mutation. In this context, the numbering refers to the amino acid residue position from the start of the IgE Cε4 domain, i.e., the amino acid residue at the N-terminus of the IgE Cε4 domain is at position 1. Provided that the sequence contains SEQ ID NO: 3 and retains the functional properties of an antibody containing the S95H and / or Q98H mutations, such as binding to the Fcε receptor and FcRn, the variants and fragments of SEQ ID NO: 3 contain sequences that have at least 85%, 90%, 95%, or 99% sequence identity with the sequence of SEQ ID NO: 3, for example, over at least 30, 50, or 100 amino acid residues of SEQ ID NO: 3, or over the full length of SEQ ID NO: 3 and fragments of similar length.

[0029] Preferably, the hybrid antibody comprises two or three histidine substitutions, for example, the antibody comprises an IgE Cε3 domain containing a histidine residue at position 78, and / or an IgE Cε4 domain containing histidine residues at positions 95 and / or 98. In a particularly preferred embodiment, the hybrid antibody comprises an IgE CH3 domain as defined in SEQ ID NO: 2, or a variant or fragment thereof containing the T78H mutation, and / or an IgE CH4 domain as defined in SEQ ID NO: 3, or a variant or fragment thereof containing the S95H and / or Q98H mutations.

[0030] Therefore, in a more preferred embodiment, the hybrid antibody may include an IgE Cε3 loop sequence as defined in SEQ ID NO: 31 (i.e., PVGHR) and / or an IgE Cε4 loop sequence as defined in SEQ ID NO: 32 or 33 (i.e., AHPSHTV or RAVHEAAHPSHTV).

[0031] Alternatively, the FcRn receptor binding site may be attached to the C-terminus of IgE by one or more Fcγ domains derived from IgG, for example. In other words, a hybrid antibody may contain an Fc region comprising CH2, CH3, and CH4 domains (i.e., Cε2, Cε3, and Cε4 domains) derived from IgE, and a CH2 domain or variant thereof (i.e., Cγ2 domain) derived from IgG. The antibody may further contain a CH3 domain or variant thereof (i.e., Cγ3 domain) derived from IgG, and / or all or part of a hinge region derived from IgG.

[0032] The attachment of one or more constant domains may be by any appropriate attachment, linkage, transplantation, fixation, or fusion. For example, the construct may include all or part of the hinge region derived from IgG. It will be understood that all or part of the constant domain sequence, as well as its variants, may be used.

[0033] The antibody domains described herein may be derived from any species, preferably mammalian species, and more preferably human.

[0034] In one embodiment, the hybrid antibody binds to FcRn and FcεRI.

[0035] It is understood that by transplanting desirable functions specific to IgG in the context of other receptor binding sites and tumor targeting onto or within the IgE molecule, its functionality can also be altered.

[0036] A hybrid antibody may further include a variable domain sequence that determines specific binding to one or more target antigens. Such a variable domain sequence may originate from any immunoglobulin isotype (e.g., IgA, IgD, IgE, IgG, or IgM). In one embodiment, the variable domain sequence may originate from IgE. In another embodiment, the variable domain sequence may originate from IgG, e.g., IgG1. Alternatively, the variable domain may include sequences derived from two or more different isotypes; for example, the variable domain may include a sub-sequence derived from IgE and a sub-sequence derived from IgG1. In one embodiment, the hybrid antibody includes one or more complementarity-determining regions (CDRs) derived from an immunoglobulin isotype other than IgE (e.g., IgA, IgD, IgG, or IgM, e.g., IgG1), as well as one or more framework regions and / or constant domains derived from immunoglobulin of isotype IgE.

[0037] The variable domain or a portion thereof (e.g., the complementarity-determining region (CDR) or framework region) may originate from the same or different mammalian species as the constant domain present in the hybrid antibody. Therefore, the hybrid antibody may be a chimeric antibody, a humanized antibody, or a human antibody.

[0038] Typically, the variable domain of an antibody binds to one or more target antigens useful in the treatment of cancer, such as cancer antigens (i.e., antigens selectively expressed or overexpressed on cancer cells), or to antigens that inhibit or suppress immune-mediated tumor cell killing. One such variable domain sequence (i.e., the sequence of trastuzumab (Herceptin) IgE that binds to the cancer antigen HER2 / neu) is shown in Sequence ID No. 1.

[0039] In one embodiment, the antibody may contain the IgE amino acid sequence defined in SEQ ID NO: 26. For example, a hybrid antibody may contain an amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with the sequence of SEQ ID NO: 26, for example, over at least 50, 100, or 200 amino acid residues of SEQ ID NO: 26, or over the entire length of SEQ ID NO: 26. Preferably, the antibody contains at least one, two, or three histidine substitutions to the wild-type IgE CH3 and / or CH4 sequence, for example, a hybrid antibody containing histidine residues at positions 78, 203, and / or 206 of SEQ ID NO: 26.

[0040] In another embodiment, the antibody may contain the IgE (e.g., heavy chain) amino acid sequence defined in SEQ ID NO: 34. For example, a hybrid antibody may contain an amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with the sequence of SEQ ID NO: 34, either over at least 50, 100, 200, 300, or 500 amino acid residues of SEQ ID NO: 34, or over the entire length of SEQ ID NO: 34. Preferably, the antibody contains at least one, two, or three histidine substitutions to the wild-type IgE CH3 and / or CH4 sequence, for example, a hybrid antibody containing histidine residues at positions 408, 533, and / or 536 of SEQ ID NO: 34. In these embodiments, the antibody preferably further comprises an amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with the sequence of SEQ ID NO: 35, for example, over at least 50, 100, 200, 300, or 500 amino acid residues of SEQ ID NO: 35, or over the entire length of SEQ ID NO: 35.

[0041] In another embodiment, the antibody may contain an IgE (e.g., heavy chain) amino acid sequence as defined in SEQ ID NO: 186. For example, a hybrid antibody may contain an amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with the sequence of SEQ ID NO: 186, either over at least 50, 100, 200, 300, or 500 amino acid residues of SEQ ID NO: 186, or over the entire length of SEQ ID NO: 186. Preferably, the antibody contains at least one, two, or three histidine substitutions to the wild-type IgE CH3 and / or CH4 sequence, for example, a hybrid antibody containing histidine residues at positions 411, 536, and / or 539 of SEQ ID NO: 186. In these embodiments, the antibody preferably further comprises a light chain amino acid sequence as defined in SEQ ID NO: 187 or 189, or an amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with the sequence of SEQ ID NO: 187 or 189, for example, over at least 50, 100, 200, 300, or 500 amino acid residues of SEQ ID NO: 187 or 189, or over the entire length of SEQ ID NO: 187 or 189.

[0042] In another embodiment, the antibody may contain an IgE (e.g., heavy chain) amino acid sequence as defined in SEQ ID NO: 188. For example, a hybrid antibody may contain an amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with the sequence of SEQ ID NO: 188, either over at least 50, 100, 200, 300, or 500 amino acid residues of SEQ ID NO: 188, or over the entire length of SEQ ID NO: 188. Preferably, the antibody contains at least one, two, or three histidine substitutions to the wild-type IgE CH3 and / or CH4 sequence, for example, a hybrid antibody containing histidine residues at positions 410, 535, and / or 538 of SEQ ID NO: 188. In these embodiments, the antibody preferably further comprises a light chain amino acid sequence as defined in SEQ ID NO: 187 or 189, or an amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with the sequence of SEQ ID NO: 187 or 189, for example, over at least 50, 100, 200, 300, or 500 amino acid residues of SEQ ID NO: 187 or 189, or over the entire length of SEQ ID NO: 187 or 189.

[0043] In some embodiments, the antibody may contain an IgE amino acid sequence defined in one or more of SEQ ID NOs: 15-25, or a variant or fragment thereof. For example, a hybrid antibody may contain an amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with one or more of the sequences in SEQ ID NOs: 15-25.

[0044] In another embodiment, the hybrid antibody comprises an IgG CH2 amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with SEQ ID NO: 9. In another embodiment, the antibody further comprises an IgG CH3 amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with SEQ ID NO: 10. In another embodiment, the antibody further comprises an IgG hinge amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with SEQ ID NO: 8.

[0045] In certain embodiments, the antibody comprises i) an amino acid sequence (e.g., IgE-derived) having at least 85%, 90%, 95%, or 99% sequence identity with SEQ ID NOs: 1-3, preferably an amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with each of SEQ ID NOs: 1, 2, and 3; and ii) an amino acid sequence (e.g., IgG-derived) having at least 85%, 90%, 95%, or 99% sequence identity with SEQ ID NOs: 8, 9, and / or 10 (more preferably at least SEQ ID NOs: 9 and 10).

[0046] The IgG-derived amino acid sequence is preferably attached to the C-terminus of the IgE-derived amino acid sequence, either directly or using a suitable linker sequence. For example, the sequence of SEQ ID NO: 3 may be adjacent to the sequences of SEQ ID NO: 8, 9, or 10, preferably SEQ ID NO: 8. Therefore, in some embodiments, the hybrid antibody may contain at least a Cε4 domain and at least an IgG hinge region and a Cγ2 domain, preferably at least a Cε4 domain and at least an IgG hinge region and Cγ2 and Cγ3 domains. Thus, the antibody may contain an amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with SEQ ID NO: 27 or SEQ ID NO: 28.

[0047] In a preferred embodiment, the antibody contains, for example, a (e.g., heavy chain) amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with SEQ ID NO: 29 or SEQ ID NO: 30, most preferably SEQ ID NO: 30, over at least 50, 100, 200, 300, 500, or 700 amino acid residues of SEQ ID NO: 29 or SEQ ID NO: 30, or over the entire length of SEQ ID NO: 29 or SEQ ID NO: 30.

[0048] Antibodies comprising at least a CH3 domain or fragment thereof derived from IgE (i.e., a Cε3 domain) and one or more loop sequences derived from an IgG CH2 domain (i.e., a Cγ2 domain) are also described herein. Such antibodies may comprise a Cε3 domain in which one or more loop sequences (e.g., as defined in SEQ ID NOs: 4 and 5) are replaced by one or more FcRn-binding loops derived from the Cγ2 domain (e.g., as defined in SEQ ID NOs: 11 and 12). The loop sequences replaced in the IgE Cε3 domain may exhibit structural homology with the FcRn-binding loops in the IgG Cγ2 domain. Such antibodies may comprise amino acid sequences (e.g., encoding a hybrid Cε3 / Cγ2 domain) having at least 85%, 90%, 95%, or 99% sequence identity with one or more of the sequences of SEQ ID NOs: 15, 16, 19-25.

[0049] Antibodies comprising at least a CH4 domain or fragment thereof derived from IgE (i.e., a Cε4 domain) and one or more loop sequences derived from an IgG CH3 domain (i.e., a Cγ3 domain) are also described herein. Such antibodies may comprise a Cε4 domain in which one or more loop sequences (e.g., as defined in SEQ ID NOs: 6 and 7) are replaced by one or more FcRn-binding loops derived from a Cγ3 domain (e.g., as defined in SEQ ID NOs: 13 and 14). The loop sequences replaced in the IgE Cε4 domain may exhibit structural homology to the FcRn-binding loops in the IgG Cγ3 domain. Such antibodies may comprise amino acid sequences (e.g., encoding a hybrid Cε4 / Cγ3 domain) having at least 85%, 90%, 95%, or 99% sequence identity with one or more of the sequences of SEQ ID NOs: 17, 18, 20-25.

