Antibodies of KLK5
An inhibitory anti-KLK5 antibody with specific CDR sequences addresses the need for effective KLK5 inhibition therapies, improving skin barrier function and reducing inflammation in diseases like Netherton syndrome and atopic dermatitis.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-02-01
- Publication Date
- 2026-04-01
AI Technical Summary
Current therapies for diseases related to KLK5 dysregulation, such as Netherton syndrome and atopic dermatitis, are inadequate, highlighting the need for effective anti-KLK5 therapies to inhibit KLK5 activity.
Development of an inhibitory anti-KLK5 antibody with specific CDR sequences that bind to KLK5, inhibit its protease activity, and form a complex with LEKTI, while avoiding competition with LEKTI for binding, thereby reducing KLK5 activity in the skin.
The anti-KLK5 antibody effectively inhibits KLK5 activity, improving skin barrier function and reducing inflammation in diseases like Netherton syndrome and atopic dermatitis, demonstrating therapeutic potential for conditions characterized by KLK5 dysregulation.
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Abstract
Description
[Technical Field]
[0001] This invention relates to an antibody that binds to and inhibits KLK5, and to a method for treating diseases caused by KLK5 dysregulation using the same. In particular, this invention relates to an anti-KLK5 antibody and its use in the treatment of ichthyosis such as Netherton's disease and congenital ichthyosis, atopic dermatitis, and cancer. [Background technology]
[0002] Kallikrein-related peptidases (known as KLKs) comprise a single family of 15 highly conserved trypsin or chymotrypsin-like serine proteases encoded by the largest uninterrupted cluster of protease-coding genes in the human genome (chromosome 19q13.4) (Sotiropoulou G. et al, 2009; JBC 284:48, 32989-94).
[0003] KLK is synthesized as an inactive preproform, and upon proteolysis, an inactive proform is secreted. This proform is then activated into a mature peptidase by specific proteolysis, removing the N-terminal propeptide, either by other KLKs or endopeptidases, or by autocatalytic cleavage, as in the case of kallikrein 5 (KLK5).
[0004] KLK5 is present in several tissues, but is most abundantly expressed in the skin. Along with KLK7, KLK5 is expressed in the upper layers of the skin, the stratum spinosum and stratum granulosum, where keratinocytes undergo terminal differentiation to become corneocytes that make up the stratum corneum. The stratum corneum functions as a barrier against the external environment and is maintained by the constant replacement of corneocytes that are shed during the desquamation process. KLK5 can activate pro-KLK7 and other kallikreins, making its role in desquamation essential.
[0005] Mature KLK5 is inactivated after activation by the endogenous inhibitor lymphoepithelial Kazal-type inhibitor (LEKTI) encoded by the SPINK5 gene (Chavans P et al., 2005; Nat Genet 37, 56-65). LEKTI contains 15 serine protease inhibitory domains and forms a robust complex with KLK5. pH changes govern this tight interaction by releasing KLK5 activated at acidic pH from the complex (Deraison C et al. 2007; Mol Biol Cell 18 3607-19).
[0006] Loss-of-function mutations in the SPINK5 gene cause Netherton syndrome, a rare autosomal recessive skin disorder characterized by ichthyosis with severe inflammation, skin scaling, elevated IgE levels, and persistent allergic symptoms (Hovnanian A. 2013; Cell Tissue Res 351 289-300). LEKTI deficiency leads to increased epidermal protease activity, followed by KLK5 activity against desmogleins and desmosomes, causing stratum corneum exfoliation, which results in high permeability to various allergens and leads to atopic dermatitis-like lesions. Furthermore, KLK5 activity on KLK7 contributes to skin barrier defects that lead to allergen and microbial invasion and IL-1β production.
[0007] SPINK5 - / - The mice reproduced a phenotype strongly reminiscent of Netherton syndrome, replicating the skin and inflammatory aspects of this disease (Yant T et al.; 2004, Genes Dev 18 2354-58). SPINK5 in patients with Netherton syndrome. - / - The epidermis does not inhibit KLK5 and KLK7 protease activity and appears to maintain the activation of pro-inflammatory and pre-signaling pathways such as the KLK5-PAR2-TSLP (thymic interstitial lymphocyte generating factor) axis. SPINK5 - / - and KLK5 - / -In both mice, KLK5 knockout was sufficient to correct skin symptoms similar to those seen in LEKTI knockout, demonstrating the important role of KLK5 in skin homeostasis.
[0008] In recent years, several studies have reported a genetic link between atopic dermatitis (AD) expressing abnormal LEKTI variants and LEKTI polymorphisms (Hovnanian A. 2013; Cell Tissue Res 351 289-300).
[0009] To date, only therapies aimed at replacing LEKTI have been pursued, such as gene addition using lentivirus or adenovirus vectors for SPINK5, and autologous transplantation of genetically corrected patient keratinocytes (Di WL. Et al.; 2011, Mol Ther 19 408-16). [Overview of the project] [Problems that the invention aims to solve]
[0010] Therefore, there is still a need for anti-KLK5 therapies, such as passive immunotherapy aimed at inhibiting KLK5, that can exert therapeutic effects in diseases related to or caused by KLK5 dysregulation. [Means for solving the problem]
[0011] The present invention addresses the above needs by providing an inhibitory anti-KLK5 antibody according to the following embodiments.
[0012] Embodiment 1: An antibody that binds to kallikrein 5 (KLK5), wherein the antibody comprises a variable light chain and a variable heavy chain, a. The variable light chain includes CDR-L1 containing SEQ ID NO: 1 or SEQ ID NO: 62 or SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and b. The variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6. The above antibody.
[0013] Embodiment 2: a. The variable light chain comprises CDR-L1 comprising SEQ ID NO: 1, CDR-L2 comprising SEQ ID NO: 2, and CDR-L3 comprising SEQ ID NO: 3; and b. The variable heavy chain comprises CDR-H1 comprising SEQ ID NO: 4, CDR-H2 comprising SEQ ID NO: 5, and CDR-H3 comprising SEQ ID NO: 6, The antibody according to Embodiment 1.
[0014] Embodiment 3: An antibody that binds to kallikrein 5 (KLK5), which binds to an epitope of human KLK5 comprising amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, referring to SEQ ID NO: 51.
[0015] Embodiment 4: The antibody according to Embodiment 3, wherein the epitope is characterized by X-ray crystallographic analysis.
[0016] Embodiment 5: The antibody according to any one of Embodiments 1 to 4, wherein the antibody inhibits or reduces the protease activity of KLK5.
[0017] Embodiment 6: The antibody according to any one of Embodiments 1 to 5, which binds to KLK5 when KLK is bound to LEKTI or a fragment of LEKTI.
[0018] Embodiment 7: The antibody according to any one of Embodiments 1 to 6, wherein the antibody does not compete with LEKTI or a fragment of LEKTI for binding to KLK5.
[0019] Embodiment 8: The antibody according to any one of Embodiments 1 to 7, wherein the antibody forms a complex with KLK5 bound to LEKTI or a fragment of LEKTI.
[0020] Embodiment 9: The antibody according to any one of Embodiments 6 to 8, wherein the LEKTI fragment is a human LEKTI domain 5 containing amino acids 1 to 64 of SEQ ID NO: 54, or a LEKTI domain 8 containing amino acids 1 to 71 of SEQ ID NO: 61.
[0021] Embodiment 10: The antibody according to any one of the embodiments, wherein the antibody binds to human KLK5, preferably human KLK5 comprising SEQ ID NO: 53, and cynomolgus monkey (cyno) KLK5, preferably cynoKLK5 comprising SEQ ID NO: 60.
[0022] Embodiment 11: The antibody according to any one of the embodiments, wherein the antibody does not bind to human or cyno-kallikrein 2 (KLK2); or human or cyno-kallikrein 4 (KLK4); or human or cyno-kallikrein 7 (KLK7).
[0023] Embodiment 12: The antibody comprises a variable light chain and a variable heavy chain, a. The variable light chain includes CDR-L1 containing SEQ ID NO: 1 or SEQ ID NO: 62 or SEQ ID NO: 63, preferably CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and b. The variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6. The antibody described in any one of Embodiments 3 to 11.
[0024] Embodiment 13: The antibody according to any one of the embodiments, wherein the antibody is a chimeric antibody or a humanized antibody.
[0025] Embodiment 14: The antibody according to any one of the embodiments, wherein the antibody is a full-length antibody.
[0026] Embodiment 15: The antibody according to Embodiment 13, wherein the full-length antibody is selected from IgG1, IgG4, or IgG4P.
[0027] Embodiment 16: The antibody is Fab, Fab', F(ab')2, scFv, dAb or V HH An antibody according to any one of embodiments 1 to 13, selected from the above.
[0028] Embodiment 17: Antibody a. Variable light chains including sequence numbers 7, 11, 15, 19, or 23; and / or b. Variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43 The antibody according to any one of embodiments 1 to 16, including the antibody described above.
[0029] Embodiment 18: Antibody a. Light chains containing sequence numbers 13, 17, 21, or 25; and b. Heavy chain containing SEQ ID NO. 29, 33, 37, 41, or 45 An antibody according to any one of embodiments 1 to 15 or 17, comprising:
[0030] Embodiment 19: The antibody according to Embodiment 17 or 18, wherein the amino acid residue glutamine (Gln;Q) of L-CDR1 at position 24 is substituted with arginine (Arg;R) or lysine (Lys;K), referring to SEQ ID NO: 15 or 17.
[0031] Embodiment 20: The antibody according to any one of the embodiments, wherein KLK5 is human KLK5 containing SEQ ID NO: 51, 52, or 53, or cynoKLK5 containing SEQ ID NO: 60.
[0032] Embodiment 21: a. With respect to binding to KLK5, it competes with the antibody described in any one of Embodiments 1 to 20; and / or b. With respect to binding to KLK5, it cross-blocks or is cross-blocked with any one of the antibodies described in Embodiments 1 to 20; and / or c. Binding KLK5 to the same epitope as the antibody described in any one of Embodiments 1 to 20; and / or d. Includes a heavy chain variable region having at least 90% identity or similarity to the sequence of sequence number 29, 33, 37, 41, or 45; and / or e. A light chain variable region having at least 90% identity or similarity to the sequence of sequence number 13, 17, 21, or 25, antibody.
[0033] Embodiment 22: An isolated polynucleotide encoding the antibody described in any one of Embodiments 1 to 20.
[0034] Embodiment 23: An isolated polynucleotide according to Embodiment 22, wherein the polynucleotide encodes the following: a. Light chain variable region, where the polynucleotide is i. At least 90% identical to SEQ ID NO: 8 (or nucleotides 1-330 of SEQ ID NO: 8) or 12 (or nucleotides 1-330 of SEQ ID NO: 12) or 16 or 20 or 24 or 64 or 66; or ii. Containing SEQ ID NO: 8 (or nucleotides 1-330 of SEQ ID NO: 8) or 12 (or nucleotides 1-330 of SEQ ID NO: 12) or 16 or 20 or 24 or 64 or 66; or iii. Essentially consisting of SEQ ID NO: 8 (or nucleotides 1-330 of SEQ ID NO: 8) or 12 (or nucleotides 1-330 of SEQ ID NO: 12) or 16 or 20 or 24 or 64 or 66; or b. Heavy chain variable region, where the polynucleotide is i. At least 90% identical to sequence number 10, 28, 32, 36, 40, or 44; or ii. Including sequence numbers 10, 28, 32, 36, 40, or 44; or iii. Essentially consisting of sequence numbers 10, 28, 32, 36, 40, or 44; or c. Light chain, where the polynucleotide is i. At least 90% identical to sequence number 14, 18, 22, 26, 65, 67, 100, 101, 102, 103, or 104; or ii. Including SEQ ID NOs. 14, 18, 22, 26, 65, 67, 100, 101, 102, 103, or 104; or iii. Essentially consisting of sequence numbers 14, 18, 22, 26, 65, 67, 101, 102, 103, or 104; or d. Heavy chain, where the polynucleotide is i. At least 90% identical to sequence number 30, 34, 38, 42, or 46; or ii. Including sequence numbers 30, 34, 38, 42, or 46; or iii. Essentially consisting of sequence numbers 30, 34, 38, 42, or 46.
[0035] Embodiment 24: A cloning or expression vector comprising one or more polynucleotides as described in either Embodiment 22 or 23.
[0036] Embodiment 25: a. One or more polynucleotides as described in either Embodiment 22 or 23, or b. One or more expression vectors described in Embodiment 24 Host cells, including those containing the host cell.
[0037] Embodiment 26: A method for producing an antibody according to any one of Embodiments 1 to 20, comprising culturing the host cells described in Embodiment 25 under conditions suitable for antibody production, and isolating the antibodies produced by the host cells.
[0038] Embodiment 27: A pharmaceutical composition comprising the antibody described in any one of Embodiments 1 to 20 and one or more pharmaceutically acceptable carriers, excipients, or diluents.
[0039] Embodiment 28: An antibody or antigen-binding fragment thereof according to any one of Embodiments 1 to 20, or a pharmaceutical composition according to Embodiment 27, for use in treatment.
[0040] Embodiment 29: An antibody according to any one of Embodiments 1 to 20 or a pharmaceutical composition according to Embodiment 27 for use in the treatment of a disease characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition.
[0041] Embodiment 30: The antibody for use according to Embodiment 29, wherein the disease is selected from Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer, or a combination thereof.
[0042] Embodiment 31: An antibody for use according to Embodiment 30, wherein the disease is Netherton syndrome.
[0043] Embodiment 32: The antibody for use according to Embodiment 30, wherein the disease is atopic dermatitis.
[0044] Embodiment 33: A method for treating a disease characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition in a patient, comprising administering to the patient a therapeutically effective amount of the antibody described in any one of Embodiments 1 to 20 or the pharmaceutical composition described in Embodiment 27.
[0045] Embodiment 34: The method according to Embodiment 33, wherein the disease is selected from Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer.
[0046] Embodiment 35: The antibody for use according to Embodiment 34, wherein the disease is Netherton syndrome.
[0047] Embodiment 36: The antibody for use according to Embodiment 34, wherein the disease is atopic dermatitis. [Brief explanation of the drawing]
[0048] [Figure 1]Size exclusion chromatography (SEC). Panels A and B show elution profiles for human KLK5 alone (solid trace, far right), rabbit Fab antibody 10236 alone (dotted trace), human KLK5 + LEKTI D5 (long dashed trace, panel A) or human KLK5 + LEKTI D8 (long dashed trace, panel B), and human KLK5 + LEKTI D5 + rabbit Fab antibody 10236 (short dashed trace, far left, panel A) or human KLK5 + LEKTI D8 + rabbit Fab antibody 10236 (short dashed trace, far left, panel B). [Figure 2] SDS-PAGE of peak fractions from SEC shown in Figures 1A and 1B. Lane 1: MW marker. Lane 2: Peak fraction of the binary human KLK5 + LEKTI D5 complex. Lane 3: Peak fraction of the ternary KLK5 + LEKTI D5 + rabbit Fab antibody 10236 complex. Lane 4: Peak fraction of the binary KLK5 + LEKTI D8 complex. Lane 5: Peak fraction of the ternary KLK5 + LEKTI D8 + rabbit Fab antibody 10236 complex. [Figure 3] SDS-PAGE of KLK5 prepared for X-ray crystal structure analysis. Lane M: MW marker. Lane 1: Human KLK5 purified from cultures grown in the presence of kifencin (kif). Lane 2: Human KLK5 purified from kifencin cultures and treated with endoglycosidase H (Endo H). [Figure 4]Schematic representation of the human KLK5 epitope conjugated with rabbit Fab antibody 10236. A) The Fab heavy chain (dark gray) and light chain (light gray) are shown as a cartone and a transparent surface. KLK5 is shown as a black ribbon. KLK5 residues that are part of the epitope on human KLK5 conjugated with antibody 10236 are depicted as black rods. B) Leupeptin (surface and rods) modeled with the crystal structure of KLK5 (ribbon) conjugated to rabbit Fab 10236 (surface depicted). Fab 10236 is in contact with the 99-loop on KLK5. C) Superposition of the crystal structures of 2PSX (white, without zinc) and 2PSY (gray, with zinc). The movement of the 99-loop and the side chain positions of His147 and His150 on KLK5 in the presence of zinc is highlighted. Leupeptin is shown as a white surface and rods. D) Superposition of the crystal structure 2PSX (KLK5 bound to leupeptin) and the crystal structure of KLK5 bound to Fab10236. Comparing the two structures highlights the movement of the 99-loop and side chain positions of His147 and His150. The conformations of the loops and His residues in the crystal structure 2PSX and the crystal structure of Fab10236 bound to KLK5 are shown in white and black, respectively. The white dashed rectangle around His147 (crystal structure 2PSX) indicates that this conformation collides with Fab10236 (gray surface). In the KLK5-Fab10236 structure, His147 is in a different conformation. The white dashed circle around His150 (black, observed in the KLK5-Fab10236 complex) points to the S2 pocket of the KLK5 active site, indicating that it is the site where substrates such as leupeptin bind. The leupeptin (gray surface and rod) from the crystalline structure 2PSX shows the expected site of substrate binding in the KLK5 active site. [Figure 5] Two orientations of the crystal structure of the complex of human KLK5 and rabbit Fab antibodies 10236 and 10273. Human KLK5 is shown as a ribbon representation, and rabbit Fab antibodies 10236 and 10273 are shown as filled surfaces. [Figure 6]Humanization of the rabbit variable light chain sequence of antibody 10236. Grafts 10236gL5, gL6, gL7, and gL8 are humanized grafts of the rabbit variable light chain of antibody 10236, using the IGKV1-6 human germline as the acceptor framework. Donor residues are shown in bold / italic and shaded in gray: Y2, D3, and K63. CDRs are shown in bold / underlined. Mutations in CDRL1 to increase pI are shown in bold / underlined and highlighted: Q24R or Q24K. [Figure 7] Humanization of the rabbit variable heavy chain sequence of antibody 10236. Grafts 10236gH9, gH10, gH11, gH12, and gH14 are humanized grafts of the rabbit variable heavy chain of antibody 10236, using the IGHV4-4 human germline as the acceptor framework. CDRs are shown in bold / underlined. Donor residues are shown in bold / italic and shaded in gray: F67, Q71, S73, T76, and V78. [Figure 8] Inhibitory activity of antibody 10236gL6gH12 against the kallikrein panel, and inhibitory activity of LEKTI D5 rabbit Fc against human and cynoKLK5. [Figure 9] Inhibition of IP-1 release from HaCat cells by Ab10236gL6gH12. IP-1 release was stimulated by the addition of KLK5 to HaCat cells. Antibody 10236gL6gH12 achieved near-complete inhibition of IP-1 to levels comparable to those of the reference LEKTI D5 rabbit Fc protein. A33 Hu IgG4 is the isotype control. [Figure 10] Mechanism of action of antibody 10236gL6gH12 (A) and parental rabbit antibody (B). Kobs values were plotted against substrate concentrations of antibody 10236 and LEKTI D5 rabbit Fc protein (the latter is only shown for (A)). The data shown are for 10 nM antibody 10236 and 2 nM LEKTI D5 rabbit Fc. The slope indicates that antibody 10236 is a non-competitive inhibitor, while LEKTI protein is a competitive inhibitor. [Figure 11]Hematoxylin-eosin staining to demonstrate skin structure and stratum corneum integrity in a reconstructed human skin epidermal model. Effects of culture media supplemented with antibody 10236gL6gH12 IgG4P (Ab 10236) or isotype control (hIgG4P), MC903, and unsupplemented media. [Figure 12] In situ zymography assay to show serine protease activity in atopic dermatitis skin sections treated with control buffer (A) or antibody 10236gL6gH12 IgGP4 (B). [Figure 13] Stress test of antibody 10236gL6gH12 IgG4P (named 10236gL6gH12) to evaluate the deamidation tendency of the Asn(94)Ser motif of light chain CDR3. [Modes for carrying out the invention]
[0049] Next, the disclosure will be described with reference to certain non-limiting aspects and embodiments, as well as to certain figures and examples.
[0050] Technical terms are used in their general sense unless otherwise specified. If a particular term has a specific meaning, the definition of that term will be provided in the context in which it is used.
[0051] Where the term “comprising” is used in this specification and in the claims, it does not exclude other elements. For the purposes of this disclosure, the term “consisting of” is considered a preferred embodiment of the term “comprising of.”
[0052] When an indefinite or definite article such as "a," "an," or "the" is used to refer to a singular noun, it includes the plural form of that noun unless something else is explicitly stated.
[0053] As used herein, terms such as “treatment” (“process”) and “to treat” (“to treat”) mean obtaining a desired pharmacological and / or physiological effect. The effect may be prophylactic in that it completely or partially prevents a disease or its symptoms, and / or therapeutic in that it partially or completely cures a disease and / or side effects caused by the disease. Thus, treatment encompasses any treatment of disease in mammals, in particular humans, and includes (a) preventing the development of a disease in a subject who may be predisposed to the disease but has not yet been diagnosed with the disease, (b) suppressing the disease, i.e., stopping its development, and (c) alleviating the disease, i.e., causing its regression.
[0054] "Therapeutically effective dose" refers to the amount of KLK5 antibody sufficient to treat a disease when administered to a mammal or other subject for the purpose of treating that disease. The therapeutically effective dose varies depending on the anti-KLK5 antibody, the disease and its severity, and the age, weight, etc., of the subject being treated.
[0055] The term "isolated" in this specification means that the antibody or polynucleotide (as may be) is present in a physical environment different from the environment in which it may exist in nature.
[0056] In a first aspect of the present invention, an antibody that binds to kallikrein 5 (KLK5) is provided, wherein the antibody comprises a variable light chain and a variable heavy chain. a. The variable light chain includes CDR-L1 containing SEQ ID NO: 1 or SEQ ID NO: 62 or SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and b. The variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6.
[0057] Preferably, the antibody that binds to kallikrein 5 (KLK5) and includes a variable light chain includes CDR-L1 containing SEQ ID NO: 1.
[0058] Therefore, in a preferred embodiment of the present invention, an antibody conjugating to kallikrein 5 (KLK5), comprising a variable light chain and a variable heavy chain, is characterized by a variable light chain comprising CDR-L1 comprising SEQ ID NO: 1, CDR-L2 comprising SEQ ID NO: 2, and CDR-L3 comprising SEQ ID NO: 3; and a variable heavy chain comprising CDR-H1 comprising SEQ ID NO: 4, CDR-H2 comprising SEQ ID NO: 5, and CDR-H3 comprising SEQ ID NO: 6.
[0059] Kallikrein 5 (KLK5, KLK-L2, SCTE, or other known synonyms) possesses trypsin-like activity. It is expressed in a prepro form and contains a 29-amino acid signal peptide followed by a 37-amino acid propeptide sequence, as measured by the bioinformatics tool SignalP 5.0 (http: / / www.cbs.dtu.dk / services / SignalP / index.php). When the propeptide is cleaved, an active mature enzyme consisting of 237 amino acids is produced, which has an active site with three catalytic residues typical of serine proteases (Michael IP et al., 2005; JBC 280:15, 14628-35).
[0060] Unless otherwise specified, the term KLK5 means any native pre and proforms (i.e., untreated KLK5 including the signal sequence and activating peptide), alternative splicing or natural variants, mutants, and KLK5 from other species (such as mice and cynomolgus monkeys), as well as active KLK5 (autocleavage or other results). Where human KLK5 is specified, human KLK5 includes the sequence given in SEQ ID NO: 53 (active human KLK5). Other KLK5 sequences referred to herein include SEQ ID NO: 52 (human KLK5 proform lacking a signal sequence) or SEQ ID NO: 51 (full-length human KLK5 with signal and propeptide sequences), sequences corresponding to Uniprot Q9Y337, or natural variants (including SEQ ID NO: 51) containing mutations at positions 55 and 153. Examples of these mutations include human KLK5 containing residues 23 to 293 as shown in Sequence ID No. 51, which has a change from Gly to Arg at residue 55 (G55R) and / or a change from Asp to Asn at residue 153 (D153N).
[0061] The antibody according to the present invention contains three complementarity-determining regions (CDRs) from the heavy chain and three from the light chain. Generally, the CDRs are located within a framework and together form a variable region. Conventionally, the CDRs in the heavy chain variable region of an antibody or its antigen-binding fragment are called CDR-H1, CDR-H2, and CDR-H3, and those in the light chain variable region are called CDR-L1, CDR-L2, and CDR-L3. These are numbered sequentially from the N-terminus to the C-terminus of each chain.
[0062] CDRs have traditionally been numbered according to a system devised by Kabat et al. This system is described in Kabat et al., 1991, Sequences of Proteins of Immunological Interest, US Department of Health and Human Services, NIH, USA (hereinafter referred to as "Kabat et al."). This numbering scheme is used herein unless otherwise specified.
[0063] The naming of Kabat residues does not always directly correspond to the linear numbering of amino acid residues. The actual linear amino acid sequence, whether a framework or complementarity-determining region (CDR) of the basic variable domain structure, may contain fewer or additional amino acids than the strict Kabat numbering corresponding to the shortening or insertion of structural components. The correct Kabat numbering of residues can be determined for a given antibody by aligning homologous residues in the antibody sequence with the "standard" Kabat numbering sequence.
[0064] According to the Kabat numbering system, the CDRs of the heavy chain variable domain are located at residues 31-35 (CDR-H1), 50-65 (CDR-H2), and 95-102 (CDR-H3). However, according to Chothia (Chothia, C. and Lesk, AMJ Mol. Biol., 196, 901-917 (1987)), the loop corresponding to CDR-H1 extends from residue 26 to residue 32. Therefore, as used herein, "CDR-H1" is intended to refer to residues 26-35, as described by the combination of the Kabat numbering system and Chothia's topological loop definition, unless otherwise indicated.
[0065] The CDRs of the light chain variable domain are located at residues 24-34 (CDR-L1), 50-56 (CDR-L2), and 89-97 (CDR-L3) according to the Kabat numbering system.
[0066] In addition to the CDR loop, there is a fourth loop between CDR-2 (CDR-L2 or CDR-H2) and CDR-3 (CDR-L3 or CDR-H3), which is formed by Framework 3 (FR3). In the Kabat numbering system, Framework 3 is defined as positions 66-94 of the heavy chain and positions 57-88 of the light chain.
[0067] In a preferred embodiment, the antibody comprises a light chain variable region comprising CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3, and a heavy chain variable region comprising CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6.
[0068] In another embodiment, the antibody comprises a light chain variable region comprising CDR-L1 containing SEQ ID NO: 62; CDR-L2 containing SEQ ID NO: 2; and CDR-L3 containing SEQ ID NO: 3; and a heavy chain variable region comprising CDR-H1 containing SEQ ID NO: 4; CDR-H2 containing SEQ ID NO: 5; and CDR-H3 containing SEQ ID NO: 6.
[0069] In another embodiment, the antibody comprises a light chain variable region comprising CDR-L1 containing SEQ ID NO: 63; CDR-L2 containing SEQ ID NO: 2; and CDR-L3 containing SEQ ID NO: 3; and a heavy chain variable region comprising CDR-H1 containing SEQ ID NO: 4; CDR-H2 containing SEQ ID NO: 5; and CDR-H3 containing SEQ ID NO: 6.
[0070] Antibodies containing such CDR sequences are particularly innovative because they provide antibodies with high affinity for KLK5, preferably human KLK5, high inhibitory activity on the biological function of KLK5, and high stability essential for manufacturability. For example, mutations from the motif "NS" to "ND" in CDR-L3, including SEQ ID NO: 3 (see SEQ ID NO: 15) (QQGYT NS NIINT;) dramatically reduces KLK5 affinity.
[0071] In a second aspect of the present invention, an antibody is provided that binds to a human KLK5 epitope comprising the amino acid residues Arg87(36), Ala107(56), Arg110(59), Lys111(60), Lys112(61), Val113(62), Val137(86), Lys138(87), Ser139(88), Ile140(89), Pro141(90), His142(91), Pro143(92), Tyr145(94), Ser146(95), and His147(96), with reference to Sequence ID No. 51. Preferably, the epitope is characterized by X-ray crystallography. The numbers in parentheses correspond to protease nomenclature.
[0072] In a preferred embodiment, an antibody that binds to kallikrein 5 (KLK5), with reference to SEQ ID NO: 51, which binds to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, comprises a variable light chain and a variable heavy chain, where a. The variable light chain includes SEQ ID NO: 1 or SEQ ID NO: 62 or SEQ ID NO: 63, preferably CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and b. The variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6.
[0073] Within this invention, the term "epitope" is used interchangeably for both conformational epitopes and linear epitopes. A conformational epitope consists of a disrupted portion of the primary amino acid sequence of an antigen, while a linear epitope is formed by a sequence of consecutive amino acids.
