HIV binding agents

By developing specific binding agents for HIV, the problems of long-term management and recurrence of HIV infection have been solved, effective neutralization and potential immune response to HIV are achieved, and the burden of antiviral treatment has been reduced.

JP7678790B2Active Publication Date: 2025-05-16LAUSANNE UNIV HOSPITAL
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Patent Information

Application Number
JP2022502876
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-07-15
Filing Date
2020-07-15
Publication Date
2025-05-16
Estimated Expiration
2040-07-15

AI Technical Summary

Technical Problem

The prior art is difficult to effectively solve the long-term management and potential recurrence of HIV infection, and the current antiviral treatment requires lifelong medication and fails to stimulate a virus-specific immune response to control viral replication.

Method used

Develop binding agents specifically targeting HIV, including amino acid sequences of variant regions and variant binding agents prepared by recombinant molecular biology techniques, for binding to HIV antigens, for the diagnosis, treatment, prevention and relief of HIV-related diseases.

Benefits of technology

New treatment and prevention means for HIV are provided, which can effectively neutralize HIV, reduce or avoid the need for lifelong antiviral treatments, and potentially stimulate a virus-specific immune response to control viral replication.

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Abstract

The present disclosure relates to HIV-specific LN02M binding agents and methods for using same to treat, prevent, and / or ameliorate HIV infection and / or AIDS. In some embodiments, the present disclosure provides binding agent(s) comprising the variable regions shown in Figures 6A through 6E; the amino acid sequences of the mutants of any of Figures 7A through 7D and / or Figures 8A through 8F, and any effective (e.g., HIV-neutralizing) combinations thereof; any one or more of SEQ ID NOs: 3-92, 95-233, 248-482, or 491-699; and / or combinations thereof.
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Description

CROSS-REFERENCE TO RELATED APPLICATIONS

[0001] This application claims priority to U.S. Provisional Patent Application No. 62 / 874,042, filed July 15, 2019, and U.S. Provisional Patent Application No. 62 / 874,057, filed July 15, 2019, each of which is incorporated herein in its entirety. [Technical field]

[0002] The present disclosure relates to binding agents specific for Human Immunodeficiency Virus (HIV), methods for their production, and methods of using them to treat and / or prevent HIV infection. [Background technology]

[0003] The HIV epidemic has lasted for over 30 years, and great progress has been achieved in understanding HIV pathogenesis and in developing potent and safe antiviral drugs. More than 30 antiviral drugs have been registered, and the impact of combination antiretroviral therapy (ART) on both morbidity and mortality is significant. However, despite long-term suppression of HIV replication in patients with optimal adherence to ART, HIV invariably relapses after treatment interruption. Moreover, successful treatment does not induce or allow the restoration / development of a virus-specific immune response capable of controlling HIV replication in the absence of ART. Thus, the majority of subjects infected with HIV require lifelong ART to control HIV replication and associated diseases.

[0004] Many immunological interventions have been studied in the past and are currently undergoing further development with the aim of achieving a functional cure for HIV, where viral replication is suppressed without sustained antiviral therapy. Therapeutic vaccine strategies were the main intervention strategies studied, but results showed modest efficacy in experimental animal models and patients, with the exception of CMV-based vectored HIV vaccines (50% efficacy in NHP models). Recent studies have provided intriguing results on the possibility of using anti-envelope broadly neutralizing antibodies (bNabs) as therapeutic agents for HIV infection. Summary of the Invention [Problem to be solved by the invention]

[0005] There is a need in the art for additional reagents, neutralizing antibodies that target HIV, and methods of using them. The present disclosure addresses these needs by providing reagents and methods that can be used to target HIV, and cells and / or tissues infected with and / or hosting it. [Means for solving the problem]

[0006] The present disclosure relates to binding agents specific for Human Immunodeficiency Virus (HIV), methods of making such binding agents, and methods of using such binding agents to treat, prevent, and / or ameliorate HIV infection. In some embodiments, the disclosure provides binding agent(s) comprising a variable region as shown in Figures 6A to 6E; an amino acid sequence of any mutant of Figures 7A to 7D and / or Figures 8A to 8F, and any effective (e.g., HIV neutralizing) combination thereof; any one or more of SEQ ID NOs: 3-92, 95-233, 248-482, or 491-699, and any effective (e.g., HIV neutralizing) combination thereof; a light chain and heavy chain combination as shown in Table 9 (i.e., ML085, Mx152, MX067, MX129, MX130, ML126, Mx175, Mx176, and Mx181); a light chain and heavy chain combination as shown in Tables 10A to 10C, Table 11, Tables 12A to 12D, Tables 13A to 13D, or Table 14; and variants thereof. Reagents and methods of making and / or using the same are also disclosed. Other embodiments are contemplated, as will be apparent to those skilled in the art from this disclosure.