[0050] In another embodiment, the present invention encompasses the hybrid antibodies defined above for use in treating or preventing cancer, for example, benign or malignant tumors. In other words, the present invention encompasses the use of the hybrid antibodies described above in the manufacture of pharmaceuticals for administration to humans or animals for treating, preventing, or delaying cancer, for example, benign or malignant tumors. In another embodiment, the present invention encompasses a method for preventing, treating, and / or delaying cancer (for example, benign or malignant tumors) in a mammal afflicted therewith, the method comprising the step of administering a therapeutically effective amount of the hybrid antibodies described above to the mammal.

[0051] Cancers may include, for example, melanoma, Merkel cell carcinoma, non-small cell lung cancer (squamous and non-squamous types), renal cell carcinoma, bladder cancer, head and neck squamous cell carcinoma, mesothelioma, virus-induced cancers (cervical cancer and nasopharyngeal cancer, etc.), soft tissue sarcoma, hematological malignancies, such as Hodgkin and non-Hodgkin diseases, and diffuse large B-cell lymphomas (e.g., melanoma, Merkel cell carcinoma, non-small cell lung cancer (squamous and non-squamous types), renal cell carcinoma, bladder cancer, head and neck squamous cell carcinoma, and mesothelioma, or virus-induced cancers (cervical cancer and nasopharyngeal cancer, etc.), and soft tissue sarcoma). The hybrid antibodies of the present invention may be administered in the form of pharmaceutically acceptable compositions or formulations.

[0052] In yet another embodiment, the present invention relates to a composition comprising the hybrid antibody described above and a pharmaceutically acceptable excipient, diluent, or carrier. The composition may further contain therapeutic agents such as another antibody or its fragments, aptamers, or small molecules. The composition may be in a sterile aqueous solution.

[0053] In a further embodiment, a (recombinant) nucleic acid is provided that codes for all or part of the heavy chain of a hybrid antibody, wherein the heavy chain comprises an amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with (i) SEQ ID NO: 1 and (ii) SEQ ID NOs: 15 to 26, preferably SEQ ID NO: 26.

[0054] In a further embodiment, a (recombinant) nucleic acid is provided that encodes all or part of the heavy chain of a hybrid antibody, wherein the heavy chain comprises an amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with SEQ ID NO: 34.

[0055] In a further embodiment, a (recombinant) nucleic acid is provided that encodes all or part of the heavy chain of a hybrid antibody, wherein the heavy chain comprises (i) one or more of the sequence numbers 1, 2, and 3, and (ii) an amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with sequence numbers 8, 9, and / or 10. In one embodiment, the nucleic acid encodes an amino acid sequence having at least 85%, 90%, 95%, or 99% sequence identity with sequence number 9 or 30.

[0056] A vector containing the nucleic acids defined above is also provided, optionally being a CHO vector (i.e., an expression vector suitable for the expression of hybrid antibodies in Chinese hamster ovary (CHO) cells).

[0057] In a further embodiment, a host cell is provided comprising a recombinant nucleic acid encoding the hybrid antibody described above, or a vector described herein, wherein the encoding nucleic acid is operably linked to a promoter suitable for expression in mammalian cells.

[0058] A method for producing the hybrid antibody described above is also provided herein, comprising the steps of culturing the host cells described herein under conditions for antibody expression, and recovering the antibody or a fragment thereof from the host cell culture. [Brief explanation of the drawing]

[0059] [Figure 1] This is a schematic diagram of a single-cycle kinetic analysis of IgE variant antibody binding to FcRn. [Figure 2] This figure shows the assay results illustrating the binding of the hybrid antibody to FcRn. [Figure 3] This figure shows the assay results demonstrating the binding of IgE variant antibodies and fusion constructs to FcRn using biotin capture at pH 6.0. [Figure 4] This is a schematic diagram of the multiple-cycle kinetic analysis of IgE variant antibody binding to FcRn. [Figure 5] This is an illustrative diagram of a steady-state analysis that shows the conversion of raw data into sensorgrams. [Figure 6] This figure shows the assay results demonstrating the binding of IgG1, IgG4, and IgE_IgG_CH2_CH3 fusion proteins to FcRn using FcRn capture at pH 6.0. [Figure 7] This figure shows the assay results at pH 6.0, illustrating the binding of Herceptin, wild-type IgE, IgE_IgG_CH2_CH3, IgE containing 3×IgG histidine residues, IgE containing IgG FcRn loop 2 and loop 3a, IgE containing IgG FcRn loop 1, and IgE containing IgG FcRn loop 1, loop 2, and loop 3a to human FcRn. [Figure 8] This figure shows assay results demonstrating the binding of IgG1, IgG4, and IgE_IgG_CH2_CH3 fusion proteins to FcRn using FcRn capture at pH 7.4. [Figure 9]This figure shows the assay results at pH 7.4, illustrating the binding of Herceptin, wild-type IgE, IgE containing IgE_IgG_CH2_CH3, 3×IgG histidine residues, IgE containing IgG FcRn loop 2 and loop 3a, IgE containing IgG FcRn loop 1, and IgE containing IgG FcRn loop 1, loop 2, and loop 3a to human FcRn. [Figure 10] This is a schematic of the IGEG expression vector. [Figure 11] This is a schematic of the Biacore assay used to assess the binding of trastuzumab IGEG variants to the human Her2 antigen by single-cycle kinetic analysis. [Figure 12] This figure shows the 1:1 binding of human HER2 to trastuzumab IGEG variant. The construct is as described in Example 5. [Figure 13] This is a schematic of the Biacore assay used to assess antibody binding to the Fc gamma receptor. [Figure 14-1] ~ [Figure 14-2] This figure shows the binding of the HMW-MAA IGEG(CH) variant to the human Fc receptor. (a) 1:1 binding of human FcgRI:HMW-MAA-IGEG variant. (b) 1:1 binding of human FceRIa:HMW-MAA IGEG variant. (c) Binding of human FcγRIIIA176Val:HMW-MAA IGEG variant - raw sensorgram. (d) Steady-state binding of human FcγRIIIA176Val:HMW-MAA IGEG variant - analyzed data. In this figure, "CH" refers to the anti-HMW-MAA (i.e., CSPG4) antibody, and the variant names are as described separately in Example 5. [Figure 15] This is a schematic of the Biacore assay used to assess antibody binding to FcRn. [Figure 16-1] ~ [Figure 16-2]This figure shows the binding of the HMW-MAA(CH)IGEG variant to human FcRn. (a) FcRn pH6.0: Binding of HMW-MAA IGEG variant - raw sensorgram. (b) FcRn pH6.0: Steady-state binding of HMW-MAA IGEG variant - Analyzed data. (c) FcRn pH7.4: Binding of HMW-MAA IGEG variant - raw sensorgram. (d) FcRn pH7.4: Steady-state binding of HMW-MAA IGEG variant - Analyzed data. In this figure, "CH" refers to the anti-HMW-MAA (i.e., CSPG4) antibody, and the variant name is as described separately in Example 5. [Figure 17-1] ~ [Figure 17-2] This figure shows the in vivo stability analysis of the HMW-MAA(HuCH)IGEG variant. (a) Superimposed fluorescence thermal fusion curves. (b) Superimposed SLS 473 stability profile curves. In this figure, "CH" refers to the anti-HMW-MAA (i.e., CSPG4) antibody, and the variant name is as described separately in Example 6. [Figure 18] This figure shows the binding of anti-HMW-MAA (HuCH)IGEG antibody to A375 cells. (a) Detection using anti-IgG secondary antibody. (b) Detection using anti-IgE secondary antibody. In this figure, "CH" refers to anti-HMW-MAA (i.e., CSPG4) antibody, and the variant names are as described separately in Examples 4 and 5. huCH IgE 3-His refers to the antibody described in Example 4, which includes the heavy and light chain sequences as defined in, for example, SEQ ID NOs. 188 and 189. [Figure 19] This figure shows the R1, R2, and R3 gating of data acquired from the Attune® NxT Acoustic Focusing Cytometer. [Figure 20]This figure shows the effects of trastuzumab IgG, Herceptin IgG, trastuzumab-IGEG (labeled CH2CH3), trastuzumab-IGEG-C220S (labeled CH2CH3C220S), and isotype IgG antibodies on antibody-dependent cell-mediated phagocytosis (ADCP) and antibody-dependent cell-mediated cytotoxicity (ADCC). (a) Effects of antibodies on ADCP and ADCC at various concentrations (120-7.5 nM). (b) Graphs showing the effects of antibodies on ADCP and ADCC. [Modes for carrying out the invention]

[0060] As used herein, the singular forms "a," "an," and "the" include both singular and plural referents unless otherwise clearly stated in the context.

[0061] As used herein, the terms “comprising,” “comprises,” and “composed of” are synonymous with “including,” “includes,” or “containing,” and are inclusive or unrestricted, and do not exclude additional unlisted members, elements, or method steps. The terms also encompass “consisting of” and “essentially consisting of.”

[0062] The term "one or more" in the group of members, etc., is self-evident by further examples, but the term encompasses, among other things, references to any one member, or any two or three or more members, such as any member ≥3, ≥4, ≥5, ≥6, or ≥7, etc., and references to all members.

[0063] As used herein, the term “antibody” is used in its broadest sense and generally refers to immunological conjugates. The term “antibody” includes not only antibodies produced by methods including immunization, but also any polypeptides, such as recombinantly expressed polypeptides, that are constructed to contain at least one complementarity-determining region (CDR) capable of specifically binding to an epitope on an antigen of interest. Therefore, the term applies to such molecules whether they are produced in vitro or in vivo.

[0064] Antibodies may be polyclonal antibodies, for example, antiserum or immunoglobulin purified therefrom (e.g., affinity-purified). Antibodies may be monoclonal antibodies or mixtures of monoclonal antibodies. Monoclonal antibodies may target specific antigens or specific epitopes within antigens with greater selectivity and reproducibility. As an example, but not limited to, monoclonal antibodies may be produced by the hybridoma method first described by Kohler et al 1975 (Nature 256: 495), or by the recombinant DNA method (e.g., U.S. Patent No. 4,816,567). Monoclonal antibodies may also be isolated from phage antibody libraries using techniques described, for example, by Clackson et al 1991 (Nature 352: 624-628) and Marks et al 1991 (J. Mol. Biol. 222: 581-597).

[0065] The term antibody includes antibodies originating from or containing one or more parts derived from any animal species, preferably vertebrate species including birds and mammals. Without limitation, antibodies may be from chickens, turkeys, geese, ducks, guinea fowl, quail, or pheasants. Also without limitation, antibodies may be from humans, rodents (e.g., mice, rats, etc.), donkeys, rabbits, goats, sheep, guinea pigs, camels (e.g., Bactrian camels (Camelus bactrianus) and dromedary camels (Camelus dromaderius)), llamas (e.g., alpacas (Lama paccos), llamas (Lama glama), or vicuñas (Lama vicugna)), or horses.

[0066] Those skilled in the art will understand that antibodies may contain one or more amino acid deletions, additions, and / or substitutions (e.g., conservative substitutions) insofar as such changes preserve their binding to the respective antigen. Antibodies may also contain one or more natural or artificial modifications (e.g., glycosylation) to their constituent amino acid residues.