[0074] The epitopes can be identified in combination with any suitable epitope mapping method known in the art by any one of the antibodies provided by the present invention. An example of such a method is to screen peptides of various lengths derived from full-length KLK5 for binding to the antibodies of the present invention or their fragments, and to identify the smallest fragment that can specifically bind to the antibody containing the sequence of the epitope recognized by the antibody. The KLK5 peptides may be prepared synthetically or by proteolytic digestion of KLK5. The peptides that bind to the antibody can be identified, for example, by mass spectrometry. Methodologies such as NMR spectroscopy or X-ray crystallography can be used to identify the epitopes to which the antibodies bind. Typically, when epitope determination is performed by X-ray crystallography, amino acid residues of the antigen within 4 Å of the CDR are considered to be amino acid residues that are part of the epitope. Once the epitopes are identified, it is helpful to prepare fragments that bind to the antibodies of the present invention, and, if necessary, can be used as immunogens to obtain further antibodies that bind to the same epitope.
[0075] The epitopes described in the embodiments and models illustrating the present invention are preferably epitopes characterized by X-ray crystal structure analysis.
[0076] As used in the context of this disclosure, the term “antibody” includes the entire antibody and its functionally active fragments, i.e., molecules containing an antigen-binding domain that specifically binds to an antigen (also referred to as antigen-binding fragments). The characteristics described herein with respect to antibodies also apply to antigen-binding fragments unless otherwise indicated in the context. Antibodies may be monoclonal, polyvalent, multispecific, bispecific, fully human, humanized, or chimeric (or derived from them).
[0077] Whole antibodies, also commonly called "immunoglobulins (Ig)," are intact or full-length antibodies, that is, antibodies containing two heavy chains and two light chains, bound to each other by disulfide bonds, forming a characteristic Y-shaped three-dimensional structure. Classical native whole antibodies have monospecificity, binding to one antigen type, and bivalentity, possessing two independent antigen-binding domains. The terms "intact antibody," "full-length antibody," and "whole antibody" are used interchangeably to refer to monospecific bivalent antibodies having a structure similar to the native antibody structure containing the Fc region as defined herein.
[0078] Each light chain consists of a light chain variable region (abbreviated herein as VL) and a light chain constant region (CL). Each heavy chain consists of a heavy chain variable region (abbreviated herein as VH) and a heavy chain constant region (CH) consisting of three constant domains CH1, CH2, and CH3, or four constant domains CH1, CH2, CH3, and CH4, depending on the Ig class. The “class” of Ig or antibody refers to the type of constant region, including IgA, IgD, IgE, IgG, and IgM, some of which can be further divided into subclasses such as IgG1, IgG2, IgG3, and IgG4. The constant region of an antibody can mediate the binding of immunoglobulins to various cells of the immune system (e.g., effector cells) and host tissues or factors including the first component (Clq) of the classical complement system.
[0079] As used herein, the terms “constant region” or “constant domain” are used interchangeably to refer to the domain of an antibody located outside the variable region. The constant domain is identical in all antibodies of the same isotype, but differs from one isotype to another. Typically, the constant region of a heavy chain is formed from the N-terminus to the C-terminus as CH1-hinge-CH2-CH3-optionally CH4 and contains three or four constant domains.
[0080] The constant region domain of the antibody molecule of the present invention, if present, can be selected in consideration of the proposed function of the antibody, particularly any effector function that may be required. For example, the constant region domain may be a human IgA, IgD, IgE, IgG, or IgM domain. In particular, if the antibody is intended for therapeutic use and an effector function of the antibody is required, the human IgG constant region domains of the IgG1 and IgG3 isotypes may be used. Alternatively, if the antibody is intended for therapeutic purposes and an antibody effector function is not required, the IgG2 and IgG4 isotypes may be used. It will be understood that sequence variants of these constant region domains may also be used. For example, IgG4 in which the serine at position 241 (numbered according to the Kabat numbering system) is changed to proline, as described by Angal et al. (1993). A single amino acid substitution may be used to eliminate the heterogeneity of the chimeric mouse / human (IgG4) antibody observed during SDS-PAGE analysis (Mol Immunol 30, 105-108). This is referred to herein as IgG4P. This single amino acid substitution prevents the natural tendency for the heavy chain of the IgG4 molecule to be replaced, thus preventing the formation of a chimeric molecule.
[0081] The terms "Fc region," "Fc fragment," or simply "Fc" are used interchangeably to refer to the C-terminal region of an antibody, including the constant region of the antibody excluding the initial constant-region immunoglobulin domain. Therefore, Fc refers to the last two constant domains of IgA, IgD, and IgG, CH2 and CH3, or the last three constant domains of IgE and IgM, and the flexible hinges at the N-terminus of these domains. The human IgG1 heavy chain Fc region is defined herein as encompassing residue C226 to its carboxyl terminus, where numbering is by EU index, as in Kabat. In the context of human IgG1, the lower hinge refers to positions 226–236, the CH2 domain to positions 237–340, and the CH3 domain to positions 341–447, according to the EU index in Kabat. The corresponding Fc regions of other immunoglobulins can be identified by sequence alignment.
[0082] In the context of this disclosure, the constant region or Fc region, if present, may be native as defined above or may be modified in various ways, provided that it includes a functional FcR-binding domain, preferably a functional FcRn-binding domain. Preferably, a modified constant region or Fc region leads to improved functionality and / or pharmacokinetics. Modifications may include deletion of a specific portion of the Fc fragment. Furthermore, they may include various amino acid substitutions that can affect the biological properties of the antibody. Mutations to increase FcRn binding, and therefore in vivo half-life, may also exist. Modifications may further include modifications to the antibody's glycosylation profile. The native Fc fragment is glycosylated at the CH2 domain, and in each of the two heavy chains, there is an N-glycan bound to the asparagine residue at position 297 (Asn297). In the context of this disclosure, antibodies may be glycosylated, i.e., manipulated to have a specific glycosylation profile, thereby resulting in properties such as improved effector function or improved serum half-life.
[0083] Antibody antigen-binding fragments include single-chain antibodies (e.g., scFv and dsscFv), Fab, Fab', F(ab')2, Fv, single-domain antibodies, or nanobodies (e.g., VH or VL, or VHH or VNAR). Other antibody fragments for use in the present invention include the Fab and Fab' fragments described in international patent applications WO2011 / 117648, WO2005 / 003169, WO2005 / 003170, and WO2005 / 003171 (all incorporated herein by reference). Methods for creating and producing these antibody fragments are well known in the art (see, for example, Verma et al., 1998, Journal of Immunological Methods, 216, 165-181).
[0084] A typical “Fab' fragment” or “Fab'” as used herein comprises a heavy-chain and a light-chain pair, the heavy-chain comprising a variable region VH, a constant domain CH1, and a native or modified hinge region, and the light-chain comprising a variable region VL and a constant domain CL. Dimers of Fab' according to this disclosure create, for example, F(ab')2, in which dimerization may occur via a hinge.
[0085] As used herein, the term "single-domain antibody" refers to an antibody fragment consisting of a single monomeric variable antibody domain. Examples of single-domain antibodies include VH, VL, VHH, or V-NAR.
[0086] "Fv" refers to two variable domains, such as a congenerate pair or affinity maturation variable domain, i.e., a co-operating variable domain like the VH and VL pair.
[0087] As used herein, "single-stranded variable fragment" or "scFv" means a single-stranded variable fragment stabilized by a peptide linker between the VH variable domain and the VL variable domain.
[0088] As used herein, “disulfide-stabilized single-chain variable fragment” or “dsscFv” refers to a single-chain variable fragment stabilized by a peptide linker between the VH and VL variable domains and containing an interdomain disulfide bond between VH and VL. (See, for example, Weatherill et al., Protein Engineering, Design & Selection, 25(321-329), 2012, WO2007109254.)
[0089] The disulfide bond between the variable domains VH and VL is located between the following two residues (Kabat numbering is used in the following list unless otherwise indicated by the context) (Protein Science 6, 781-788 Zhu et al (1997); Weatherill et al., Protein Engineering, Design & Selection, 25 (321-329), 2012; J Biochem. 118, 825-831 Luo et al (1995); FEBS Letters 377 135-139 Young et al (1995); Proc. Natl. Acad. Sci. USA Vol. 90 pp. 7538-7542 Brinkmann et al (1993); Proteins 19, 35-47 Jung et al (1994) Biochemistry 29 1362-1367; Glockshuber et al (1990). When referring to Kabat numbering, the relevant reference is Kabat et al., 1991 (5th edition, Bethesda, Md), Sequences of Proteins of Immunological Interest, US Department of Health and Human Services, NIH, USA.
[0090] VH37+VL95C; VH44+VL100; VH44+VL105; VH45+VL87; VH55+VL101; VH100+VL50; • VH100b+VL4 VH98+VL46; VH101+VL46; • VH105+VL43, VH106+VL57; And, the position within a pair of variable regions within a molecule, or the corresponding position.
[0091] As used herein, the term “antibody” also includes monovalent antibodies, i.e., antibodies containing only one antigen-binding domain (for example, one-arm antibodies containing a full-length heavy chain and a full-length light chain linked together, also known as “half-antibodies”).
[0092] Furthermore, the term "antibody" also includes polyvalent antibodies that possess multiple specificities, such as bispecific antibodies, tripspecific antibodies, or multispecific antibodies.
[0093] As used herein, "multispecific" or "multispecific antibody" refers to an antibody described herein that has at least two binding domains, i.e., two or more binding domains, for example, two or three binding domains, and at least two binding domains independently bind to two different antigens or two different epitopes on the same antigen (also called multiple paratopes). Multispecific antibodies are generally monovalent for each specificity (antigen). The multispecific antibodies described herein include monovalent and polyvalent, for example, bivalent, trivalent, and tetravalent multispecific antibodies.
[0094] As used herein, "antigen-binding domain" refers to a part of an antibody, including part or all of one or more variable domains that specifically interact with a target antigen, such as a pair of variable domains VH and VL, either part or all of them. The binding domain may include a single-domain antibody. In one embodiment, each binding domain is monovalent. Preferably, each binding domain includes one or fewer VH and one VL.
[0095] In this technical field, various multispecific antibody formats are known. Although different classifications have been proposed, multispecific IgG antibody formats generally include, for example, bispecific IgG, IgG adducts, multispecific (e.g., bispecific) antibody fragments, multispecific (e.g., bispecific) fusion proteins, and multispecific (e.g., bispecific) antibody conjugates, as described, for example, Spiess et al., Mol Immunol. 67(2015):95-106.
[0096] Techniques for producing bispecific antibodies include, but are not limited to, CrossMab technology (Klein et al., Methods 154(2019)21-31), Knobs-in-holes engineering (e.g., WO1996027011, WO1998050431), DuoBody technology (e.g., WO2011131746), and Azymetric technology (e.g., WO2012058768). Further techniques for producing bispecific antibodies are described, for example, in Godar et al., 2018, Expert Opinion on Therapeutic Patents, 28:3, 251-276. Examples of bispecific antibodies include CrossMab antibodies, DAF (two-in-one), DAF (four-in-one), DutaMab, DT-IgG, knob-in-hole common LC, knob-in-hole assembly, charge pair, Fab-arm exchange, SEED body, Triomab, LUZ-Y, Fcab, κλ body, and orthogonal Fab.
[0097] Additive IgG typically contains full-length IgG designed by adding additional antigen-binding domains or antigen-binding fragments to the N-terminus and / or C-terminus of the heavy and / or light chains of IgG. Examples of such additional antigen-binding fragments include sdAb antibodies (e.g., VH or VL), Fv, scFv, dsscFv, Fab, and scFav. Examples of IgG antibody formats include DVD-IgG, IgG(H)-scFv, scFv-(H)IgG, IgG(L)-scFv, scFv-(L)IgG, IgG(L,H)-Fv, IgG(H)-V, V(H)-IgG, IgGC(L)-V, V(L)-IgG, KIH IgG-scFab, 2scFv-IgG, IgG-2scFv, scFv4-IgG, Zybody, and DVI-IgG (four-in-one), as described, for example, in Spiess et al., "Alternative molecular formats and therapeutic applications for bispecific antibodies." Mol Immunol. 67(2015):95-106.
[0098] Examples of multispecific antibody fragments include nanobody, nanobody-HAS, BiTE, diabody, DART, TandAb, scDiabody, sc-diabody-CH3, diabody-CH3, triplebody, miniantibody, minibody, tribiminibody, scFv-CH3 KIH, Fab-scFv, scFv-CH-CL-scFv, F(ab')2, F(ab')2-scFv2, scFv-KIH, Fab-scFv-Fc, tetravalent HCAb, scDiabody-Fc, diabody-FC, tandem scFv-Fc, and intrabody. For example, bispecific antibodies are described in Spiess et al., Mol Immunol. 67 (2015): 95-106.
[0099] Multispecific fusion proteins include Dock and Lock, ImmTAC, HSA body, scDiabody-HAS, and tandem scFv-toxin. Multispecific antibody conjugates include IgG-IgG, Cov-X body, and scFv1-PEG-scFv2.
[0100] Additional multispecific antibody formats are described, for example, in Brinkmann and Kontermann, mAbs, 9:2, 182-212 (2017), particularly in Figure 2, and include, for example, tandem scFv, triple-body, Fab-VHH, taFv-Fc, scFv4-Ig, scFv2-Fcab, and scFv4-IgG. Vibodies, tripodies, and methods for producing them are disclosed, for example, in WO99 / 37791.
[0101] The added IgG and added Fab are designed by adding at least one additional antigen-binding domain (e.g., two, three, or four additional antigen-binding domains), such as a single-domain antibody (VH or VL, or VHH, etc.), scFv, dsscFv, or dsFv, to the N-terminus and / or C-terminus of the heavy and / or light chain of the IgG or Fab, each comprising either the whole IgG or a Fab fragment. See, for example, WO2009 / 040562, WO2010035012, WO2011 / 030107, WO2011 / 061492, WO2011 / 061246 and WO2011 / 086091, all of which are incorporated herein by reference. In particular, the Fab-Fv format was first disclosed in WO2009 / 040562, and its disulfide-stabilized version, Fab-dsFv, was first disclosed in WO2010 / 035012. Single-linker Fab-dsFv, in which dsFv is connected to Fab via a single linker between either the VL or VH domain of Fv and the C-terminus of the LC or HC of Fab, was first disclosed in WO2014 / 096390, which is incorporated herein by reference. Additive IgG containing full-length IgG1, designed by adding dsFv to the C-terminus of the heavy or light chain of IgG, was first disclosed in WO2015 / 197789, which is incorporated herein by reference.
[0102] Alternatively, another multispecific format includes a Fab linked to two scFv or dsscFv, each scFv or dsscFv to which the same or different targets are linked (e.g., one scFv or dsscFv to bind a therapeutic target, and another scFv or dsscFv to bind albumin to increase its half-life). Such antibody fragments are described in WO2015 / 197772, which is incorporated herein by reference in its entirety. Another format includes a Fab linked to only one scFv or dsscFv, as described in WO2013 / 068571, which is incorporated herein by reference, and in Dave et al., Mabs, 8(7)1319-1335 (2016).
[0103] Other well-known formats of multispecific antibodies include: As used herein, a diabody refers to two Fv pairs, a first VH / VL pair, and a further VH / VL pair, which have two Fv linkers such that the VH of the first Fv is connected to the VL of the second Fv, and the VL of the first Fv is connected to the VH of the second Fv.
[0104] As used herein, a triabody refers to a format similar to a diabody, containing three Fvs and three inter-Fv linkers.
[0105] As used herein, a tetrabody refers to a format similar to a diabody, containing four Fvs and four inter-Fv linkers.
[0106] As used herein, a tandem scFv refers to at least two scFvs linked via a single linker, such that a single inter-Fv linker exists.
[0107] As used herein, tandem scFv-Fc refers to at least two tandem scFvs, each attached, for example, via a hinge, to the N-terminus of the CH2 domain of a constant region fragment-CH2CH3.
[0108] As used herein, Fab-Fv refers to an Fv fragment in which variable regions are added to the C-terminuses of both the heavy chain CH1 and the light chain CL. The format may be provided as a PEGylated version thereof.
[0109] The Fab'-Fv used herein is similar to FabFv, in which the Fab portion is replaced with Fab'. The format may also be provided as a PEGylated version thereof.
[0110] As used herein, Fab-dsFv refers to FabFv in which the added C-terminal variable region is stabilized by a disulfide bond within Fv. The format may be provided as a PEGylated version thereof.
[0111] The Fab-scFv used herein is a Fab molecule in which scFv is attached to the C-terminus of a light chain or heavy chain.
[0112] As used herein, Fab'-scFv is a Fab' molecule in which scFv is attached to the C-terminus of a light chain or heavy chain.
[0113] As used herein, DiFab refers to two Fab molecules linked via the C-terminus of a heavy chain.
[0114] As used herein, DiFab' refers to a molecule in which two Fab' molecules are linked at their hinge via one or more disulfide bonds.
[0115] The sc diabody used herein is a diabody containing an internal linker in the Fv, such that the molecule contains three linkers, with the VH and VL ends each linked to one of the variable regions of a further Fv pair, forming a typical scFv.
[0116] The sc diabody-Fc used herein consists of two sc diabodies, each attached, for example, via a hinge, to the N-terminus of the CH2 domain of a constant region fragment-CH2CH3.
[0117] As used herein, scFv-Fc-scFv refers to four scFv fragments, one attached to the N-terminus and one to the C-terminus of both the heavy and light chains of a -CH2CH3 fragment.
[0118] As used herein, sc diabody-CH3 refers to a configuration in which two sc diabody molecules are bonded to the CH3 domain, for example, via a hinge.
[0119] The IgG-scFv used herein is a full-length antibody having an scFv at the C-terminus of each of the heavy chains or each of the light chains.
[0120] The scFv-IgG used herein is a full-length antibody having scFv at the N-terminus of each of its heavy chains or each of its light chains.
[0121] The V-IgG used herein is a full-length antibody having a variable domain at the N-terminus of each of its heavy chains or each of its light chains.
[0122] The IgG-V used herein is a full-length antibody having a variable domain at the C-terminus of each of its heavy chains or each of its light chains.
[0123] DVD-Ig (also known as dual V-domain IgG) is a full-length antibody that has a total of four variable domains, one at the N-terminus of each heavy chain and one at the N-terminus of each light chain.
[0124] In one preferred embodiment, an antibody conjugates kallikrein 5 (KLK5), wherein the antibody inhibits or reduces the protease activity of KLK5, and the antibody comprises a variable light chain and a variable heavy chain. a. The variable light chain includes CDR-L1 containing SEQ ID NO: 1 or SEQ ID NO: 62 or SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and b. The variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6.
[0125] In another embodiment of the present invention, the antibody binds to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, with reference to SEQ ID NO: 51, to inhibit or reduce the protease activity of KLK5.
[0126] Within the scope of this invention, the term "inhibit" (and its grammatical variations) refers to the effect that the antibody according to the present invention has on the biological activity of KLK5. Preferably, the biological activity of KLK5 is protease activity, preferably serine protease activity. The effect is to completely or partially inhibit the serine protease activity of KLK5.
[0127] Without being constrained by theory, the antibody according to the present invention binds to KLK5 and can be thought of as follows: i) Inhibit (e.g., completely or partially) or reduce the protease activity (preferably serine protease activity) of KLK5; and / or ii) KLK5 binds when KLK5 is bound to LEKTI or a fragment of LEKTI, and / or iii) Does not compete with LEKTI or LEKTI fragments for binding with KLK5, and / or iv) To form a complex with KLK5 bound to LEKTI or a fragment of LEKTI (i.e., to form a complex comprising the antibody of the present invention, KLK5, and LEKTI or a fragment of LEKTI).
[0128] In this invention, the term "LEKTI" refers to a lymphoepithelial Cazal-type related inhibitor consisting of 15 domains, which is cleaved into smaller functional fragments by proprotein-converting enzymes such as proteasephrine, yielding LEKTI fragments containing one or more domains. These fragments are secreted into the extracellular space and can form inhibitory complexes with proteases such as KLK5. LEKTI is also known as the serine protease inhibitor Cazal-type 5 (SPINK5), and in humans, it is a protein encoded by the SPINK5 gene. In humans, three splice variants of LEKTI mRNA are generated, forming long and short isoforms of the full-length protein, differing only in their COOH-terminal regions.
[0129] SPINK5 is a member of a cluster of gene families located on chromosome 5q32 that encode serine protease inhibitors. This also includes other epidermal proteins, SPINK6 and LEKTI-2 (SPINK9), which are included in the present invention under the term "LEKTI".
[0130] The term "form a complex" (and its grammatical variations) means that the antibody according to the present invention can bind to KLK5 if KLK5 is already bound to another protein, such as LEKTI or a fragment of LEKTI, or to another antibody or antibody fragment such as Fab.
[0131] An advantage associated with an antibody that can bind to KLK5, inhibit its biological (i.e., protease) activity, and does not compete with LEKTI or LEKTI fragments for binding to KLK5, may be that it can inhibit KLK5 activity under conditions where LEKTI dissociates from the KLK5:LEKTI complex, such as in environments that become progressively acidic from the basal layer to the stratum corneum of the epidermis.
[0132] An antibody that "competes," "cross-blocks," "is cross-blocked," or "bounds to the same epitope on human KLK5" (and grammatical variations thereof) with the antibody of the present invention means an antibody that cannot form a complex with KLK5 bound to the antibody of the present invention.
[0133] In one embodiment of the present invention, the LEKTI fragment is a human LEKTI domain 5 containing amino acids 1 to 64 of SEQ ID NO: 54, or a LEKTI domain 8 containing amino acids 1 to 71 of SEQ ID NO: 61.
[0134] Therefore, in a preferred embodiment, the antibody that binds to kallikrein 5 (KLK5) is: i. KLK5 binds to KLK5 when it is bound to LEKTI or a fragment of LEKTI; ii. Does not compete with LEKTI or LEKTI fragments for binding with KLK5, and / or iii. Forms a complex with LEKTI or KLK5 bound to a fragment of LEKTI; Here, preferably, the LEKTI fragment is a human LEKTI domain 5 containing amino acids 1-64 of SEQ ID NO: 54 or a LEKTI domain 8 containing amino acids 1-71 of SEQ ID NO: 61, where the antibody comprises a variable light chain and a variable heavy chain, where a. The variable light chain includes CDR-L1 containing SEQ ID NO: 1 or SEQ ID NO: 62 or SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and b. The variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6.
[0135] In another embodiment of the present invention, the antibody binds to KLK5, preferably human KLK5, where the antibody binds to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146 and His147, and: i. When KLK5 is bound to LEKTI or a fragment of LEKTI, it binds to KLK5; ii. Does not compete with LEKTI or LEKTI fragments for binding with KLK5, and / or iii. Forms a complex with LEKTI or KLK5 bound to a fragment of LEKTI; Here, preferably, the LEKTI fragment is a human LEKTI domain 5 containing amino acids 1-64 of SEQ ID NO: 54, or a LEKTI domain 8 containing amino acids 1-71 of SEQ ID NO: 61.
[0136] In another embodiment, the antibody according to the present invention preferably binds to human KLK5 containing SEQ ID NO: 53, and also binds to cynoKLK5, preferably cynoKLK5 containing SEQ ID NO: 60.
[0137] In another embodiment, the antibody according to the present invention does not bind to human or cynomolgus (cyno) kallikrein 2 (KLK2); or human or cynokallikrein 4 (KLK4); or human or cynokallikrein 7 (KLK7). That is, the antibody is specific to KLK5 and not specific to other kallikreins.
[0138] As used herein, "specific" means an antibody that recognizes only the antigen to which it is specific, or an antibody that has a significantly higher binding affinity, e.g., at least 5, 6, 7, 8, 9, 10 times higher binding affinity, for the antigen (such as KLK5) to which it is specific compared to binding to antigens to which it is non-specific (such as other kallikreins).
[0139] In one embodiment, according to the present invention, the binding of the antibody to KLK5 is characterized by a dissociation constant (K D ) of about 500 pM or less, preferably about 172 pM.
[0140] As used herein, the term "K D " refers to the dissociation constant obtained from the ratio of Kd to Ka (i.e., Kd / Ka) and is expressed as molar concentration (M). Kd and Ka refer to the dissociation rate and association rate, respectively, of a particular antigen-antibody (or its antigen-binding fragment) interaction. The K D value of an antibody can be determined using methods well established in the art. Methods for determining the K D of an antibody include using recombinant KLK5 or an appropriate fusion protein / polypeptide thereof, for example, a method using surface plasmon resonance such as the Biacore® system as described in the examples herein. In one example, the affinity is measured using recombinant KLK5 as described in the examples herein. In the case of surface plasmon resonance, the target molecule is immobilized on a solid phase and exposed to the ligand in the mobile phase flowing along the flow cell. When the ligand binds to the immobilized target, the local refractive index changes and the SPR angle changes. This change can be monitored in real time by detecting the change in the intensity of the reflected light. By analyzing the rate of change of the SPR signal, the apparent rate constants of the association and dissociation phases of the binding reaction can be obtained. The apparent equilibrium constant (affinity) is obtained from the ratio of these values (see, for example, Wolff et al, Cancer Res. 53:2560-65 (1993)).
[0141] In one embodiment, the antibody according to the present invention has a higher binding affinity to human KLK5 than cyno or mouse KLK5 (i.e., a lower K). D ) has. The term "affinity" refers to the strength of the interaction between the antibody and KLK5.
[0142] In one embodiment, the antibody according to the present invention blocks KLK5 protease activity with an IC5 level of less than 800 pM. 50 Preferably, the antibody according to the present invention has an IC5 of less than 18 pM for blocking KLK5 protease activity in the in vitro assay described herein. 50 It has.
[0143] ICs used in this specification 50 The term IC refers to the maximum inhibitory concentration at half value, which is a measure of the effectiveness of a substance, such as an antibody, in inhibiting a specific biological or biochemical function (in this invention, the protease activity of KLK5). 50 This is a quantitative indicator that shows how much of a particular substance is needed to inhibit a certain biological process, function, or activity by half.
[0144] The antibody according to the present invention may include the framework region of the animal from which the antibody was produced. For example, if the antibody was produced in a rabbit, it would include the framework region of a rabbit antibody, such as an antibody containing the CDR defined above, a light chain variable region according to SEQ ID NO: 7 (this nucleotide sequence is shown in SEQ ID NO: 8 or nucleotides 1-330 of SEQ ID NO: 8), and a heavy chain variable region according to SEQ ID NO: 9 (this nucleotide sequence is shown in SEQ ID NO: 10).
[0145] In one embodiment, the antibody may be a chimeric or humanized antibody.
[0146] Chimeric antibodies are typically produced using recombinant DNA methods. The DNA may be modified by using the coding sequences of the human light and heavy chain constant regions in place of the corresponding non-human (e.g., mouse or rabbit) H and L constant regions (Morrison; PNAS 81, 6851 (1984)).
[0147] Human antibodies include a heavy or light chain variable region or a full-length heavy or light chain that is a "product of" or "derived from" a specific germline sequence, if the variable region or full-length chain of the antibody is obtained from a system using a human germline immunoglobulin gene. Such systems include immunizing transgenic mice possessing human immunoglobulin genes with a target antigen, or screening a human immunoglobulin gene library displayed on phages with a target antigen. Human antibodies or fragments thereof that are a "product of" or "derived from" a human germline immunoglobulin sequence can be identified in this way by comparing the amino acid sequence of the human antibody with the amino acid sequence of the human germline immunoglobulin and selecting the human germline immunoglobulin sequence that is closest to the sequence of the human antibody (i.e., has the greatest identity %). Human antibodies that are a "product of" or "derived from" a specific human germline immunoglobulin sequence may include amino acid differences compared to the germline sequence, for example, by the intentional introduction of native somatic mutations or site-directed mutations. However, selected human antibodies typically have at least 90% amino acid sequence identity with the amino acid sequence encoded by the human germline immunoglobulin gene and contain amino acid residues that identify the human antibody as human when compared to germline immunoglobulin amino acid sequences of other species (e.g., mouse germline sequences). In certain embodiments, human antibodies may have at least 60%, 70%, 80%, 90%, or at least 95%, and even at least 96%, 97%, 98%, or 99% amino acid sequence identity with the amino acid sequence encoded by the germline immunoglobulin gene. Typically, a human antibody derived from a particular human germline sequence will show only 10 or fewer amino acid differences from the amino acid sequence encoded by the human germline immunoglobulin gene. In certain embodiments, human antibodies may show 5 or fewer amino acid differences from the amino acid sequence encoded by the germline immunoglobulin gene, or 4, 3, 2, or 1 or fewer amino acid differences.
[0148] Human antibodies can be produced by numerous methods known to those skilled in the art. Human antibodies can be produced by hybridoma using human myeloma or mouse-human heterozygous myeloma cell lines (Kozbor, J Immunol; (1984) 133:3001; Brodeur, Monoclonal Isolated Antibody Production Techniques and Applications, pp51-63, Marcel Dekker Inc, 1987). Alternative methods include the use of phage libraries and transgenic mice, both of which utilize the human variable region repertoire (Winter G; (1994) Annu Rev Immunol 12:433-455, Green LL, (1999) J Immunol Methods 231:1 1-23).
[0149] In a preferred embodiment of the present invention, the antibody according to the present invention is humanized.
[0150] Antibodies according to the present invention can be obtained using any suitable method known in the art. Antibodies that specifically recognize KLK5 can be produced using KLK5 (including its fusion protein) and cells expressing said KLK5 (recombinant or native). Various forms of KLK5, as described herein, can be used.
[0151] In one embodiment, the antigen used is active KLK5, which is preferably manufactured as described in the following examples.