[0007] Below, a brief description of the attached drawings will be given, which are intended to explain the invention in more detail, but which are not intended to limit the subject matter of the invention in any way. [Brief description of the drawings]

[0008] [Figure 1] Summary of LN02 mutants that confer either improved potency, modest to no effect on potency, or reduced neutralization potency compared to wild-type LN02 in the TZM-bl reporter assay performed with BaL HIV-1 virus. Wild-type sequences of LN02 heavy and light chains are aligned with closely related germline sequences and with individual amino acid substitutions listed below. Substitutions that induce a greater than 1.4-fold increase in neutralization potency are shown in black text on a grey background, those with no significant change in neutralization activity are shown in black text only, and substitutions that induce reduced potency against BaL virus are shown in white text on a black background. [Diagram 2] Neutralizing activity presented as IC80 values ​​for LN02 bNab with heavy chain mutations profiled against a global panel of eight pseudotyped HIV-1 viruses. Neutralizing activity was calculated using concentration-response inhibition curves for each antibody, and IC80 values ​​for each pseudotyped virus are indicated by symbols in the legend. When IC80 exceeded the maximum concentration tested, a value of 20 μg / ml was used in the graphs as a reference point for individual bNabs. [Diagram 3] Neutralizing activity presented as IC80 values ​​for LN02 bNab with light chain mutations profiled against a global panel of eight pseudotyped HIV-1 viruses. Neutralizing activity was calculated using concentration-response inhibition curves for each antibody, and IC80 values ​​for each pseudotyped virus are indicated by symbols in the legend. When IC80 exceeded the maximum concentration tested, a value of 20 μg / ml was used in the graphs as a reference point for individual bNabs. [Figure 4]Neutralizing activity presented as IC80 values ​​for selected single and multiple mutations of LN02 bNab along with 3BNC117, 101074, and VRC01 bNabs profiled against a global panel of 8 pseudotyped viruses. Neutralizing activity was calculated using concentration-response inhibition curves for each antibody, and IC80 values ​​for each pseudotyped virus are indicated by symbols in the legend. When IC80 exceeded the maximum concentration tested, a value of 20 μg / ml was used in the graphs as a reference point for individual bNabs. [Diagram 5] Concentration response curves of selected LN02 bNab variants in percent neutralization of pseudotyped HIV-1 virus as shown in the TZM-bl luciferase reporter assay. The SVA-MLV pseudovirus used as a negative control shows that the tested bNab does not show nonspecific inhibition. [Figure 6A] Exemplary LN02 variable heavy chain amino acid sequences [Figure 6B] Additional Exemplary LN02 Variable Heavy Chain Amino Acid Sequences [Figure 6C] Additional Exemplary LN02 Variable Heavy Chain Amino Acid Sequences [Figure 6D] Exemplary LN02 variable light chain amino acid sequences [Figure 6E] Additional Exemplary LN02 Variable Light Chain Amino Acid Sequences [Figure 7A] Exemplary LN02 variable heavy chain amino acid sequences [Figure 7B] Additional Exemplary LN02 Variable Heavy Chain Amino Acid Sequences [Figure 7C] Additional Exemplary LN02 Variable Heavy Chain Amino Acid Sequences [Figure 7D] Exemplary LN02 variable heavy chain amino acid sequences [Figure 7E] Additional Exemplary LN02 Variable Heavy Chain Amino Acid Sequences [Figure 8A] Exemplary LN02 variable light chain amino acid sequences [Figure 8B] Additional Exemplary LN02 Variable Light Chain Amino Acid Sequences [Figure 8C] Additional Exemplary LN02 Variable Light Chain Amino Acid Sequences [Figure 8D]Exemplary LN02 variable light chain amino acid sequences [Figure 8E] Additional Exemplary LN02 Variable Light Chain Amino Acid Sequences [Figure 8F] Additional Exemplary LN02 Variable Light Chain Amino Acid Sequences [Figure 9A] Neutralization of AC10 pseudovirus [Figure 9B] Neutralization of 25710 pseudovirus [Figure 9C] Neutralization of CH119 pseudovirus [Figure 9D] Neutralization of TRO.11 pseudovirus [Figure 9E] Neutralization of 246F3 pseudovirus [Figure 9F] Neutralization of CE1176 pseudovirus [Figure 9G] Neutralization of CN155 pseudovirus [Figure 9H] Neutralization of the BJOX pseudovirus [Figure 9I] Neutralization of CN155 pseudovirus DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0009] The present disclosure relates to binding agents having binding affinity for human immunodeficiency virus (HIV). In some embodiments, the binding agents can bind to HIV antigens, either on the viral particle itself or on the cell surface in vitro and / or in vivo. The binding agents can also bind to isolated HIV antigens and / or fragments and / or derivatives thereof, typically in vitro. Methods of diagnosing, treating, preventing, and / or ameliorating one or more diseases associated with HIV using such binding agents are also provided. For example, the binding agent can be an antibody (e.g., a monoclonal antibody) capable of reacting with and / or binding to an epitope of HIV or a polypeptide thereof. The binding agent can be useful in treating diseases caused by HIV, such as acquired immune deficiency syndrome (AIDS). In some embodiments, the binding agents described herein can selectively target and / or eliminate HIV, and / or HIV-infected cells that contain HIV (e.g., replication-competent HIV) and / or express proteins thereof. In some embodiments, such cells can be reservoirs of replication-competent HIV. In some embodiments, for example, binding agents with different specificities (e.g., recognizing different epitopes) can bind to HIV activities such as infection, replication, and / or spread to other cells. In some embodiments, the binding agents described herein can also provide selective elimination and / or inhibition of HIV or HIV expressing cells. In some embodiments, the binding agents described herein can be used to inhibit and / or eliminate HIV and / or HIV expressing cells, for example, to treat HIV infection and / or AIDS. Other embodiments, methods of use, etc. are described below.