[0067] Methods for producing polyclonal and monoclonal antibodies and their fragments are well known in the art, as are methods for producing recombinant antibodies or their fragments (e.g., Harlow and Lane, "Antibodies: A Laboratory Manual", Cold Spring Harbour Laboratory, New York, 1988; Harlow and Lane, "Using Antibodies: A Laboratory Manual", Cold Spring Harbour Laboratory, New York, 1999, ISBN 0879695447; "Monoclonal Antibodies: A Manual of Techniques", by Zola, ed., CRC Press 1987, ISBN 0849364760; "Monoclonal Antibodies: A Practical Approach", by Dean & Shepherd, eds., Oxford University Press 2000, ISBN 0199637229; Methods in Molecular Biology, vol. 248: "Antibody Engineering: Methods and Protocols"). (See Lo, ed., Humana Press 2004, ISBN 1588290921).

[0068] Accordingly, methods for immunizing animals, such as laboratory animals or non-human animals, such as livestock, using any one or more (isolated) markers, peptides, polypeptides, or proteins and their fragments taught herein, which may be attached to a presenting carrier (i.e., as immunoantigens), are also disclosed. Immunization and the preparation of antibody reagents from immunoserum are themselves well known and described in documents referred to elsewhere herein. The animals to be immunized may include any animal species, preferably warm-blooded, more preferably vertebrate species, including, for example, birds, fish, and mammals. Without limitation, the antibodies may be from chickens, turkeys, geese, ducks, guinea fowl, sharks, quail, or pheasants. Also without limitation, the antibodies may be from humans, murids (e.g., mice, rats, etc.), donkeys, rabbits, goats, sheep, guinea pigs, sharks, camels, llamas, or horses. The terms “presenting carrier” or “carrier” generally refer to immunogenic molecules that, when bound to a second molecule, typically enhance the immune response against the latter by providing an additional T cell epitope. Presenting carriers can be (poly)peptide or non-peptide structures, including, among others, glycans, polyethylene glycol, peptide mimetic compounds, and synthetic polymers. Exemplary, non-limiting carriers include human hepatitis B virus core protein, multiple C3d domains, tetanus toxin fragment C, or yeast Ty particles.

[0069] The present invention, as described herein, relates to an IgE antibody having a modified heavy chain (Fc) moiety resulting in a hybrid IgE molecule. Structural regions of the CH3 and CH4 domains of IgE that exhibit homology to similar regions on IgG to which FcRn binds were identified. Once such regions were identified, amino acid substitutions were made to enable the transfer of IgG functionality to the IgE background. In particular, amino acids or sequences in one or more loops in one or more constant domains of IgE were replaced with IgG FcRn amino acids or sequences to confer FcRn functionality to IgE.

[0070] The hybrid antibodies described herein are typically capable of binding to Fcε receptors, such as FcεRI and / or FcεRII receptors. Preferably, the antibody can bind to at least FcεRI (i.e., a high-affinity Fcε receptor) or to at least FcεRII (CD23, a low-affinity Fcε receptor).

[0071] Typically, to initiate IgE-mediated effector function, antibodies may also activate Fcε receptors, for example, expressed on cells of the immune system. For instance, antibodies may bind to FcεRI and potentially activate mast cells, basophils, monocytes / macrophages, and / or eosinophils.

[0072] The IgE sites involved in these receptor interactions are mapped to peptide sequences on the Cε chain and can be clearly distinguished. The FcεRI site is located in the cleavage created by the residue between Gln301 and Arg376 and includes the junction between the Cε2 and Cε3 domains (Helm, B. et al. (1988) Nature 331, 180183). The FcεRII binding site is located within Cε3 around the Val370 residue (Vercelli, D. et al. (1989) Nature 338, 649-651). The main difference that distinguishes the two receptors is that FcεRI binds to monomeric Cε, while FcεRII binds only to dimerized Cε, meaning that two Cε chains must associate. IgE is glycosylated in vivo, but this is not necessary for its binding to FcεRI and FcεRII. The bond is actually slightly stronger in the absence of glycosylation (Vercelli, D. et al (1989), see above).

[0073] Therefore, binding to the Fcε receptor and associated effector functions are typically mediated by the constant domains of the antibody's heavy chain, particularly by domains that together form the Fc region of the antibody. The antibodies described herein typically comprise at least a portion of an IgE antibody, e.g., one or more constant domains derived from IgE, preferably human IgE. In certain embodiments, the antibody comprises one or more domains (derived from IgE) selected from Cε1, Cε2, Cε3, and Cε4. In one embodiment, the antibody comprises at least Cε2 and Cε3, more preferably at least Cε2, Cε3, and Cε4, and preferably the domains are derived from human IgE. In one embodiment, the antibody comprises an epsilon (ε) heavy chain, preferably a human ε heavy chain.

[0074] The constant domains derived from human IgE, particularly the Cε1, Cε2, Cε3, and Cε4 domains, are shown in Sequence IDs 1, 2, and 3, respectively. The nucleic acid sequences encoding these amino acid sequences can be inferred by those skilled in the art according to the genetic code. The amino acid sequences of other human and mammalian IgE and their domains, including the human Cε1, Cε2, Cε3, and Cε4 domains and the human ε heavy chain sequence, are publicly known in the art and available from publicly accessible databases. For example, a database of human immunoglobulin sequences is accessible from the International ImMunoGeneTics Information System (IMGT®) website at http: / / www.imgt.org. As one example, sequences of various human IgE heavy (ε) chain alleles and their individual constant domains (Cε1-4) are accessible at http: / / www.imgt.org / IMGT_GENE-DB / GENElect?query=2+IGHE&species=Homo+sapiens.

[0075] The hybrid antibodies described herein are typically capable of further binding to fetal Fc(FcRn) receptors. Preferably, the hybrid antibodies can bind to and activate FcRn and / or activate immune system cells expressing such receptors (including hematopoietic bone marrow cells such as monocytes, macrophages, neutrophils, basophils, and eosinophils).

[0076] Preferably, the hybrid antibody binds to FcRn in a pH-dependent manner. In particular, the hybrid antibody may preferentially bind to FcRn at acidic pH, and for example, the antibody may have a higher affinity for FcRn at pH below 7 compared to pH 7 or above. For example, in one embodiment, the antibody binds to FcRn at pH 4 to 6.5 (e.g., at pH 6.0) but not at pH 7.0 or 7.4.

[0077] The antibodies described herein typically comprise at least a portion of an IgG antibody involved in the binding of IgG to FcRn, for example, IgG (e.g., IgG1), preferably one or more sequence or amino acid substitutions derived from human IgG. In certain embodiments, the antibody comprises one or more amino acid substitutions in at least one Fc domain of tetrameric IgE. For example, at least one amino acid substitution may occur at Cε3 of IgE. Alternatively or in addition, at least one amino acid substitution may occur at Cε4 of IgE. Specifically, one amino acid substitution may occur at Cε3, and two amino acid substitutions may occur at Cε4 of IgE.

[0078] Preferably, in IgE, at least one native amino acid present in, for example, the Cε3 or Cε4 domain of IgE is replaced with histidine. Thus, a hybrid antibody may be IgE containing one or more non-native histidine residues, i.e., residues that are not typically histidine at their positions in the IgE sequence. Typically, non-native histidine residues are located at the positions in the IgE antibody that correspond to the positions in the IgG antibody where histidine residues are present. Thus, an IgE antibody typically contains one, two, or three heterologous histidine residues that can confer FcRn binding to the IgE antibody. In this context, “heterologous” or “non-native” means derived from an entity that is genotypically distinct from the rest of the entity being compared. For example, amino acid residues or sequences derived from a particular protein or polypeptide that are introduced into a different polypeptide by genetic modification techniques are heterologous or non-native residues. Therefore, for example, an IgE antibody that contains a histidine residue in a position that is not normally histidine in a naturally occurring, wild-type, or natural IgE domain is said to contain a heterologous or non-natural histidine residue in that position.

[0079] For example, in loop 2 of Cε3 of IgE, a threonine residue may be substituted with histidine. Additionally or alternatively, in loop 3 of Cε4 of IgE, a serine residue may be substituted with histidine, and glutamine may be substituted with histidine. Examples of such variants can be found in SEQ ID NOs. 26 and 31-34.

[0080] In another embodiment, the antibody comprises an IgG-derived sequence selected from loop sequences found in Cγ2 and / or Cγ3. In one embodiment, the antibody comprises at least a portion of a loop sequence derived from Cγ2, more preferably at least Cγ2 and Cγ3, and preferably the domain is derived from a human IgG1 antibody. In one embodiment, the antibody further comprises a hinge region derived from IgG, for example, IgG1.

[0081] The constant domains Cγ2 and Cγ3, derived from human IgG, are shown in Sequence ID No. 9 and 10, respectively. The hinge domain, also derived from human IgG, is described in Sequence ID No. 8. The nucleic acid sequences encoding these amino acid sequences can be inferred by those skilled in the art according to the genetic code. The amino acid sequences of other human and mammalian IgG constant domains, including the human Cγ2 and Cγ3 domains and the hinge sequence, are publicly known in the art and are available from publicly accessible databases, as described above with respect to the IgE constant domain.

[0082] The amino acid sequences of one or more IgE domains and one or more IgG domains can be linked directly or via a suitable linker. Suitable linkers for joining polypeptide domains are well known in the art and may, for example, consist of 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10 amino acid residues. In some embodiments, the linker sequence may consist of up to 20 amino acid residues.

[0083] The binding of hybrid antibodies to Fcε and FcRn receptors can be assessed using standard techniques. Binding can be measured, for example, by competitive radioimmunoassays, enzyme-linked immunosorbent assays (ELISA), or surface plasmon resonance (e.g., Biacore) by determining the antigen / antibody dissociation rate. Binding affinity can also be calculated using standard methods based on the scatchard method, for example, as described by Frankel et al (1979) Mol. Immunol. 16:101-106.

[0084] Generally, functional fragments of sequences defined herein may be used in the present invention. Functional fragments may be of any length (e.g., at least 50, 100, 300, or 500 nucleotides, or at least 50, 100, 200, 300, or 500 amino acids), provided that the fragment retains the required activity (e.g., binding to FcRn and / or Fcε receptors) when present in an antibody.

[0085] The amino acid and nucleotide sequence variants described herein may also be used in the present invention, provided that the resulting antibodies bind to both FcRn and Fcε receptors. Typically, such variants have a high degree of sequence identity with one of the sequences specified herein.

[0086] The similarity between amino acid or nucleotide sequences is expressed in terms of sequence similarity, also known as sequence identity. Sequence identity is often measured in terms of identity (or similarity or homology) percentage; the higher the percentage, the more similar the two sequences are. Homologs or variants of amino acid or nucleotide sequences will possess a relatively high degree of sequence identity when aligned using standard methods.

[0087] Methods for aligning sequences for comparison are well known in the art. Various programs and alignment algorithms are described in Smith and Waterman (1981) Adv. Appl. Math. 2:482; Needleman and Wunsch (1970) J. Mol. Biol. 48:443; Pearson and Lipman (1988) Proc. Natl. Acad. Sci. USA 85:2444; Higgins and Sharp (1988) Gene 73:237; Higgins and Sharp (1989) CABIOS 5:151; Corpet et al (1988) Nucleic Acids Research 16:10881; and Pearson and Lipman (1988) Proc. Natl. Acad. Sci. USA 85:2444. Altschul et al (1994) Nature Genet. 6:119 presents detailed considerations regarding sequence alignment methods and homology calculations.