[0152] KLK5 or its fragments for use in immunizing a host may be prepared from genetically engineered host cells, including expression systems, by processes well known in the art, or they may be recovered from natural biological sources. KLK5 or its fragments may, in some cases, be part of a larger protein, such as a fusion protein fused to an affinity tag, for example.
[0153] Antibodies produced against KLK5 according to the present invention can be obtained using well-known, routine protocols by administering KLK5 to animals, preferably non-human animals, when animal immunization is required. (See, for example, Handbook of Experimental Immunology, DM Weir (ed.), Vol 4, Blackwell Scientific Publishers, Oxford, England, 1986). Many warm-blooded animals, such as rabbits, mice, rats, sheep, cattle, camels, or pigs, can be immunized. However, mice, rabbits, pigs, and rats are generally the most suitable.
[0154] Monoclonal antibodies can be produced by any method known in the art, such as the hybridoma method (Kohler & Milstein, 1975, Nature, 256:495-497), the trioma method, the human B-cell hybridoma method (Kozbor et al, 1983, Immunology Today, 4:72), and the EBV hybridoma method (Cole et al, Monoclonal Antibodies and Cancer Therapy, pp77-96, Alan R Liss, Inc, 1985).
[0155] Furthermore, antibodies for use in the present invention can also be produced using a single-lymphocyte antibody method, for example, by cloning and expressing immunoglobulin variable region cDNA generated from a single lymphocyte selected to produce a specific antibody, as described in Babcook, J. et al., 1996, Proc. Natl. Acad. Sci. USA 93(15):7843-7848l; WO92 / 02551; WO2004 / 051268 and WO2004 / 106377.
[0156] Antibody screening can be performed using assays that measure binding to KLK5 and / or assays that measure the inhibition of the biological activity of KLK5, preferably KLK5 protease activity.
[0157] In one preferred embodiment, the antibody conjugates kallikrein 5 (KLK5), wherein the antibody is a chimeric or humanized antibody; preferably a humanized antibody; and the antibody comprises a variable light chain and a variable heavy chain, where, a. The variable light chain includes SEQ ID NO: 1 or SEQ ID NO: 62 or SEQ ID NO: 63, preferably CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3, and b. The variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6.
[0158] In another embodiment of the present invention, an antibody conjugates to KLK5, wherein the antibody conjugates to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, with reference to SEQ ID NO: 51; wherein the antibody comprises a variable light chain and a variable heavy chain; a. Light chain variable chains include the following: i. A CDR-L1 containing SEQ ID NO: 1, SEQ ID NO: 62, or SEQ ID NO: 63, preferably SEQ ID NO: 1; ii. CDR-L2 containing Sequence ID No. 2, and iii. CDR-L3 containing Sequence ID No. 3; and b. The heavy chain variable region includes the following: iv. CDR-H1 containing Sequence ID No. 4; v. CDR-H2 containing Sequence ID No. 5, and vi. CDR-H3 containing Sequence ID No. 6, Here, the antibody is a chimeric or humanized antibody; preferably, the antibody is a humanized antibody.
[0159] In another preferred embodiment, a humanized antibody that binds to KLK5 comprises a variable light chain and a variable heavy chain, where a. Light chain variable chains include the following: i. A CDR-L1 containing SEQ ID NO: 1, SEQ ID NO: 62, or SEQ ID NO: 63, preferably SEQ ID NO: 1; ii. CDR-L2 containing Sequence ID No. 2, and iii. CDR-L3 containing Sequence ID No. 3; and b. The heavy chain variable region includes the following: iv. CDR-H1 containing Sequence ID No. 4; v. CDR-H2 containing Sequence ID No. 5, and vi. CDR-H3 containing Sequence ID No. 6, Here, the antibody inhibits or reduces the protease activity of KLK5 and / or binds to KLK5 when KLK5 is bound to LEKTI or a fragment of LEKTI; and / or does not compete with LEKTI or a fragment of LEKTI for binding to KLK5 and / or forms a complex with KLK5 bound to LEKTI or a fragment of LEKTI.
[0160] More preferably, the humanized antibody is conjugated to an epitope of human KLK5 comprising Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146 and His147, with reference to SEQ ID NO: 51; where the antibody comprises a variable light chain and a variable heavy chain; where, a. Light chain variable chains include the following: i. A CDR-L1 containing SEQ ID NO: 1, SEQ ID NO: 62, or SEQ ID NO: 63, preferably SEQ ID NO: 1; ii. CDR-L2 containing Sequence ID No. 2, and iii. CDR-L3 containing Sequence ID No. 3; and b. The heavy chain variable region includes the following: i. CDR-H1 containing Sequence ID No. 4; ii. CDR-H2 containing Sequence ID No. 5, and iii. CDR-H3 containing Sequence ID No. 6, Here, the antibody inhibits or reduces the protease activity of KLK5 and / or binds to KLK5 when KLK5 is bound to LEKTI or a fragment of LEKTI; and / or does not compete with LEKTI or a fragment of LEKTI for binding to KLK5 and / or forms a complex with KLK5 bound to LEKTI or a fragment of LEKTI.
[0161] As used herein, the term “humanized” antibody means an antibody whose heavy chain and / or light chain comprises one or more CDRs (including, optionally, one or more modified CDRs) from a donor antibody (e.g., a non-human antibody such as a mouse or rabbit monoclonal antibody) grafted onto the heavy chain and / or light chain variable region framework of an acceptor antibody (e.g., a human antibody). For a review, see Vaughan et al., Nature Biotechnology, 16, 535–539, 1998. In one embodiment, rather than the entire CDR being transferred, only one or more specificity-determining residues from any one of the CDRs described herein above are transferred to the human antibody framework (see, for example, Kashmiri et al., 2005, Methods, 36, 25–34). In another embodiment, only specificity-determining residues from one or more of the CDRs described herein above are transferred to the human antibody framework. In yet another embodiment, only specificity-determining residues from each of the CDRs described herein above are transferred to the human antibody framework.
[0162] When grafting CDRs, any suitable acceptor variable region framework sequence, including mouse, primate, and human framework regions, can be used, taking into account the class / type of the donor antibody from which the CDR originates.
[0163] Preferably, the humanized antibody according to the present invention has a variable domain that includes not only a human acceptor framework region but also one or more CDRs specifically provided herein. Thus, in one embodiment, a blocking humanized antibody that binds KLK5, preferably human KLK5, is provided, where the variable domain includes a human acceptor framework region and a non-human donor CDR.
[0164] Examples of human frameworks that can be used in this invention include KOL, NEWM, REI, EU, TUR, TEI, LAY, and POM (Kabat et al., cited above). For example, KOL and NEWM can be used in the heavy chain, REI can be used in the light chain, and EU, LAY, and POM can be used in both the heavy and light chains. Human germline sequences may also be used. These are available at http: / / www.imgt.org / .
[0165] In the humanized antibody according to the present invention, the acceptor heavy chain and light chain do not necessarily have to originate from the same antibody, and may optionally include a composite chain having framework regions derived from different chains.
[0166] A preferred framework region for the light chain of a humanized antibody according to the present invention is derived from the human germline IGKV1-6 JK4 having SEQ ID NO: 47, the nucleotide sequence of which is shown in SEQ ID NO: 48.
[0167] A preferred framework region for the heavy chain of a humanized antibody or its antigen-binding fragment according to the present invention is derived from human germline IGHV4-4 JH4 having a sequence as shown in SEQ ID NO: 49, the nucleotide sequence of which is shown in SEQ ID NO: 50.
[0168] Therefore, in one embodiment, a humanized antibody that binds to KLK5 is provided, wherein the antibody comprises a variable light chain and a variable heavy chain. a. Light chain variable chains include the following: i. CDR-L1 containing SEQ ID NO: 1, SEQ ID NO: 62, or SEQ ID NO: 63, preferably SEQ ID NO: 1; and ii. CDR-L2 containing Sequence ID No. 2; and iii. CDR-L3 containing Sequence ID No. 3; and b. The heavy chain variable region includes the following: i. CDR-H1 containing Sequence ID No. 4; and ii. CDR-H2 containing Sequence ID No. 5, and iii. CDR-H3 containing Sequence ID No. 6, Here, the light chain framework region is derived from human germline IGKV1-6 JK4, including SEQ ID NO: 47; and the heavy chain framework region is derived from human germline IGHV4-4 JH4, including SEQ ID NO: 49. Preferably, the antibody inhibits or reduces the protease activity of KLK5 and / or binds to KLK5 when KLK5 is bound to LEKTI or a fragment of LEKTI; and / or does not compete with LEKTI or a fragment of LEKTI for binding to KLK5 and / or forms a complex with KLK5 bound to LEKTI or a fragment of LEKTI.
[0169] In another embodiment, a humanized antibody conjugating to KLK5 is provided, where the antibody conjugates to an epitope of human KLK5 comprising Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146 and His147, with reference to SEQ ID NO: 51; where the antibody comprises a variable light chain and a variable heavy chain; where, a. Light chain variable chains include the following: i. CDR-L1 containing SEQ ID NO: 1, SEQ ID NO: 62, or SEQ ID NO: 63, preferably SEQ ID NO: 1; and ii. CDR-L2 containing Sequence ID No. 2; and iii. CDR-L3 containing Sequence ID No. 3; and b. The heavy chain variable region includes the following: i. CDR-H1 containing Sequence ID No. 4; and ii. CDR-H2 containing Sequence ID No. 5, and iii. CDR-H3 containing Sequence ID No. 6, Here, the light chain framework region is derived from human germline IGKV1-6 JK4, including SEQ ID NO: 47; and the heavy chain framework region is derived from human germline IGHV4-4 JH4, including SEQ ID NO: 49. Preferably, the antibody inhibits or reduces the protease activity of KLK5 and / or binds to KLK5 when KLK5 is bound to LEKTI or a fragment of LEKTI; and / or does not compete with LEKTI or a fragment of LEKTI for binding to KLK5 and / or forms a complex with KLK5 bound to LEKTI or a fragment of LEKTI.
[0170] In the humanized antibody according to the present invention, the framework region does not have to have the exact same sequence as the acceptor antibody. For example, abnormal residues may be replaced with residues that occur more frequently for that acceptor chain class or type. Alternatively, selected residues in the acceptor framework region may be modified to correspond to residues found at the same position in the donor antibody (see Reichmann et al., 1998, Nature, 332, 323–324). Such modifications should be kept to the minimum necessary to restore the affinity of the donor antibody. A protocol for selecting residues in the acceptor framework region that may need to be modified is described in WO91 / 09967 (which is incorporated herein by reference).
[0171] Therefore, in one embodiment, one, two, three, four, five, six, seven, or eight residues in the framework are replaced with alternative amino acid residues.
[0172] Accordingly, in one embodiment, a humanized antibody according to the present invention is provided in which the residues at positions 2 and / or 3 and / or 63 of the variable light chain (see SEQ ID NO: 47 or SEQ ID NO: 15) are donor residues. Preferably, the residue at position 2 of the variable light chain is tyrosine, and the residue at position 3 of the variable light chain is aspartic acid. In some embodiments, the residue at position 63 of the variable light chain is lysine.
[0173] In another embodiment, a humanized antibody is provided in which at least one residue at each of the 68th, 72nd, 74th, 77th, and 79th positions of the variable heavy chain (see SEQ ID NO: 49; or 67th, 71st, 73rd, 76th, and 78th positions, as referred to SEQ ID NO: 39) is a donor residue.
[0174] Preferably, the residue at position 72 of the variable heavy chain is glutamine, the residue at position 74 is serine, and the residue at position 79 is valine. In some embodiments, the residue at position 68 of the variable heavy chain is phenylalanine, and / or the residue at position 77 is threonine.
[0175] In one preferred embodiment, the humanized antibody is bound to KLK5, where the humanized antibody comprises: - A light chain variable region including sequence numbers 11, 15, 19, or 23, and a heavy chain variable region including sequence numbers 27, 31, 35, 39, or 43; or - A light chain variable region including SEQ ID NO: 15, wherein the amino acid residue at position 24 is arginine (Arg; R) or lysine (Lys; K), and a heavy chain variable region including SEQ ID NO: 27, 31, 35, 39, or 43. Preferably, the antibody inhibits or reduces the protease activity of KLK5 and / or binds to KLK5 when KLK5 is bound to LEKTI or a fragment of LEKTI; and / or does not compete with LEKTI or a fragment of LEKTI for binding to KLK5 and / or forms a complex with KLK5 bound to LEKTI or a fragment of LEKTI.
[0176] In another embodiment, a humanized antibody conjugating to KLK5 is provided, where the antibody conjugates to an epitope of human KLK5 comprising Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, as referred to in SEQ ID NO: 51; where the antibody comprises: - A light chain variable region including sequence numbers 11, 15, 19, or 23, and a heavy chain variable region including sequence numbers 27, 31, 35, 39, or 43; or - A light chain variable region including SEQ ID NO: 15, wherein the amino acid residue at position 24 is arginine (Arg;R) or lysine (Lys;K), and a heavy chain variable region including SEQ ID NO: 27, 31, 35, 39, or 43.
[0177] Preferably, the antibody inhibits or reduces the protease activity of KLK5 and / or binds to KLK5 when KLK5 is bound to LEKTI or a fragment of LEKTI; and / or does not compete with LEKTI or a fragment of LEKTI for binding to KLK5; and / or forms a complex with KLK5 bound to LEKTI or a fragment of LEKTI.
[0178] In a preferred embodiment of the present invention, the antibody includes a light chain variable region containing SEQ ID NO: 15 and a heavy chain variable region containing SEQ ID NO: 39.
[0179] More preferably, the humanized antibody binds to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146 and His147, with reference to SEQ ID NO: 51, wherein the antibody comprises a light chain variable region comprising SEQ ID NO: 15 and a heavy chain variable region comprising SEQ ID NO: 39.
[0180] More preferably, the humanized antibody inhibits or reduces the protease activity of KLK5 and / or binds to KLK5 when KLK5 is bound to LEKTI or a fragment of LEKTI; and / or does not compete with LEKTI or a fragment of LEKTI for binding to KLK5 and / or forms a complex with KLK5 bound to LEKTI or a fragment of LEKTI.
[0181] In one embodiment, the present invention provides an antibody comprising a sequence that is 80% similar or identical, for example 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% similar to the sequences disclosed herein, over a portion or all of a related sequence, such as a variable domain sequence, a CDR sequence, or a variable domain sequence excluding a CDR. In one embodiment, the related sequence is SEQ ID NO: 15. In one embodiment, the related sequence is SEQ ID NO: 39.
[0182] In one embodiment, the antibody that binds to KLK5 comprises a light chain and a heavy chain, wherein the variable light chain comprises a sequence having at least 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identity or similarity to the sequence contained in SEQ ID NO: 15, and / or the variable heavy chain comprises a sequence having at least 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identity or similarity to the sequence contained in SEQ ID NO: 39.
[0183] In one embodiment, the antibody that binds to KLK5 contains a light chain that is at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% similar to or identical to the sequence given in SEQ ID NO: 15, but the antibody has the sequence contained in SEQ ID NO: 1 (or SEQ ID NO: 62 or 63) for CDR-L1, the sequence contained in SEQ ID NO: 2 for CDR-L2, and the sequence contained in SEQ ID NO: 3 for CDR-L3.
[0184] As used herein, “identity,” “same,” or its grammatical variation thereof, indicates that at any particular position in a aligned sequence, amino acid residues are identical between sequences. As used herein, “similarity,” “similarity,” or its grammatical variation thereof, indicates that at any particular position in a aligned sequence, amino acid residues are of similar type between sequences. For example, leucine may be substituted for isoleucine or valine. Other amino acids that are often substituted for each other include, but are not limited to, the following: - Phenylalanine, tyrosine, and tryptophan (amino acids with aromatic side chains); - Lysine, arginine, and histidine (amino acids with basic side chains); - Aspartic acid and glutamic acid (amino acids with acidic side chains); - Asparagine and glutamine (amino acids with amide side chains); and - Cysteine and methionine (amino acids with sulfur-containing side chains).
[0185] The degree of identity or similarity can be easily calculated (Computational Molecular Biology, Lesk, AM, ed., Oxford University Press, New York, 1988; Biocomputing. Informatics and Genome Projects, Smith, DW, ed., Academic Press, New York, 1993; Computer Analysis of Sequence Data, Part 1, Griffin, AM, and Griffin, HG, eds., Humana Press, New Jersey, 1994; Sequence Analysis in Molecular Biology, von Heinje, G., Academic Press, 1987; Sequence Analysis Primer, Gribskov, M. and Devereux, J., eds., M Stockton Press, New York, 1991; BLAST™ software available from NCBI (Altschul, SF et al, 1990, J.Mol.Biol.215:403-410; Gish, W.& States,DJ1993,Nature Genet.3:266-272.Madden,TLet al.,1996,Meth.Enzymol.266:131-141;Altschul,SFet al.,1997,Nucleic Acids Res.25:3389-3402;Zhang, J.& Madden,TL1997,Genome Res.7:649-656,).
[0186] In one embodiment, the antibody is a full-length antibody, preferably selected from IgG1 and IgG4 or IgG4P.
[0187] Therefore, the present invention provides a full-length humanized antibody which is conjugated to KLK5 and comprises the following: a. Light chain variable region including the following: i. CDR-L1 containing Sequence ID No. 1; ii. CDR-L2 containing Sequence ID No. 2, and iii. CDR-L3 containing Sequence ID No. 3; and b. Heavy chain variable region including the following: iv. CDR-H1 containing Sequence ID No. 4; v. CDR-H2 containing SEQ ID NO: 5, and vi. CDR-H3 containing sequence number 6.
[0188] Preferably, the full-length humanized antibody binds to a human KLK5 epitope comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, as referred to in SEQ ID NO: 51, where the antibody is an IgG4P isoform.
[0189] In another embodiment, with reference to SEQ ID NO: 51, we provide a full-length humanized antibody that binds to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, wherein the antibody is an IgG4P isoform.
[0190] Furthermore, those skilled in the art will understand that antibodies can undergo various post-translational modifications. The type and extent of these modifications often depend on the host cell line used to express the antibody, as well as the culture conditions. Such modifications may include variations of glycosylation, methionine oxidation, diketopiperazine formation, aspartate isomerization, and asparagine deamidation. A frequent modification is the loss of carboxyl-terminal basic residues (such as lysine or arginine) due to the action of carboxypeptidases (as described in Harris, RJ. Journal of Chromatography 705:129-134, 1995). Consequently, C-terminal lysine may be absent from the antibody heavy chain.
[0191] In one embodiment, the C-terminal amino acid from the antibody is cleaved during post-translational modification.
[0192] In one embodiment, the N-terminal amino acid from the antibody is cleaved during post-translational modification.
[0193] In one preferred embodiment, the antibody that binds to KLK5 is a full-length antibody comprising a light chain variable region including SEQ ID NO: 15 and a heavy chain variable region including SEQ ID NO: 39. Preferably, the antibody binds to a human KLK5 epitope comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, with reference to SEQ ID NO: 51.
[0194] In another embodiment, the antibody that binds to KLK5 is a full-length IgG4 antibody comprising a light chain containing SEQ ID NO: 17 and a heavy chain containing SEQ ID NO: 41. Preferably, the antibody binds to a human KLK5 epitope comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146 and His147, with reference to SEQ ID NO: 51.
[0195] In yet another embodiment, the antibody is a Fab' fragment comprising a light chain variable region containing SEQ ID NO: 15 and a heavy chain variable region containing SEQ ID NO: 39.
[0196] In another embodiment, the antibody comprises a light chain variable region containing SEQ ID NO: 15 and a heavy chain variable region containing SEQ ID NO: 27, 31, 35, 39, or 43. For example, the antibody is a full-length IgG4 antibody comprising a light chain variable region containing SEQ ID NO: 15 and a heavy chain variable region containing SEQ ID NO: 27, 31, 35, 39, or 43, preferably SEQ ID NO: 39. In one embodiment, the amino acid glutamine 24 (Gln;Q) referenced to SEQ ID NO: 15 is arginine (Arg;R)Q24R or lysine (Lys;K)Q24K.
[0197] In another embodiment, the antibody is a full-length IgG4 antibody comprising a light chain variable region containing SEQ ID NO: 11 and a heavy chain variable region containing SEQ ID NO: 27, 31, 35, 39, or 43. In yet another embodiment, the antibody is a Fab' fragment comprising a light chain variable region according to SEQ ID NO: 11 and a heavy chain variable region containing SEQ ID NO: 27, 31, 35, 39, or 43.
[0198] In another embodiment, the antibody is a full-length IgG4 antibody comprising a light chain variable region according to SEQ ID NO: 19 and a heavy chain variable region comprising SEQ ID NO: 27, 31, 35, 39, or 43. In another embodiment, the antibody is a Fab' fragment comprising a light chain variable region according to SEQ ID NO: 19 and a heavy chain variable region comprising SEQ ID NO: 27, 31, 35, 39, or 43.
[0199] In another embodiment, the antibody is a full-length IgG4 antibody comprising a light chain variable region according to SEQ ID NO: 23 and a heavy chain variable region including SEQ ID NO: 27, 31, 35, 39, or 43.
[0200] In another embodiment, the antibody is a Fab' fragment comprising a lightly variable region according to SEQ ID NO: 23 and a heavily variable region including SEQ ID NO: 27, 31, 35, 39, or 43.
[0201] In another embodiment, the antibody that binds to KLK5 is a full-length IgG4 antibody comprising: 1. A light chain containing SEQ ID NO: 13, and a heavy chain containing SEQ ID NO: 29, 33, 37, 41, or 45; or 2. A light chain containing SEQ ID NO: 17, and a heavy chain containing SEQ ID NO: 29, 33, 37, 41, or 45; or 3. A light chain containing SEQ ID NO: 17, where glutamine 24 (Gln;Q) is arginine (Arg;R)Q24R or lysine (Lys;K)Q24K, and a heavy chain containing SEQ ID NO: 29 or 33 or 37 or 41 or 45; or 4. A light chain containing SEQ ID NO: 21, and a heavy chain containing SEQ ID NO: 29, 33, 37, 41, or 45; or 5. A light chain containing SEQ ID NO: 25, and a heavy chain containing SEQ ID NO: 29, 33, 37, 41, or 45.
[0202] Preferably, the antibody binds to a human KLK5 epitope containing the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, as referred to in SEQ ID NO: 51.
[0203] In one preferred embodiment, the antibody that binds to KLK5 is a full-length IgG4 antibody comprising a light chain containing SEQ ID NO: 17 and a heavy chain containing SEQ ID NO: 41; where the antibody binds to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, with reference to SEQ ID NO: 51.
[0204] The present invention also provides the antibody described above, which forms a complex with KLK5 conjugated to another antibody, preferably human KLK5, wherein this other antibody includes: 1. Variable light chains including CDR-L1 containing SEQ ID NO: 68, CDR-L2 containing SEQ ID NO: 69, and CDR-L3 containing SEQ ID NO: 70; and variable heavy chains including CDR-H1 containing SEQ ID NO: 71, CDR-H2 containing SEQ ID NO: 72, and CDR-H3 containing SEQ ID NO: 73; and / or 2. A variable light chain containing SEQ ID NO: 74, and a variable heavy chain containing SEQ ID NO: 76; and / or 3. A variable light chain encoded by a nucleotide containing SEQ ID NO: 75, and a variable heavy chain encoded by a nucleotide containing SEQ ID NO: 77.
[0205] In one embodiment, the antibody that binds to KLK5 preferably binds to a human KLK5 epitope comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, with reference to SEQ ID NO: 51, and the antibody comprises the following: 1. Variable light chain and variable heavy chain, where the variable light chain includes CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. Variable light chains containing sequence numbers 7, 11, 15, 19, or 23; and variable heavy chains containing sequence numbers 9, 27, 31, 35, 39, or 43; Here, the antibody forms a complex with KLK5 conjugated to another antibody, preferably human KLK5, and this other antibody includes: 1. Variable light chains including CDR-L1 containing SEQ ID NO: 68, CDR-L2 containing SEQ ID NO: 69, and CDR-L3 containing SEQ ID NO: 70; and variable heavy chains including CDR-H1 containing SEQ ID NO: 71, CDR-H2 containing SEQ ID NO: 72, and CDR-H3 containing SEQ ID NO: 73; and / or 2. A variable light chain containing SEQ ID NO: 74, and a variable heavy chain containing SEQ ID NO: 76; and / or 3. A variable light chain encoded by a nucleotide containing SEQ ID NO: 75, and a variable heavy chain encoded by a nucleotide containing SEQ ID NO: 77.
[0206] Therefore, the present invention also provides an antibody that conjugates KLK5, preferably human KLK5, and this antibody comprises the following: 1. Variable light chains comprising CDR-L1 containing SEQ ID NO: 68, CDR-L2 containing SEQ ID NO: 69, and CDR-L3 containing SEQ ID NO: 70; and variable heavy chains comprising CDR-H1 containing SEQ ID NO: 71, CDR-H2 containing SEQ ID NO: 72, and CDR-H3 containing SEQ ID NO: 73; where the antibody is optionally humanized; and / or 2. A variable light chain containing SEQ ID NO: 74, and a variable heavy chain containing SEQ ID NO: 76; and / or 3. A variable light chain encoded by a nucleotide containing SEQ ID NO: 75, and a variable heavy chain encoded by a nucleotide containing SEQ ID NO: 77.
[0207] Furthermore, the present invention is also a KLK5-antibody conjugate comprising the following: a. KLK5, preferably human KLK5; and b. An antibody that binds to KLK5, wherein the antibody preferably binds to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, with reference to SEQ ID NO: 51, wherein the antibody comprises the following: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. Variable light chains containing SEQ ID NOs. 7, 11, 15, 19, or 23; and variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43; and c. Another antibody including the following: 1. Variable light chains comprising CDR-L1 containing SEQ ID NO: 68, CDR-L2 containing SEQ ID NO: 69, and CDR-L3 containing SEQ ID NO: 70; and variable heavy chains comprising CDR-H1 containing SEQ ID NO: 71, CDR-H2 containing SEQ ID NO: 72, and CDR-H3 containing SEQ ID NO: 73; where the antibody is optionally humanized; and / or 2. A variable light chain containing SEQ ID NO: 74, and a variable heavy chain containing SEQ ID NO: 76; and / or 3. A variable light chain encoded by a nucleotide containing SEQ ID NO: 75, and a variable heavy chain encoded by a nucleotide containing SEQ ID NO: 77.
[0208] It should be understood that the so-called "alternative antibodies" bind KLK5, preferably human KLK5, to non-overlapping epitopes (including, with reference to SEQ ID NO: 51, amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147), as shown by the following examples. In this respect, such antibodies do not compete with each other.
[0209] Furthermore, the present invention also provides antibodies that compete for binding to KLK5, preferably human KLK5, by being cross-blocked or cross-blocked by antibodies that bind to epitopes of human KLK5, including the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146 and His147, with reference to SEQ ID NO: 51, and which include: 1. Variable light chain and variable heavy chain, where the variable light chain includes CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 62, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 3. Variable light chain and variable heavy chain, where the variable light chain includes CDR-L1 containing SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 4. Variable light chains containing SEQ ID NOs. 7, 11, 15, 19, or 23; and variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43; or 5. A variable light chain containing SEQ ID NO: 15, where the amino acid residue glutamine 24 (Gln;Q) is arginine (Arg;R) or lysine (Lys;K); and a variable heavy chain containing SEQ ID NO: 9, 27, 31, 35, 39, or 43; or 6. A light chain containing sequence number 13, 17, 21, or 25, and a heavy chain containing sequence number 29, 33, 37, 41, or 45.
[0210] In one embodiment, such a competing antibody has a heavy chain variable region having at least 80% identity or similarity to the sequence containing SEQ ID NOs. 29, 33, 37, 41, or 45; and / or a light chain variable region having at least 80% identity or similarity to the sequence containing SEQ ID NOs. 13, 17, 21, 25, or 30.
[0211] Competitive antibodies can be identified using any suitable method in the art, for example, by using a competitive ELISA or BIAcore assay in which the binding of a competitive antibody to KLK5 inhibits the binding of the antibody of the present invention by cross-blocking or being cross-blocked, or vice versa. Such a competitive assay can use isolated natural or recombinant KLK5 or a suitable fusion protein / polypeptide thereof. In one example, competition is measured using recombinant human active KLK5 (e.g., including SEQ ID NO: 53).
[0212] Biological molecules, such as antibodies or fragments, contain acidic and / or basic functional groups, thereby giving the molecule a net positive or negative charge. The amount of charge "observed" as a whole will depend on the absolute amino acid sequence of the entity, the local environment of the charged groups in the three-dimensional structure, and the environmental conditions of the molecule. The isoelectric point (pI) is the pH at which a particular molecule or its solvent-accessible surface does not carry a net charge. For example, an antibody that binds to KLK5, referring to SEQ ID NO: 51, which binds to the human KLK5 epitope containing the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, can be manipulated to have an appropriate isoelectric point. This can lead to antibodies with more robust properties, particularly suitable solubility and / or stability profiles and / or improved purification characteristics.