[0010] The binding agent can be an antibody, such as a monoclonal antibody. As shown in the Examples herein, the techniques described below have been used to identify a fully human mAb, designated "LN02," having specific amino acid sequences and properties described herein (e.g., FIG. 1 and FIG. 6A-E) and elsewhere. A variant of the LN02 binding agent, the modified LN02 binding agent ("LN02M"), is described herein and shown in the Examples. Recombinant molecular biology techniques were used to prepare the LN02M binding agent. In some embodiments, the LN02M binding agent is described by reference to the amino acid and / or nucleic acid sequences corresponding to its variable and / or complementarity determining regions ("CDRs"). CDRs are known in the art to include amino acid sequences within variable regions identified according to Kabat, Chothia, both Kabat and Chothia pool, AbM, contact, and / or conformation definitions, or any method of determining CDRs well known in the art, antibody modeling software (currently Accelrys®), or the "contact definition" of CDRs based on observations of antigen contacts as described in MacCallum et al., 1996, J. Mol. Biol., 262:732-745. In the "conformation definition" of CDRs, the position of the CDRs can be identified as residues that contribute enthalpic to antigen binding (Makabe et al., 2008, Journal of Biological Chemistry, 283:1156-1166). Still other CDR boundary definitions may not strictly follow one of the above approaches, but may still overlap with at least a portion of the Kabat CDRs. However, they may be shortened or extended in light of predictions or experimental findings that certain residues or groups of residues, or even the entire CDR, do not significantly affect antigen binding. As used herein, CDR may refer to a CDR defined by any method known in the art, including a combination of methods. The methods used herein may utilize CDRs defined according to any of these methods.In any given embodiment comprising multiple CDRs, the CDRs may be defined according to any of the Kabat, Chothia, extended, AbM, contact, and / or conformational definitions. In one embodiment, one of skill in the art will understand the meaning and characteristics (including amino acid sequences) of the CDRs of the LN02M binding agents from the present disclosure, for example, by reference to those depicted in Figure 1 (e.g., SEQ ID NOs:234 and 235; see also SEQ ID NOs:1 and 93) and discussed below.

[0011] The three heavy chain CDRs (CDRH1, CDRH2, CDRH3), the three light chain CDRs (CDRL1, CDRL2, CDRL3), and the V H and V LExemplary and preferred amino acid sequences of the domains are summarized below and in FIG. 1. Specific examples, and in some embodiments, preferred LN02M binding agents, and / or portions thereof, are set forth in SEQ ID NOs: 3-92, SEQ ID NOs: 95-233, and FIGs. 6A-E. Exemplary LN02M binding agent functional phenotypes (e.g., specific activities) are also set forth in Tables 1-3, and FIGs. 2-5, and in the Examples section below. In some embodiments, the LN02M binding agent is an antibody that includes one or more of the CDRs set forth in FIG. 1 and / or FIGs. 6A-E and / or SEQ ID NOs: 3-92, and / or SEQ ID NOs: 95-233, and / or SEQ ID NOs: 248-482, and / or SEQ ID NOs: 491-699, and / or those set forth in any of Tables 1-3 and / or Tables 1-14, and / or an antibody having a functional phenotype as set forth in FIGs. 2-5 and / or FIG. 9. In some preferred embodiments, the LN02M binding agent comprises one or more of the CDRs shown in Figure 1, e.g., any one or more of SEQ ID NOs: 3-92, and / or SEQ ID NOs: 95-233, and a functional phenotype set forth in Tables 1-3 and Figures 2-5. In some preferred embodiments, the LN02M binding agent comprises one or more of SEQ ID NOs: 3-92, SEQ ID NOs: 95-233, SEQ ID NOs: 248-482, and / or SEQ ID NOs: 491-699, and / or a polypeptide sequence set forth in Figures 6A-E, 7A-E, 8A-F, and a functional phenotype set forth in any of Tables 1-3 and / or Tables 7-14, and / or Figures 2-5 and / or Figure 9.

[0012] In some embodiments, an LN02M binding agent comprises a modified LN02 CDRH1 (YGSISRHFWG), corresponding to amino acids 26-35 of the LN02_VH amino acid sequence shown in FIG. 1 (SEQ ID NO: 234), and numbered from left to right as Y1, G2, S3, I4, S5, R6, H7, F8, W9, and G10, which may include all of the following substitutions, or in some embodiments one or more conservative variants thereof: Y1 with W, D, H, or R; S3 with W, Y, T, or Q; S5 with W, T, Y, M, or A; R6 with W, K, Y, E, or Q; H7 with W, Y, Q, N, D, E, A, T, or S; F8 with W or Y; and / or W9 with F. Particularly preferred substitutions for LN02 CDRH1 (YGSISRHFWG), selected based on HIV neutralization potency compared to wild-type LN02 (i.e., greater than a 1.4-fold increase (e.g., FIG. 1 )), are S3 to Y or T; S5 to T; and / or H7 to D.

[0013] In some embodiments, the LN02M binding agent is a modified LN02VH amino acid sequence corresponding to amino acids 50-64 of the LN02_VH amino acid sequence shown in FIG. 1 (SEQ ID NO:234), numbered from left to right as H1, M2, H3, H4, L5, G6, V7, K8, Y9, V10, N11, P12, S13, L14, and K15. and / or substitution of K15 by D, E, or H. Particularly preferred substitutions for LN02 CDRH2 (HMHHLGVKYVNPSLK), selected based on HIV neutralization potency compared to wild-type LN02 (i.e., greater than a 1.4-fold increase (e.g., FIG. 1)), are substitutions of M2 with F or R; H4 with Q or T; V7 with F or Y; Y9 with D, Q, or E; and / or L14 with F or V.