[0088] The NCBI Basic Local Alignment Search Tool (BLAST) (Altschul et al (1990) J. Mol. Biol. 215:403) is available from several sources, including the National Center for Biotechnology Information (NCBI, Bethesda, Md.), and via the Internet for use with the sequence analysis programs blastp, blastn, blastx, tblastn, and tblastx. Instructions on how to determine sequence identity using this program are available on the NCBI website.

[0089] Homologs and variants of specific antibodies or their domains (e.g., VL, VH, CL, or CH domains) described herein typically have at least about 75%, e.g., at least about 80%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity with the original sequence (e.g., the sequence specified herein), counted over, for example, at least 20, 50, 100, 200, or 500 amino acid residues, or over full-length alignment with the amino acid sequence of the antibody or its domain, using NCBI Blast 2.0, gapped blastp with default parameters. For comparisons of amino acid sequences larger than about 30 amino acids, Blast2 sequence functionality is employed using the default BLOSUM62 matrix with default parameters (11 gap presence costs and 1 gap cost per residue). When aligning short peptides (approximately fewer than 30 amino acids), alignment should be performed using the Blast2 sequence function, employing a PAM30 matrix set to default parameters (open gap 9, extension gap 1 penalty). Proteins with greater similarity to the reference sequence will show increased identity percentages when assessed by this method, such as at least 80%, at least 85%, at least 90%, at least 95%, at least 98%, or at least 99% sequence identity. When sequences less than a whole are compared for sequence identity, homologs and variants are typically considered to possess at least 80% sequence identity across a short window of 10–20 amino acids, and may possess at least 85%, or at least 90%, or 95% sequence identity, depending on their similarity to the reference sequence. Methods for determining sequence identity across such short windows are available on the NCBI website. Those skilled in the art will understand that these sequence identity regions are provided merely as a guide; it is entirely possible to obtain strongly significant homologs that fall outside these regions.

[0090] Typically, a variant may contain one or more conserved amino acid substitutions compared to the original amino acid or nucleic acid sequence. Conserved substitutions are those that do not substantially affect or reduce the antibody's affinity for FcRn and / or Fcε receptors. For example, a human antibody that binds to FcRn and / or Fcε may contain up to 1, up to 2, up to 5, up to 10, or up to 15 conserved substitutions compared to the original sequence (e.g., as defined above) and may retain specific binding to FcRn and / or Fcε receptors. The term "conservative variation" also includes the use of substituted amino acids instead of unsubstituted parent amino acids, provided that the antibody binds to FcRn and / or Fcε. Non-conservative substitutions are those that reduce activity or binding to FcRn and / or Fcε receptors.

[0091] Functionally similar amino acids that can be exchanged by conservative substitutions are well known to those skilled in the art. The following six groups are examples of amino acids that are considered to be conserved substitutions with respect to one another: 1) alanine (A), serine (S), threonine (T); 2) aspartic acid (D), glutamic acid (E); 3) asparagine (N), glutamine (Q); 4) arginine (R), lysine (K); 5) isoleucine (I), leucine (L), methionine (M), valine (V); and 6) phenylalanine (F), tyrosine (Y), tryptophan (W).

[0092] The domains described above (e.g., one or more IgE and IgG constant domains) are typically present in the heavy chain of an antibody. Hybrid antibodies may further include one or more light chains in addition to the one or more heavy chain sequences described herein. For example, in one embodiment, a hybrid antibody may include the light chain sequence defined in SEQ ID NO: 35, or a fragment or variant thereof. Antibodies typically consist of a heavy chain and a light chain, each having a variable region referred to as a variable heavy (VH) region and a variable light (L) region. Together, the VH and VL regions are involved in binding to the antigen recognized by the antibody. Typically, naturally occurring immunoglobulins have heavy (H) and light (L) chains interconnected by disulfide bonds. There are two types of light chains: lambda (λ) and kappa (k). Therefore, hybrid antibodies typically consist of two heavy chains and two light chains (e.g., joined by disulfide bonds) based on an IgE antibody that includes, for example, an IgG hinge, CH2, and / or CH3 domains fused at the C-terminus of each heavy chain.

[0093] The hybrid antibodies described herein may bind specifically to one or more target antigens useful for treating cancer (i.e., via their variable domains or their complementarity-determining regions (CDRs)). For example, a hybrid antibody may bind specifically to one or more cancer antigens (i.e., antigens selectively expressed or overexpressed on cancer cells). Novel combinations of effector functions transduced by combined FcεR and FcRn binding ability may enhance cytotoxicity, phagocytosis (e.g., ADCC and / or ADCP), and other cancer cell-killing functions of immune system cells (e.g., monocytes / macrophages and natural killer cells). For example, a hybrid antibody may bind specifically to, for example, EGF-R (epidermal growth factor receptor), VEGF (vascular endothelial growth factor), or the erbB2 receptor (Her2 / neu). One example of an antibody containing a variable domain that selectively binds to Her2 / neu is trastuzumab (Herceptin).

[0094] In some embodiments, one or more variable domains and / or one or more CDRs, preferably at least three CDRs, or more preferably all six CDRs, are the following antibodies: alemtuzumab (SEQ ID NOs. 36-41), atezolizumab (SEQ ID NOs. 42-47), avelumab (SEQ ID NOs. 48-53), bevacizumab (SEQ ID NOs. 54-59), blinatumomab, brentuximab, semiprimab, certolizumab (SEQ ID NOs. 60-65), cetuximab It may be derived from one or more of the following: bu (sequence number 66-71), denosumab, durvalumab (sequence number 72-77), efalizumab (sequence number 78-83), ipilimumab, nivolumab, obinutuzumab, ofatumumab, omalizumab (sequence number 84-89), panitumumab (sequence number 90-95), pembrolizumab, pertuzumab (sequence number 96-101), rituximab (sequence number 102-107), or trastuzumab (sequence number 108-113).

[0095] In such embodiments, the variable domain of the antibody may include one or more CDRs derived from one of the antibodies listed in Table 1, preferably at least three CDRs, or more preferably all six CDR sequences.

[0096] [Table 1]

[0097] In alternative embodiments, one or more variable domains and / or one or more CDRs, preferably at least three CDRs, or more preferably all six CDRs, are the following antibodies: absiximab, adalimumab (SEQ ID NOs. 114-119), aducanumab, aducanumab, alefacept, alirocumab, aniflorumab, valstilimab, basiliximab (SEQ ID NOs. 120-125), belimumab (SEQ ID NOs. 126-131), Benralizumab, Bezlotoxumab, Brodalumab, Brolucizumab, Brosumab, Canakinumab, Caplacizumab, Chryzanlizumab, Daclizumab (SEQ ID NOs. 132-137), Daratumumab, Dinutuximab, Dostallimab, Dupilumab, Eculizumab, Elotuzumab, Emapalmab, Emicizumab, Eptinezumab, Erenumab, Etrolizumab, Evinacumab, Evolocumab, Fremanezumab, Galca Nezumab, golimumab, guselkumab, ibalizumab, idarucizumab, inebilizumab, infliximab (SEQ ID NOs. 138-143), isatuximab, ixekizumab, lanadelmab, leronlimab, marjetuximab, mepolizumab, mogamulizumab, muromonab, narsoprimab, natalizumab (SEQ ID NOs. 144-149), naxitamab, necitumumab, obiltoxaximab, ocrelizumab, omblutamab, paliv It may be derived from one or more of the following: zumab (SEQ ID NOs. 150-155), ramucirumab, ranibizumab (SEQ ID NOs. 156-161), reslizumab, risankizumab, romosozumab, sarilumab, satralizumab, secukinumab, spartalizumab, stimulimab, tafacitamab, tanezumab, teplizumab, teprotumumab, tildrakizumab, tocilizumab, tripalimab, ustekinumab, vedolizumab, or zarifrerimab.

[0098] In such embodiments, the variable domain of the antibody may include one or more CDRs derived from one of the antibodies listed in Table 2, preferably at least three CDRs, or more preferably all six CDR sequences.

[0099] [Table 2]

[0100] In other embodiments, one or more variable domains and / or one or more CDR sequences, preferably at least three CDRs, or more preferably all six CDRs, may be derived from an anti-HMW-MAA antibody. In one embodiment, one or more variable domains and / or one or more CDR sequences, preferably at least three CDRs, or more preferably all six CDRs, may be derived from an anti-HMW-MAA antibody described in International Publication No. 2013 / 050725 (SEQ ID NOs: 168 and 169 for variable domains, and SEQ ID NOs: 162-167 for CDRs). HMW-MAA refers to a high molecular weight melanoma-associated antigen also known as chondroitin sulfate proteoglycan 4 (CSPG4) or melanoma chondroitin sulfate proteoglycan (MCSP), see, for example, Uniprot Q6UVK1.

[0101] In such embodiments, the antibody's variable domain may include one or more CDR sequences, preferably at least three CDRs, or more preferably all six CDR sequences, as defined in Table 3. In other embodiments, one or more of the antibody's variable domains include one or more of the variable domain sequences listed in Table 3.

[0102] [Table 3]

[0103] Compositions comprising a carrier and one or more hybrid antibodies bound to FcRn and Fcε receptors or functional fragments thereof are provided herein. The compositions may be prepared in unit dosage forms for administration to a subject. The amount and timing of administration are at the discretion of the treating physician to achieve the desired objective. The antibodies may be formulated for systemic or topical (e.g., intratumor) administration. In one example, the antibodies may be formulated for parenteral administration, such as intravenous administration.

[0104] The administration composition may include a solution of an antibody or its functional fragment dissolved in a pharmaceutically acceptable carrier, such as an aqueous carrier. Various aqueous carriers, such as buffered saline, may be used. These solutions are sterile and generally free of undesirable substances. These compositions can be sterilized by conventional, well-known sterilization techniques.

[0105] The compositions may contain pharmaceutically acceptable auxiliary substances required to approximate physiological conditions, such as pH adjusters and buffers, toxicity modifiers, etc., including sodium acetate, sodium chloride, potassium chloride, calcium chloride, and sodium lactate. The antibody concentration in these formulations can vary widely and will be selected primarily based on fluid volume, viscosity, body weight, etc., according to the specific mode of administration and the needs of the target.

[0106] Typical doses of pharmaceutical compositions for intravenous administration contain approximately 0.1 to 15 mg of antibody per kg of body weight of the subject per day. In particular, when the drug is administered to an isolated site, such as a body cavity or organ lumen, and not to the circulatory or lymphatic system, doses of 0.1 to approximately 100 mg per kg per day may be used. Practical methods for preparing administerable compositions are considered to be known or obvious to those skilled in the art and are described in detail in publications such as Remington's Pharmaceutical Science, 19th ed., Mack Publishing Company, Easton, Pa. (1995).

[0107] Antibodies may be supplied in lyophilized form and hydrated with sterile water before administration, or they may be supplied in sterile solutions of known concentrations. The antibody solution may then be added to an infusion bag containing 0.9% sodium chloride, USP, and administered typically at doses of 0.5–15 mg / kg of body weight. Antibodies may be administered by slow infusion rather than intravenous push or bolus. In one example, a higher loading dose may be administered, followed by a lower maintenance dose. For example, an initial loading dose of 4 mg / kg may be infused over a period of approximately 90 minutes, followed by a weekly maintenance dose of 2 mg / kg for 4–8 weeks, infused over a period of 30 minutes, if the previous dose was well tolerated.