[0213] Accordingly, in one embodiment, the present invention provides an antibody that binds to KLK5, which preferably binds to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146 and His147, with reference to SEQ ID NO: 51, and this antibody comprises: a. Variable light chains containing SEQ ID NOs. 7, 11, 15, 19, or 23; and variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43; or b. A light chain containing SEQ ID NO: 13, 17, 21, or 25; and a heavy chain containing SEQ ID NO: 29, 33, 37, 41, or 45. This antibody has been manipulated to have a different isoelectric point than the antibody that was originally identified.
[0214] Antibodies can be designed by substituting amino acid residues, for example, by replacing acidic amino acid residues with one or more basic amino acid residues. Alternatively, basic amino acid residues may be introduced, or acidic amino acid residues may be removed. Or, if the molecule has an unacceptably high pI value, acidic residues may be introduced as needed to lower the pI. When manipulating the pI, care must be taken to maintain the desired activity of the antibody or fragment. Thus, in one embodiment, the manipulated antibody has the same or substantially the same activity as the "unmodified" antibody or fragment.
[0215] To predict the isoelectric point of an antibody, ** Programs such as ExPASY (http: / / www.expasy.ch / tools / pi_tool.html) and http: / / www.iut‐arles.up.univ‐mrs.fr / w3bb / d_abim / compo‐p.html can be used.
[0216] It will be understood that the affinity of the antibody provided by the present invention can be modified using any suitable method known in the art. Accordingly, the present invention also relates to variants of antibodies having improved affinity for KLK5, particularly human KLK5. Such variants can be obtained by numerous affinity mutation protocols, including CDR mutation (Yang et al., J.Mol.Biol., 254, 392-403, 1995), strand shuffling (Marks et al., Bio / Technology, 10, 779-783, 1992), use of E. coli mutant strains (Low et al., J.Mol.Biol, 250, 359-368, 1996), DNA shuffling (Patten et al., Curr.Opin.Biotechnol., 8, 724-733, 1997), phage display (Thompson et al., J.Mol.Biol., 256, 77-88, 1996), and sexual PCR (Crameri et al., Nature, 391, 288-291, 1998).
[0217] If desired, the antibodies according to the invention may be conjugated to one or more effector molecules. It will be understood that the effector molecule can comprise a single effector molecule or two or more such molecules linked to form a single moiety that can be attached to the antibody of the invention. If an antibody fragment conjugated to an effector molecule is desired, this can be prepared by standard chemical or recombinant DNA procedures for linking the antibody fragment to the effector molecule either directly or via a coupling agent. Techniques for conjugating such effector molecules to antibodies are well known in the art (see Hellstrom et al., Controlled Drug Delivery, 2nd Ed., Robinson et al., Eds., 1987, pp. 623-53; Thorpe et al., 1982, Immunol. Rev., 62:119-58 and Dubowchik et al., 1999, Pharmacology and Therapeutics, 83, 67-123). Specific chemical procedures include, for example, those described in WO93 / 06231, WO92 / 22583, WO89 / 00195, WO89 / 01476 and WO03 / 031581, among others. Alternatively, when the effector molecule is a protein or polypeptide, the linkage can be achieved using recombinant DNA procedures as described, for example, in WO86 / 01533 and EP0392745.
[0218] As used herein, the term effector molecule includes, for example, anti-cancer agents, drugs, toxins, biologically active proteins such as enzymes, other antibodies or antibody fragments, synthetic or natural polymers, nucleic acids and fragments thereof such as DNA, RNA and fragments thereof, radionuclides, particularly radioactive iodides, radioisotopes, chelated metals, nanoparticles and reporter groups such as fluorescent compounds or compounds detectable by NMR or ESR spectroscopy.
[0219] Examples of effector molecules can include cytotoxins or cytotoxic agents that are harmful to cells (e.g., kill), including any drug. Examples include combretastatin, drastatin, epothilone, staurosporine, maytansinoid, spongistatin, lysocine, halicondrin, lolidine, hemiasterlin, taxol, cytochalasin B, gramicidin D, ethidium bromide, emetine, mitomycin, etoposide, tenoposide, vincristine, vinblastine, colchicine, doxorubicin, daunorubicin, dihydroxyanthracinedione, mitoxantrone, misramycin, actinomycin D, 1-dehydrotestosterone, glucocorticoid, procaine, tetracaine, lidocaine, propranolol, promycin, and their analogs or homologs, etc.
[0220] Effector molecules can also include antimetabolites (e.g., methotrexate, 6-mercaptopurine, 6-thioguanine, cytarabine, 5-fluorouracil decarbazine), alkylating agents (e.g., mechlorethamine, thioepachlorambucil, melphalan, carmustine (BSNU) and lomustine (CCNU), cyclophosphamide, busulfan, dibromomannitol, streptozotocin, mitomycin C and cis-dichlorodiamine platinum (II) (DDP) cisplatin), anthracyclines (e.g. daunorubicin (old daunomycin) and doxorubicin), antibiotics (e.g., dactinomycin (old actinomycin), bleomycin, misramycin, anthramycin (AMC), calicheamicin or duocarmycin), and antimitotic agents (e.g., vincristine and vinblastine), etc., but are not limited thereto.
[0221] Other effector molecules include chelated radionuclides such as 111In and 90Y, Lu177, bismuth 213, californium 252, iridium 192 and tungsten-188 / rhenium-188; or drugs such as alkylphosphocholine, topoisomerase I inhibitors, taxoids and suramin, etc., but are not limited thereto.
[0222] Other effector molecules include proteins, peptides, and enzymes. Enzymes of interest include, but are not limited to, proteolytic enzymes, hydrolases, lyases, isomerases, and transferases. Proteins, polypeptides, and peptides of interest include, but are not limited to, toxins such as immunoglobulins, abrins, lysine A, Pseudomonas exotoxin, or diphtheria toxin; proteins such as insulin, tumor necrosis factor, α-interferon, β-interferon, nerve growth factor, platelet-derived growth factor, or tissue plasminogen activator; thrombotic agents or anti-angiogenic agents, such as angiostatin or endostatin; or lymphokines, interleukin-1 (IL-1), interleukin-2 (IL-2), granulocyte-macrophage colony-stimulating factor (GM-CSF), granulocyte colony-stimulating factor (G-CSF), nerve growth factor (NGF), or other growth factors and immunoglobulins, which are biological response regulators.
[0223] Other effector molecules may include, for example, detectable substances useful for diagnosis. Examples of detectable substances include various enzymes, prosthetic groups, fluorescent substances, luminescent substances, bioluminescent substances, radionuclides, positron-emitting metals (used in positron emission tomography), and non-radioactive paramagnetic metal ions. For metal ions that can be conjugated to antibodies for use as diagnostic agents, see U.S. Patent No. 4,741,900 in general. Suitable enzymes include horseradish peroxidase, alkaline phosphatase, beta-galactosidase, or acetylcholinesterase; suitable prosthetic groups include streptavidin, avidin, and biotin; suitable fluorescent substances include umbelliferone, fluorescein, fluorescein isothiocyanate, rhodamine, dichlorotriazinylamine fluorescein, dansilchloride, and phycoerythrin; suitable luminescent materials include luminol; suitable bioluminescent materials include luciferase, luciferin, and aequorin; and suitable radionuclides include 125I, 131I, 111In, and 99Tc.
[0224] In another example, effector molecules can increase the half-life of an antibody in vivo and / or decrease its immunogenicity and / or enhance the delivery of the antibody to the immune system across the epithelial barrier. Examples of suitable effector molecules of this type include polymers, albumins, albumin-binding proteins, or albumin-binding compounds such as those described in WO05 / 117984.
[0225] If the effector molecule is a polymer, it may generally be a synthetic polymer or a natural polymer, such as optionally substituted linear or branched polyalkylene, polyalkene or polyoxyalkylene polymer, or a branched or unbranched polysaccharide, such as a homo or heteropolysaccharide.
[0226] Specific examples of optional substituents that may be present on the above-mentioned synthetic polymer include one or more hydroxyl groups, methyl groups, or methoxy groups.
[0227] Specific examples of synthetic polymers include optionally substituted linear or branched poly(ethylene glycol), poly(propylene glycol), poly(vinyl alcohol), or derivatives thereof, and in particular, optionally substituted poly(ethylene glycol) such as methoxypoly(ethylene glycol) or its derivatives.
[0228] Specific natural polymers include lactose, amylose, dextran, glycogen, or their derivatives.
[0229] In one embodiment, the polymer is albumin or a fragment thereof, for example, human serum albumin or a fragment thereof.
[0230] As used herein, “derivatives” are intended to include reactive derivatives, such as thiol-selective reactive groups, including maleimide. The reactive group may be linked directly to the polymer or via a linker segment. It will be understood that residues of such groups may, in some cases, form part of the product as linking groups between the antibody fragment and the polymer.
[0231] Polymer sizes can be varied as desired, but generally the average molecular weight range will be 500 Da to 50,000 Da, for example 5,000 to 40,000 Da, or for example 20,000 to 40,000 Da. Polymer size may be selected based on the intended use of the product, particularly its ability to localize to specific tissues such as tumors, or its ability to extend the circulating half-life (see Chapman, 2002, Advanced Drug Delivery Reviews, 54, 531-545 for a review). Therefore, for example, if the product is intended to leave the circulation and penetrate into tissue for use in the treatment of tumors, it may be advantageous to use a low molecular weight polymer with a molecular weight of, for example, about 5,000 Da. For applications where the product remains in circulation, it may be advantageous to use a higher molecular weight polymer with a molecular weight in the range of, for example, 20,000 Da to 40,000 Da.
[0232] Suitable polymers include polyalkylene polymers, such as poly(ethylene glycol), particularly methoxypoly(ethylene glycol) or its derivatives, especially those having a molecular weight in the range of about 15,000 Da to about 40,000 Da.
[0233] In one example, the antibody according to the present invention is bound to a poly(ethylene glycol) (PEG) moiety. In certain embodiments, the antibody and PEG molecule according to the present invention may be bound via any available amino acid side chain or terminal amino acid functional group located in the antibody fragment, such as any free amino, imino, thiol, hydroxyl, or carboxyl group. Such amino acids may be naturally present in the antibody fragment or can be engineered into the antibody using recombinant DNA methods (see, e.g., US5,219,996; US5,667,425; WO98 / 25971, WO2008 / 038024). In one example, the antibody according to the present invention is a modified Fab fragment, the modification of which involves adding one or more amino acids to the C-terminus of its heavy chain to enable the binding of an effector molecule. Preferably, the additional amino acids form a modified hinge region containing one or more cysteine residues to which an effector molecule can be bound. Multiple sites can be used to bind two or more PEG molecules.
[0234] Preferably, the PEG molecule is covalently bonded via a thiol group of at least one cysteine residue located on the antibody fragment. Each polymer molecule attached to the modified antibody fragment may be covalently bonded to the sulfur atom of a cysteine residue located on the fragment. The covalent bond will generally be a disulfide bond or, in particular, a sulfur-carbon bond. When the thiol group is used as an attachment site for a suitable activation effector molecule, thiol-selective derivatives such as maleimide and cysteine derivatives may be used. The activation polymer can be used as a starting material in the preparation of the polymer-modified antibody fragment as described above. The activation polymer may be any polymer containing a thiol-reactive group such as an α-halocarboxylic acid or ester, e.g., iodoacetamide, imide, e.g., maleimide, vinyl sulfone, or disulfide. Such starting materials can be commercially available (e.g., from Nektar, formerly Shearwater Polymers Inc., Huntsville, AL, USA) or can be prepared from commercially available starting materials using conventional chemical procedures. Specific PEG molecules include 20K methoxy-PEG-amine (available from Nektar, formerly Shearwater; Rapp Polymere; and SunBio) and M-PEG-SPA (available from Nektar, formerly Shearwater).
[0235] In one embodiment, the antibody is PEGylated, i.e., a modified Fab fragment, Fab' fragment, or diFab covalently bonded with PEG (poly(ethylene glycol)), for example, according to the method disclosed in EP0948544 or EP1090037 (see also “Poly(ethyleneglycol) Chemistry, Biotechnical and Biomedical Applications”, 1992, J. Milton Harris (ed), Plenum Press, New York, “Poly(ethyleneglycol) Chemistry and Biological Applications”, 1997, J. Milton Harris and S. Zalipsky (eds), American Chemical Society, Washington DC and “Bioconjugation Protein Coupling Techniques for the Biomedical Sciences”, 1998, M. Aslam and A. Dent, Grove Publishers, New York; Chapman, A. 2002, Advanced Drug Delivery Reviews 2002, 54:531-545). In one embodiment, PEG is bonded to the cysteine in the hinge region. In one embodiment, the PEG-modified Fab fragment has a maleimide group covalently bonded to a single thiol group in the modified hinge region. Lysine residues may be covalently bonded to the maleimide group, and each of the amine groups on the lysine residue may be bonded to a methoxypoly(ethylene glycol) polymer having a molecular weight of about 20,000 Da. Therefore, the total molecular weight of PEG bonded to the Fab fragment may be about 40,000 Da.
[0236] Certain PEG molecules include 2-[3-(N-maleimide)propionamide]ethylamide of N,N'-bis(methoxypoly(ethylene glycol)MW20,000)-modified lysine, also known as PEG2MAL40K (obtainable from Nektar, formerly Shearwater).
[0237] Alternative sources of PEG linker include GL2-400MA3 (m = 5 in the following structure) and GL2-400MA (m = 2), and NOF that supplies n of about 450.
Chemical formula
[0238] Furthermore, the following types of alternative PEG effector molecules are available from Dr Reddy, NOF, and Jenkem.
Chemical formula
[0239] In one embodiment, the Fab or Fab' according to the present invention is conjugated to a PEG molecule.
[0240] In one embodiment, the present disclosure provides Fab'PEG molecules comprising one or more PEG polymers, such as one or two polymers such as 40 kDa polymer(s).
[0241] The Fab'-PEG molecules according to this disclosure may be particularly advantageous in that they have a half-life independent of the Fc fragment. In one embodiment, Fab' conjugated to a polymer such as a PEG molecule, a starch molecule, or an albumin molecule is provided. In one embodiment, scFv conjugated to a polymer such as a PEG molecule, a starch molecule, or an albumin molecule is provided. In one embodiment, Fab or Fab' according to this disclosure is conjugated to human serum albumin. In one embodiment, an antibody or fragment is conjugated to a starch molecule, for example, to increase its half-life. A method for conjugating starch to a protein, as described in US8,017,739, is incorporated herein by reference.
[0242] The present invention also provides isolated polynucleotides encoding antibodies according to the present invention. Isolated polynucleotides according to the present invention may include, for example, synthetic DNA, cDNA, genomic DNA, or any combination thereof, produced by chemical processes.
[0243] Standard molecular biology techniques can be used to prepare the DNA sequences encoding the antibodies of the present invention. The desired DNA sequences can be synthesized completely or partially using oligonucleotide synthesis techniques. Site-directed mutagenesis and polymerase chain reaction (PCR) techniques may also be used as appropriate.
[0244] In one embodiment, the isolated polynucleotide according to the present invention encodes the following: a. Light chain variable region, where polynucleotides are: i. At least 90% identical to SEQ ID NO: 8 (or nucleotides 1-330 of SEQ ID NO: 8) or 12 (or nucleotides 1-330 of SEQ ID NO: 12) or 16 or 20 or 24 or 64 or 66; or ii. Containing SEQ ID NO: 8 (or nucleotides 1-330 of SEQ ID NO: 8) or 12 (or nucleotides 1-330 of SEQ ID NO: 12) or 16 or 20 or 24 or 64 or 66; or iii. Essentially consisting of SEQ ID NO: 8 (or nucleotides 1-330 of SEQ ID NO: 8) or 12 (or nucleotides 1-330 of SEQ ID NO: 12) or 16 or 20 or 24 or 64 or 66; b. Heavy chain variable region, where polynucleotides are: i. At least 90% identical to sequence number 10, 28, 32, 36, 40, or 44; or ii. Including sequence numbers 10, 28, 32, 36, 40, or 44; or iii. Essentially consisting of sequence numbers 10, 28, 32, 36, 40, or 44; c. Light chain, where polynucleotides are: i. At least 90% identical to sequence number 14, 18, 22, 26, 65, 67, 100, 101, 102, 103, or 104; or ii. Including SEQ ID NOs. 14, 18, 22, 26, 65, 67, 100, 101, 102, 103, or 104; or iii. Essentially consisting of sequence numbers 14, 18, 22, 26, 65, 67, 100, 101, 102, 103, or 104; d. Heavy chain, where polynucleotides are: i. At least 90% identical to sequence number 30, 34, 38, 42, or 46; or ii. Including sequence numbers 30, 34, 38, 42, or 46; or iii. Essentially consisting of sequence numbers 30, 34, 38, 42, or 46.
[0245] In one embodiment, the present invention provides isolated polynucleotides encoding the heavy chain of the antibody Fab' fragment or an IgG1 or IgG4 antibody, comprising the sequence given in SEQ ID NOs. 10, 28, 32, 36, 40, or 44. The present invention also provides isolated polynucleotides encoding the light chain of the antibody Fab' fragment or an IgG1 or IgG4 antibody, comprising the sequence given in SEQ ID NOs. 8 (or nucleotides 1-330 of SEQ ID NOs. 8) or 12 (or nucleotides 1-330 of SEQ ID NOs. 12) or 16, 20, 24, 64, or 66.
[0246] In another embodiment, the present invention provides isolated polynucleotides encoding the heavy and light chains of an IgG4(P) antibody of the present invention, wherein the polynucleotide encoding the heavy chain comprises a sequence given by SEQ ID NO: 30, 34, 38, 42, or 46, and the polynucleotide encoding the light chain comprises a sequence given by SEQ ID NO: 14, 18, 22, 26, 65, 67, 100, 101, 102, 103, or 104.
[0247] The present invention also provides a cloning or expression vector comprising one or more polynucleotides as described herein. In one example, the cloning or expression vector according to the present invention comprises one or more isolated polynucleotides comprising a sequence selected from SEQ ID NOs. 14 or 18 or 22 or 26 or 65 or 67 or 100 or 101 or 102 or 103 or 104 or 30 or 34 or 38 or 42 or 46.
[0248] General methods for constructing vectors, transfection methods, and culture methods are well known to those skilled in the art. In this regard, one can refer to the Maniatis Manual, compiled by FMAusubel (ed.), Wiley Interscience, New York, and Cold Spring Harbor Publishing, “Current Protocols in Molecular Biology”, 1999.
[0249] The present invention also provides host cells containing one or more isolated polynucleotide sequences, or one or more cloning or expression vectors containing one or more isolated polynucleotide sequences encoding the antibody of the present invention. Any suitable host cell / vector system can be used for the expression of the polynucleotide sequences encoding the antibody of the present invention. Microbial systems such as bacteria, e. coli, may be used, or eukaryotic host cell expression systems such as mammalian host cells may be used. Suitable mammalian host cells include CHO cells, myeloma cells, and hybridoma cells.
[0250] Suitable types of Chinese hamster ovary (CHO cells) for use in the present invention include dhfr-CHO cells such as CHO-DG44 cells and CHO-DXB11 cells, and may also be CHO and CHO-K1 cells which may be used with a DHFR-selectable marker, or CHOK1-SV cells which may be used with a glutamine synthase-selectable marker. Other cell types used when expressing antibodies include lymphoid cell lines such as NSO myeloma cells and SP2 cells, and COS cells. Host cells can be stably transformed or transfected with isolated polynucleotide sequences or expression vectors according to the present invention. In one embodiment, the host cells according to the present invention are CHO-DG44 cells stably transfected with an expression vector containing an isolated polynucleotide sequence, preferably comprising SEQ ID NO: 8 (or nucleotides 1-330 of SEQ ID NO: 8), 10, 12 (or nucleotides 1-330 of SEQ ID NO: 12), 14, 16, 18, 20, 22, 24, 26, 28, 30, 32, 34, 36, 38, 40, 42, 44, 46, 64, 65, 66, 67, 100, 101, 102, 103, or 104.
[0251] The present invention also provides a method for producing an antibody that binds to KLK5, comprising culturing host cells according to the present invention under conditions suitable for antibody production, and isolating the antibody thus produced.
[0252] The antibody may contain only the heavy chain or only the light chain, in which case only the polynucleotide sequence of the heavy chain or light chain may be used for transfection of the host cell. To produce an antibody containing both the heavy chain and the light chain, the cell line can be transfected with two vectors: a first vector encoding the light chain and a second vector encoding the heavy chain. Alternatively, a single vector may be used, which may contain polynucleotide sequences encoding both the light chain and the heavy chain.
[0253] Therefore, a process is provided for culturing host cells to express antibodies, isolating the latter, and optionally purifying them to provide isolated antibodies. Thus, in one embodiment, an isolated antibody that binds to KLK5, preferably human KLK5, e.g., a humanized antibody, in particular the antibody according to the present invention, is provided in a substantially purified form, particularly free from or substantially free from endotoxins and / or host cell proteins or DNA, where the antibody comprises: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 62, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 3. Variable light chain and variable heavy chain, where the variable light chain includes CDR-L1 containing SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 4. Variable light chains containing SEQ ID NOs. 7, 11, 15, 19, or 23; and variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43; or 5. A variable light chain containing SEQ ID NO: 15, wherein the amino acid residue glutamine 24 (Gln;Q) is arginine (Arg;R) or lysine (Lys;K); and a variable heavy chain containing SEQ ID NO: 9, 27, 31, 35, 39, or 43; or 6. A light chain containing sequence number 13, 17, 21, or 25, and a heavy chain containing sequence number 29, 33, 37, 41, or 45.
[0254] In another embodiment, an isolated antibody conjugating to KLK5, preferably human KLK5, such as a humanized antibody, is provided in a substantially purified form, particularly free from or substantially free from endotoxin and / or host cell proteins or DNA, wherein the antibody conjugates to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146 and His147, where the antibody comprises: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 62, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 3. Variable light chain and variable heavy chain, where the variable light chain includes CDR-L1 containing SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 4. Variable light chains containing SEQ ID NOs. 7, 11, 15, 19, or 23; and variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43; or 5. A variable light chain containing SEQ ID NO: 15, wherein the amino acid residue glutamine 24 (Gln;Q) is arginine (Arg;R) or lysine (Lys;K); and a variable heavy chain containing SEQ ID NO: 9, 27, 31, 35, 39, or 43; or 6. A light chain containing sequence number 13, 17, 21, or 25, and a heavy chain containing sequence number 29, 33, 37, 41, or 45.
[0255] "Substantially endotoxin-free" generally means that the endotoxin content is 1 EU or less per 1 mg of antibody product, for example, 0.5 EU or 0.1 EU per 1 mg of product.
[0256] "Substantially free of host cell proteins or DNA" generally means that the host cell protein and / or DNA content is 400 μg or less per 1 mg of antibody product, for example, 100 μg or less per 1 mg, and especially 20 μg per 1 mg, where appropriate.
[0257] Since the antibodies of the present invention are useful for the treatment, diagnosis, and / or prevention of pathological conditions, the present invention also provides pharmaceutical or diagnostic compositions comprising the antibodies according to the present invention in combination with one or more pharmaceutically acceptable carriers, excipients, or diluents.
[0258] Preferably, the pharmaceutical or diagnostic composition comprises an antibody that binds to KLK5, preferably human KLK5, wherein the antibody includes: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 62, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 3. Variable light chain and variable heavy chain, where the variable light chain includes CDR-L1 containing SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 4. Variable light chains containing SEQ ID NOs. 7, 11, 15, 19, or 23; and variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43; or 5. A variable light chain containing SEQ ID NO: 15, wherein the amino acid residue glutamine 24 (Gln;Q) is arginine (Arg;R) or lysine (Lys;K); and a variable heavy chain containing SEQ ID NO: 9, 27, 31, 35, 39, or 43; or 6. A light chain containing sequence number 13, 17, 21, or 25, and a heavy chain containing sequence number 29, 33, 37, 41, or 45.
[0259] Preferably, the antibody binds to a human KLK5 epitope containing the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, as referred to in SEQ ID NO: 51.
[0260] In one embodiment, the antibody according to the present invention is the sole active ingredient. In another embodiment, the antibody according to the present invention is combined with one or more additional active ingredients. Alternatively, a pharmaceutical composition comprising the antibody according to the present invention as the sole active ingredient may be administered individually to a patient (for example, simultaneously, sequentially, or separately) in combination with other therapeutic, diagnostic, or palliative agents.
[0261] In another embodiment, the pharmaceutical composition comprises an antibody that binds to KLK5, preferably human KLK5, wherein the antibody comprises: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 62, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 3. Variable light chain and variable heavy chain, where the variable light chain includes CDR-L1 containing SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 4. Variable light chains containing SEQ ID NOs. 7, 11, 15, 19, or 23; and variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43; or 5. A variable light chain containing SEQ ID NO: 15, wherein the amino acid residue glutamine 24 (Gln;Q) is arginine (Arg;R) or lysine (Lys;K); and a variable heavy chain containing SEQ ID NO: 9, 27, 31, 35, 39, or 43; or 6. A light chain containing SEQ ID NO: 13, 17, 21, or 25, and a heavy chain containing SEQ ID NO: 29, 33, 37, 41, or 45; and one or more pharmaceutically acceptable carriers, excipients, or diluents.
[0262] Preferably, the pharmaceutical composition containing an antibody that binds to KLK5 binds to a human KLK5 epitope comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, as referred to in SEQ ID NO: 51. More preferably, a pharmaceutical composition comprising an antibody that binds to KLK5, wherein the antibody binds to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, with reference to SEQ ID NO: 51, and the antibody comprises the light chain variable region of SEQ ID NO: 15 and the heavy chain variable region of SEQ ID NO: 39.
[0263] The pharmaceutical compositions according to the present invention can be suitably administered to a patient to determine the required therapeutically effective amount. As used herein, the term “therapeutably effective amount” means the amount of therapeutic agent required to treat, improve or prevent a targeted disease or condition, or to exhibit a detectable therapeutic or preventive effect. For any antibody, the therapeutically effective amount can first be estimated in a cell culture assay or in an animal model, typically a rodent, rabbit, dog, pig, or primate. Animal models can also be used to determine appropriate concentration ranges and routes of administration. Such information can then be used to determine useful doses and routes for administration to humans.
[0264] The precise therapeutic dose for human subjects will depend on the severity of the disease state, the subject's general health status, age, weight and sex, diet, timing and frequency of administration, drug combinations, sensitivity to response, and tolerance / response to treatment. Generally, the therapeutic dose will be between 0.01 mg / kg and 500 mg / kg, for example, between 0.1 mg / kg and 200 mg / kg, for example, 100 mg / kg. The pharmaceutical composition can be conveniently presented in unit dose form containing a predetermined amount of the activator of the present invention per dose.
[0265] A pharmaceutically acceptable carrier in a therapeutic composition may further include liquids such as water, saline solution, glycerol, or ethanol. Furthermore, auxiliary substances such as wetting agents, emulsifiers, or pH buffers may be present in such a composition. Such carriers enable the formulation of the pharmaceutical composition for patient administration as tablets, pills, dragees, capsules, liquids, gels, syrups, slurries, or suspensions.
[0266] Suitable forms for administration include forms suitable for parenteral administration, such as by injection or infusion, such as by bolus injection or continuous infusion, and intravenous, inhalable, or subcutaneous administration forms. If the product is for injection or infusion, it may take the form of a suspension, solution, or emulsion in an oily or aqueous vehicle, and may contain formulations such as suspending agents, preservatives, stabilizers, and / or dispersants. Alternatively, the antibody according to the present invention may be in a dry form, to be reconstituted with a suitable sterile liquid before use. A solid form suitable for dissolution or suspension in a liquid vehicle before injection may also be prepared.
[0267] Once formulated, the composition of the present invention can be administered directly to the target. Therefore, what is provided herein is the use of the antibody according to the present invention for the manufacture of pharmaceuticals.
[0268] Preferably, the pharmaceutical composition according to the present invention is suitable for administration to human subjects.
[0269] Therefore, in another embodiment, the present invention provides an antibody that binds to KLK5, wherein the antibody or a pharmaceutical composition containing the antibody is for therapeutic use, and the antibody comprises: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 62, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 3. Variable light chain and variable heavy chain, where the variable light chain includes CDR-L1 containing SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 4. Variable light chains containing SEQ ID NOs. 7, 11, 15, 19, or 23; and variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43; or 5. A variable light chain containing SEQ ID NO: 15, wherein the amino acid residue glutamine 24 (Gln;Q) is arginine (Arg;R) or lysine (Lys;K); and a variable heavy chain containing SEQ ID NO: 9, 27, 31, 35, 39, or 43; or 6. A light chain containing sequence number 13, 17, 21, or 25, and a heavy chain containing sequence number 29, 33, 37, 41, or 45.
[0270] Preferably, the antibody binds to a human KLK5 epitope containing the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, as referred to in SEQ ID NO: 51.
[0271] In a preferred embodiment, a KLK5-binding antibody or a pharmaceutical composition comprising the antibody for therapeutic use, wherein the antibody comprises the following: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. A variable light chain containing SEQ ID NO: 15; and a variable heavy chain containing SEQ ID NO: 39; or 3. A light chain containing SEQ ID NO: 17, and a heavy chain containing SEQ ID NO: 41.
[0272] Preferably, the antibody binds to a human KLK5 epitope containing the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, as referred to in SEQ ID NO: 51.