[0014] In some embodiments, the LN02M binding agent comprises a modified LN02M VH amino acid sequence corresponding to amino acids 96-112 of the LN02M_VH amino acid sequence shown in FIG. 1 (SEQ ID NO:234), numbered from left to right as V1, R2, M3, G4, A5, R6, M7, S8, D9, I10, A11, F12, F13, S14, F15, G16, and D17. and / or substitution of D17 with E. Particularly preferred substitutions for LN02 CDRH3 (VRMGARMSDIAFFSFGD), selected based on HIV neutralization potency compared to wild-type LN02 (i.e., greater than a 1.4-fold increase (e.g., FIG. 1)), are substitutions of A5 with S; M7 with W or Y; S8 with W, A, Y, or T; A11 with Q; F12 with W; F13 with Y; S14 with Y; and / or F15 with Y.

[0015] In some embodiments, the LN02M binding agent comprises a modified LN02 CDRL1 (WGYYMGSKPVN), corresponding to amino acids 23-33 of the LN02M_VL sequence shown in FIG. 1 (SEQ ID NO: 235), and numbered from left to right as W1, G2, Y3, Y4, M5, G6, S7, K8, P9, V10, and N11, which may include all of the following substitutions, or in some embodiments, conservative variants of one or more thereof: W1 with G; Y3 with W, S, or D; Y4 with W, F, D, or H; M5 with W, F, L, or I; S7 with W, A, Y, V, H, or S; K8 with W, Y, or E; P9 with S or G; V10 with I; and / or N11 with E. Particularly preferred for LN02 CDRL1 (WGYYMGSKPVN), selected based on HIV neutralization potency substitutions compared to wild-type LN02 (i.e., greater than a 1.4-fold increase (e.g., Figure 1)), are substitutions of Y3 with W; Y4 with W; S7 with Y or V; K8 with Y; V10 with I; and / or N11 with E.

[0016] In some embodiments, the LN02M binder comprises a modified LN02 CDRL2 (YDDERDS), corresponding to amino acids 49-55 of the LN02M_VL sequence shown in Figure 1 (SEQ ID NO:235), and numbered from left to right as Y1, D2, D3, E4, R5, D6, and S7, which may include all of the following substitutions, or in some embodiments one or more conservative variants thereof: Y1 with W or F; D2 with E; D3 with N, Q, E, or Y; E4 with W or D; R5 with Y; D6 with T; and S7 with W, H, D, Y, or Q. Particularly preferred substitutions for LN02 CDRL2 (YDDERDS), selected based on HIV neutralization potency compared to wild-type LN02 (i.e., greater than a 1.4-fold increase (e.g., Figure 1)), are D6 with T; and / or S7 with D or Q.

[0017] In some embodiments, an LN02M binding agent comprises a modified LN02 CDRL3 (QVWDSKYEEIY), corresponding to amino acids 88-98 of the LN02M_VL sequence shown in FIG. 1 (SEQ ID NO:235), and numbered from left to right as CDRL3 Q1, V2, W3, D4, S5, K6, Y7, E8, E9, I10, and Y11, which can include all of the following substitutions, or in some embodiments one or more conservative variants thereof: Q1 with Y; V2 with I; D4 with E; S5 with A, Y, T, M, H, D, and Q; K6 with G, W, R, H, Y, T, or H; Y7 with W; E8 with D, Y, R, or H; I10 with W, or V; and substitution of Y11 with W, T, or F. Particularly preferred substitutions for LN02 CDRL3 (QVWDSKYEEIY), selected based on HIV neutralization potency compared to wild-type LN02 (i.e., greater than a 1.4-fold increase (e.g., FIG. 1)), are replacements of S5 with Y, H, or Q; K6 with W or Y; Y7 with W; E8 with Y; and / or I10 with V.

[0018] In some embodiments, an LN02M binding agent may include modifications to the amino acid sequence of the LN02 variable heavy and / or variable light regions outside of the CDRs, whose CDRs are shown in Figure 1. For example, in some embodiments, with reference to SEQ ID NO:234, S19 may be substituted with W, H, or R; T21 may be substituted with W, Y, or S; S68, D72, T73, S74, K75, or N76 may be substituted with W; N65 may be substituted with S or W; H94 may be substituted with Y; and / or P105 may be substituted with W. Particularly preferred substitutions for the LN02 variable heavy chain (see SEQ ID NO:234) outside the CDRs, selected based on HIV neutralization potency compared to wild-type LN02 (i.e., greater than a 1.4-fold increase (e.g., FIG. 1 )), are substitutions of S19 with H or R; T21 with Y; and / or S74 with W. In some embodiments, with reference to SEQ ID NO:235, Q16 may be substituted with E; S48 may be substituted with W, Y, T, or F; G56 may be substituted with E; A59 may be substituted with E; H65 may be substituted with N; S68 may be substituted with N; N76 may be substituted with R; V78 may be substituted with E; P79 may be substituted with A; and / or A80 may be substituted with G. Particularly preferred substitutions for the LN02 variable light chain (see SEQ ID NO: 235) outside the CDRs, selected based on HIV neutralization potency compared to wild-type LN02 (i.e., greater than 1.4-fold increase (e.g., FIG. 1)), are S48 for T; N76 for R; and / or V78 for E. Any one or more of these substitutions for the LN02 variable heavy and light chains (see SEQ ID NOs: 234 and 235, respectively) outside the CDRs can be included in a binder comprising any of the LN02M CDRs described above. Additional conservative substitutions for such amino acid sequences can also be utilized, as will be appreciated by those of skill in the art.