[0108] The antibodies (or functional fragments thereof) described herein may be administered to slow or inhibit the proliferation of cells such as cancer cells. In these applications, a therapeutically effective dose of the antibody may be administered to the subject in an amount sufficient to inhibit the proliferation, replication, or metastasis of cancer cells, or to inhibit signs or symptoms of cancer. In some embodiments, the antibody may be administered to the subject to inhibit or prevent the progression of metastasis, or to reduce the size or number of metastases, such as micrometastases to regional lymph nodes (Goto et al (2008) Clin. Cancer Res. 14(11):3401-3407).

[0109] The therapeutically effective dose of antibodies will depend on the severity of the disease and the patient's overall health status. The therapeutically effective dose of antibodies provides either subjective symptom relief or objectively measurable improvement noticed by a clinician or other qualified observer. These compositions may be administered simultaneously or sequentially in combination with other chemotherapeutic agents.

[0110] Many chemotherapeutic agents are currently known in the art. In one embodiment, the chemotherapeutic agent may be selected from the group consisting of mitotic inhibitors, alkylating agents, antimetabolites, intercalating antibiotics, growth factor inhibitors, cell cycle inhibitors, enzymes, topoisomerase inhibitors, antisurvival agents, biological response modifiers, antihormones, such as antiandrogens, and anti-angiogenic agents.

[0111] All documents referenced herein are incorporated herein by reference as a whole. The present invention will be described in more detail hereby by the following non-limiting embodiments. [Examples]

[0112] In the following examples, it is demonstrated that FcRn binding can be conferred to an IgE antibody by replacing specific amino acids in the CH3 and CH4 domains of IgE with amino acids found in the FcRn binding site of IgG. [Examples]

[0113] FcRn Structures We created IgE variants in which point mutations were made in the loops found in the Cε3 and Cε4 domains of IgE. The mutations replaced a specific amino acid with histidine at a position known to be involved in IgG-FcRn interaction. The IgE antibody was based on trastuzumab IgE, for example, as disclosed in Karagianis et al (2009) Cancer Immunol. Immunother. 58(6):915-30.

[0114] Further variant IgE antibodies were created in which the loops in the Cε3 and Cε4 domains of IgE were replaced by one or more FcRn-binding loops derived from the Cγ2 and Cγ3 domains of IgG antibodies. The loops replaced in the Cε3 and Cε4 domains of IgE show structural homology to the FcRn-binding loops in the Cγ2 and Cγ3 domains of IgG.

[0115] For comparison, two IgE fusion constructs were created by i) fusing an IgG-derived hinge and Cγ2 domain to the C-terminus of trastuzumab IgE, and ii) fusing an IgG hinge and Cγ2 and Cγ3 domains to the C-terminus of trastuzumab IgE.

[0116] Structural analysis identified three loops in IgG CH2(Cγ2) and CH3(Cγ3) that are involved in FcRn binding. Structurally equivalent loops in IgE were identified and selected for replacement in the IgG loops. Three loops, L1, L2, and L3, were identified, and loop 3 contained either a shortened substitution (L3a) or an elongated substitution (L3b). Additionally, three histidine residues within IgG CH2CH3 were identified as being involved in the interaction with FcRn. Equivalent residues in IgE were identified and replaced with histidine.

[0117] DNA sequences corresponding to both wild-type (WT) IgE constant domains and IgE containing IgG FcRn L1, 2, 3a or L1, 2, 3b separately were synthesized, with adjacent restriction enzyme sites for cloning into Abzena's pANT dual Ig expression vector system for human heavy chains and kappa light chains (GeneArt, ThermoFisher Scientific). A heavy chain also containing trastuzumab VH was cloned between the Mlu I and KpnI restriction sites. Separately synthesized trastuzumab Vk was cloned between the Pte I and BamH I restriction sites. Using specific primers to amplify the target loop and employing pull-through PCR to produce IgE with one or two IgG1 loops in all conceivable combinations, individual loop variants were constructed to create a total of eight additional constructs (containing L1 alone, L2 alone, L3 alone, L1+2, L1+3a, L1+3a, L2+3a, and L2+3b).

[0118] We created 3His variants by introducing site-directed mutagenesis using the WT IgE constant domain as a template and by replacing the relevant residues with histidine.

[0119] To generate IgE-IgG1 CH2 and CH2-CH3 fusion variants, WT IgE was amplified using specific primers, while the terminal stop codon of IgE CH4 was removed. In a separate reaction, either IgG1 CH2 or IgG1 CH2-CH3, which were synthesized separately, were amplified. Using pull-through PCR, both fragments were combined, and Mlu I and KpnI restriction sites were introduced for cloning into a dual expression vector.

[0120] The following hybrid antibody molecules were constructed. IgE containing IgG FcRn loop 1; IgE containing IgG FcRn loop 2; IgE containing IgG FcRn loop 3a; IgE containing IgG FcRn loop 3b; IgE containing IgG FcRn loop 1 + loop 2; IgE containing IgG FcRn loop 1+ loop 3a; IgE containing IgG FcRn loop 1 + loop 3b; IgE containing IgG FcRn loop 2+ loop 3a; IgE containing IgG FcRn loop 2+ loop 3b; IgE containing IgG FcRn loop 1+, loop 2+, and loop 3a; IgE containing IgG FcRn loop 1+ loop 2+ loop 3b; and IgE containing only 3×IgG histidine residue swaps.

[0121] In addition, the following fusion proteins were constructed. IgE+IgG1 Hinge-CH2 IgE+IgG1 Hinge-CH2-CH3

[0122] The sequence for wild-type trastuzumab IgE was as follows:

[0123] WT IgE_VH_CH1_CH2:

[0124] JPEG0007862002000004.jpg61166

[0125] WT IgE_CH3 (Replaced loops are underlined; residues replaced with histidine are in bold italics):

[0126] JPEG0007862002000005.jpg28166

[0127] WT IgE_CH4:

[0128] JPEG0007862002000006.jpg28167

[0129] IgE loop 1:

[0130] JPEG0007862002000007.jpg1377

[0131] IgE loop 2:

[0132] JPEG0007862002000008.jpg1568

[0133] IgE loop 3a:

[0134] JPEG0007862002000009.jpg1576

[0135] IgE loop 3b:

[0136] JPEG0007862002000010.jpg15102

[0137] The sequence for wild-type IgG was as follows:

[0138] WT IgG_Hinge:

[0139] JPEG0007862002000011.jpg16109

[0140] WT IgG_CH2 (loops are italicized and underlined; substituted histidines are in bold):

[0141] JPEG0007862002000012.jpg28167

[0142] WT IgG_CH3:

[0143] JPEG0007862002000013.jpg28167

[0144] IgG FcRn binding loop 1:

[0145] JPEG0007862002000014.jpg1587

[0146] IgG FcRn binding loop 2:

[0147] JPEG0007862002000015.jpg1471

[0148] IgG FcRn binding loop 3a:

[0149] JPEG0007862002000016.jpg1377

[0150] IgG FcRn binding loop 3:

[0151] JPEG0007862002000017.jpg15104

[0152] The sequences for the hybrid molecules were as follows. Each hybrid molecule further contains wild-type IgE_VH_CH1_CH2 (i.e., Sequence ID 1).

[0153] IgE_CH3_CH4 containing IgG FcRn binding loop 1:

[0154] JPEG0007862002000018.jpg44168

[0155] IgE_CH3_CH4 containing IgG FcRn binding loop 2:

[0156] JPEG0007862002000019.jpg44167

[0157] IgE_CH3_CH4 containing IgG FcRn binding loop 3a:

[0158] JPEG0007862002000020.jpg44166

[0159] IgE_CH3_CH4 containing IgG FcRn binding loop 3b:

[0160] JPEG0007862002000021.jpg44166

[0161] IgE_CH3_CH4 containing IgG FcRn binding loop 1 + loop 2:

[0162] JPEG0007862002000022.jpg43167

[0163] IgE_CH3_CH4 containing IgG FcRn-binding loop 1+ loop 3a:

[0164] JPEG0007862002000023.jpg44168

[0165] IgE_CH3_CH4 containing IgG FcRn-binding loop 1 + loop 3b:

[0166] JPEG0007862002000024.jpg44167

[0167] IgE_CH3_CH4 containing IgG FcRn-binding loop 2+ loop 3a:

[0168] JPEG0007862002000025.jpg43166

[0169] IgE_CH3_CH4 containing IgG FcRn-binding loop 2+ loop 3b:

[0170] JPEG0007862002000026.jpg44167

[0171] IgE_CH3_CH4 containing IgG FcRn loop 1+ loop 2+ loop 3a:

[0172] JPEG0007862002000027.jpg44167

[0173] IgE_CH3_CH4 containing IgG FcRn loop 1+ loop 2+ loop 3b:

[0174] JPEG0007862002000028.jpg44167

[0175] IgE_CH3_CH4 3His

[0176] JPEG0007862002000029.jpg44167

[0177] The sequences for the fusion proteins were as follows. Each fusion protein further contained wild-type IgE_VH_CH1_CH2 and IgE_CH3 (i.e., Sequence IDs 1 and 2).

[0178] IgE_CH4 + IgG1 hinge_CH2 (contains RS linker):

[0179] JPEG0007862002000030.jpg44167

[0180] IgE_CH4+IgG1 hinge_CH2_CH3 (contains RS linker)

[0181] JPEG0007862002000031.jpg61168

[0182] The complete amino acid sequence of the IgE heavy chain + IgG1 hinge CH2 construct is shown below:

[0183] JPEG0007862002000032.jpg110168

[0184] The complete amino acid sequence of the IgE heavy chain + IgG1 hinge CH2 CH3 construct is shown below:

[0185] JPEG0007862002000033.jpg128169

[0186] The following mutant loop sequences are found in the CH3 and CH4 domains of the IgE 3His construct.

[0187] IgE loop 2:

[0188] JPEG0007862002000034.jpg1373

[0189] IgE loop 3a:

[0190] JPEG0007862002000035.jpg1181

[0191] IgE loop 3b:

[0192] JPEG0007862002000036.jpg14109

[0193] The complete amino acid sequence of the heavy chain of the IgE 3His construct is shown below (i.e., WT IgE_VH_CH1_CH2+IgE_CH3_CH4 3His):

[0194] JPEG0007862002000037.jpg94167

[0195] The complete amino acid sequence of the light chain of the IgE 3His construct (and other constructs disclosed herein) is shown below:

[0196] JPEG0007862002000038.jpg44166

[0197] All constructs were confirmed by sequencing. DNA was prepared and transiently transfected into CHO cells using a MaxCyte STX® electroporation system (MaxCyte, Gaithersburg, USA) with an OC-400 processing assembly. Supernatant was collected 7–10 days after transfection.