[0273] In another preferred embodiment, an antibody that binds to KLK5, wherein the antibody binds to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, with reference to SEQ ID NO: 51, or a pharmaceutical composition for therapeutic use comprising the antibody, wherein the antibody comprises: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. A variable light chain containing SEQ ID NO: 15; and a variable heavy chain containing SEQ ID NO: 39; or 3. A light chain containing SEQ ID NO: 17, and a heavy chain containing SEQ ID NO: 41.
[0274] In particular, therapeutic use includes use in the treatment of one or more diseases characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition.
[0275] In yet another aspect, the present invention provides a method for treating one or more diseases characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition in a patient, comprising administering to the patient a therapeutically effective amount of an antibody that binds to KLK5 or a pharmaceutical composition comprising the antibody, wherein the antibody includes: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 62, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 3. Variable light chain and variable heavy chain, where the variable light chain includes CDR-L1 containing SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 4. Variable light chains containing SEQ ID NOs. 7, 11, 15, 19, or 23; and variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43; or 5. A variable light chain containing SEQ ID NO: 15, wherein the amino acid residue glutamine 24 (Gln;Q) is arginine (Arg;R) or lysine (Lys;K); and a variable heavy chain containing SEQ ID NO: 9, 27, 31, 35, 39, or 43; or 6. A light chain containing sequence number 13, 17, 21, or 25, and a heavy chain containing sequence number 29, 33, 37, 41, or 45.
[0276] Preferably, the antibody binds to a human KLK5 epitope containing the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, as referred to in SEQ ID NO: 51.
[0277] In another preferred embodiment, the present invention provides a method for treating one or more diseases characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition in a patient, comprising administering to the patient a therapeutically effective amount of an antibody or a pharmaceutical composition comprising an antibody, wherein the antibody comprises: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. A variable light chain containing SEQ ID NO: 15; and a variable heavy chain containing SEQ ID NO: 39; or 3. A light chain containing SEQ ID NO: 17, and a heavy chain containing SEQ ID NO: 41.
[0278] Preferably, the antibody binds to a human KLK5 epitope containing the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, as referred to in SEQ ID NO: 51.
[0279] In another embodiment, an antibody that binds to KLK5, or a pharmaceutical composition comprising the antibody, wherein the antibody is for use in the treatment of one or more diseases characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition, and the antibody comprises: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 62, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 3. Variable light chain and variable heavy chain, where the variable light chain includes CDR-L1 containing SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 4. Variable light chains containing SEQ ID NOs. 7, 11, 15, 19, or 23; and variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43; or 5. A variable light chain containing SEQ ID NO: 15, wherein the amino acid residue glutamine 24 (Gln;Q) is arginine (Arg;R) or lysine (Lys;K); and a variable heavy chain containing SEQ ID NO: 9, 27, 31, 35, 39, or 43; or 6. A light chain containing sequence number 13, 17, 21, or 25, and a heavy chain containing sequence number 29, 33, 37, 41, or 45. Preferably, the antibody binds to a human KLK5 epitope containing the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, as referred to in SEQ ID NO: 51.
[0280] In another preferred embodiment, an antibody that binds to KLK5 or a pharmaceutical composition comprising the antibody, wherein the antibody is for use in the treatment of one or more diseases characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition, and the antibody comprises: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. A variable light chain containing SEQ ID NO: 15; and a variable heavy chain containing SEQ ID NO: 39; or 3. A light chain containing SEQ ID NO: 17, and a heavy chain containing SEQ ID NO: 41.
[0281] Preferably, the antibody binds to a human KLK5 epitope containing the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, as referred to in SEQ ID NO: 51.
[0282] Preferably, one or more diseases characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition are selected from Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer, or a combination thereof.
[0283] Accordingly, the present invention provides a method for treating Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer, or a combination thereof, in a patient, comprising administering to the patient a therapeutically effective amount of an antibody conjugated to KLK5, or a pharmaceutical composition containing the antibody, wherein the antibody includes: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 62, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 3. Variable light chain and variable heavy chain, where the variable light chain includes CDR-L1 containing SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 4. Variable light chains containing SEQ ID NOs. 7, 11, 15, 19, or 23; and variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43; or 5. A variable light chain containing SEQ ID NO: 15, wherein the amino acid residue glutamine 24 (Gln;Q) is arginine (Arg;R) or lysine (Lys;K); and a variable heavy chain containing SEQ ID NO: 9, 27, 31, 35, 39, or 43; or 6. A light chain containing sequence number 13, 17, 21, or 25, and a heavy chain containing sequence number 29, 33, 37, 41, or 45.
[0284] Preferably, the antibody binds to a human KLK5 epitope containing the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, as referred to in SEQ ID NO: 51.
[0285] More preferably, a method for treating Netherton syndrome and / or atopic dermatitis.
[0286] In another embodiment, an antibody that binds to KLK5 or a pharmaceutical composition comprising the antibody is provided, for use in the treatment of Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer, or a combination thereof, wherein the antibody comprises: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 62, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 3. Variable light chain and variable heavy chain, where the variable light chain includes CDR-L1 containing SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 4. Variable light chains containing SEQ ID NOs. 7, 11, 15, 19, or 23; and variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43; or 5. A variable light chain containing SEQ ID NO: 15, wherein the amino acid residue glutamine 24 (Gln;Q) is arginine (Arg;R) or lysine (Lys;K); and a variable heavy chain containing SEQ ID NO: 9, 27, 31, 35, 39, or 43; or 6. A light chain containing sequence number 13, 17, 21, or 25, and a heavy chain containing sequence number 29, 33, 37, 41, or 45.
[0287] Preferably, the antibody binds to a human KLK5 epitope containing the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, as referred to in SEQ ID NO: 51.
[0288] More preferably, the antibodies are intended for use in the treatment of Netherton syndrome and / or atopic dermatitis.
[0289] In another preferred embodiment, the present invention provides a method for treating Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer, or a combination thereof, in a patient, comprising administering to the patient a therapeutically effective amount of an antibody bound to KLK5 or a pharmaceutical composition comprising the antibody, wherein the antibody comprises: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. A variable light chain containing SEQ ID NO: 15; and a variable heavy chain containing SEQ ID NO: 39; or 3. A light chain containing SEQ ID NO: 17, and a heavy chain containing SEQ ID NO: 41.
[0290] Preferably, the antibody binds to a human KLK5 epitope containing the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, as referred to in SEQ ID NO: 51.
[0291] More preferably, a method for treating Netherton syndrome and / or atopic dermatitis.
[0292] In another preferred embodiment, an antibody conjugating to KLK5 or a pharmaceutical composition comprising such antibody is for use in the treatment of Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer, or a combination thereof, wherein the antibody comprises: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. A variable light chain containing SEQ ID NO: 15; and a variable heavy chain containing SEQ ID NO: 39; or 3. A light chain containing SEQ ID NO: 17, and a heavy chain containing SEQ ID NO: 41.
[0293] Preferably, the antibody binds to a human KLK5 epitope containing the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, as referred to in SEQ ID NO: 51.
[0294] More preferably, the antibodies are intended for use in the treatment of Netherton syndrome and / or atopic dermatitis.
[0295] The present invention also provides an antibody that binds to KLK5 or a pharmaceutical composition comprising the antibody for use in the treatment of Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer, or a combination thereof, wherein the antibody binds to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146 and His147, as referred to in SEQ ID NO: 51.
[0296] Furthermore, the present invention provides a method for treating Netherton syndrome, atopic dermatitis, ichthyosis, asthma, or cancer such as ovarian cancer or bladder cancer, or a combination thereof, in a patient, comprising administering to the patient a therapeutically effective amount of an antibody or a pharmaceutical composition containing the antibody that binds to KLK5. Herein, the antibody binds to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146 and His147, as referred to in SEQ ID NO: 51. The present invention also provides the use of an antibody conjugated to KLK5 or a pharmaceutical composition comprising such an antibody for the manufacture of a medicament for treating one or more diseases characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition, wherein the antibody conjugates to an epitope of human KLK5 comprising, with reference to SEQ ID NO: 51, amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146 and His147, such dysregulation is preferably Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer, or a combination thereof, more preferably Netherton syndrome and / or atopic dermatitis.
[0297] In particular, the present invention also provides the use of an antibody conjugating to KLK5, or a pharmaceutical composition comprising the antibody, for the manufacture of a medicament for treating one or more diseases characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition, wherein the antibody preferably conjugates to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146 and His147, wherein such dysregulation is preferably Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer, or a combination thereof, more preferably Netherton syndrome and / or atopic dermatitis, wherein the antibody comprises: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 62, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 3. Variable light chain and variable heavy chain, where the variable light chain includes CDR-L1 containing SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 4. Variable light chains containing SEQ ID NOs. 7, 11, 15, 19, or 23; and variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43; or 5. A variable light chain containing SEQ ID NO: 15, wherein the amino acid residue glutamine 24 (Gln;Q) is arginine (Arg;R) or lysine (Lys;K); and a variable heavy chain containing SEQ ID NO: 9, 27, 31, 35, 39, or 43; or 6. A light chain containing sequence number 13, 17, 21, or 25, and a heavy chain containing sequence number 29, 33, 37, 41, or 45.
[0298] Furthermore, the present invention provides the use of an antibody conjugated to KLK5 for use as a diagnostic activator or in a diagnostic assay to diagnose, for example, Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer, such as ovarian cancer or bladder cancer, wherein the antibody conjugates to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146 and His147, with reference to SEQ ID NO: 51.
[0299] More preferably, the antibody includes: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 62, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 3. Variable light chain and variable heavy chain, where the variable light chain includes CDR-L1 containing SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 4. Variable light chains containing SEQ ID NOs. 7, 11, 15, 19, or 23; and variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43; or 5. A variable light chain containing SEQ ID NO: 15, wherein the amino acid residue glutamine 24 (Gln;Q) is arginine (Arg;R) or lysine (Lys;K); and a variable heavy chain containing SEQ ID NO: 9, 27, 31, 35, 39, or 43; or 6. A light chain containing sequence number 13, 17, 21, or 25, and a heavy chain containing sequence number 29, 33, 37, 41, or 45.
[0300] Diagnosis may preferably be performed on a biological sample. “Biological sample” encompasses various types of samples obtained from an individual that can be used in a diagnostic or monitoring assay. This definition includes blood such as plasma and serum, as well as other liquid samples of biological origin such as urine and saliva, solid tissue samples such as cerebrospinal fluid and biopsy samples such as skin biopsies, or tissue cultures or cells and their offspring derived therefrom. The definition also includes samples that have undergone any manipulation after procurement, such as treatment with reagents, solubilization, or concentration of specific components such as polynucleotides.
[0301] Diagnostic tests can preferably be performed on biological samples that have not come into contact with the human or animal body. Such diagnostic tests are also called in vitro tests. In vitro diagnostic tests may depend on an in vitro method for detecting KLK5 in a biological sample obtained from an individual, comprising the steps of i) contacting the biological sample with the antibody described herein; and ii) detecting the binding of the antibody to KLK5. By comparing the detected KLK5 level or the presence of a specific post-translational modification of KLK5 (including any pro-type) with a suitable control, one or more diseases characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition can be identified. Thus, such detection methods can be used to determine whether a subject (including an embryo or fetus) has or is at risk of developing a disease characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition.
[0302] Accordingly, the present invention provides an antibody that binds to KLK5, wherein the antibody preferably binds to a human KLK5 epitope comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146 and His147, with reference to SEQ ID NO: 51, wherein the antibody is intended for use in the diagnosis of one or more diseases characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition, preferably in the diagnosis of Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer, wherein the antibody comprises: 1. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 2. Variable light chain and variable heavy chain, wherein the variable light chain comprises CDR-L1 containing SEQ ID NO: 62, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain comprises CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 3. Variable light chain and variable heavy chain, where the variable light chain includes CDR-L1 containing SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and the variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6; or 4. Variable light chains containing SEQ ID NOs. 7, 11, 15, 19, or 23; and variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43; or 5. A variable light chain containing SEQ ID NO: 15, wherein the amino acid residue glutamine 24 (Gln;Q) is arginine (Arg;R) or lysine (Lys;K); and a variable heavy chain containing SEQ ID NO: 9, 27, 31, 35, 39, or 43; or 6. A light chain containing sequence number 13, 17, 21, or 25, and a heavy chain containing sequence number 29, 33, 37, 41, or 45.
[0303] Therefore, the present invention relates to the following embodiments. Embodiment 1: An antibody that binds to kallikrein 5 (KLK5), comprising a variable light chain and a variable heavy chain: a. The variable light chain includes CDR-L1 containing SEQ ID NO: 1 or SEQ ID NO: 62 or SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and b. The variable heavy chain comprises the antibody described above, including CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6. Embodiment 2: a. The variable light chain includes CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and b. The variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6. The antibody described in Embodiment 1.
[0304] Embodiment 3: An antibody that binds to kallikrein 5 (KLK5), wherein, with reference to SEQ ID NO: 51, it binds to an epitope of human KLK5 comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147.
[0305] Embodiment 4: The antibody according to Embodiment 3, wherein the epitope is characterized by X-ray crystallography.
[0306] Embodiment 5: The antibody according to any one of Embodiments 1 to 4, wherein the antibody inhibits or reduces the protease activity of KLK5.
[0307] Embodiment 6: The antibody according to any one of Embodiments 1 to 5, wherein the antibody binds to KLK5 when KLK5 is bound to LEKTI or a fragment of LEKTI.
[0308] Embodiment 7: The antibody according to any one of Embodiments 1 to 6, wherein the antibody does not compete with LEKTI or a fragment of LEKTI for binding to KLK5.
[0309] Embodiment 8: The antibody according to any one of Embodiments 1 to 7, wherein the antibody forms a complex with LEKTI or KLK5 bound to a fragment of LEKTI.
[0310] Embodiment 9: The antibody according to any one of Embodiments 6 to 8, wherein the LEKTI fragment is a human LEKTI domain 5 containing amino acids 1 to 64 of SEQ ID NO: 54, or a LEKTI domain 8 containing amino acids 1 to 71 of SEQ ID NO: 61.
[0311] Embodiment 10: The antibody according to any one of the embodiments, wherein the antibody binds to human KLK5, preferably human KLK5 comprising SEQ ID NO: 53, and cynomolgus monkey (cyno) KLK5, preferably cynoKLK5 comprising SEQ ID NO: 60.
[0312] Embodiment 11: The antibody according to any one of the embodiments, wherein the antibody does not bind to human or cyno-kallikrein 2 (KLK2); or human or cyno-kallikrein 4 (KLK4); or human or cyno-kallikrein 7 (KLK7).
[0313] Embodiment 12: The antibody comprises a variable light chain and a variable heavy chain: a. The variable light chain includes CDR-L1 containing SEQ ID NO: 1 or SEQ ID NO: 62 or SEQ ID NO: 63, preferably CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and b. The variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO: 6. The antibody described in any one of Embodiments 3 to 11.
[0314] Embodiment 13: The antibody according to any one of the embodiments, wherein the antibody is a chimeric antibody or a humanized antibody.
[0315] Embodiment 14: The antibody according to any one of the embodiments, wherein the antibody is a full-length antibody.
[0316] Embodiment 15: The antibody according to Embodiment 13, wherein the full-length antibody is selected from IgG1, IgG4, or IgG4P.
[0317] Embodiment 16: The antibody is Fab, Fab', F(ab')2, scFv, dAb or V HH An antibody according to any one of embodiments 1 to 13, selected from the above.
[0318] Embodiment 17: The antibody is a. Variable light chains including sequence numbers 7, 11, 15, 19, or 23; and / or b. Variable heavy chains containing SEQ ID NOs. 9, 27, 31, 35, 39, or 43 An antibody according to any one of embodiments 1 to 16, including the antibody described above.
[0319] Embodiment 18: The antibody is a. Light chains containing sequence numbers 13, 17, 21, or 25; and b. Heavy chain containing SEQ ID NO. 29, 33, 37, 41, or 45 The antibody according to any one of embodiments 1 to 15 or 17, including the antibody described above.
[0320] Embodiment 19: The antibody according to Embodiment 17 or 18, wherein the amino acid residue glutamine (Gln;Q) in L-CDR1 at position 24 is substituted with arginine (Arg;R) or lysine (Lys;K), referring to SEQ ID NO: 15 or 17.
[0321] Embodiment 20: The antibody according to any one of the embodiments, wherein KLK5 is human KLK5 containing SEQ ID NO: 51, 52, or 53, or cynoKLK5 containing SEQ ID NO: 60.
[0322] Embodiment 21: The antibody is a. Variable light chains including CDR-L1 containing SEQ ID NO: 68, CDR-L2 containing SEQ ID NO: 69, and CDR-L3 containing SEQ ID NO: 70; and variable heavy chains including CDR-H1 containing SEQ ID NO: 71, CDR-H2 containing SEQ ID NO: 72, and CDR-H3 containing SEQ ID NO: 73; and / or b. A variable light chain containing SEQ ID NO: 74, and a variable heavy chain containing SEQ ID NO: 76; and / or c. A variable light chain encoded by a nucleotide containing SEQ ID NO: 75, and a variable heavy chain encoded by a nucleotide containing SEQ ID NO: 77. An antibody according to any one of the embodiments, which is conjugated to another antibody containing KLK5, and forms a complex with KLK5, preferably human KLK5.
[0323] Embodiment 22: An antibody that binds to KLK5, preferably human KLK5, wherein the antibody is a. Variable light chains including CDR-L1 containing SEQ ID NO: 68, CDR-L2 containing SEQ ID NO: 69, and CDR-L3 containing SEQ ID NO: 70; and variable heavy chains including CDR-H1 containing SEQ ID NO: 71, CDR-H2 containing SEQ ID NO: 72, and CDR-H3 containing SEQ ID NO: 73; and / or b. A variable light chain containing SEQ ID NO: 74, and a variable heavy chain containing SEQ ID NO: 76; and / or c. A variable light chain encoded by a nucleotide containing SEQ ID NO: 75, and a variable heavy chain encoded by a nucleotide containing SEQ ID NO: 77. The above antibodies, including the above.
[0324] Embodiment 23: A KLK5 antibody complex comprising the following: a. KLK5, preferably human KLK5 b. An antibody according to any one of Embodiments 1 to 18, and c. The antibody described in Embodiment 19 or Embodiment 20.
[0325] Embodiment 24: a. With respect to binding to KLK5, it competes with the antibody described in any one of Embodiments 1 to 20; and / or b. With respect to binding to KLK5, it cross-blocks or is cross-blocked with any one of the antibodies described in Embodiments 1 to 20; and / or c. Binding KLK5 to the same epitope as the antibody described in any one of Embodiments 1 to 20; and / or d. A heavy chain variable region having at least 90% identity or similarity to the sequence described in SEQ ID NO: 29, 33, 37, 41, or 45; and / or e. A light chain variable region having at least 90% identity or similarity to the sequence of sequence number 13, 17, 21, or 25, antibody.
[0326] Embodiment 25: An isolated polynucleotide encoding an antibody according to any one of Embodiments 1 to 20.
[0327] Embodiment 26: An isolated polynucleotide according to Embodiment 25, wherein the polynucleotide encodes the following: a. Light chain variable region, where the polynucleotide is: i. At least 90% identical to SEQ ID NO: 8 (or nucleotides 1-330 of SEQ ID NO: 8) or 12 (or nucleotides 1-330 of SEQ ID NO: 12) or 16 or 20 or 24 or 64 or 66; or ii. Containing SEQ ID NO: 8 (or nucleotides 1-330 of SEQ ID NO: 8) or 12 (or nucleotides 1-330 of SEQ ID NO: 12) or 16 or 20 or 24 or 64 or 66; or iii. Essentially consisting of SEQ ID NO: 8 (or nucleotides 1-330 of SEQ ID NO: 8) or 12 (or nucleotides 1-330 of SEQ ID NO: 12) or 16 or 20 or 24 or 64 or 66; or b. Heavy chain variable region, where the polynucleotide is: i. At least 90% identical to sequence number 10, 28, 32, 36, 40, or 44; or ii. Including sequence numbers 10, 28, 32, 36, 40, or 44; or iii. Essentially consisting of sequence numbers 10, 28, 32, 36, 40, or 44; or c. Light chain, where the polynucleotide is: i. At least 90% identical to sequence number 14, 18, 22, 26, 65, 67, 100, 101, 102, 103, or 104; or ii. Including SEQ ID NOs. 14, 18, 22, 26, 65, 67, 100, 101, 102, 103, or 104; or iii. Essentially consisting of sequence numbers 14 or 18 or 22 or 26 or 65 or 67 or 100 or 101 or 102 or 103 or 104; or d. Heavy chain, where the polynucleotide is: i. At least 90% identical to sequence number 30, 34, 38, 42, or 46; or ii. Including sequence numbers 30, 34, 38, 42, or 46; or iii. Essentially consisting of sequence numbers 30, 34, 38, 42, or 46.
[0328] Embodiment 27: A cloning or expression vector comprising one or more polynucleotides as described in either Embodiment 25 or 26.
[0329] Embodiment 28: a. One or more polynucleotides as described in either Embodiment 25 or 26, or b. One or more expression vectors described in Embodiment 27 Host cells, including those containing the host cell.
[0330] Embodiment 29: A method for producing an antibody according to any one of Embodiments 1 to 20, comprising culturing the host cells described in Embodiment 28 under appropriate conditions for antibody production, and isolating the antibodies produced by the host cells.
[0331] Embodiment 30: A pharmaceutical composition comprising the antibody described in any one of Embodiments 1 to 20 and one or more pharmaceutically acceptable carriers, excipients, or diluents.
[0332] Embodiment 31: An antibody or antigen-binding fragment thereof according to any one of Embodiments 1 to 20, or a pharmaceutical composition according to Embodiment 30, for use in therapeutic purposes.
[0333] Embodiment 32: An antibody according to any one of Embodiments 1 to 20 or a pharmaceutical composition according to Embodiment 30 for use in the treatment of a disease characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition.
[0334] Embodiment 33: The antibody for use according to Embodiment 32, wherein the disease is selected from Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer, or a combination thereof.
[0335] Embodiment 34: The antibody for use according to Embodiment 33, wherein the disease is Netherton syndrome.
[0336] Embodiment 35: The antibody for use according to Embodiment 33, wherein the disease is atopic dermatitis.
[0337] Embodiment 36: A method for treating a disease characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition in a patient, comprising administering to the patient a therapeutically effective amount of the antibody described in any one of Embodiments 1 to 20 or the pharmaceutical composition described in Embodiment 30.
[0338] Embodiment 37: The method according to Embodiment 34, wherein the disease is selected from Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer.
[0339] Embodiment 38: The antibody for use according to Embodiment 35, wherein the disease is Netherton syndrome.
[0340] Embodiment 39: The antibody for use according to Embodiment 35, wherein the disease is atopic dermatitis.
[0341] Embodiment 40: An antibody according to any one of Embodiments 1 to 20 or a pharmaceutical composition according to Embodiment 30 for the manufacture of a pharmaceutical for treating one or more diseases characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition.
[0342] Embodiment 41: An antibody for manufacture according to Embodiment 40, wherein the disease is selected from Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer, or a combination thereof.
[0343] Embodiment 42: An antibody for manufacture according to Embodiment 40, wherein the disease is selected from Netherton syndrome, atopic dermatitis, or a combination thereof.
[0344] Embodiment 43: An antibody according to any one of Embodiments 1 to 20, for use as a diagnostic agent or for use in a diagnostic assay or diagnostic kit for the diagnosis of one or more diseases characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition.
[0345] Embodiment 44: The antibody according to Embodiment 43, wherein the disease is selected from Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer, or a combination thereof.
[0346] Table 1 shows the base sequences included in the present invention. [Table 1-1] [Table 1-2] [Table 1-3] [Table 1-4] [Table 1-5] [Table 1-6] [Table 1-7] [Table 1-8] [Table 1-9] [Table 1-10] [Table 1-11] [Table 1-12] [Table 1-13] [Table 1-14] [Table 1-15] [Table 1-16] [Table 1-17] [Table 1-18] [Table 1-19] [Table 1-20] [Table 1-21]
[0347] Next, the present invention will be further described by examples with reference to the embodiments shown in the accompanying drawings. [Examples]
[0348] Example 1: Cloning, expression, and purification of kallikrein protein and LEKTI domain The optimized nucleotide sequence encoding the protein, as shown in Sequence ID No. 51, was cloned into an in-house mammalian expression vector using the HindIII / EcoRI site to generate a vector encoding the untagged human KLK5 protein.
[0349] Mouse and cynomolgus monkey (cyno) KLK5 sequences were similarly cloned, enabling the generation of active protein sequences including SEQ ID NOs. 59 and 60, respectively.
[0350] Domains 5 (D5) and 8 (D8) (as numbered in Uniprot) of human LEKTI (Uniprot Q9NQ38), containing residues 292-353 and 490-558 respectively, were cloned and expressed for use as reference proteins in in vitro assays.
[0351] The nucleotide sequences of human LEKTI domain 5 and domain 8, optimized for expression in mammalian cells, were separately cloned into in-house mammalian expression vectors encoding rabbit Fc tags using the HindIII / XhoI site, generating vectors encoding either the LEKTI domain 5 sequence with a C-terminal rabbit Fc tag (SEQ ID NO: 54) or the LEKTI domain 8 sequence with a C-terminal rabbit Fc tag (SEQ ID NO: 61). The encoded proteins will be referred to as LEKTI D5 rabbit Fc and LEKTI D8 rabbit Fc, respectively.
[0352] KLK5, LEKTI domain 5, and LEKTI domain 8 rabbit Fc fusion protein were expressed by transient transfection using the Expi293® expression system (Life Technologies®) according to the manufacturer's protocol. During expression, KLK5 was autoactivated, yielding active KLK5 (containing residues I67–S293 of SEQ ID NO: 53 or 51) in the supernatant. Cells were harvested 5 days post-transfection, and the supernatant was immediately used for purification. The supernatant containing human (or mouse or cyno) active KLK5 was diluted 4-fold with buffer A (50 mM Tris pH 7.0, 50 mM NaCl) and loaded onto a HiTrap SP HP cation exchange column. The bound protein was eluted using buffer A (50 mM Tris pH 7.0, 50 mM NaCl) and buffer B (50 mM Tris pH 7.0, 1 M NaCl) in a salt concentration gradient generated over a total of 10 column volumes. The fraction containing purified human (or mouse or cyno) active KLK5 was pooled, concentrated, and further purified by size exclusion chromatography on an S200 26 / 60 column equilibrated at pH 7.2 with a buffer containing 20 mM Tris, 150 mM NaCl, and 5% glycerol. SDS-PAGE analysis showed that the protein was glycosylated during expression. Mass spectrometry analysis confirmed the expected molecular weight. The supernatant containing human LEKTI D5 rabbit Fc fusion protein (according to SEQ ID NO: 54) was first subjected to Protein A affinity chromatography. The supernatant was loaded onto a 5 ml Hitrap® Protein A column. The bound protein was eluted with 1 M citrate buffer, pH 2.0, and the fraction was neutralized with 2 M Tris-HCl, pH 8.5. The fraction containing the LEKTI D5 rabbit Fc fusion protein was pooled, concentrated, and further purified by size exclusion chromatography using an S200 26 / 60 column equilibrated with PBS. The purified fraction containing the human LEKTI D5 rabbit Fc fusion protein was then pooled and concentrated. The LEKTI D8 rabbit Fc fusion protein (according to SEQ ID NO: 61) was similarly purified from the transfected cell culture supernatant.
[0353] LEKTI D5 Fab fusion molecules (as indicated by SEQ ID NOs. 94 and 95) were expressed and purified by cation exchange chromatography. A 5-nucleotide sequence of the LEKTI domain, flanked at the 5' and 3' ends by a sequence encoding the Gly4Ser linker, was integrated into an albumin-specific Fab heavy chain sequence framework (as described in WO2020011868, incorporated herein by reference); a tag encoding a 10xHis sequence was also placed at the 3' end of the Fab H chain. The LEKTI D5 Fab fusion heavy chain sequence was optimized for expression in mammalian cells, cloned into an in-house expression vector, and co-transfected in CHO SXE cells with a suitable light chain, also optimized for mammalian expression. Transfected cells were cultured in vented flasks at 32°C for 13 days. The supernatant was collected, concentrated, and buffer-exchanged to 20 mM Tris, 50 mM NaCl, pH 7.0, and then loaded onto an SP Sepharose HP column. The binding protein was eluted using a salt concentration gradient generated by a total of 10 column volumes with buffers A (50 mM Tris pH 7.0, 50 mM NaCl) and B (50 mM Tris pH 7.0, 1 M NaCl). The fraction containing the LEKTI D5 Fab fusion protein was pooled and further purified by size exclusion chromatography using an S200 column equilibrated with PBS pH 7.4. The relevant fractions were pooled.