[0019] In some embodiments, an LN02M binding agent can comprise an LN02M polypeptide modified as shown in Figure 1. In some embodiments, an LN02M binding agent can be a polypeptide comprising an amino acid sequence set forth in any of Figures 6A-E. Based on the potency data presented in Tables 1-2, preferred LN02M polypeptides are those that exhibit greater neutralizing activity than wild-type LN02 (fold increase is shown in parentheses), including those comprising the LN02M variable heavy chain regions MH01 (1.59) (SEQ ID NO: 95), MH16 (1.69) (SEQ ID NO: 110), MH22 (1.18) (SEQ ID NO: 116), MH26 (1.40) (SEQ ID NO: 120), MH30 (3.37) (SEQ ID NO: 124), MH32 (1.32) (SEQ ID NO: 126), MH33 (1.26) (SEQ ID NO: 128), MH34 (1.26) (SEQ ID NO: 129), MH35 (1.33) (SEQ ID NO: 130), MH36 (1.47) (SEQ ID NO: 132), MH37 (1.26) (SEQ ID NO: 133), MH38 (1.37) (SEQ ID NO: 134), MH39 (1.39) (SEQ ID NO: 135), MH40 (1.37) (SEQ ID NO: 136), MH41 (1.37) (SEQ ID NO: 137), MH42 (1.37) (SEQ ID NO: 138), MH43 (1.37) (SEQ ID NO: 139), MH44 (1.37) (SEQ ID NO: 139), MH45 (1.37 5(1.91) (SEQ ID NO: 129), MH36(1.37) (SEQ ID NO: 130), MH37(1.75) (SEQ ID NO: 131), MH43(1.90) (SEQ ID NO: 136), MH44(1.38) (SEQ ID NO: 137), MH48(2.12) (SEQ ID NO: 141), MH49(1.71) (SEQ ID NO: 142), MH50(2.74) (SEQ ID NO: 143), MH51(2.46) (SEQ ID NO: 144), MH53(1.45) (SEQ ID NO: 146), MH59(1.31) (SEQ ID NO: 151), MH61 (1.43) (SEQ ID NO: 153), MH64 (1.52) (SEQ ID NO: 156), MH68 (1.12) (SEQ ID NO: 159), MH73 (1.83) (SEQ ID NO: 163), MH84 (1.16) (SEQ ID NO: 174), MH89 (2.26) (SEQ ID NO: 177), MH91 (1.36) (SEQ ID NO: 178), MH92 (1.45) (SEQ ID NO: 179), MH106 (1.16) (SEQ ID NO: 193), MH107 (2.19) (SEQ ID NO: 194), MH108 (1.91) (SEQ ID NO: 195), MH MH111(3.34) (SEQ ID NO:198), MH112(2.77) (SEQ ID NO:199), MH115(1.41) (SEQ ID NO:202), MH119(1.32) (SEQ ID NO:206), MH120(1.55) (SEQ ID NO:207), MH124(1.67) (SEQ ID NO:211), MH131(1.55) (SEQ ID NO:218), MH135(1.60) (SEQ ID NO:222), MH136(1.84) (SEQ ID NO:223), MH138(1.20) (SEQ ID NO:225), and / or MH146(1.65) (SEQ ID NO: 232); and / or the LN02M variable light chain regions ML01(1.29) (SEQ ID NO: 3), ML02(1.93) (SEQ ID NO: 4), ML05(1.45) (SEQ ID NO: 7), ML08(2.31) (SEQ ID NO: 10), ML10(1.51) (SEQ ID NO: 12), ML11(1.25) (SEQ ID NO: 13), ML12(3.90) (SEQ ID NO: 14), ML31(5.74) (SEQ ID NO: 31), ML32(1.38) (SEQ ID NO: 32), ML44(1.57) (SEQ ID NO: 42), ML49(1.40) (SEQ ID NO: 47), ML51(1.1 ML71(1.38) (SEQ ID NO:66), ML73(1.20) (SEQ ID NO:68), ML74(1.10) (SEQ ID NO:69), ML79(1.46) (SEQ ID NO:74), ML84(1.59) (SEQ ID NO:79), ML85(9.94) (SEQ ID NO:80), ML92(4.79) (SEQ ID NO:87), and ML94(6.42) (SEQ ID NO:89); and / or conservatively substituted variants and / or fragments thereof. Particularly preferred LN02M binders include LN02 MH30 (SEQ ID NO: 95), LN02 MH111 (SEQ ID NO: 95), LN02 ML12 (SEQ ID NO: 95), LN02 ML31 (SEQ ID NO: 95), LN02 ML85 (SEQ ID NO: 95), LN02 ML92 (SEQ ID NO: 95), and LN02 ML94 (SEQ ID NO: 95), each of which exhibit greater than 3-fold improved neutralization potency against BaL virus compared to the LN02 wild-type control (Tables 1-2), and / or conservatively substituted variants and / or fragments thereof.

[0020] Binding agents of the disclosure may comprise any of the modified CDRH1, CDRH2, CDRH3, CDRL1, CDRL2, and CDRL3 amino acid sequences described above, or conservatively substituted variants thereof. Such binding agents may be polypeptides, such as antibodies, as described in more detail below.