[0198] Antibodies (i.e., including the variant heavy chain and kappa light chain derived from trastuzumab IgE as described above) were purified from cell culture supernatant against IgG1 CH2-CH3 fusions using either CaptureSelect® IgE affinity matrix (ThermoFisher, Loughborough, UK) or Mab Select Sure column (GE Healthcare, Little Chalfont, UK). The eluted fractions were buffered in PBS and the decay coefficient (E) based on the predicted amino acid sequence was determined. c(0.1%) A using ) 280nm The sample was sterilized by filtration before quantitative analysis. [Examples]

[0199] Binding of IgE variants to FcRn To assay the binding of antibody variants to FcRn (Sino Biological, catalog number CT009-H08H), Biacore kinetic analysis at a single concentration was performed on supernatants from transfected CHO cell cultures. Kinetic experiments were performed on a Biacore T200 (serial number 1909913) running Biacore T200 Control software V2.0.1 and Evaluation software V3.0 (GE Healthcare, Uppsala, Sweden). The principle of the assay is shown in Figure 1. All kinetic experiments were run at 25 °C using PBS containing 0.05% P20 (GE Healthcare, Little Chalfont, UK) and an additional 150 mM NaCl (pH 6.0). Antibody was loaded onto the F c 2, F c 3, and F c 4 of a streptavidin chip (GE Healthcare, Little Chalfont, UK) pre-loaded with CaptureSelect biotin anti-IgE antibody (Thermo, catalog number 7103542500). Antibody was captured at a flow rate of 10 μl / min to give an immobilization level (RL) of approximately 250 RU. Binding data were acquired using 2000 nM FcRn at a flow rate of 10 μl / min for 40 s. Wild-type IgE was used as a negative control. Signals from the reference channel F c 1 (no antibody) were subtracted from those of F c 2, F c 3, and F c 4 to correct for differences in non-specific binding to the reference surface. Regeneration of the anti-IgE antibody capture surface was performed using a single injection of glycine pH 2.0.

[0200] As can be seen in Figure 2, significant differences were observed in the levels of captured antibodies. The amount captured using variants containing either loop 1 or 3b or two-loop swaps appeared to be much lower than that observed with wild-type IgE-IgG fusion antibodies or 3His substitution antibodies. This could be due to lower expression or less efficient capture. Dilution and contact time were adjusted to allow sufficient loading during the FcRn binding run.

[0201] As can be seen in Figure 3, differences in binding were observed for each variant, and it would be interesting to further investigate some of these variants. Generally, the control protein appeared to behave as expected, with no binding of wild-type IgE, while IgE-IgG_CH2_CH3 binding was observed. See Reference F c Some binding to 1 may occur, leading to a below-baseline trend for some IgE variants.

[0202] When using unpurified proteins, the binding kinetics appear to differ from those observed for the fusion protein IgE_IgG_CH2_CH3. The binding profile of the fusion protein IgE_IgG_CH2_CH3 is, instead, similar to what would be expected from assays run using FcRn coupled to the chip. When using purified antibodies, it is typical to immobilize FcRn on the chip using standard amine chemistry and run it over various concentrations of antibody. This method is not suitable because the concentration of IgE in the supernatant is unknown.

[0203] If binding to CaptureSelect is low, alternative purification methods may be necessary. If expression is low, it was inferred that a large volume of cells may be required to produce sufficient antibodies for purification and further analysis. However, purification using anti-kappaSelect resin along with preparative size exclusion chromatography (SEC) suggests that expression is not a problem (not demonstrated).

[0204] Based on these results, we decided to purify and retest the majority of variants using purified material in a standard assay setup. [Examples]

[0205] Binding of purified hybrid IgE variants The goal of this experiment was to assess the binding of purified IgE variant antibodies to human FcRn. Wild-type IgE was used as a negative control, and Herceptin was used as a positive control.

[0206] IgG binding to FcRn is pH-dependent and is involved in the recycling of antibodies into endosomes that return to serum. FcRn has a higher affinity for IgG at pH 6.0 than at pH 7.4.

[0207] To determine the kinetics of the selected variant to FcRn, multicycle kinetic analysis was performed on the purified antibody. Kinetic experiments were conducted on a Biacore T200 (serial number 1909913) running Biacore T200 Control software V2.0.1 and Evaluation software V3.0 (GE Healthcare, Uppsala, Sweden). All kinetic experiments were run at 25°C using PBS containing 0.05% P20 (GE Healthcare, Little Chalfont, UK) and additional 150 mM NaCl (pH 6.0 or pH 7.4). The assay principle is shown in Figure 1. Human FcRn was directly coupled to a CM5 tip (GE Healthcare, Little Chalfont, UK) to approximately 300 RU using standard amine chemistry. To minimize any potential high-volume transport limitations, multicycle kinetic data were obtained using purified antibody as the analyte at a flow rate of 30 μl / min. For pH 6.0 analysis, a 5-point 3-fold dilution range of antibody from 24.7 nM to 2000 nM was used, and for pH 7.4 analysis, a 3-point 3-fold dilution range of antibody from 222.2 nM to 2000 nM was used. The association phase of antibody injection was monitored for 25 seconds, and the dissociation phase was measured for 75 seconds. Regeneration of the FcRn surface was performed using 0.1 M Tris pH 8.0 injection. Reference channel F c The signal from 1 was subtracted to correct for differences in nonspecific bonding to the reference surface, and the data was fitted using a steady-state coupling model.

[0208] Steady-state analysis is performed on the resulting data, and such analysis is particularly suitable for low-affinity interactions. The response in equilibrium state (R eq Plot the response against concentration. For affinity measurement, the sensorgram should reach a steady state (plateau at X) during the binding association phase (see Figure 5). On the response vs. concentration plot, K D The value is equal to the concentration that gives 50% of the maximum response. The response in equilibrium state (R eqWhere a reasonable curvature is obtained when ) is plotted against concentration, K D It will be provided.

[0209] Figure 6 and Table 1 show the binding of IgG1, IgG4, and the fusion construct IgE_IgG_CH2_CH3 to FcRn at pH 6.0.

[0210] Table 1:

[0211] [Table 4]

[0212] Figure 7 and Table 2 show raw and fitted data regarding the binding of Herceptin, wild-type IgE, IgE containing IgE_IgG_CH2_CH3, 3×IgG histidine residues, IgE containing IgG FcRn loop 2 and loop 3a, IgE containing IgG FcRn loop 1, and IgE containing IgG FcRn loop 1, loop 2, and loop 3a to human FcRn at pH 6.0.

[0213] Table 2:

[0214] [Table 5]

[0215] Figures 8 and 9, and Tables 3 and 4, show the results of the same experiment conducted at pH 7.4.

[0216] Table 3:

[0217] [Table 6]

[0218] Table 4:

[0219] [Table 7]

[0220] As can be seen, the binding of IgE_IgG_CH2_CH3 to FcRn is generally similar to that of wild-type IgG.

[0221] Unless otherwise specified, all terms used in disclosing this invention, including technical and scientific terms, have meanings that are commonly understood by those skilled in the art to which this invention pertains. Further guidance may include definitions of terms to better understand the teachings of this invention. [Examples]

[0222] Anti-HMW-MAA hybrid antibody In further examples, another IgE 3His variant is created (see Example 1, SEQ ID NOs. 34 and 35). In this example, the IgE antibody is based not on trastuzumab IgE as in Example 1, but on the anti-HMW-MAA antibody disclosed, for example, in International Publication No. 2013 / 050725. Thus, in this example, the trastuzumab VH and VL domains (present in SEQ ID NOs. 34 and 35) are replaced with the anti-HMW-MAA antibody VH and VL domains. The antibody is produced and purified as described in Example 1. Antibody binding analysis is performed as described in Examples 2-3.

[0223] The variable domain sequence for HMW-MAA IgE is as follows:

[0224] HMW-MAA VH (Sequence ID 170):

[0225] JPEG0007862002000043.jpg27167

[0226] HMW-MAA VL (Sequence ID 171):

[0227] JPEG0007862002000044.jpg18165

[0228] In alternative embodiments, the variable domain sequences against HMW-MAA IgE are as follows.

[0229] HMW-MAA VH (SEQ ID NO: 184):

[0230] JPEG0007862002000045.jpg27167

[0231] HMW-MAA VL (SEQ ID NO: 185):

[0232] JPEG0007862002000046.jpg18167

[0233] Thus, in a specific embodiment, the anti-HMW-MAA antibody may comprise one of the following heavy or light chain sequences (the underlines indicate variable domain sequences, the standard string indicates the IgE Fc sequence, and the bold underlined sequences indicate His mutations). <\

[0234] HMW-MAA heavy chain (SEQ ID NO: 186):

[0235] JPEG0007862002000047.jpg85168

[0236] HMW-MAA light chain (SEQ ID NO: 187):

[0237] JPEG0007862002000048.jpg36167

[0238] Alternative HMW-MAA heavy chain (SEQ ID NO: 188):

[0239] JPEG0007862002000049.jpg94169

[0240] Alternative HMW-MAA light chain (SEQ ID NO: 189):

[0241] JPEG0007862002000050.jpg36167

[0242] [Examples]

[0243] Production of heterodimer IgE Construction of IgE-IgG-Fc (IGEG) fusion proteins The DNA sequence corresponding to the WT IgE constant domain was codon-optimized for CHO expression and synthesized with adjacent restriction enzyme sites for cloning into a pANT dual Ig expression vector system for human heavy chain and kappa light chain (GeneArt, ThermoFisher Scientific, Loughborough, UK). The heavy chain, also containing trastuzumab VH, was cloned between the Mlu I and Kpn I restriction sites. Separately synthesized trastuzumab Vk was cloned between the BssH II and BamH I restriction sites upstream of the kappa constant region.

[0244] To create an IgE-IgG (IGEG) fusion, WT IgE was amplified using specific primers, while the terminal stop codon of IgE CH4 was removed. In a separate reaction, the separately synthesized IgG1 hinge-CH2-CH3 was amplified. Using pull-through PCR, both fragments were combined, and Mlu I and KpnI restriction sites were introduced for cloning into a dual-expression vector. Subsequently, the BsmBI restriction site was introduced into the FW4 region of trastuzumab VH by site-directed mutagenesis (Quikchange, Agilent), which, along with Mlu I, allowed for the exchange of the VH region (see Figure 10 for a schematic diagram of the vector).

[0245] To remove a potential free cysteine ​​residue within the IgG hinge region, primers were designed to introduce the Cys220Ser amino acid substitution by site-directed mutagenesis using a BsmBI-containing IgE-IgG construct as a template (numbering is based on the EU numbering scheme, referring to the IgG portion of the IGEG sequence). The Cys220Ser mutation is shown in blue in the sequence below.

[0246] To remove the ability of the IgG portion of IGEG to bind to FcRn, amino acid substitutions Ile253Ala, His310Ala, and His435Ala were made at three residues normally involved in FcRn binding (numbering is based on the EU numbering scheme, referring to the IgG portion of the IGEG sequence). Primers were designed and site-directed mutagenesis (Agilent Quikchange) was performed using a BsmBI-containing IgE-IgG construct (containing either Cys220 or Ser220) as a template.

[0247] To generate the CH1 series of constructs, CH1 VH and VK were synthesized (GeneArt) and cloned into the IGEG vector. CH1 VH was cloned between the MluI and BsmBI restriction sites, and CH1 Vk was cloned between the BssH II and BamH I restriction sites.

[0248] All constructs were confirmed by Sanger sequencing.

[0249] The sequences were as follows (underlined indicates the variable domain sequence, standard string indicates the IgE Fc sequence, bold indicates the IgG-derived sequence, and underlined bold indicates the specific mutation).