[0354] Human and cynonucleotide sequences encoding the full-length KLK7 protein were expressed in a similar manner to human KLK5, which generates pro-KLK7 (including SEQ ID NOs. 55 and 57, respectively). Unlike KLK5, KLK7 does not self-activate during expression, so active forms of human and cyno-KLK7 (including SEQ ID NOs. 56 and 58, respectively) were generated using thermolysin, and the propeptide sequences were cleaved from the purified proteins. Human and cyno-pro-KLK7 proteins (including SEQ ID NOs. 55 and 57) were diluted to 1 mg / ml with activation buffer (50 mM Tris pH 7.5, 10 mM CaCl2, 150 mM NaCl, 0.05% Brij 35). Thermolysin (25 mg) manufactured by Sigma® was resuspended in 25 ml of digestion buffer (50 mM Tris pH 8.0, 0.5 mM CaCl2), and added to pro-KLK7 protein at a ratio of 1:10 at 37°C for 45 minutes. The mixture was then mixed with anion exchange DEAE resin (GE Life Sciences®) to bind and remove the thermolysin. The flow-through was recovered as active (human or cyno) KLK7 and concentrated to approximately 3.2 mg / ml by buffer exchange with 50 mM Tris pH 7.5, 150 mM NaCl, 5% glycerol, and 1 mM EDTA. Mouse pro-KLK7 was similarly produced and cleaved to generate the active enzyme.
[0355] Human KLK2 was supplied as an active protein by R&D Systems (trademark) (catalog number 4104-SE-010). Human KLK4 was supplied as a proform from R&D Systems (trademark) (catalog no. 1719-SE) and activated as follows: Human pro-KLK4 was diluted to 200 μg / mL in 50 mM Tris, 10 mM CaCl2, 150 mM NaCl, pH 7.5. Bacterial thermolysin was obtained from R&D Systems (trademark) (catalog no. 3097-ZN) and diluted to 2 μg / mL in the same buffer. Equal volumes of pro-human KLK4 and thermolysin were combined and incubated at room temperature for 10 minutes to enable activation. The reaction was stopped with EDTA to a final concentration of 10 mM.
[0356] Example 2: Antibody production by immunization using KLK5 Female New Zealand white rabbits (>2 kg) were subcutaneously immunized with 100 μg of 0.4 mg / mL human active KLK5 and human active KLK7 (expressed according to Example 1) mixed with an equal volume of complete Freund's adjuvant (Sigma®). The animals received boost injections containing 100 μg of the same immunogen mixed with an equal volume of incomplete Freund's adjuvant (Sigma®) at 21-day intervals. Single-cell suspensions of spleen, bone marrow, and peripheral blood mononuclear cells (PBMCs) were prepared 14 days after the final boost and the study was terminated when they were frozen at -80°C in 10% dimethyl sulfoxide (DMSO) in fetal calf serum (FCS).
[0357] B cell cultures were prepared using a method similar to that described in Tickle et al., 2015 J Biomol Screen:20(4), 492-497. In short, lymph node cells, spleen cells, or peripheral blood mononuclear cells (PBMCs) from immunized animals were cultured at a density of 2000 cells per well in 96-well barcoded tissue culture plates using feeder cells expressing CD40L and IL-2, with or without B-cell stimulating supernatant (BSS), in 200 μl / well of RPMI 1640 medium (Gibco) supplemented with 10% FCS (Sigma Aldrich®), 2% HEPES solution (Sigma Aldrich®), 2% L-glutamine solution (Gibco®), 1% penicillin / streptomycin solution (Gibco®), 0.2% normosine (Invivogen®), and 0.1% β-mercaptoethanol (Gibco®). BSS is produced by culturing PBMCs for 6 days in the presence of the mitotic stimulants phorbol-12-myristo-13-acetate (PMA) and phytohemagglutinin-L (PHA-L) before collecting the supernatant. Plates were incubated at 37°C and 5% CO2 for 6 days. The culture was set up using B cells from all immunized animals, totaling approximately 1 × 10⁶ cells. 9 A number of B cells were screened.
[0358] Six days later, the supernatant was screened for binding to human KLK5 (prepared as in Example 1) by multiple homogeneous fluorescence-based assay using Sol-R2 streptavidin beads (TTP Labtech®) coated with biotinylated human KLK5 as the target antigen source and Sol-R4 streptavidin beads (TTP Labtech®) coated with relevant KLK7 for counterscreening. To avoid complete modification of all lysine residues, the proteins were biotinylated using Lightning-Link Rapid Biotin Type B (Expedon®) with a 5-fold molar excess of protein compared to the provider's protocol. A total of 10 μL of supernatant from barcoded 96-well tissue culture plates was transferred to barcoded 384-well black wall assay plates containing the biotinylated KLK-coated Sol-R beads and FITC conjugate goat anti-rabbit Fc fragment specific (Jackson ImmunoResearch®) using an Agilent Bravo liquid handler. After incubation for one hour, the plates were read using a mirror ball device (TTP-Labtech®).
[0359] After primary screening, supernatants positive for KLK5 binding were ligated to 96-well barcoded master plates using a Beckman Coulter BiomekNXP® hit-picking robot, and B cells in the cell culture plates were cryopreserved at -80°C. First, the ligated supernatants were re-screened, and binding to human KLK5 was confirmed by Fluorometric Microvolume Assay Technology (FMAT). Briefly, 10 μL of supernatant was transferred to a barcoded black Greiner plate. Human biotinylated KLK5 was coated onto 50 μL / plate of 10 μm Super Avidin (Bangs Beads®) and mixed with Alexa-647® Goat Anti-Rabbit IgG Fc Fragment Specific (Jackson ImmunoResearch®). Then, the supernatant was added, and the plates were read using an Applied Biosystems® Cellular Detection System 8200. We selected a number of antibodies that bind to KLK5 and then investigated their ability to specifically inhibit KLK5 and the specificity of KLK5 to other kallikreins.
[0360] Example 3: Identification of KLK5 inhibitory antibodies A screening assay was developed to identify antibodies that can specifically inhibit KLK5 activity among the proteases and protease inhibitors present in complex B cell supernatant. Nunc Maxisorp black 384 (Sigma Aldrich®) plates were coated with F(ab')2 Fragment Goat Anti-Rabbit IgG Fc Fragment Specific (Jackson ImmunoResearch®) at a concentration of 10 μg / mL in carbonate buffer and left to stand overnight at 4°C. The plates were washed three times with PBS / 0.1% Tween-20 using a Biotek® plate washer and blocked at room temperature for 1 hour in 20 μL / well PBS / 1% BSA. B cell supernatant was added to the plate, 25 μl of 1 nM LEKTI D5 rabbit Fc fusion protein was added to the control well as a positive control for inhibition, and assay buffer A (50 mM Tris, 150 mM NaCl, 0.05% (v / v) Tween-20, pH 7.6) was added to a separate set of control wells as a negative control for inhibition. The plate was incubated overnight at room temperature and then washed three times with PBS / 0.1% Tween-20 using a Biotek® plate washer. 10 μL of 250 pM human KLK5 in assay buffer A was added to each well, and the plate was incubated overnight at room temperature to allow complete association. Boc-VPR-AMC substrate (Cambridge Research Biochemicals®) was added to each well in assay buffer A to a final concentration of 600 μM, and fluorescence (λex 380 nm λem 430 nm) was measured after 4 hours using a PHERAStar FSX (BMG Labtech®) plate reader.
[0361] The data was analyzed, and the inhibition rate of KLK5 activity was determined using the following formula.
number
[0362] Supernatants showing >40% inhibition were considered hits. This represented approximately 4% of the total screened supernatant. These antibodies were selected for variable region recovery.
[0363] A deconvolution step was necessary to identify specific antibody-secreting cells and recover antibody variable region genes from a heterogeneous population of activated B cells. The fluorescence lesion method (Clargo et al, 2014) was used. In short, antibody-secreting cells were incubated statically at 37°C for 1 hour in the presence of streptavidin beads (New England Biolabs) coated with biotinylated human KLK5 and goat anti-rabbit Fc fragment specific FITC conjugate (Jackson ImmunoResearch®). Antigen-specific antibody-secreting cells were then identified from the surrounding fluorescence halo. These individual B cell clones, confirmed under an Olympus microscope, were then excised using an Eppendorf® micromanipulator and precipitated in PCR tubes. cDNA was obtained from single cells by standard RT-PCR, followed by PCR of variable immunoglobulin sequences of the heavy and light chains using immunoglobulin gene-specific primers. Then, nested PCR was performed incorporating duplicate vector sites that allowed direct cloning of the variable region into rabbit IgG (VH) or rabbit kappa (VL) mammalian expression vectors. The heavy and light chain constructs were co-introduced into ExpiHEK-293 cells using ExpiFectamine® (Life Technologies®), and recombinant antibodies were expressed in 30 ml volumes in 125 ml Ehrenmeier flasks®. After 5-7 days of culture, the supernatant was collected, and the antibodies were purified by Protein A affinity capture using an AKTA purification chromatography system. A 1 ml Protein A HiTrap MabSelect® SuRe® column (GE Healthcare) was mounted on the system, the column was equilibrated with PBS pH 7.4, and then the cell culture supernatant was added to the column at a flow rate of 0.25 ml / min. Subsequently, the column was washed with PBS pH 7.4, the bound substance was eluted with sodium citrate pH 3.4, and neutralized with an appropriate amount of 2M Tris-HCl pH 8.5. The eluted fraction was buffered with PBS (Sigma), pH 7.4, and passed through a 0.22 μm filter.The final purified product was assayed using A280 scanning and SE-UPLC (BEH200 method), and endotoxin was detected using the Endosafe® PTS® system.
[0364] This analysis showed that rabbit antibodies 10236 and 10273 exhibited potent inhibition and were selected for further characterization.
[0365] Example 4: Identification of KLK5-specific inhibitory antibodies Next, purified rabbit antibodies 10236 and 10273 were screened to confirm their inhibitory activity against KLK5, and a panel of other human sequence kallikrein family members, including KLK2, KLK4, and KLK7, was used along with mouse and cynoKLKK5 and KLK7 to determine their specificity for KLK5. A 10-point semi-logarithmic dilution series from 600 nM to 20 pM was prepared for each antibody, and 5 μL was transferred to a Black 384-well assay plate (Corning®, catalog no. 3575) using a Beckman Coulter FX® and a Multidrop System. 15 μL of active recombinant human kallikrein protein was added to the corresponding wells to the following final concentrations: 60 pM KLK5, 250 pM KLK7, 500 pM KLK2, 30 pM KLK4, 30 pM cynoKLK5, 500 pM cynoKLK7, 30 pM mouse KLK5, or 10 nM mouse KLK7 in Assay Buffer A (50 mM Tris, 150 mM NaCl, 200 μM EDTA, 0.05% (v / v) Tween-20, pH 7.6). As a control, 20 μL of Assay Buffer A alone (without KLK protein) was added to the wells to achieve 0% activity. LEKTI D5 rabbit Fc was used as a positive control for inhibition (tested at the same concentration range as the antibody), while 15 μL of each active human kallikrein protein was added to 5 μL of assay buffer A to serve as a reference for 100% activity. The plates were incubated overnight at room temperature using a multidrop device before adding the following peptide substrates.Boc-VPR-AMC (Cambridge Research Biochemicals®) was used for human KLK5 (300 μM), human KLK2 (30 μM), mouse KLK5 (300 μM), and cynoKLK5 (450 μM); KHLF-AMC (Cambridge Research Biochemicals®) was used for human and cynoKLK7 (90 μM and 150 μM, respectively); PFR-AMC (R&D Systems®) was used for human KLK4 (200 μM); and Mca-RPKPVE-Nval-WRK(Dnp)-NH2 (R&D Systems®) was used for mouse KLK7 (150 μM). Samples were incubated for 4 hours, and readings were performed using a Pherastar FSX Plate Reader (BMG Labtech®) at λex380nm and λem430nm for Boc-VPR-AMC, PFR-AMC, and KHLF-AMC, and at λex320nm and λem400nm for Mca-RPKPVE-Nval-WRK(Dnp)-NH2. The data were analyzed to determine the inhibition percentage, as described in Example 3. The data were plotted against the concentration of the test antibody, and a 4-parameter sigmoid curve was fitted to determine the IC50 (Genedata Screener®).
[0366] In addition to rabbit antibody 10236, for this measurement, the polynucleotide sequences of the rabbit variable regions of antibodies 10236 and 10273 were cloned into a modified version of a mouse C kappa vector containing the S171C mutation, recreating additional disulfide bonds found in the rabbit VK light chain but not in the mouse constant region (sequences 80 and 81 for rabbit antibody 10273mIgG, and sequence numbers 84 and 85 (or nucleotides 1-1314 of sequence number 85) for rabbit antibody 10236mIgG). This resulted in antibodies including sequence numbers 82 and 83 for rabbit antibody 10236mIgG and sequence numbers 78 and 79 for rabbit antibody 10273mIgG.
[0367] Rabbit antibodies 10236 and 10237 mIgG showed no activity against other human family members tested (human KLK2, 4, and 7) (i.e., below the 40% threshold according to the selection criteria in Example 2), but showed potent inhibition of human KLK5. Potent inhibition of cynoKLK5 was also shown, but no inhibition of cynoKLK7 was observed. No inhibitory activity was evident against either mouse KLK5 or KLK7. IC5 of rabbit antibodies 10236, 10273, and LEKTI D5 rabbit Fc 50 The results are shown in Table 2.
[0368] [Table 2]
[0369] Example 5: Determination of affinity for KLK5-specific antibodies The dynamics of mouse IgG molecules binding to human KLK5 were evaluated at 25°C using surface plasmon resonance (Biacore T200, GE Life Sciences®).
[0370] A goat anti-mouse IgG Fc-specific antibody (Jackson ImmunoResearch) was immobilized on a CM5 sensor tip at approximately 7000 RU via amine coupling chemistry. Each analytical cycle involved capturing anti-KLK5 IgG molecules on the anti-Fc surface, injecting KLK5 analyte (prepared in-house) at 30 μl / min for 300 seconds, and dissociating for 600 seconds. At the end of each cycle, the surface was regenerated at a flow rate of 10 μL / min by injecting 50 mM HCl for 60 seconds, 5 mM NaOH for 30 seconds, and finally 50 mM HCl for 60 seconds. Human KLK5 was titrated from 20 nM to 0.25 nM in HBS-EP+ running buffer (GE Healthcare) with added NaCl to a final concentration of 300 mM (4 × 3-fold serial dilutions). Buffer blank injections were included to subtract instrument noise and drift.
[0371] Dynamical parameters were determined for a 1:1 coupling model using Biacore T200 Evaluation software.
[0372] Table 3 shows the affinity between rabbit antibodies 10236 and 10273. [Table 3]
[0373] Example 6: Characterization of antibody 10236 LEKTI binding to KLK5 in the presence of antibody 10236 Surface plasmon resonance (SPR) experiments were performed to determine whether antibody 10236 competes with the LEKTI D5 protein for binding to human KLK5. These assays allowed us to compare the affinity of the LEKTI D5 Fab fusion to the KLK5 protein alone with that of human KLK5 conjugated with antibody 10236.
[0374] The kinetic measurements of the binding of the LEKTI D5 Fab fusion protein to human KLK5 were obtained using Biacore T200 (GE Life Sciences®). To prepare the surface, the CM5 chip (GE Life Sciences®) was first injected with an EDC / NHS (GE Life Sciences®) mixture for 5 minutes (30 μL min). -1 ) is activated, followed by 100 μg mL in acetate buffer, pH 5.0 (GE Life Sciences®). -1 LEKTI D5 Fab fusion (UCB) was injected to achieve 80 RU immobilized LEKTI D5 Fab fusion on the chip surface. Finally, the surface was inactivated by injecting 1M ethanolamine hydrochloride-NaOH pH 8.5. The concentration of human KLK5 in HBS-EP buffer (GE Life Sciences®) was increased from 0.32 to 32 nM and injected in single-cycle kinetics mode. The values obtained from the buffer-only injection were subtracted from the values obtained for KLK5 injection, and the kinetics were determined by fitting them to a 1:1 coupling model using BIAcore evaluation software (GE Life Sciences®).
[0375] To determine whether human LEKTI can bind human KLK5 when it is bound by rabbit antibody 10236, an antibody-capturing surface was prepared using captured goat anti-rabbit Fc polyclonal and Ab10236 as described in Example 4. Then, 20 nM human KLK5 was injected until the surface reached saturation. LEKTI D5 Fab fusion protein (generated as described in Example 1) was then injected at concentrations between 30 pM and 100 nM. The values from buffer-only injections were first subtracted from the values obtained with the analyte before fitting the 1:1 binding kinetic model using Biacore® evaluation software (GE Life Sciences®).
[0376] For reference, the LEKTI D5 Fab fusion protein was immobilized on the chip surface before monitoring its interaction with human KLK5. The human LEKTI D5 Fab fusion protein was able to bind to human KLK5 when human KLK5 was already conjugated with rabbit antibody 10236 at an affinity of 120 nM (Table 4A). Although the affinity of human LEKTI to human KLK5 was higher (40 pM) in the absence of rabbit antibody 10236, this analysis demonstrates the possibility that rabbit antibody 10236 may confer additional inhibitory activity against human KLK5 by binding to human KLK5 in or out of the presence of human LEKTI.
[0377] [Table 4]
[0378] LEKTI-KLK5-antibody 10236 complex formation KLK5 was produced in HEK293 cells as a secreted protein with an 8xHis-tag at its N-terminus that is capable of TEV cleavage. This protein first undergoes Ni 2+ Ni containing KLK5 was purified from the culture medium by affinity chromatography. 2+The fraction from the column was pooled, digested with TEV protease to remove the His tag, then a second Ni affinity step was performed to remove the TEV protease, and the cleaved KLK5 was passed through the column. 2+ The flow-through fraction from the column was concentrated and treated with a size exclusion column containing 50 mM Tris pH 7, 50 mM NaCl, 1 mM EDTA, and 5% glycerol. The KLK5 fraction from SEC was pooled, concentrated to approximately 10 mg / ml, and stored at -80°C.
[0379] LEKTI domain 5 (LEKTI D5 Fc) according to SEQ ID NO: 98 and LEKTI domain 8 (LEKTI D8 Fc) according to SEQ ID NO: 99 were produced in HEK293 cells as secreted proteins with a TEV-cleavable Fc tag at the C-terminus. These proteins were purified by passing the trained medium through Protein A beads. The bound proteins were eluted with 0.1 M citrate, pH 2.0, and the fraction was neutralized with 2 M Tris-HCl, pH 8.5. The fractions from the Protein A column containing either LEKTI domain 5 or domain 8 were pooled, and the Fc tag was removed with TEV protease to obtain LEKTI D5 or LEKTI D8. The cleaved proteins were concentrated to ~15 mg / ml for size exclusion chromatography. SEC was performed in PBS, pH 7.2. The fractions containing LEKTI were pooled, concentrated to ~10 mg / ml, and frozen at -80°C.
[0380] Rabbit Fab antibody 10236 was expressed as a secreted protein in HEK293 cells. Expression constructs including SEQ ID NOs. 87 and 89 were co-transfected in a 1:1 molar ratio. The secreted Fab (including SEQ ID NOs. 86 and 88) was purified by passing the culture medium through protein G beads and eluted with 0.1 M glycine, pH 2.7. The fraction was neutralized by adding 2 M Tris-HCl, pH 8.5. The protein was dialyzed to PBS, pH 7.2, then concentrated to ~10 mg / ml, and stored frozen at -80°C.
[0381] A conjugate of KLK5, LEKTI D5 or LEKTI D8, and rabbit Fab antibody 10236 was formed by first incubating 25 μM KLK5 and 25 μM LEKTI D5 or LEKTI D8 on ice for 60 minutes, then adding 25 μM rabbit Fab antibody 10236 and continuing incubation on ice for another 60 minutes. This mixture was injected into a Superdex 200® size exclusion column equilibrated with PBS (pH 7.2) and connected in series to an HPLC. Peak fractions were collected for analysis by SDS-PAGE. Figures 1A and 1B are SEC chromatograms of human KLK5 alone (solid line, far right), rabbit Fab antibody 10236 alone (dotted line), a binary complex of human KLK + LEKTI D5 or D8 (Figures 1A or 1B, long dash, respectively), and a ternary complex of KLK5 + LEKTI D5 or D8 + rabbit Fab antibody 10236 (Figures 3A or 3B, short dash, far left, respectively).
[0382] The molecular weight (MW) of each peak component was determined by SDS-PAGE, as shown in Figure 2.
[0383] Overall, when human KLK5 and each LEKTI fragment were mixed individually, and then the binary complexes were incubated with rabbit Fab antibody 10236 in a 1:1:1 ratio, complexes were readily formed between KLK5, LEKTI D5 or LEKTI D8, and rabbit Fab antibody 10236. The binary and ternary complexes were observed by SEC and SDS-PAGE of the peak fractions, demonstrating their stability and suitability for isolation and purification from other species.
[0384] Example 7: Crystallization of the KLK5 / Fab antibody 10236 complex Human KLK5 was expressed by transient transfection using the Expi293® Expression System (Life Technologies®) following the manufacturer's protocol, with kifunensin® (Sigma®) added at a final concentration of 5 mM. Kifunensin is a potent inhibitor of the mannosidase I enzyme and is primarily used in cell culture to produce high-mannose glycoproteins.
[0385] During KLK5 expression, the protein is autoactivated, and the active KLK5 protein (residues I67–S293 of SEQ ID NO: 53 (UniProt Q9Y337 numbered)) can be obtained in the supernatant. Cells were harvested 5 days after transfection, and the supernatant was immediately used for purification. The supernatant containing human active KLK5 was diluted 4-fold with buffer A (50 mM Tris pH 7.0, 50 mM NaCl) and loaded onto a HiTrap SP HP cation exchange column. The bound protein was eluted using buffer A (50 mM Tris pH 7.0, 50 mM NaCl) and buffer B (50 mM Tris pH 7.0, 1 M NaCl) under a salt concentration gradient of a total of 10 column volumes. The fraction containing purified human active KLK5 was pooled, concentrated, and further purified by size exclusion chromatography on an S200 26 / 60 column equilibrated with 20 mM Tris, 150 mM NaCl, and pH 7.2.
[0386] KLK5 was characterized by SDS-PAGE and migrated to a location on the gel that matched the predicted molecular weight (MW) (~35–38 kDa) of the high-mannose glycosylated protein (Figure 3).
[0387] Next, human KLK5 protein was treated with endoglycosidase H (Endo H) protein in a 1:100 ratio and incubated overnight at 4°C to form a homogeneous deglycosylated KLK5 protein for structural studies. Endo Glycosidase H (Endo H) is a recombinant glycosidase cloned from Streptomyces plicatus and overexpressed in E. coli. Endo H cleaves high-mannose chitobiose cores and a limited number of hybrid oligosaccharides from N-linked glycoproteins. Complex carbohydrates are not cleaved. Enzymatic cleavage occurs between two N-acetylglucosamine residues in the diacetylchitobiose core of the oligosaccharide, leaving one N-acetylglucosamine residue on asparagine. This step was performed to make homogeneous human KLK5 available for crystallographic studies. KLK5 was characterized by SDS-PAGE (Figure 3) and migrated to a location on the gel that matched the predicted molecular weight (~25 kDa) of the deglycosylated protein.
[0388] Rabbit Fab antibody 10236 was expressed as described in Example 6. Rabbit Fab antibody 10236 (including SEQ ID NOs. 86 and 88) was expressed as described in Example 6. That is, the expression construct including SEQ ID NOs. 87 and 89 was co-transfected in a 1:1 molar ratio. Rabbit Fab antibody 10236 was purified by passing the culture medium through protein G beads and eluted with 0.1 M glycine, pH 2.7. The fraction was neutralized by adding 2 M Tris-HCl, pH 8.5. Each individual protein was dialyzed to PBS, pH 7.2, concentrated to ~10 mg / ml, and stored frozen at -80°C.
[0389] A 1.5:1 molar ratio mixture of human KLK5 / rabbit Fab antibody 10236 was prepared, incubated overnight at 4°C, and purified by size exclusion chromatography (20 mM Tris, 150 mM NaCl, pH 7.2 elution buffer). The formed complex was isolated and concentrated to ~10.0 mg / ml before crystallization.
[0390] The crystallization conditions for the human KLK5 / rabbit Fab antibody 10236 complex were identified using several commercially available crystallization screens. These were performed in a sitting drop format using a Swissci 96-well 2-drop MRC crystallization plate (supplied by Molecular Dimensions, Cat No. MD11-00-100). First, 75 μL of each crystallization solution from the screen was added to the reservoir using a Microlab STAR liquid processing system (Hamilton). Next, 300 nL of the human KLK5 / rabbit Fab antibody 10236 complex and 300 nL of the reservoir solution were dispensed into the wells of the crystallization plate using a Mosquito liquid handler (TTP LabTech). Single crystals were obtained under condition 88 (well H4) of the ProComplex Suite (Qiagen). This condition includes 1.4 M sodium malonate. The crystals were briefly transferred to drops containing 1.4 M sodium malonate and 25% glycerol. Crystals were flash-frozen in liquid nitrogen, and diffraction data was collected at beamline I03 (Diamond Light Source, UK). The data were indexed and integrated using XDS (Kabsch, W. XDS. Acta Cryst. D66, 125-132 (2010)), followed by scaling using AIMLESS (Evans PR, Murshudov GN. How good are my data and what is the resolution? Acta Crystallogr D Biol Crystallogr. 2013; 69 (Pt 7): 1204-1214).The structure of the human KLK5 / rabbit Fab antibody 10236 complex was determined by molecular substitution using a phaser in the Phenix software suite (Adams PD, Afonine PV, Bunkoczi G, et al. The Phenix software for automated determination of macromolecular structures. Methods. 2011;55(1):94-106) (McCoy, AJ, Grosse-Kunstleve, RW, Adams, PD, Winn, MD, Stornini, LC, & Read, RJP haser crystallographic software. J.Appl.Cryst. (2007). 40, 658-674). In this procedure, the structure of KLK5 and rabbit Fab antibody 10236 observed in the crystal structures of the KLK5 and rabbit Fab antibodies 10273 and 10236 complexes was used as a molecular substitution model. Coot (P. Emsley; B. Lohkamp; W.G. Scott; Cowtan (2010) "Features and Development of Coot" Acta Crystallographica. D66:486-501), and phenix.refine (Towards automated crystallographic structure refinement with phenix.refine. PVAfonine, RWGrosse-Kunstleve, N. Echols, JJ Head, NWMoriarty, M. Mustaakimov, TCTerwilliger, A. Urzhumtsev, PH Zwart, and PDAdams Acta Crystallogr D Biol Crystallogr 68, 352-67 (2012)) were used in the following cycles of manual model completion and refinement. Table 4B shows the refinement statistics at the time the invention was first described.
[0391] [Table 5]
[0392] A single human KLK5 / rabbit Fab antibody 10236 complex was observed in the asymmetric unit of the crystal. Figure 4B shows that the antibody binding site to KLK5 is different from the substrate binding site. The KLK5 epitope recognized by the Fab10236 molecule was defined using NCONT from the CCP4 software suite. The amino acid numbering of KLK5 is based on UnitProtKB entry Q9Y337, with the standard protease numbering based on chymotrypsinogen in parentheses.
[0393] The human KLK5 epitope, bound to the rabbit Fab antibody 10236 at a contact distance of 4 Å, consists of the residues Arg87(36), Ala107(56), Arg110(59), Lys111(60), Lys112(61), Val113(62), Val137(86), Lys138(87), Ser139(88), Ile140(89), Pro141(90), His142(91), Pro143(92), Tyr145(94), Ser146(95), and His147(96), with the numbers in parentheses corresponding to protease nomenclature. The binding site is shown in more detail in Figure 4A.
[0394] To visualize the binding site of Fab10236 related to the active site of KLK5, a structural overlay was made between the KLK5-Fab10236 structure presented herein and the publicly available structure of KLK5 with leupeptin bound to the active site (2PSX) (Figure 4B). This overlay shows that Fab10236 does not bind to KLK5 at the core of the active site, as indicated by the position of leupeptin (Figure 4B), although the light chain of Fab10236 forms contact with the 99-loop that forms part of the active site cleft on KLK5. A comparison was made between the KLK5-Fab10236 structure presented herein and previously published structures of KLK5, such as those disclosed as PDB IDs 2PSX and 2PSY. Crystal structure 2PSX shows KLK5 bound to the peptidopropyl protease inhibitor leupeptin at its active site, while crystal structure 2PSY shows KLK5 bound to leupeptin and a zinc ion adjacent to the active site. Zinc is known to non-competitively inhibit KLK5. Comparing the structures of 2PSX and 2PSY, it was found that zinc induces a shift in the 99-loop backbone structure, accompanied by a large positional change in the side chains of His147(96) and His150(99), thereby affecting protease activity. The movement of the backbone 99-loop is shown in the structural overlay (Figure 4C, white indicates no zinc, black indicates zinc), and the movement of the histidine side chain, particularly the shift of His147(99) from the outward position in the absence of zinc to the inward position when zinc is bound (Figure 4C, dashed arrows indicate the movement of the histidine side chain), is similarly shown.
[0395] The structural overlay of the KLK5-Fab10236 structure and the zinc-free KLK leupeptin structure (2PSX) highlights the movement of the 99-loop backbone and the His147(96) and His150(99) side chains (Figure 4D, showing details of the 99-loop and histidine side chains - black is the KLK5-Fab10236 structure, white is the zinc-free KLK5 leupeptin structure).