[0021] A binding agent of the disclosure can include, for example, any one or more of the amino acid sequences (i.e., polypeptide sequences) set forth in SEQ ID NOs: 3-92, 95-233, and / or Figures 1 and 6A-E; and / or conservatively substituted variants thereof. Fragments and / or derivatives thereof (e.g., containing substituted amino acids, such as conservative substitutions) are also disclosed. In some embodiments, a binding agent of the disclosure can include one or more (i.e., one, two, three, four, five, six, or seven) of SEQ ID NOs: 3-92, 95-233, and / or those set forth in Figures 6A-E, provided that the binding agent exhibits the functional characteristics described herein (e.g., as shown in Figures 2-5 and in the Examples section). In preferred embodiments, the binding agent comprises at least one of the modified CDRs shown in Figure 1; at least one of SEQ ID NOs: 3-92 and at least one of SEQ ID NOs: 95-233; and / or at least one of the amino acid sequences shown in Figures 6A-E; and even more preferably, such LN02M binding agents exhibit one or more of the properties presented in any of Tables 1-3 and / or Figures 2-5 and / or described in the Examples section herein. Collectively, the modified LN02 amino acid sequences disclosed herein can be referred to as "LN02M variable region and / or CDR and / or non-CDR amino acid sequences", which refers to the LN02M amino acid sequences shown in Figures 1 and 6A-E, and SEQ ID NOs: 3-92 and 95-233. The LN02M variable region and / or CDR and / or non-CDR amino acid sequences typically comprise a sequence of at least six amino acid residues (e.g., a sequence of at least any of 7, 8, 9, 10, 11, 12, 13, 14, or 15 amino acid residues).

[0022] Combinations of LN02 and LN02M CDRs, as well as modified amino acid sequences outside the CDRs, can be combined with each other as necessary while maintaining functional characteristics such as neutralization of HIV pseudoviruses (as shown in Tables 1-3 and Tables 7-14, Figures 2-5 and 9, and in the Examples).Exemplary combinations are set forth in Table 4, including the following combinations: ML01 (SEQ ID NO:3) of the LN02M variable light chain with MH02 (SEQ ID NO:96), MH04 (SEQ ID NO:98), MH22 (SEQ ID NO:116), MH23 (SEQ ID NO:117), MH30 (SEQ ID NO:124), MH31 (SEQ ID NO:125), MH35 (SEQ ID NO:129), MH36 (SEQ ID NO:130), and / or MH37 (SEQ ID NO:131) of the LN02M variable heavy chain; ML12 (SEQ ID NO:14) of the LN02M variable light chain with MH02 (SEQ ID NO:96), MH 04 (SEQ ID NO:98), MH22 (SEQ ID NO:116), MH23 (SEQ ID NO:117), MH30 (SEQ ID NO:124), MH31 (SEQ ID NO:125), MH35 (SEQ ID NO:129), MH36 (SEQ ID NO:130), and / or MH37 (SEQ ID NO:131); ML23 (SEQ ID NO:24) of the LN02M variable light chain and MH31 (SEQ ID NO:125), MH43 (SEQ ID NO:136), MH48 (SEQ ID NO:141), and MH51 (SEQ ID NO:144) of the LN02M variable light chain; ML30 (SEQ ID NO:30) of the LN02M variable heavy chain and MH31 (SEQ ID NO:125), MH43 (SEQ ID NO:136), MH48 (SEQ ID NO:141), and MH51 (SEQ ID NO:144) of the LN02M variable light chain; (SEQ ID NO:125), MH43 (SEQ ID NO:136), MH48 (SEQ ID NO:141), or MH51 (SEQ ID NO:144); ML31 (SEQ ID NO:31) of the LN02M variable light chain and MH02 (SEQ ID NO:96), MH04 (SEQ ID NO:98), MH22 (SEQ ID NO:116), MH23 (SEQ ID NO:117), MH30 (SEQ ID NO:124), MH31 (SEQ ID NO:125), MH35 (SEQ ID NO:129), MH36 (SEQ ID NO:130), MH37 (SEQ ID NO:131), MH43 (SEQ ID NO:136), MH48 (SEQ ID NO:141), or MH51 (SEQ ID NO:144); ML32 (SEQ ID NO:32) in the LN02M variable light chain and MH31 (SEQ ID NO:125) in the LN02M variable heavy chain; ML85 (SEQ ID NO:80) in the LN02M variable light chain and MH31 (SEQ ID NO:125), MH35 (SEQ ID NO:129), MH43 (SEQ ID NO:136), MH49 (SEQ ID NO:142), MH60 (SEQ ID NO:152), MH76 (SEQ ID NO:166), MH111 (SEQ ID NO:198), or MH112 (SEQ ID NO:199) in the LN02M variable heavy chain; and / or conservatively substituted variants and / or fragments thereof.Particularly preferred LN02M binding agents are LN02 ML8542 (SEQ ID NO:99) and LN02 MX048 (a combination of LN02 ML85 (SEQ ID NO:80) and LN02 MH31 (SEQ ID NO:125) (Table 4)); and / or conservatively substituted variants and / or fragments thereof. As will be appreciated by those of skill in the art, other combinations are also contemplated herein.

[0023] In some embodiments, the binding agent may be a monoclonal antibody (mAb) or a fragment or derivative thereof. In some embodiments, the binding agent may be an HIV-binding fragment of such a monoclonal antibody (mAb). In some embodiments, one or more LN02M CDRs, and / or amino acid sequences comprising such CDRs, and in some embodiments, other modified sequences present outside the CDR regions (see, e.g., FIG. 1), may be cloned into an IgG (e.g., IgG1 or IgG3) scaffold (e.g., framework) using standard techniques. Other suitable embodiments may be derived by one of skill in the art from the present disclosure.