[0250] Trastuzumab IgE / IGEG variant sequence

[0251] Trastuzumab IgE heavy chain (SEQ ID NO: 172)

[0252] JPEG0007862002000051.jpg93168

[0253] Trastuzumab IgE-IgG-Fc heavy chain (SEQ ID NO: 173)

[0254] JPEG0007862002000052.jpg127169

[0255] Trastuzumab IgE-IgG-Fc C220S heavy chain (SEQ ID NO: 174)

[0256] JPEG0007862002000053.jpg128169

[0257] Trastuzumab IgG-IgG-Fc dFcRn heavy chain (SEQ ID NO: 175)

[0258] JPEG0007862002000054.jpg129168

[0259] Trastuzumab IgG-IgG-Fc dFcRn C220S heavy chain (SEQ ID NO: 176)

[0260] JPEG0007862002000055.jpg129169

[0261] Kappatrastuzumab light chain (SEQ ID NO: 177)

[0262] JPEG0007862002000056.jpg42168

[0263] HMW-MAA IgE / IGEG variant sequence

[0264] HMW-MAA IgE heavy chain (SEQ ID NO: 178)

[0265] JPEG0007862002000057.jpg87169

[0266] HMW-MAA IgE IgG-Fc heavy chain (SEQ ID NO: 179)

[0267] JPEG0007862002000058.jpg128169

[0268] HMW-MAA IgE-IgG-Fc C220S heavy chain (SEQ ID NO: 180)

[0269] JPEG0007862002000059.jpg128169

[0270] HMW-MAA IgG-IgG-Fc dFcRn heavy chain (SEQ ID NO: 181)

[0271] JPEG0007862002000060.jpg129169

[0272] HMW-MAA IgG-IgG-Fc dFcRn C220S heavy chain (SEQ ID NO: 182)

[0273] JPEG0007862002000061.jpg129168

[0274] HMW-MAA Kappa Light Chain (Sequence ID 183)

[0275] JPEG0007862002000062.jpg44166

[0276] Transient expression of IgE-IgG (IGEG) variants in CHO Endotoxin-free DNA encoding various IGEG constructs was transiently co-transfected into Freestyle® CHO-S cells (ThermoFisher, Loughborough, UK) using an OC-400 processing assembly and a MaxCyte STX® electroporation system (MaxCyte, Gaithersburg, USA). After cell harvesting, the cells were pooled and sterilized in CD Opti-CHO medium (ThermoFisher) containing 8 mM L-glutamine (ThermoFisher) and 1 × hypoxanthine-thymidine (ThermoFisher) for 3 × 10⁶ cells. 6The solution was diluted to individual cells / mL. 24 hours after transfection, the culture temperature was reduced to 32°C, and 30% (starting volume) Efficient Feed B (ThermoFisher), 3.3% FunctionMAX® TiterEnhancer (ThermoFisher), and 1 mM sodium butyrate (Sigma, Dorset, UK) were added. On day 7, the culture was supplied with the addition of 15% (current volume) CHO CD Efficient Feed B (ThermoFisher) and 1.65% FunctionMAX® TiterEnhancer (ThermoFisher). All transfections were cultured for a maximum of 14 days before supernatant collection.

[0277] Purification and analysis of IGEG variants After culture collection, the antibody supernatant was filtered to remove any remaining cell debris, and the pH was neutralized by supplementing with 10×PBS. The majority of IGEGs (including dFcRn IGEGs) were purified in batch conjugation using IgE CaptureSelect® affinity resin (ThermoFisher Scientific). The affinity resin was equilibrated in PBS pH 7.2, then incubated with each sample at room temperature for 2 hours with rotation, followed by a series of PBS washes. All samples were eluted in 50 mM sodium citrate and 50 mM sodium chloride pH 3.5, and the buffer was changed to PBS pH 7.2. The samples were then subjected to a decay coefficient (E) based on the predicted amino acid sequence. c(0.1%) ) using OD 280nm Quantitative analysis was performed.

[0278] Selected IGEG constructs (e.g., trastuzumab IGEG containing either Cys220 or Ser220) were purified using protein A to demonstrate retention of protein A binding. After culture collection, the antibody supernatant was filtered to remove residual cell debris, and the pH was neutralized with 10×PBS. The antibody was then purified from the supernatant using a 1 mL Hitrap MabSelect PrismA column (Cytiva, Little Chalfont, UK) pre-equilibrated with PBS pH 7.2. After sample loading, the column was washed with PBS pH 7.2, and the protein was eluted with 0.1 M sodium citrate pH 3.0. The fractions were collected, the pH was adjusted with 1 M Tris-HCl pH 9.0, followed by buffer exchange to PBS pH 7.2. The samples were then subjected to a decay coefficient (E) based on the predicted amino acid sequence. c(0.1%) ) using OD 280nm Quantitative analysis was performed.

[0279] All IGEG antibody variants were further purified using a HiLoad® 26 / 60 Superdex® 200 pg preparative SEC column (GE Healthcare, Little Chalfont, UK) with PBS pH 7.2 as the mobile phase. Peak fractions from the purified product containing monomeric proteins were pooled and concentrated, and the decay coefficient (E) was determined based on the predicted amino acid sequence. c(0.1%) A using ) 280nm The sample was sterilized by filtration before quantitative analysis.

[0280] Next, the purified material was analyzed by analytical SE-HPLC and SDS-PAGE. Analytical SEC was performed using an Acquity UPLC Protein BEH SEC column, 200 Å, 1.7 μm, 4.6 mm × 150 mm (Waters, Elstree, UK) and an Acquity UPLC Protein BEH SEC guard column, 30 × 4.6 mm, 1.7 μm, 200 Å (Waters, Elstree, UK), connected to a Dionex Ultimate 3000RS HPLC system (ThermoFisher Scientific, Hemel Hempstead, UK). The method consisted of isocratic elution over 10 minutes, with mobile phases of 0.2 M potassium phosphate, pH 6.8, and 0.2 M potassium chloride. The flow rate was 0.35 mL / min. Detection was performed by UV absorption at 280 nm. After purification, all IGEG antibody variants were shown to contain more than 95% monomeric species.

[0281] Single-cycle kinetic analysis of IGEG variants against congener antigens Biacore analysis of the binding of HMW-MAA IGEG variants to their congener antigens was impossible due to the lack of structurally suitable antigens. Instead, binding was analyzed by flow cytometry.

[0282] To assess the binding of all purified trastuzumab IGEG variants to human Her2 antigen, single-cycle kinetic analysis was performed on the purified antibody. The kinetic experiments were conducted at 25°C on a Biacore T200 running Biacore T200 Control software V2.0.1 and Evaluation software V3.0 (Cytiva, Uppsala, Sweden). See Figure 11 for a process overview.

[0283] HBS-EP+ (Cytiva, Uppsala, Sweden) supplemented with 1% BSA (Sigma, Dorset, UK) was used as the running buffer and for ligand and analyte dilution. Purified antibody was diluted to 10 μg / mL in the running buffer. At the start of each cycle, the anti-Fab antibody (a mixture of anti-kappa antibody and anti-lambda antibody) was used on the CM5 sensor chip (Cytiva, Little Chalfont, UK). c 2, F c 3, and F c The antibody was loaded into 4. The antibody was captured at a flow rate of 10 μl / min to achieve an immobilization level of approximately 45 RU (R L ) was given. Then the surface was stabilized.

[0284] To minimize any potential massive transport effects, single-cycle kinetic data were obtained using recombinant human Her2 antigen (Sino Biological, Beijing, China) as the analyte injected at a flow rate of 40 μL / min. Four 3-fold dilutions of the antigen from 1.1 nM to 30 nM in running buffer were used without regeneration between concentrations. For each of the four injections of increasing antigen concentrations, the association phase was monitored for 240 seconds, and after the final injection of antigen, the single dissociation phase was measured for 600 seconds. Sensor tip surface regeneration was performed using two injections of 10 mM glycine pH 2.1.

[0285] Reference channel F c Signal from 1 (no captured antibody) to F c 2, F c 3, and F c The bulk effect and differences in nonspecific binding to the reference surface were corrected by subtracting from the results of 4. Differences in surface stability were corrected by subtracting the signals from each antibody blank run (antibody was captured but antigen was absent) (see Figure 12). Each trastuzumab construct tested showed similar binding to human Her2 (Table 6).

[0286] [Table 8]

[0287] Assessment of IGEG variant binding to human Fc receptors The binding of purified IGEG to high and low affinity Fc gamma receptors and high affinity Fc epsilon receptors was assessed by single-cycle analysis using a Biacore T200 instrument (serial number 1909913) running Biacore T200 Evaluation software V3.0.1 (Uppsala, Sweden) at a flow rate of 30 μl / min. All human Fc gamma receptors (hFcγRI along with the low affinity receptors hFcγRIIIa (both 176F and 176V polymorphisms) and hFcγRIIIb) were obtained from Sino Biological (Beijing, China), and hFcεR1 was obtained from R&D Systems (Minneapolis, USA). Using standard amine chemistry, FcRs were captured on pre-coupled CM5 sensor chips using the His capture kit (Cytiva, Uppsala, Sweden). A detailed outline of the assay used to assess antibody binding to the Fc gamma receptor can be found in Figure 13.

[0288] At the start of each cycle, His-tagged Fc receptors, diluted in HEPES-buffered saline containing 0.05% v / v surfactant P20 (HBS-P+), were loaded to the specified RU level (Table 7). A 5-point 3-fold dilution range of the test antibody was used for each receptor tested, without regeneration between concentrations. The target RU loaded for each Fc receptor, the concentration range used for each test antibody, and the association and dissociation times used for test antibody binding are shown in (Table 7). In all cases, the antibody was passed through the chip at increasing concentrations, followed by a single dissociation step. After dissociation, the chip was regenerated using two injections of glycine pH 1.5. Reference channel F c The signal from 1 (blank) is transmitted to the receptor loaded with F cThe difference in nonspecific binding to the reference surface was corrected by subtracting from the values ​​obtained. High-affinity interactions were analyzed using a 1:1 fit (see Figures 17a and 17b for example data), while low-affinity interactions were analyzed using a steady-state model (see Figures 17c and 17d for example data). Table 8 summarizes the acquired data. The IGEG variant bound to both the tested Fc-gamma receptor and the Fc-epsilon receptor. The IgG control reached the Fc-gamma receptor but not the Fc-epsilon receptor, while the IgE control reached the Fc-epsilon receptor but not the tested Fc-gamma receptor.

[0289] [Table 9]

[0290] [Table 10]

[0291] Assessment of IGEG variant binding to human FcRn The binding of purified antibodies to FcRn was assessed by steady-state affinity analysis using a Biacore T200 instrument (serial number 1909913) running Biacore T200 Evaluation software V3.0.1 (Uppsala, Sweden). hFcRn (Sino Biological, Beijing, China) was coupled to a Series S CM5 (carboxymethylated dextran) sensor chip (Cytiva, Uppsala, Sweden) at 10 μg / mL in sodium acetate pH 5.5 using standard amine coupling. Purified HMW-MAA antibodies were titrated in seven 2-fold dilutions ranging from 31.25 nM to 2000 nM in PBS containing 0.05% polysorbate 20 (P20) at pH 6.0, or in four 3-fold dilutions ranging from 250 nM to 2000 nM in PBS containing 0.05% polysorbate 20 (P20) at pH 7.4. The antibodies were passed through the chip at a flow rate of 30 μl / min at 25°C using increasing concentrations. The injection time was 40 s per concentration, and the dissociation time was 75 s. After single dissociation, the chip was regenerated using 0.1 M Tris pH 8.0. Figure 15 shows a schematic of the assay used to assess antibody binding to FcRn. Interactions were analyzed using a steady-state model (see Figures 16a-16d for example data). Table 9 shows a summary of the acquired data. Except for those with the FcRn binding site removed (dFcRn) and those that failed to bind to FcRn, IGEG variants bound to FcRn at pH 6.0. IgG controls, as expected, reached FcRn, while IgE showed no binding to FcRn.