[0396] When Fab10236 binds to KLK5, His147(96), located in the 99-loop, undergoes a steric collision with the Fab light chain and cannot assume the conformation previously observed in crystal structure 2PSX (dashed square, Figure 4D). To accommodate the binding of Fab10236, the 99-loop adopts a different conformation in which His147(96) oscillates from an outer position to an inner position (similar to what is observed when zinc is bound; Figure 4D, dashed arrows indicate the movement of His147(96)). Simultaneously, the side chain of His150(99) also changes position and moves towards the S2 pocket, which may inhibit substrate binding. As shown in Figure 4D, the S2 pocket is occupied by modeled leupeptin, and the collision between the His150(99) side chain and leupeptin is highlighted by a white dashed circle.
[0397] Example 8: Crystallization of the KLK5 / Fab antibody 10236 / Fab antibody 10273 complex Human KLK5 was expressed in the same manner as in Example 7, except that the supernatant was loaded onto a HiTrap SP HP cation exchange column and the bound protein was eluted over 10 column volumes using a buffer B (50 mM Tris pH 7.0, 1 M NaCl) gradient. Further purification, endoglycosidase treatment, and analytical characterization were performed in the same manner as in Example 7.
[0398] Rabbit Fab antibody 10236 was expressed in the same manner as in Example 6. Rabbit Fab antibody 10273 (including SEQ ID NOs. 90 and 92) was cloned as described for rabbit Fab antibody 10236. That is, it was co-transformed with an expression construct including SEQ ID NOs. 91 and 93 in a 1:1 molar ratio. The secreted protein was purified by passing the culture medium through protein G beads and eluted with 0.1 M glycine, pH 2.7. The fraction was neutralized by adding 2 M Tris-HCl, pH 8.5. The protein was dialyzed to PBS, pH 7.2, then concentrated to ~10 mg / ml, and stored frozen at -80°C.
[0399] A 1:1.5:1.5 human KLK5 / rabbit Fab antibody 10273 / rabbit Fab antibody 10236 conjugate was prepared, incubated overnight at 4°C, and purified by size exclusion chromatography (20 mM Tris, 150 mM NaCl, pH 7.2 elution buffer). The single peak containing the conjugate was concentrated to ~10.8 mg / ml before crystallization.
[0400] The crystallization conditions for the human KLK5 / rabbit Fab antibody 10273 / rabbit Fab antibody 10236 conjugate were identified using several commercially available crystallization screens. These were performed in a sitting drop format using a Swissci 96-well 2-drop MRC crystallization plate (supplied by Molecular Dimensions, Cat No. MD11-00-100). First, 75 μL of each crystallization solution from the screen was added to the reservoir using a Microlab STAR liquid processing system (Hamilton). Next, 300 nL of the human KLK5 / rabbit Fab antibody 10273 / rabbit Fab antibody 10236 conjugate and 300 nL of the reservoir solution were dispensed into the wells of the crystallization plate using a Mosquito liquid handler (TTP LabTech). Single crystals were obtained under condition 16 (well B4) of the MIDAS+HT-96 screen (Molecular Dimensions, Cat No. MD1-107). This condition included 45% v / v pentaerythritol propoxylate (5 / 4), 0.2 M NaCl, and 0.1 M MES monohydrate at pH 6.0. The crystals were flash-frozen in liquid nitrogen, and diffraction data were collected at beamline I03 (Diamond Light Source, UK). The data were indexed and integrated using XDS (Kabsch, W. XDS. Acta Cryst. D66, 125-132 (2010)), and then scaled using AIMLESS (2. Evans PR, Murshudov GN. How good are my data and what is the resolution? Acta Crystallogr D Biol Crystallogr. 2013; 69 (Pt 7): 1204-1214).The structure of the human KLK5 / rabbit Fab antibody 10273 / rabbit Fab antibody 10236 complex was determined using the Phenix software suite (Adams PD, Afonine PV, Bunkoczi G, et al. The Phenix software for automated determination of macromolecular structures. Methods. 2011;55(1):94-106) by molecular substitution using Phaser (McCoy, AJ, Grosse-Kunstleve, RW, Adams, PD, Winn, MD, Stornini, LC, & Read, RJPhaser crystallographic software. J.Appl.Cryst. (2007). 40, 658-674). In this procedure, the KLK5 structure 2PSX (Debela M, Goettig P, Magdolen V, Huber R, Schechter NM, Bode W. Structural basis of the zinc inhibition of human tissue kallikrein 5. J Mol Biol. 2007 Nov 2;373(4):1017-31) and a proprietary Fab model were used as molecular substitution templates.Coot (P. Emsley; B. Lohkamp; W.G. Scott; Cowtan (2010) "Features and Development of Coot" Acta Crystallographica. D66:486-501), and phenix.refine (Towards automated crystallographic structure refinement with phenix.refine. PVAfonine, RWGrosse-Kunstleve, N. Echols, JJ Head, NWMoriarty, M. Mustaakimov, TCTerwilliger, A. Urzhumtsev, PH Zwart, and PDAdams. Acta Crystallogr D Biol Crystallogr) 68,352-67 (2012)) was used in the next cycle of manual model completion and refinement until acceptable Rwork, Rfree, and Ramachandran statistics (analyzed by Molprobity (Williams et al. (2018) MolProbity: More and better reference data for improved all-atom structure validation. Protein Science 27:293-315)) were obtained.
[0401] The human KLK5 / rabbit Fab antibody 10273 / rabbit Fab antibody 10236 complex was observed in the asymmetric unit of the crystal. The epitopes on KLK5 recognized by the Fab10273 and Fab10236 molecules were determined using NCONT from the CCP4 software suite. The KLK5 amino acid numbering is based on UnitProtKB entry Q9Y337, with standard protease numbering based on chymotrypsinogen in parentheses. Table 4C shows refined statistics at the time the invention was first described.
[0402] [Table 6]
[0403] At a contact distance of 4 Å, the human KLK5 epitope to which rabbit Fab antibody 10236 binds consists of residues Arg87(36), Ala107(56), Arg110(59), Lys111(60), Lys112(61), Val113(62), Val137(86), Lys138(87), Ser139(88), Ile140(89), Pro141(90), His142(91), Pro143(92), Tyr145(94), Ser146(95), and His147(96), with the numbers in parentheses corresponding to protease nomenclature. The binding site is shown in more detail in Figure 4D.
[0404] As shown in Figure 5, antibodies 10236 and 10273 have very different, non-overlapping binding sites and bind to different epitopes on human KLK5.
[0405] Example 8: Humanization and characterization of antibody 10236 Humanization of Ab10236 Rabbit antibody 10236 was humanized by grafting a CDR from the rabbit V region onto a human germline antibody V region framework. Many framework residues from the rabbit V region were also retained in the humanized sequence to restore antibody activity. These residues were selected using the protocol outlined by Adair et al., (1991) (Humanized Antibodies, WO91 / 09967). The alignment of the rabbit antibody (donor) V region sequence and the human germline (acceptor) V region sequence, along with the designed humanized sequence, is shown in Figures 6 and 7. The CDR grafted from the donor sequence to the acceptor sequence follows the definition by Kabat (Kabat et al., 1987), although the Chothia / Kabat composite definition is used for CDR-H1 (see Adair et al., 1991 Humanized Antibodies, WO91 / 09967).
[0406] For antibody 10236, the human V region IGKV1-6 + JK4 J region (IMGT, http: / / www.imgt.org / ) was selected as the acceptor for the light chain CDR. In the humanized graft of the 10236 light chain, all framework residues, with the exception of one or more residues from the group including residues 2, 3, and 63, were derived from human germline genes, and the donor residues tyrosine (Y2), aspartic acid (D3), and lysine (K63) related to SEQ ID NO: 15 were retained (Figure 6). Retention of donor residues Y2 and D3 was essential for the highest affinity binding to human KLK-5.
[0407] The human V region IGHV4-4+JH4 J region (IMGT, http: / / www.imgt.org / ) was selected as the acceptor for the heavy chain CDR of antibody 10236. As with many rabbit antibodies, the VH gene of antibody 10236 is shorter than that of the selected human acceptor. When aligned with the human acceptor sequence, framework 1 of the VH region of antibody 10236 lacks an N-terminal residue, which is retained in the humanized antibody (Figure 7). Framework 3 of the 10236 rabbit VH region also lacks two residues (75 and 76) in the loop between the beta-sheet chains D and E: in the humanized graft, the gap is filled with the corresponding residues from the selected human receptor sequence (Figure 7) (lysine 75, K75; asparagine 76, N76), or alternatively with lysine and threonine (lysine 75, K75; threonine 76, T76). In the humanized graft of the 10236 heavy chain, all framework residues, with the exception of one or more residues from the group including residues 67, 71, 73, and 78, were derived from human germline gene sequences, and the donor residues phenylalanine (F67), glutamine (Q71), serine (S73), and valine (V78) related to SEQ ID NO: 39 were retained, respectively. Retention of donor residues Q71, S73, and V78 was essential for the highest affinity binding to human KLK-5. Substitution of the glutamine residue at position 1 of the human framework with glutamic acid (E1) enabled the expression and purification of a homogeneous product: the conversion of glutamine to pyroglutamic acid at the N-terminus of antibodies and antibody fragments has been widely reported. The theoretical pI of the humanized 10236 antibody is ~6.3 to 6.6. To facilitate the removal of impurities by ion exchange chromatography in downstream processes, pI was increased by mutating residue 24 of CDRL1 in graft gL6 from glutamine (Q) to arginine (R) or lysine (K) residues.
[0408] Humanized grafts were tested with rabbit / human antibody 10236 to evaluate whether their affinity was affected by the humanization procedure. Rabbit / human antibody 10236 was cloned into a modified version of a human C kappa vector containing the S171C mutation, and additional disulfide bonds present in the rabbit VK light chain but absent in the human constant region were recreated to obtain rabbit / human antibody 10236 according to SEQ ID NOs. 96 and 97.
[0409] Affinity measurement of Ab10236 humanized grafts A goat anti-human IgG Fc-specific antibody (Jackson ImmunoResearch) was immobilized on a CM5 sensor chip to a level of approximately 6000 RU via amine coupling chemistry. Each analytical cycle involved capturing anti-KLK5 IgG from the supernatant onto the anti-Fc surface, injecting KLK5 analyte (prepared in-house) at 30 μl / min for 180 seconds, and dissociating for 600 seconds. At the end of each cycle, the surface was regenerated by injecting 50 mM HCl at a flow rate of 10 μL / min for 60 seconds, followed by 5 mM NaOH for 30 seconds, and finally 50 mM HCl for 60 seconds. Human KLK5 was titrated from 20 nM to 0.08 nM on the supernatant in HBS-EP+ running buffer (GE Healthcare®) supplemented with a final concentration of 300 mM NaCl (5 × 3-fold serial dilutions). Buffer blank injections were included to subtract instrument noise and drift. Dynamical parameters were determined using the Biacore T200 evaluation software (version 3.0) in a 1:1 coupling model. The experiment was conducted at 25°C.
[0410] Rabbit / human chimeric antibodies were analyzed at the start and end of the assay and showed good accuracy. As summarized in Table 5, high-quality data was generated for all samples.
[0411] [Table 7]
[0412] As shown in Table 5, graft 10236gL6gH12 maintained high affinity for human KLK5 regardless of the presence or absence of the Q24R / K mutation.
[0413] Profiling of humanized antibodies KLK5 selectivity A series of studies were conducted to confirm that humanization of rabbit antibody 10236 does not alter the selectivity of KLK5 for other kallikreins and does not reduce its affinity or inhibitory activity.
[0414] Next, the purified antibodies were screened to confirm their inhibitory activity against KLK5 according to the method described in Example 4. The antibodies were tested in a 10-point semi-logarithmic dilution series in the range of 600 nM to 20 pM. Using a Beckman Coulter FX® and Multidrop System, 5 L of each antibody was transferred to a black 384-well assay plate (Corning®, catalog no. 3575). 15 μL of the selected activated recombinant kallikrein enzyme in assay buffer A (150 mM NaCl, 50 mM Tris, 200 μM EDTA, 0.05% (v / v) Tween-20, pH 7.6) was added to the appropriate wells to achieve the following final assay concentrations: 60 pM Human KLK5 (UCB), 250 pM KLK7 (UCB), 500 pM KLK2 (R&D Systems®), 30 pM KLK4 (UCB), 30 pM CynoKLK5 (UCB), 500 pM cynoKLK7, 30 pM mouse KLK5 (UCB), and 5 nM mouse KLK7 (UCB). The enzyme prepared in UCB is shown in parentheses and is prepared as described above in Example 1. Sources of commercially available enzymes are shown in parentheses.
[0415] Only 20 μL of assay buffer A was added to the wells to determine 0% activity. LEKTI D5 rabbit Fc (UCB preparation, as described above) was used as the baseline for inhibitory activity; 5 μL of LEKTI D5 rabbit Fc in the same concentration range used for the 10236 antibody was added to 15 μL of kallikrein enzyme. 15 μL of human KLK5 added to 5 μL of assay buffer A was used as the baseline for 100% activity.
[0416] Antibodies and kallikrein were incubated overnight at room temperature. The following peptide substrates were added using multidroppers: Boc-VPR-AMC (Cambridge Research Biochemicals®) for human KLK5 (300 μM), human KLK2 (30 μM), mouse KLK5 (300 μM), and cynoKLK5 (450 μM); KHLF-AMC (Cambridge Research Biochemicals®) (90 μM and 150 μM, respectively) for human and cynoKLK7; PFR-AMC (R&D Systems®) (200 μM) for human KLK4; and Maca-RPKPVE-Nval-WRK(Dnp)-NH2 (R&D Systems®) (150 μM) for mouse KLK7. The samples were incubated for 4 hours, and then, using a Pherastar FSX Plate Reader (BMG Labtech®), the following parameters were used for Boc-VPR-AMC, PFR-AMC, and KHLF-AMC: λ ex 380nm and λ em At 430nm, for Mca-RPKPVE-Nval-WRK(Dnp)-NH2, λ ex 320nm and λ em Readouts were performed at 400 nm. The data were analyzed to determine the inhibition percentage, as described in Example 3. The data were plotted against the concentration of the test antibody, and the IC50 was determined by fitting a 4-parameter sigmoid (Genedata Screener®).
[0417] Humanized grafts of Ab10236 retained specific inhibitory activity against KLK5 and showed little to no inhibition against other KLK family members tested. Ab10236gL6gH12 is a potent inhibitor of human and cynoKLK5, retaining similar potency to its parent non-humanized antibody (Table 6, values are individual measurements). Activity against human KLK2, 4, and 7, cynoKLK7, mouse KLK5, or mouse KLK7 was not evident (i.e., less than the 40% threshold according to the selection criteria of Example 2) (Figure 8).
[0418] [Table 8]
[0419] LEKTI binding to KLK5 in the presence of humanized antibody 10236 The surface plasmon resonance (SPR) experiment described in Example 5 was performed to determine the affinity of LEKTI for KLK5 conjugated with the humanized antibody 10236gL6gH12, as was done for the parental rabbit antibody 10236.
[0420] Except for the fabrication of the anti-human Fc chip surface, the experimental conditions described in Example 5 were used, and the results are reported in Table 6. Similar to the parent rabbit 10236 antibody, the LEKTI D5 Fab fusion protein was able to bind to KLK5 already complexed with the antibody 10236gL6gH12, but with lower affinity than human KLK5 alone (Table 7, 540 nM vs. 40 pM).
[0421] [Table 9]
[0422] KLK5-PAR2 cell assay KLK5 has been shown to activate protease-activated receptor 2 (PAR2) receptors on the surface of keratinocytes (K. Oikonomopoulou et al. Kallikrein-mediated cell signaling: targeting proteinase-activated receptors (PARs). Biol Chem, 387 (2006), pp. 817-824). As a result, an NFκB-driven inflammatory cascade is formed, and related cytokines such as TSLP are released. Since PAR2 is a Gq-binding G protein-coupled receptor (GPCR), its activation leads to phospholipase signaling and inositol monophosphate (IP-1) production. Activation of endogenous PAR2 expressed in HaCat keratinocytes after exposure to KLK5 was monitored by detecting IP1 using a Cisbio assay kit.
[0423] Confluent HaCat cells were harvested and plated at 10,000 cells / well in 384 Fluoblock plates (Corning®). They were incubated overnight in DMEM medium + 10% FBS + 2 mM L-glutamine + Pen / Strep (Life Technologies®) at 37°C and 5% CO2, and then processed according to the IP-One Gq assay protocol (Cisbio®). The antibodies to be tested (antibody 10236gL6gH12 and negative human IgG4 A33) were serially diluted from the highest concentration of 2 μM with 1x Stimulation Buffer B (IP-One Gq assay kit, Cisbio®) and incubated at 37°C for 1 hour in the presence of 200 nM human KLK5. The antibody / KLK5 mix was added to HaCat cells, and fluorescence was read at 665 nM and 620 nM using a Synergy Neo plate reader to detect inositol monophosphate (IP1) according to the IP-One Gq assay protocol.
[0424] The antibody 10236gL6gH12 was able to almost completely inhibit IP1 release from KLK5-treated HaCat cells (Figure 9), showing the same maximum inhibition of IP1 release as LEKTI D5 rabbit Fc protein.
[0425] Mechanism of action of antibody 10236 Experiments were conducted to elucidate the mechanism of action of inhibitory antibodies. Non-competitive enzyme inhibitors reduce enzyme activity but can bind to the enzyme equally well in the presence or absence of the substrate. Although the inhibitor and substrate can bind to the enzyme simultaneously, no product is formed; therefore, the enzyme-substrate-inhibitor complex is only degraded into either the enzyme-substrate or the enzyme-inhibitor complex itself. With non-competitive inhibitors, increasing the substrate concentration does not affect the inhibition rate.
[0426] The antibody 10236gL6gH12 or LEKTI D5 rabbit Fc protein was prepared in assay buffer (150 mM NaCl, 50 mM Tris, 200 μM EDTA, 0.05% (v / v) Tween-20, pH 7.6) with an IC50 of 300, 30, or 3 times that of human KLK5. 10 μL of antibody 10236gL6gH12 was added to a Corning Low binding black low flange 384 well assay plate (Corning®). 10 μL of five serial dilutions of 30 mM–300 μM Boc–VPR–AMC (Cambridge Research Biochemicals®) was added to the plate. Using a Pherastar FSX plate reader (BMG Labtech®), 10 μL of 1.8 nM human KLK5 (Boc-VPR-AMC < 1 mM) or 180 pM KLK5 (Boc-VPR-AMC > 1 mM) was injected to simultaneously initiate the reaction, and fluorescence (λex 380 nm λem 430 nm) was monitored every 30 seconds. Final reaction conditions included antibody 10236 gL6 gH12 or LEKTI D5 rabbit Fc protein, IC50 100, 10, or 1-fold relative to the determined human KLK5, serial dilutions of Boc-VPR-AMC between 10 mM and 100 μM, and 60 or 600 pM human KLK5. Non-inhibitory controls were established by replacing the antibody with assay buffer, and background controls were established by replacing the enzyme with buffer.
[0427] The data was analyzed by subtracting the background fluorescence at each time point and plotting the fluorescence against time. The data was applied to the following formula (GraphPad Prism®, GraphPad Software).
number
[0428] This allows for the measured value of the time-dependent inhibition rate k obs We were able to make a decision. Here, v i v is the initial reaction rate. s k is the final reaction rate. obs The values were plotted against substrate concentration to determine the inhibition mechanism. The inhibition rates of human KLK5 by antibody 10236gL6gH12 (Figure 10A) and rabbit antibody 10236 (Figure 10B) did not change with increasing substrate concentration, demonstrating that antibody 10236gL6gH12 is a non-competitive inhibitor of human KLK5. On the other hand, LEKTI D5 rabbit Fc protein showed a decrease in inhibition rate with increasing substrate concentration, demonstrating that it is a competitive inhibitor of human KLK5.
[0429] Example 9: In vitro skin system testing The functional effect of antibody 10236gL6gH12 IgG4P on human KLK5 was demonstrated using the human in vitro full-thickness skin system EpiDermFT (MatTek® Corporation; Morizane, Shin et al. "Kallikrein expression and cathelicidin processing are independently controlled in keratinocytes by calcium, vitamin D(3), and retinoic acid." The Journal of Investigative Dermatology vol.130,5(2010):1297‐306.doi:10.1038 / jid.2009.435).
[0430] MC903, a vitamin D3 analog, was used in in vitro skin treatment because it induces an atopic dermatitis-like phenotype in vivo (Naidoo, Karmella et al. "Eosinophils Determine Dermal Thickening and Water Loss in an MC903 Model of Atopic Dermatitis." The Journal of Investigative Dermatology vol.138,12(2018): 2606‐2616.doi:10.1016 / j.jid.2018.06.168).
[0431] EpiDermFT® full-thickness reconstituted skin tissue was equilibrated overnight in EFT-400-ASY assay medium (MatTek Corporation®) at 37°C and 5% CO2. On day 0, the medium was removed from the wells and replaced with 2.5 ml of EFT-400-ASY medium. Tissue was topically treated with 25 μl of medium only; MC903 (Tocris Bioscience®) diluted to a final concentration of 2 nmol in EFT-400-ASY medium; or MC903 diluted with medium (2 nmol) plus 10 μg / ml antibody 10236 g L 6 g H12 IgG4P or hIgG4P isotype control (proprietary). Plates were incubated at 37°C and 5% CO2. The basal medium was changed daily, and topical treatment was performed daily. The experiment was stopped on day 4.
[0432] The tissue was removed from the Transwell (Costar Snapwell®), bisected using a scalpel on a sterile petri dish, and placed in OCT tissue embedding material (Cellpath®) for histological analysis. 6 μm sections were prepared, structural integrity was evaluated by hematoxylin-eosin staining, KLK5 was detected by immunofluorescence, and protease activity was evaluated by in situ zymography assay.
[0433] For KLK5 immunofluorescence staining, sections were air-dried at room temperature for 10 minutes, washed three times with 0.1% Tween 20 in PBS, and then washed once with PBS. The sections were then blocked with 5% BSA in PBS for 10 minutes. The sections were circled with a PAP pen and incubated with 10 μg / ml mouse anti-huKLK5 antibody (Abcam®) in a humidifier at 37°C for 1 hour. After antibody incubation, the sections were washed again and fixed with 4% PFA for 10 minutes. Next, the sections were incubated with secondary anti-goat mouse IgG Alexa 546 (Life Technologies®) in a humidifier at 37°C for 1 hour. The sections were washed and mounted using mounting medium containing DAPI (Vector Labs®). Fluorescence images were acquired at 20x magnification using a Zeiss Axio Scan.
[0434] For in situ zymography, sections were air-dried at room temperature for 10 minutes and washed once with 2% tween in PBS and three times with PBS. Sections were incubated with 10 g / ml casein-BODIPY-FL fluorescent substrate (Invitrogen®) in a humidifier at 37°C for 3 hours. Sections were washed three times with PBS and mounted using mounting medium containing DAPI (Vector Labs®). Fluorescence images were acquired immediately at 20x magnification using a Zeiss Axio Scan.
[0435] A comparison of tissue structures after MC903 treatment with and without the use of the antibody 10236gL6gH12 IgG4P demonstrated that KLK inhibition can prevent stratum corneum damage in a human skin model (Figure 11).
[0436] Furthermore, in skin samples treated with the antibody 10236gL6gH12 IgG4P, KLK5 expression did not change, but serine protease activity decreased (data not shown).
[0437] Example 10: In situ zymography in atopic dermatitis samples Skin punch biopsies (National Bioservice Russia) from patients with moderate to severe atopic dermatitis were tested to evaluate the inhibitory effect of anti-KLK5 antibodies. Biopsies (4 mm) were embedded in OCT tissue embedding matrix (Cellpath®) and stored at -80°C. Tissue sections (6 μm) were cut and used for in situ zymography analysis as described in Example 9, using the fluorescent quenching substrate [5-FAM]-FVNRSYPP-Lys(Dabcyl)-amide at a final assay concentration of 20 μm instead of casein-BODIPY-FL. When the substrate was cleaved in the tissue section, it fluoresced and was detected as a fluorescence image at 20x magnification using Zeiss Axio Scan®.
[0438] The data showed that pre-incubation of atopic dermatitis tissue sections with the antibody 10236gL6gH12 IgG4P reduced serine protease activity levels compared to sections treated without the inhibitor (Figure 12), as indicated by a significant reduction in white staining in the stratum corneum (the outermost layer of the epidermis) and the granular layer (just below the stratum corneum).
[0439] Example 11: Biophysical characterization of humanized antibodies The biophysical properties of 10236gL6gH12 (as IgG4P and IgG1 isotypes) were determined to assess its potential for development. This included evaluation of thermal stability (Tm), experimental pI, apparent hydrophobicity, solubility (PEG precipitation assay), and self-interaction (aggregation tendency) by AC-SINS.
[0440] Furthermore, the antibody 10236gL6N94D gH12 variant was tested to evaluate its chemical stability, i.e., the deamidation tendency of the Asn(94)Ser motif in the light chain CDR3 (see SEQ ID NO: 15) (Table 8). [Table 10]
[0441] Characterization by mass spectrometry The identity of antibodies 10236IgG1 and IgG4P was confirmed by intact mass measurement of the heavy and light chains using LC-MS with a Waters ACQUITY UPLC system equipped with a Xevo® G2 Q-ToF mass spectrometer. Samples (~5 μg) were reduced with 5 mM tris(2-carboxyethyl)phosphine (TCEP) in 150 mM ammonium acetate at 37°C for 40 minutes. The LC column was a Waters BioResolve® RPmAb polyphenyl, 450 Å, 2.7 μm, held at 80°C and equilibrated with 95% solvent A (water / 0.02% trifluoroacetic acid (TFA) / 0.08% formic acid) and 5% solvent B (95% acetonitrile / 5% water / 0.02% TFA / 0.08% formic acid) at a flow rate of 0.6 mL / min. Proteins were eluted over 8.8 minutes in a gradient of 5% to 50% solvent B, followed by washing with 95% solvent B and re-equilibriumization. UV data was acquired at 280 nm. The MS conditions were as follows: Ion mode: ESI cation, separation mode, mass range: 400-5000 m / z, external calibration with NaI. Waters MassLynx™ and MaxEnt software were used for data analysis.
[0442] No difference was observed between the predicted molecular weight determined by intact mass spectrometry and the measured molecular weight (Table 9). [Table 11]
[0443] Measurement of thermal stability (Tm) The melting temperature (Tm) or the temperature at the midpoint of unfolding was measured using a thermal shift assay.
[0444] In this assay, the fluorescent dye SYPRO® Orange was used to monitor the protein unfolding process by binding to hydrophobic regions that become exposed as the temperature rises. The reaction mix contained 5 μL of 30x SYPRO® Orange Protein Gel Stain (Thermofisher Scientific, S6651), diluted from a 5000-fold concentrate in test buffer. 45 μL of 0.2 mg / mL sample was added to the dye in PBS pH 7.4 or 50 mM sodium acetate and 125 mM sodium chloride pH 5.0. 10 μL of this mixed solution (a common pre-formulation buffer) was dispensed four times into a 384 PCR optical well plate and operated on a QuantStudio 7 real-time PCR system (Thermofisher®). The PCR system's heating device was set to 20°C and heated to 99°C at a rate of 1.1°C / min. Fluorescence changes in the wells were monitored using a charge-coupled device. The increase in fluorescence intensity was plotted, and the apparent midpoint temperature (Tm) was calculated using the inflection point of the slope. The data is shown in Table 10.
[0445] In 10236gL6gH12(IgG4P), two unfolding transitions were observed. The first was thought to be due to the CH2 domain, and the second to the average Tm of the Fab unfolding domain and the CH3 domain. In IgG1 molecules, one unfolding domain was observed to be due to the average Tm of the CH2 domain and the Fab domain. This is consistent with the literature (Garber E. Demerest SJ. Biochem Biophys Res Commun. 2007 Apr;355(3):751-7).
[0446] [Table 12]
[0447] Experimental measurement of the isoelectric point (pI) pI was experimentally measured using the iCE3® whole capillary image capillary isoelectric focusing (cIEF) system (ProteinSimple). Samples were prepared by mixing: 30 μL of sample (1 mg / mL stock in HPLC-grade water), 35 μL of 1% methylcellulose solution (ProteinSimple, 101876), 4 μL of pH 3-10 pharmalytes (ProteinSimple, 042-848), 0.5 μL of 4.65 and 0.5 μL of 9.77 synthetic pI markers (ProteinSimple, 102223 and 102219), and 12.5 μL of 8M urea solution (Sigma Aldrich®). The final volume was adjusted to 100 μL using HPLC-grade water. The sample was focused at 1.5kV for 1 minute, then at 3kV for 5 minutes, and a 280nm image of the capillary was acquired using Protein Simple software. The resulting electropherograms were analyzed using iCE3 software, and pI values were assigned (there is a linear relationship between the pI markers). The data is summarized in Table 11.