[0024] The binding agent (e.g., an antibody, or antigen-binding fragment thereof) may have a sequence identity that is at least 70%, at least 75%, at least 80%, or at least one of the amino acid sequences of at least one LN02M variable region and / or CDR and / or non-CDR amino acid sequence (e.g., the modified CDRs shown in FIG. 1; at least one of SEQ ID NOs: 3-92 or 491-699 and at least one of SEQ ID NOs: 95-233 or 248-482; and / or at least one of the amino acid sequences shown in FIGS. 6A-E, 7A-E, or 8A-F). Preferably, the LN02M binding agent comprises one or more amino acid sequences having at least 85%, at least 88%, at least 90%, at least 92%, at least 95%, at least 96%, at least 97%, at least 98%, or at least 99% identity, and even more preferably, the LN02M binding agent further exhibits one or more of the properties presented in any of Tables 1-3 and / or Tables 7-14, and / or Figures 2-5 and / or Figure 9, and / or described in the Examples section herein. As discussed below, less than 100% identity may be the result of natural or synthetic substitution of one or more amino acids with another amino acid(s), such as in the case of conservative substitutions (see, e.g., Table 4). Various combinations of LN02M variable region and / or CDR and / or non-CDR amino acid sequences are also contemplated and may be useful for similar purposes (e.g., as anti-HIV antibodies) as may be ascertained by the skilled artisan using the techniques described herein or may otherwise be available to the skilled artisan. In preferred embodiments, the LN02M binding agents described herein are capable of binding to HIV, and / or cells infected with HIV, and / or cells expressing HIV proteins. In some particularly preferred embodiments, the LN02M binding agents described herein are capable of neutralizing HIV (e.g., functioning as a neutralizing binding agent (e.g., an antibody)). In preferred embodiments, the LN02M binding agents are capable of binding to both HIV, and / or cells infected with HIV and / or expressing HIV proteins, and neutralizing HIV.

[0025] The LN02M variable regions and / or LN02M CDR and / or non-CDR amino acid sequences can be used in combination with one or more other variable region / CDR amino acid sequences available to one of skill in the art. Such variable region / CDR amino acid sequences can alternatively and / or additionally be joined to one or more constant region polypeptides of an antibody molecule. For example, the LN02M CDRs can be joined to or associated with the constant regions of an antibody molecule of either the same or a different species (e.g., human, goat, rat, sheep, chicken) and / or the antibody subtype from which the CDR amino acid sequences are derived. For example, the exemplary binding agent LN02M can be or can be derived from another binding agent that includes one or more LN02M variable regions and / or CDR and / or non-CDR amino acid sequences that have approximately the same neutralizing activity and / or binds to the same or a similar epitope and / or exhibits approximately the same affinity. The binding agents may comprise antibody heavy and / or light chains, each comprising one or more constant regions and / or variable regions. Any of the amino acid sequences described herein (e.g., LN02M variable regions and / or CDRs and / or non-CDR amino acid sequences), and / or fragments and / or derivatives thereof, can also be combined with any other variable regions and / or CDRs in any order and / or combination to form new binding agents, e.g., hybrid and / or fusion binding agents, and / or inserted into other heavy and / or light chain variable regions using standard techniques.

[0026] The disclosure also provides for the use of such binding agents to isolate, identify, and / or target HIV and / or cells hosting and / or infected with HIV and / or expressing HIV antigens. In certain embodiments, such binding agents may be reactive to HIV antigens, such as proteins expressed on the surface of cells. In some embodiments, the binding agent(s) is / are antibody(ies). The term "antibody(s)" may refer to whole or fragmented antibodies in unpurified or partially purified form (e.g., hybridoma supernatant, ascites, polyclonal antisera), or purified form. The antibodies may be of any suitable origin or form, including, for example, murine (e.g., produced by murine hybridoma cells), or may be expressed as humanized antibodies, chimeric antibodies, human antibodies, etc. By way of example, the antibodies can be derived, for example, in whole or in part, from human (e.g., IgG (IgG1, IgG2, IgG3, IgG4), IgM, IgA (IgA1 and IgA2), IgD, and IgE), dog (e.g., IgGA, IgGB, IgGC, IgGD), chicken (e.g., IgA, IgD, IgE, IgG, IgM, IgY), goat (e.g., IgG), mouse (e.g., IgG, IgD, IgE, IgG, IgM), pig (e.g., IgG, IgD, IgE, IgG, IgM), and / or rat (e.g., IgG, IgD, IgE, IgG, IgM) antibodies. Methods for preparing, using, and storing various types of antibodies are well known to those of skill in the art and may be suitable for the practice of the present invention (see, e.g., Harlow, et al. Antibodies: A Laboratory Manual, Cold Spring Harbor Laboratory, 1988; Harlow, et al. Using Antibodies: A Laboratory Manual, Portable Protocol No. 1, 1998; Kohler and Milstein, Nature, 256:495 (1975)); Jones et al. Nature, 321:522-525 (1986); Riechmann et al. Nature, 332:323-329 (1999)).88); Presta (Curr. Op. Struct. Biol., 2:593-596 (1992); Verhoeyen et al. (Science, 239:1534-1536 (1988); Hoogenboom et al., J. Mol. Biol., 227:381 (1991); Marks et al., J. Mol. Biol., 222:581 (1991); Cole et al., Monoclonal Antibodies and Cancer Therapy, Alan R. Liss, p. 77 (1985); Boerner et al., J. Immunol., 147(1):86-95 (1991); Marks et al., Bio / Technology 10, 779-783 (1992); Lonberg et al., Nature 368 856-859 (1994); Morrison, Nature 368 812-13 (1994); Fishwild et al., Nature Biotechnology 14, 845-51 (1996); Neuberger, Nature Biotechnology 14, 826 (1996); Lonberg and Huszar, Intern. Rev. Immunol. 13 65-93 (1995); and U.S. Patent Nos. 4,816,567; 5,545,807; 5,545,806; 5,569,825; 5,625,126; 5,633,425; and 5,661,016. In certain applications, the antibodies are contained within the hybridoma supernatant or ascites fluid and can be utilized directly as such or after concentration using standard techniques. In other applications, the antibodies can be further purified using, for example, salt fractionation and ion exchange chromatography, or affinity chromatography using Protein A, Protein G, Protein A / G, and / or Protein L ligands covalently bound to solid supports such as agarose beads, or a combination of these techniques.The antibody can be stored in any suitable format, including as a frozen preparation (e.g., at −20° C. or −70° C.), in lyophilized form, or under normal refrigerated conditions (e.g., at 4° C.). For example, when stored in liquid form, it is preferred to utilize an appropriate buffer, such as Tris-buffered saline (TBS) or phosphate-buffered saline (PBS). In some embodiments, the binding agent can be prepared as an injectable preparation, such as a suspension in a non-toxic parenterally acceptable diluent or solvent. Suitable vehicles and solvents that can be utilized include water, Ringer's solution, and isotonic sodium chloride solution, TBS, and / or PBS, among others. Such preparations are suitable for in vitro or in vivo use and can be prepared as known in the art, the exact preparation of which can depend on the particular application.