[0292] [Table 11]

[0293] UNcle in vivo stability platform analysis of IGEG variants IGEG variants were analyzed for thermal stability using the UNcle in vivo stability platform (Unchained Labs, Pleasanton, USA). Thermal gradient stability experiments (Tm and Tagg) are well-established methods for ranking proteins and formulations for stability. A protein's denaturation profile provides information about its thermal stability and represents a structural "fingerprint" for assessing structural changes and formulation buffer changes. A widely used measurement of a protein's thermal structural stability is the temperature at which it unfolds from its native state to a denatured state. For many proteins, this unfolding process occurs over a narrow temperature range, and the midpoint of this transition is called the "melting temperature" or "Tm". To determine a protein's melting temperature, UNcle measures the fluorescence of Sypro Orange (which binds to the exposed hydrophobic region of the protein) when the protein undergoes a conformational change.

[0294] The sample for each variant was formulated in PBS and Sypro Orange at a final concentration of 0.8 mg / mL. 9 μL of each sample mixture was loaded into UNi microcuvets in pairs. The samples were subjected to a thermal gradient from 25 to 95°C using a gradient velocity of 0.3°C / min and excitation at 473 nm. The total emission spectra were collected from 250 to 720 nm, and the area under the curve between 510 and 680 nm was used to determine the inflection point (T) of the transition curve. 開始 and T m The following was calculated: By monitoring static light scattering (SLS) at 473 nm, it became possible to detect protein aggregation, and T agg The onset of aggregation was calculated from the resulting SLS profile. Data analysis was performed using UNcle® software version 4.0 and is summarized in Table 10. Tm1 values ​​were generally consistent within each set of variants and between IgE and IGEG variants (Figure 17a); however, the IGEG variant showed a significant improvement in the static light scattering profile compared to the equivalent IgE variant alone (Figure 17b).

[0295] [Table 12]

[0296] [Examples]

[0297] Assessment of IGEG variant binding to A375 cells The binding of the antibody variants detailed in Examples 4 and 5 to HMW-MAA was assessed using A375 cells expressing HMW-MAA(CSPG4).

[0298] method A375 cells are collected. A375 cells were cultured using standard methods. When the A375 cells reached confluence, they were harvested. Briefly, the cells were washed with PBS, then incubated with TrypLE® at 37°C for 10 minutes, and then detached from the flask. The cells were resuspended in 10 mL of medium and centrifuged at 250 g for 3 minutes. The cells were then resuspended in 1 mL of FACS buffer and counted using a Cellometer® to determine the cell number and viability. Subsequently, the cells were measured using FACS buffer at a rate of 1 × 10⁶ per mL. 6 The cells were diluted to individual cells, and 100 μL of this cell suspension was seeded into each well on a plate.

[0299] Binding assay The binding of purified IGEG to A375 cells (ATCC, Virginia, US) was assessed by flow cytometry using an Attune® NxT Acoustic Focusing Cytometer (ThermoFisher Scientific, Loughborough, UK) running Attune software V3.1.2. A375 cells were incubated with the primary antibody (described in Example 5) at 4°C for 30 minutes, followed by a further 30-minute incubation at 4°C with a 10 μg / ml FITC conjugate goat anti-human anti-IgG or IgE secondary antibody (Vector Laboratories, California, US). Cells were washed, resuspended in FACS buffer, and then acquired on the Attune® NxT Acoustic Focusing Cytometer. The data was analyzed using FlowJo® software version 10 (Becton, Dickinson and Company, New Jersey, US) and GraphPad Prism 8 (GraphPad Software, California, US).

[0300] result As demonstrated in Figures 18a and 18b, all HMW-MAA antibodies and variants bound to A375 cells. [Examples]

[0301] ADCC and ADCP assays Assays were performed to determine the effects of the described antibodies on both levels of antibody-dependent cell-mediated phagocytosis (ADCP) and antibody-dependent cell-mediated cytotoxicity (ADCC), which are the two main mechanisms by which immune effector cells can kill tumor cells. The antibody variants described in Example 5 were compared with trastuzumab IgE and Herceptin IgG antibodies.

[0302] method ADCC and ADCP assays were performed using U-937 effector cells and SK-BR-3 target cells, employing methods similar to those available in the art (see, for example, Three-colour flow cytometric method to measure antibody-dependent tumor cell killing by cytotoxicity and phagocytosis. J Immunol Methods. 2007 Jun 30;323(2):160-71).

[0303] The day before performing the assay, Her2-expressing tumor cells (SK-BR-3) were stained. To do this, SK-BR-3 cells were cleaved from the plate using TrypLE, washed in complete RPMI medium (RPMI 1640 medium supplemented with pen / strep and 10% HI FBS), and then added to serum-free HBSS. 0.75 μL of 0.5 mM carboxyfluorescein succinimimidyl ester (CSFE) was added to the HBSS in 1 × 10⁻⁶ solutions. 6 The solution was added to each individual cell, and the cells were incubated at 37°C for 10 minutes. After washing, the cells were seeded and incubated overnight.

[0304] The following day, U-937 effector cells were passaged, counted using trypan blue, and resuspended in complete RPMI medium, yielding 1.5 × 10⁶ cells per mL. 6 Individual cells were provided. CFSE-labeled SK-BR-3 cells were cleaved by TrypLE treatment, washed, counted, and resuspended in complete RPMI medium at a concentration of 0.5 × 10⁶ per mL. 6Individual cells were provided. Trastuzumab IgE, Herceptin IgG, trastuzumab-IGEG, trastuzumab-IGEG-C220S, and IgG isotype antibodies, as detailed in Example 5, were then diluted to a starting concentration of 120 nM and subsequently serially diluted in multiples of 6. 25 μL of each antibody dilution was added in pairs to a 96-well plate along with 50 μL of SK-BR-3 cell suspension (equivalent to 25,000 cells) and 25 μL of U-937 effector cell suspension (equivalent to 37,500 cells). Appropriate control wells lacking CSFE staining, U-397 cells, SK-BR-3 cells, viable SK-BR-3 cells (replaced by heat-shocked SK-BR-3 cells), or one or more of the test antibodies were included in the assay. Next, the plate was incubated at 37°C for 3 hours, centrifuged, washed twice with FACS buffer (PBS + 2% FCS), and then resuspended in 100 μL of FACS containing 2 μL of CD89 APC conjugate-labeled antibody. The control well was resuspended in FACS buffer alone. After 30 minutes at 4°C, the plate was centrifuged, washed twice again with FACS buffer, and then the cells were resuspended in 100 μL of FACS buffer containing propidium iodide (PI) stain (5 μL per 100 μL). The control well was resuspended in FACS buffer and incubated at room temperature for 15 minutes.

[0305] Next, 50,000 cells / tube were acquired on an Attune® NxT Acoustic Focusing Cytometer. Compensation was performed using a control well setup. R1, R2, and R3 gating were applied in the analysis software (Flow Jo) (Figure 19), and cell counts were obtained for each gate. Then, calculations were performed to determine cytotoxicity (ADCC) or phagocytic activity (ADCP).

[0306] result As demonstrated in Figure 20, the trastuzumab-IGEG (IGEG-CH2CH3) antibody appears to induce higher levels of phagocytosis than Herceptin IgG and trastuzumab IgE antibodies across all concentrations tested (120–7.5 nM). The trastuzumab-IGEG-C200S (IGEG-CH2CH3-C220S) antibody also appears to induce higher levels of phagocytosis than Herceptin IgG and trastuzumab IgE antibodies. In addition, the results demonstrate that trastuzumab IgE, Herceptin IgG, and both IGEG antibodies had comparable effects on cytotoxicity.

[0307] This application claims priority to UK Patent Application No. 1914165.4 filed 1 October 2019, UK Patent Application No. 1917059.6 filed 22 November 2019, and UK Patent Application No. 2008248.3 filed 2 June 2020, the contents of which are incorporated herein by reference. All publications referenced in the above specifications are incorporated herein by reference. Various modifications and variations of the described embodiments 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 is described in relation to specific preferred embodiments, it should be understood that the claimed invention should not be unduly limited to such specific embodiments. In fact, various modifications of the described manner for carrying out the invention, which will be apparent to those skilled in the art, are intended to fall within the scope of the following claims.

Claims

1. A hybrid antibody of IgE and IgG that binds to the Fcε receptor and the embryonic Fc receptor (FcRn), comprising Cε2, Cε3, and Cε4 domains or functional fragments thereof, (a) The hybrid antibody contains a binding site for FcRn derived from the IgG antibody, or (b) The FcRn bond is provided by a Cε3 domain containing a histidine residue at position 78, and a Cε4 domain containing a histidine residue at position 95 and a histidine residue at position 98. The aforementioned hybrid antibody.

2. (i) an IgE Cε3 domain having at least 90% sequence identity with SEQ ID NO: 2 and containing the T78H mutation; and (ii) An IgE Cε4 domain having at least 90% sequence identity with SEQ ID NO: 3 and containing S95H and Q98H mutations; A hybrid antibody according to claim 1, comprising:

3. (i) IgE Cε3 loop sequence as defined in Sequence ID No. 31; and / or (ii) IgE Cε4 loop sequence as defined in sequence number 32 or 33; A hybrid antibody according to claim 1 or 2, comprising:

4. A hybrid antibody according to any one of claims 1 to 3, wherein binding to FcRn is pH-dependent.

5. A hybrid antibody according to any one of claims 1 to 4, wherein binding to FcRn is pH-dependent, and it has a higher affinity for FcRn at pH 6.0 than at pH 7.

4.

6. A hybrid antibody according to any one of claims 1 to 5, which specifically binds to a cancer antigen.

7. A pharmaceutical composition comprising the hybrid antibody described in claim 6 and a pharmaceutically acceptable excipient, diluent, or carrier.

8. A hybrid antibody according to claim 6 or a pharmaceutical composition according to claim 7 for use in the prevention or treatment of cancer.

9. A nucleic acid encoding a hybrid antibody according to any one of claims 1 to 6 or 8.

10. An expression vector comprising the nucleic acid described in claim 9.

11. An expression vector comprising the nucleic acid described in claim 9, wherein (i) the vector is a CHO vector, and / or (ii) the nucleic acid is operably linked to a promoter suitable for expression in mammalian cells.

12. A host cell comprising a recombinant nucleic acid encoding a hybrid antibody according to any one of claims 1 to 6.

13. A host cell according to claim 12, comprising the nucleic acid according to claim 9 or the vector according to claim 10 or 11.

14. A method for producing the hybrid antibody, comprising the steps of: culturing the host cell according to claim 12 or 13 under conditions for the expression of the hybrid antibody according to any one of claims 1 to 6; and recovering the hybrid antibody or a fragment thereof from the host cell culture.