[0448] The pI of 10236gL6gH12(hIgG4P) was found to be lower than that of the corresponding IgG1 molecule. Neither molecule presented any development or manufacturing issues, and their pIs are generally expected to be higher than those of buffers used in pharmaceutical formulations (~pH 5). [Table 13]
[0449] Hydrophobic interaction chromatography (HIC) Hydrophobic interaction chromatography (HIC) separates molecules in order of their hydrophobicity. Molecules bind to the hydrophobic stationary phase in the presence of a high concentration of polar salt and desorb into the mobile phase as the salt concentration decreases. Longer retention times indicate higher hydrophobicity.
[0450] Two isotypes of IgG4P and IgG12 (2 mg / mL 10236 gL6gH12) were diluted 1:2 with 1.6 M ammonium sulfate and PBS (pH 7.4). 10 μg (10 μL) of the sample was injected into a Dionex ProPac® HIC-10 column (100 mm x 4.6 mm) connected in series with an Agilent 1200 binary HPLC equipped with a fluorescence detector. Separation was monitored by intrinsic fluorescence (excitation wavelength 280 nm, emission wavelength 340 nm). Samples were analyzed using gradient elution with Buffer A (0.8 M ammonium sulfate, 100 mM phosphate, pH 7.4) and Buffer B (100 mM phosphate, pH 7.4) as described below. (i) Retention at 0% B for 2 minutes. (ii) Linear gradient from 0% B to 100% B over 30 minutes (0.8 mL / min). (iii) Before the next sample injection, the column was washed at 100% B for 2 minutes and re-equilibriumized at 0% B for 10 minutes. The column temperature was maintained at 20°C. Retention times (minutes) are shown in Table 12.
[0451] [Table 14]
[0452] There was a slight difference in retention time between the two molecules, with 10236gL6gH12(IgG4P) exhibiting slightly greater apparent hydrophobicity than the corresponding IgG1 format. Both molecules are expected to aggregate on average, based on results from other commercially available antibodies (Jain et al, "Biophysical properties of the clinical-stage antibody landscape," Proc Natl Acad Sci US A. 2017 Jan 31;114(5):944-949. doi: 10.1073 / pnas.1616408114. Epub 2017 Jan 17).
[0453] Solubility measurement of polyethylene glycol (PEG) Understanding colloidal stability (solubility) can be achieved by investigating the effect of polyethylene glycol (PEG) precipitation. Using PEG, the solubility of proteins was reduced in a manner that could be quantitatively defined by increasing the PEG concentration (w / v) and measuring the amount of protein remaining in the solution. This assay serves to mimic the effect of high-concentration solubility without using conventional concentration methods.
[0454] A 40% PEG3350 (Merck, 202444) stock solution (w / v) was prepared in PBS pH 7.4; 50 mM sodium acetate, 125 mM sodium chloride pH 5.0 (common pre-preservation buffer) and 50 mM histidine, 250 mM proline pH 5.5 (common formulation buffer). Continuous titration was performed using an Assist Plus liquid processing robot (INTEGRA, 4505) to obtain PEG 3350 concentrations ranging from 40% to 15.4%. To minimize non-equilibrium precipitation, sample preparation began with mixing the protein and PEG solution in a 1:1 volume ratio. 35 μL of PEG 3350 stock solution was added to 96-well V-bottom PCR plates (A1-H1) using a liquid processing robot. 35 μL of a 2 mg / mL sample solution was added to the PEG stock solution to adjust the test concentration to 1 mg / mL. This solution was mixed by automated low-speed repeating pipetting and incubated at 37°C for 0.5 hours to redissolve non-equilibrium aggregates. The sample was then incubated at 20°C for 24 hours. The sample plate was then centrifuged at 4000×g at 20°C for 1 hour. 50 μL of the supernatant was dispensed into UV-Star®, half-area, 96-well, μClear®, microplates (Greiner, 675801). Protein concentrations were measured using a UV spectrophotometer at 280 nm with a FLUOstar® Omega multi-detection microplate reader (BMG LABTECH). The obtained values were plotted using Graphpad prism ver 7.04, and the PEG midpoint (PEGmdpnt) score was derived from the midpoint of the sigmoid dose-response (variable slope) fit.
[0455] The data is shown in Table 13. The higher the PEG midpoint (%), the higher the probability of high-concentration stability / solubility.
[0456] Differences were observed between the two isotypes depending on the buffer conditions. At PBS pH 7.4, 10236gL6gH12(IgG4P) showed higher solubility than 10236gL6gH12(IgG1), but the opposite was observed at 50mM sodium acetate and 125mM sodium chloride pH 5. The solubility of 10236gL6gH12(IgG4P) could be improved by using a more typical pharmaceutical formulation buffer: 50mM histidine and 250mM proline pH 5.5.
[0457] [Table 15]
[0458] Evaluation of self-interactions using AC-SINS (Affinity-Snatched Self-Interacting Nanoparticle Spectroscopy). The developmental potential of 10236gL6gH12 was evaluated by determining its self-interaction tendency using the AC-SINS assay (Liu Y. MAbs. 2014 Mar-Apr; 6(2):483-92), thus providing information about its potential aggregation stability. This was performed in PBS pH 7.4. Goat anti-human Fcγ specific capture antibody (Jackson ImmunoResearch) was buffered with 20 mM sodium acetate, pH 4.3, diluted to 0.4 mg / mL, and 50 μL was added to 450 μL of citrate-stabilized 20 nm gold nanoparticles (TedPella, USA). The mixture was left at room temperature overnight. The conjugated nanoparticles were blocked with 55 μL of PEG-thiol for 1 hour, centrifuged at 21,000 xg for 6 minutes, the supernatant was removed, and the mixture was resuspended in 20 mM sodium acetate, pH 4.3 to a final volume of 150 μL.
[0459] 10236 gL6gH12 (IgG4P and IgG1) was diluted to 22 μg / mL (200 μL) in PBS, pH 7.4, and added to an equal volume of nonspecific total IgG (Jackson ImmunoResearch). After a short vortex, 72 μL was added to a 96-well plate. 8 μL of nanoparticles were added to each well (n=4). Absorbance was read to 500-600 nm using a BMG plate reader, fitted to a Lorentz curve (RShiny), and Δλmax was obtained by subtracting only the PBS from the sample. The data are summarized in Table 14.
[0460] Both IgG4P and IgG1 isotype 10236gL6gH12 showed low λmax and Δλmax (from PBS background), suggesting a low tendency for self-interaction and a low risk of aggregation at PBS pH 7.4. [Table 16]
[0461] Accelerated stress test (light chain CDR3) for evaluating deamidation tendency in Asn(94) The light chain CDR3 of 10236gL6gH12 contains the deamidation motif Asn(94)Ser. The tendency / rate of deamidation depends not only on the solution properties but also on the primary sequence and three-dimensional structure, and therefore cannot be predicted (RCStephenson and S.Clarke (1989); K.Diepold et al (2012); Jasmin F.Sydow et al (2014); NE Robinson et al (2004). Therefore, an accelerated stress test was set up to determine the deamidation tendency of Asn(94) in 10236gL6gH12. This was performed only on 10236gL6gH12 (IgG4P). Since the deamidation motif is located in the variable region, it was assumed that the rate of deamidation would be the same for IgG1 as well.
[0462] The basal deamidation level (stress-free sample) was also measured. A low level indicates that deamidation is difficult, but these levels may vary depending on the manufacturing batch and conditions.
[0463] The antibody 10236gL6gH12 (IgG4P) was buffer-exchanged in (i) conditions known to promote the deamidation of Asn(N) residues (Tris pH 8.0 / 125mM NaCl, 37°C) and (ii) a control buffer (acetate, pH 5.0 / 125mM NaCl, 37°C). The final concentrations of the sample in each buffer were 5.9 mg / mL at pH 8.0 and 6.6 mg / mL at pH 5.0. The samples were then divided into two aliquots, one stored at 4°C and the other at 37°C for up to two weeks. The aliquots were removed immediately (T0) and after two weeks and stored at -20°C.
[0464] Basal deamidation was obtained by analyzing stock samples stored in PBS at pH 7.4 and -20°C.
[0465] All samples were thawed and analyzed by peptide mapping using mass spectrometry (MS) with the following method.
[0466] Stress protein samples were reduced with TCEP in Tris-HCl buffer pH 8.0 containing 0.1% w / v Rapigest® detergent and alkylated with chloroacetic acid. Trypsin / LysC mix (1:50 w / w) was added, and the samples were digested at 37°C for 1 hour. Then, chymotrypsin (1:50 w / w) was added, and digestion was continued overnight at room temperature. Proteolysis was stopped by adding 1% v / v formic acid, and the samples were diluted to 0.5 mg / ml and centrifuged to remove precipitated Rapigest®. The resulting peptide pool was separated and analyzed on a Waters BEH C18 column. This column was connected to a Thermo Fusion mass spectrometer, and cation, data-dependent orbitrap-orbitrap method was performed with CID fragmentation. LC-MS data were analyzed with Thermo Xcalibur® and Pepfinder® software.
[0467] The baseline level of deamidation of KLK5 10236 L-CDR3 was 0.7% in Asn94 (calculated using Pepfinder®). This increased to a maximum of 10% in samples incubated at 37°C and Tris pH 8.0 for 2 weeks (Figure 13).
[0468] The tendency towards deamidation was low and could be controlled by minimizing the use of high pH buffers during manufacturing, storage, and formulation.
[0469] Affinity measurement of the completely deamidated product. 10236gL6-N94DgH12 (NS to DS mutation on light chain CDR3) The light chain of 10236gL6gH12 was mutated from Asn94 to Asp (Asn94Asp) to create a surrogate molecule for the complete deamidation product of 10236gL6gH12. The binding dynamics of both antibodies, 10236gL6gH12 and 10236gL6-N94DgH12, to human KLK5 were evaluated at 25°C using surface plasmon resonance (Biacore T200, GE Life Sciences®) to assess the effect of 100% deamidation.
[0470] A goat anti-human IgG Fc-specific antibody (Jackson ImmunoResearch) was immobilized on a CM5 sensor tip at approximately 6000 RU level by amine coupling chemistry. Each analysis cycle involved capturing anti-KLK5 IgG molecules on the anti-Fc surface, injecting KLK5 analyte (prepared in-house) at 30 μl / min for 300 seconds, and allowing dissociation for 600 seconds. At the end of each cycle, the surface was regenerated at a flow rate of 10 μL / min by injecting 50 mM HCl for 60 seconds, followed by 5 mM NaOH for 30 seconds, and finally 50 mM HCl for 60 seconds. Human KLK5 was titrated from 20 nM to 0.03 nM (6 × 3-fold serial dilutions) in HBS-EP+ running buffer (GE Healthcare) with a final concentration of 300 mM NaCl. Buffer blank injections were included to subtract instrument noise and drift. Dynamic parameters were determined for a 1:1 coupling model using Biacore T200 evaluation software (version 3.0). The data is summarized in Table 15.
[0471] To demonstrate the reproducibility of the experiment, two copies of 10236gL6gH12 were included. The Asn94Asp mutation in the light chain CDR3 reduced the affinity for KLK5 by 4.5 times. Therefore, unless manufacturing, storage, and formulation conditions are monitored and controlled, widespread deamidation could affect the efficacy of 10236gL6gH12. Accelerated stress experiments showed a low tendency for deamidation of the Asn94 residue, resulting in a reduced risk for this molecule.
[0472] [Table 17]
[0473] Viscosity evaluation of antibody 10236gL6gH12(hIgG4P) at various concentrations. For subcutaneous administration of therapeutic molecules, low viscosity at high antibody concentrations is crucial. To investigate the viscosity behavior of antibody 10236gL6gH12, we measured the viscosity of the antibody as its concentration increased in a common pre-formulation buffer of 50mM histidine / 250mM proline, pH 5.5.
[0474] As detailed below, the tests were conducted by (i) initial concentration of the sample and (ii) viscosity measurement.
[0475] (i) Concentration A total of 23 mL of antibody 10236 gL6 gH12 (hIgG4P) was spin-concentrated at 4000xg and 20°C using a Vivaspin® 20MWCO 30kD) centrifugal filter (Z14637, Sigma-Aldrich) until the residual volume was approximately 950 μL. The residual (holding solution) was collected, and the final concentration of antibody 10236 gL6 gH12 (hIgG4P) was determined by UV absorbance measurement at 280 nm using a NanoDrop® 1000 instrument, with an extinction coefficient of 1.46 mL / (mg cm). The concentrated sample was measured at 185 mg / mL (average of 3 measurements), achieving a recovery rate of 84% of the theoretical concentration. The loss was within the range expected by this method.
[0476] This antibody sample was then diluted with 50 mM histidine and 250 mM proline at pH 5.5 to adjust the concentration to a range suitable for viscosity measurement. The diluted sample concentrations were confirmed to be 159.8 mg / mL, 63.6 mg / mL, and 33.2 mg / mL by UV absorbance measurement at 280 nm.
[0477] (ii) Viscosity measurement A Peltier plate and liquid cooling system were used for temperature control, and a 20mm stainless steel parallel plate Discovery Hybrid Rheometer-1 (DHR-1, TA Instruments) was used to measure viscosity at each concentration. Samples (80 μL) of different concentrations (33.2 mg / mL, 63.6 mg / mL, and 159.8 mg / mL) were placed in the center of the Peltier plate, a steady-state flow sweep procedure was set at 20°C, and shear rates were set from 2.87918 to 287.918 s. -1The viscosity (unit: mPa·s or cP) was measured while varying the concentration up to a certain point. The measured viscosity was taken as the average value (SD ± 5%) assuming that the value at each shear rate point was constant. Table 16 summarizes the viscosity when the concentration of 10236gL6gH12(IgG4P) was varied.
[0478] The antibody 10236gL6gH12(hIgG4P) showed an increasing trend between concentration and viscosity coefficient. Viscosity increased from 2.8 cP to 6.4 cP in the concentration range from 33.2 mg / mL to 159.8 mg / mL. All of these samples exhibited a constant viscosity coefficient (variability less than 5%) at different shear rates. This study suggests that the antibody 10236gL6gH12(hIgG4P) exhibits low viscosity at high concentrations (~150 mg / mL) in a 50 mM histidine / 250 mM proline pH 5.5 solution, and is therefore considered suitable for subcutaneous administration.
[0479] [Table 18] [Sequence Listing Free Text]
[0480] Sequence ID 1 <223> CDR-L1 Sequence ID 2 <223> CDR-L2 Sequence ID 3 <223> CDR-L3 Sequence ID 4 <223> CDR-H1 Sequence ID 5 <223> CDR-H2 Sequence ID 6 <223> CDR-H3 Sequence ID 7 <223> Rabbit VL Sequence ID 8 <223> Rabbit VL nucleotides Sequence ID 9 <223> Rabbit VH Sequence ID 10 <223> Rabbit VH nucleotide Sequence ID 11 <223> 10236gL5VL Sequence ID 12 <223> 10236gL5VL nucleotide Sequence ID 13 <223> 10236g L5 Light Chain Sequence ID 14 <223> 10236gL5 light chain nucleotide Sequence ID 15 <223> 10236gL6VL Sequence ID 16 <223> 10236gL6VL nucleotide Sequence ID 17 <223> 10236g L6 light chain Sequence ID 18 <223> 10236gL6 light chain nucleotide Sequence ID 19 <223> 10236gL7VL Sequence ID 20 <223> 10236gL7VL Nucleotide Sequence ID 21 <223> 10236g L7 Light Chain Sequence ID 22 <223> 10236gL7 light chain nucleotide Sequence ID 23 <223> 10236gL8VL Sequence ID 24 <223> 10236gL8VL nucleotide Sequence ID 25 <223> 10236g L8 Light Chain Sequence ID 26 <223> 10236gL8 light chain nucleotide Sequence ID 27 <223> 10236gH9VH Sequence ID 28 <223> 10236gH9VH nucleotide Sequence ID 29 <223> 10236gH9 heavy chain Sequence ID 30 <223> 10236gH9 heavy chain nucleotide Sequence ID 31 <223> 10236gH10VH nucleotide Sequence ID 32 <223> 10236gH10VH nucleotide Sequence ID 33 <223> 10236gH10 heavy chain Sequence ID 34 <223> 10236gH10 heavy chain nucleotides Sequence ID 35 <223> 10236gH11VH nucleotide Sequence ID 36 <223> 10236gH11VH nucleotide Sequence ID 37 <223> 10236hG11 heavy chain Sequence ID 38 <223> 10236gH11 heavy chain nucleotides Sequence ID 39 <223> 10236gH12VH Sequence ID 40 <223> 10236gH12VH nucleotide Sequence ID 41 <223> 10236gH12 heavy chain Sequence ID 42 <223> 10236gH12 heavy chain nucleotides Sequence ID 43 <223> 10236gH14VH Sequence ID 44 <223> 10236gH14VH nucleotide Sequence ID 45 <223> 10236gH14 heavy chain Sequence ID 46 <223> 10236gH14 heavy chain nucleotides Sequence ID 47 <223> Human IGKV1-6JK4 Acceptor Framework Sequence ID 48 <223> Human IGKV1-6JK4 Acceptor Framework Nucleotide Sequence ID 49 <223> Human IGHV4-4JH4 Acceptor Framework Sequence ID 50 <223> Human IGHV4-4JH5 Acceptor Framework Nucleotide Sequence ID 51 <223> Human KLK5 (full length with signal sequence) Sequence ID 52 <223> Human KLK5 Proform Sequence ID 53 <223> Activated human KLK5 Sequence ID 54 <223> Human LEKTI D5, Rabbit Fc Sequence ID 55 <223> Human KLK7 Proform Sequence ID 56 <223> Activated human KLK7 Sequence ID 57 <223> CynoKLK7 Proform Sequence ID 58 <223> Activated CynoKLK7 Sequence ID 59 <223> Active mouse KLK5 Sequence ID 60 <223> Activated cynoKLK5 Sequence ID 61 <223> Human LEKTI D8, Rabbit Fc Sequence ID 62 <223> CDR-L1 Q24R Sequence ID 63 <223> CDR-L1 Q24K Sequence ID 64 <223> 10236gL6VLnucleotide Q24R Sequence ID 65 <223> 10236gL6 light chain nucleotide Q24R Sequence ID 66 <223> 10236gL6VLnucleotide Q24K Sequence ID 67 <223> 10236gL6 light chain nucleotide Q24K Sequence ID 68 <223> 10273CDR-L1 Sequence ID 69 <223> 10273CDR-L2 Sequence ID 70 <223> 10273CDR-L3 Sequence ID 71 <223> 10273CDR-H1 Sequence ID 72 <223> 10273CDR-H2 Sequence ID 73 <223> 10273CDR-H3 <223> Xaa can be any natural amino acid. Sequence ID 74 <223> 10273 Rabbit VL Sequence ID 75 <223> 10273 Rabbit VL Nucleotides Sequence ID 76 <223> 10273VH Sequence ID 77 <223> 10273 Rabbit VH Nucleotides Sequence ID 78 <223> Rabbit 10273mIgG light chain Sequence ID 79 <223> Rabbit 10273mIgG heavy chain Sequence ID 80 <223> Rabbit 10273mIgG light chain nucleotide Sequence ID 81 <223> Rabbit 10273mIgG heavy chain nucleotides Sequence ID 82 <223> Rabbit 10236mIgG light chain Sequence ID 83 <223> Rabbit 10236mIgG heavy chain Sequence ID 84 <223> Rabbit 10236mIgG light chain nucleotide Sequence ID 85 <223> Rabbit 10236mIgG heavy chain nucleotides Sequence ID 86 <223> 10236 Light Chain Fab Sequence ID 87 <223> 10236 Light Chain Fab Nucleotide Sequence ID 88 <223> 10236 Heavy Chain Fab Sequence ID 89 <223> 10236 Heavy Chain Fab Nucleotides Sequence ID 90 <223> 10273 Light Chain Fabric Sequence ID 91 <223> 10273 Light Chain Fab Nucleotide Sequence ID 92 <223> 10273 Heavy Chain Fabric Sequence ID 93 <223> 10273 Heavy Chain Fab Nucleotides Sequence ID 94 <223> Human LEKTI D5 Fab H chain Sequence ID 95 <223> Human LEKTI D5 Fab L chain Sequence ID 96 <223> Rabbit / Human Chimera Chain (hCK S171C) 10236 Sequence ID 97 <223> Rabbit / Human Chimera Heavy Chain 10236 Sequence ID 98 <223> LEKTI-D5-Fc TEV Sequence ID 99 <223> LEKTI-D8Fc TEV Sequence ID 100 <223> 10236g L5 light chain nucleotide negative RS Sequence ID 101 <223> 10236gL7 Light Chain Nucleotide Plus RS Sequence ID 102 <223> 10236gL8 Light Chain Nucleotide Plus RS Sequence ID 103 <223> 10236gL6 light chain nucleotide Q24R plus RS Sequence ID 104 <223> 10236gL6 light chain nucleotide Q24K plus RS
Claims
1. An antibody that binds to kallikrein 5 (KLK5), wherein the antibody comprises a variable light chain and a variable heavy chain. a. The variable light chain includes CDR-L1 containing SEQ ID NO: 1 or SEQ ID NO: 62 or SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and b. The variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO:
6. The above antibody.
2. a. The variable light chain includes CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and b. The variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO:
6. The antibody according to claim 1.
3. The antibody according to claim 1 or 2, which binds to a human KLK5 epitope comprising the amino acid residues Arg87, Ala107, Arg110, Lys111, Lys112, Val113, Val137, Lys138, Ser139, Ile140, Pro141, His142, Pro143, Tyr145, Ser146, and His147, with reference to Sequence ID No.
51.
4. The antibody according to claim 3, wherein the epitope is characterized by X-ray crystal structure analysis.
5. An antibody according to any one of claims 1 to 4, which inhibits or reduces the protease activity of KLK5.
6. The antibody according to any one of claims 1 to 5, wherein the antibody binds to KLK5 when KLK5 is bound to a lymphoepithelial Kazal-type inhibitor (LEKTI) or a fragment of LEKTI, and the fragment of LEKTI is a human LEKTI domain 5 containing amino acids 1 to 64 of SEQ ID NO: 54, or a LEKTI domain 8 containing amino acids 1 to 71 of SEQ ID NO:
61.
7. The antibody according to any one of claims 1 to 6, wherein the antibody does not compete with LEKTI or a fragment of LEKTI for binding to KLK5, and the fragment of LEKTI is a human LEKTI domain 5 containing amino acids 1 to 64 of SEQ ID NO: 54, or a LEKTI domain 8 containing amino acids 1 to 71 of SEQ ID NO:
61.
8. The antibody according to any one of claims 1 to 7, wherein the antibody forms a complex with LEKTI or KLK5 bound to a fragment of LEKTI, and the fragment of LEKTI is a human LEKTI domain 5 containing amino acids 1 to 64 of SEQ ID NO: 54, or a LEKTI domain 8 containing amino acids 1 to 71 of SEQ ID NO:
61.
9. The antibody according to any one of claims 1 to 8, wherein the antibody binds to human KLK5 and cynomolgus monkey (cyno) KLK5.
10. The antibody according to claim 9, wherein the human KLK5 comprises SEQ ID NO: 53 and the cynoKLK5 comprises SEQ ID NO:
60.
11. The antibody according to any one of claims 1 to 10, wherein the antibody does not bind to human or cyno-kallikrein 2 (KLK2); or human or cyno-kallikrein 4 (KLK4); or human or cyno-kallikrein 7 (KLK7).
12. The antibody contains a variable light chain and a variable heavy chain. a. The variable light chain includes CDR-L1 containing SEQ ID NO: 1 or SEQ ID NO: 62 or SEQ ID NO: 63, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and b. The variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO:
6. The antibody according to any one of claims 3 to 11.
13. The antibody comprises a variable light chain and a variable heavy chain, a. The variable light chain includes CDR-L1 containing SEQ ID NO: 1, CDR-L2 containing SEQ ID NO: 2, and CDR-L3 containing SEQ ID NO: 3; and b. The variable heavy chain includes CDR-H1 containing SEQ ID NO: 4, CDR-H2 containing SEQ ID NO: 5, and CDR-H3 containing SEQ ID NO:
6. The antibody according to claim 12.
14. The antibody according to any one of claims 1 to 13, wherein the antibody is a chimeric antibody or a humanized antibody.
15. The antibody according to any one of claims 1 to 14, wherein the antibody is a full-length antibody.
16. The antibody according to claim 15, wherein the full-length antibody is selected from IgG1, IgG4, or IgG4P.
17. Antibodies are Fab, Fab', F(ab') 2 An antibody according to any one of claims 1 to 14, selected from scFv or dAb.
18. Antibodies, a. Light chain variable region including sequence numbers 7, 11, 15, 19, or 23; and / or b. Heavy chain variable region including sequence numbers 9, 27, 31, 35, 39, or 43 The antibody according to any one of claims 1 to 17, comprising:
19. Antibodies, a. Light chain variable region including sequence number 15; and b. Heavy chain variable region including SEQ ID NO: 39 The antibody according to any one of claims 1 to 18, comprising:
20. Antibodies, a. Light chains containing sequence numbers 13, 17, 21, or 25; and b. Heavy chains containing sequence numbers 29, 33, 37, 41, or 45 The antibody according to any one of claims 1 to 16, 18, or 19, comprising:
21. Antibodies, a. Light chain containing Sequence ID No. 17; and b. Heavy chain containing SEQ ID NO: 41 The antibody according to any one of claims 1 to 16 or 18 to 20, comprising:
22. The antibody according to any one of claims 18 to 21, wherein the amino acid residue glutamine (Gln; Q) in L-CDR1 at position 24 is substituted with arginine (Arg; R) or lysine (Lys; K) with reference to SEQ ID NO: 15 or 17.
23. The antibody according to any one of claims 1 to 22, wherein KLK5 is human KLK5 containing SEQ ID NO: 51, 52, or 53, or cynoKLK5 containing SEQ ID NO:
60.
24. The antibody according to any one of claims 1 to 23, comprising a heavy chain having at least 90% identity with the sequence of SEQ ID NO: 29, 33, 37, 41, or 45, and a light chain having at least 90% identity with the sequence of SEQ ID NO: 13, 17, 21, or 25.
25. An isolated polynucleotide encoding an antibody according to any one of claims 1 to 23.
26. An isolated polynucleotide according to claim 25, wherein the polynucleotide encodes the following: a. Light chain variable region, where the polynucleotide is i. At least 90% identical to SEQ ID NO: 8 (or nucleotides 1-330 of SEQ ID NO: 8) or 12 (or nucleotides 1-330 of SEQ ID NO: 12) or 16 or 20 or 24 or 64 or 66; or ii. Including SEQ ID NO: 8 (or nucleotides 1-330 of SEQ ID NO: 8) or 12 (or nucleotides 1-330 of SEQ ID NO: 12) or 16 or 20 or 24 or 64 or 66; or iii. Essentially consisting of SEQ ID NO: 8 (or nucleotides 1-330 of SEQ ID NO: 8) or 12 (or nucleotides 1-330 of SEQ ID NO: 12) or 16 or 20 or 24 or 64 or 66; or b. Heavy chain variable region, where the polynucleotide is i. At least 90% identical to sequence number 10, 28, 32, 36, 40, or 44; or ii. Including sequence numbers 10, 28, 32, 36, 40, or 44; or iii. Essentially consisting of sequence numbers 10, 28, 32, 36, 40, or 44; or c. Light chain, where the polynucleotide is i. At least 90% identical to sequence number 14, 18, 22, 26, 65, 67, 100, 101, 102, 103, or 104; or ii. Including sequence numbers 14, 18, 22, 26, 65, 67, 100, 101, 102, 103, or 104; or iii. Essentially derived from sequence numbers 14, 18, 22, 26, 65, 67, 100, 101, 102, 103, or 104; or d. Heavy chain, where the polynucleotide is i. It is at least 90% identical to sequence number 30, 34, 38, 42, or 46; or ii. Including sequence numbers 30, 34, 38, 42, or 46; or iii. Essentially consisting of sequence numbers 30, 34, 38, 42, or 46.
27. A cloning or expression vector comprising one or more polynucleotides as described in any one of claims 25 or 26.
28. a. One or more polynucleotides according to any one of claims 25 or 26, or b. One or more expression vectors according to claim 27 Host cells, including those containing the host cell.
29. A method for producing an antibody according to any one of claims 1 to 23, comprising culturing the host cells described in claim 28 under conditions suitable for antibody production, and isolating the antibodies produced by the host cells.
30. A pharmaceutical composition comprising an antibody according to any one of claims 1 to 23, and one or more pharmaceutically acceptable carriers, excipients, or diluents.
31. A pharmaceutical composition according to claim 30 for use in treatment.
32. The pharmaceutical composition according to claim 30, for use in the treatment of a disease characterized by dysregulation of KLK5 or dysregulation of KLK5 inhibition.
33. The pharmaceutical composition according to claim 32, wherein the disease is selected from Netherton syndrome, atopic dermatitis, ichthyosis, rosacea, asthma, or cancer such as ovarian cancer or bladder cancer, or a combination thereof.
34. The pharmaceutical composition according to claim 33, wherein the disease is Netherton syndrome.
35. The pharmaceutical composition according to claim 33, wherein the disease is atopic dermatitis.
Citation Information
Patent Citations
Anti-KLK5 antibodies and methods of use
WO2019178316A1