[0027] However, the binding agents described herein are in no way limited to antibodies (i.e., whole antibodies). For example, a binding agent may be any compound (e.g., a mimetic) that exhibits similar binding properties as another. For example, an exemplary binding agent may be one that binds to HIV and / or can compete with another binding agent having specificity therefor (e.g., a monoclonal antibody such as the LN02M antibody). In some embodiments, a mimetic may exhibit substantially the same affinity in a binding assay as the binding agent (e.g., a monoclonal antibody) to which it is being compared. The affinity of a particular binding agent may be measured by any suitable assay, including, but not limited to, FACS staining of cell surface HIV antigens (e.g., polypeptides). A binding agent may be said to have "substantially the same affinity" as another binding agent if the measurements (e.g., nm) are within about any of 1-20, 1-5, 5-10, 10-15, or 15-20 percent of each other.Exemplary mimetics include, for example, organic compounds that specifically bind to HIV, or affibodies (Nygren, et al. FEBS J. 275 (11): 2668-76 (2008)), affilins (Ebersbach, et al. J. Mol. Biol. 372 (1): 172-85 (2007)), affitins (Krehenbrink, et al. J. Mol. Biol. 383 (5): 1058-68 (2008)), anticalins (Skerra, A. FEBS J. 275 (11): 2677-83 (2008)), avimers (Silverman, et al. Nat. Biotechnol. 23 (12): 1556-61 (2005)), DARPins (Stumpp, et al. Drug Discov. Today 13 (13): 157-163 (2005)), and the like. (15-16): 695-701 (2008)), finomers (Grabulovski, et al. J. Biol. Chem. 282 (5): 3196-3204 (2007)), Kunitz domain peptides (Nixon, et al. Curr. Opin. Drug Discov. Devel. 9 (2): 261-8 (2006)), and / or monobodies (Koide, et al. Methods Mol. Biol. 352: 95-109 (2007)). Other mimetics can include, by way of example, F. ab , F ab2 , Fab' single chain antibody, F v , single domain antibodies, monospecific antibodies, bispecific antibodies, trispecific antibodies, multivalent antibodies, chimeric antibodies, dog-human chimeric antibodies, dog-mouse chimeric antibodies, canine Fc-containing antibodies, humanized antibodies, human antibodies, caninized, CDR-grafted antibodies, shark antibodies, nanobodies, camelid antibodies, microbodies, and / or intrabodies; and / or derivatives thereof. As will be appreciated by those of skill in the art, other binding agents are also provided herein.

[0028] Any method known to one of skill in the art can be used to generate binding agents with specificity for HIV (e.g., binding to HIV). For example, animals such as mice can be administered (e.g., immunized) with one or more HIV proteins to generate and isolate monoclonal antibodies. Animals that exhibit seroreactivity (e.g., as determined by flow cytometry and / or microscopy) to HIV expressed on activated human T lymphocytes can then be selected for generation of anti-HIV hybridoma cell lines. This can be repeated multiple times. Screening can also include affinity binding and / or functional characterization, for example, to identify binding agents that are specific for HIV. In some embodiments, such as in the Examples herein, humans can be screened for expression of antibodies to HIV. In some embodiments, plasma samples from HIV-infected humans can be screened to identify individuals that express anti-HIV antibodies, particularly neutralizing antibodies. Neutralizing antibody-producing cells from such individuals can then be isolated, followed by isolation and characterization of the antibodies produced thereby (e.g., as in the Examples herein). Neutralizing antibodies can be those that exhibit the ability to neutralize or inhibit infection of cells by HIV. In general, neutralization assays typically measure the reduction in infectivity of a virus due to the reaction of the virus with a specific antibody. Typically, the reduction in infectivity is caused by the interference of the binding antibody with any of the steps of viral replication, including but not limited to binding to, entry into, and / or virus release from the target cell. The presence of non-neutralized virus is detected after a given time, e.g., 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 12, or 14 days, by measuring the infection of target cells using any of the systems available to those skilled in the art (e.g., luciferase-based systems). A non-limiting example of a neutralization assay may include combining a given amount of virus or pseudovirus (see below) and mixing different concentrations of test antibody or control (usually positive and negative control, which are assayed separately) antibodies under appropriate conditions (e.g., at room temperature for 1 hour) and then inoculating into an appropriate target cell culture (e.g., TZM-bl cells).For example, binder-producing cells (e.g., antibody-producing B cells) can be assayed for the production of HIV-1 neutralizing antibodies by seeding such cells in separate plates as single-cell microcultures on human feeder cells in the presence of Epstein-Barr virus (EBV) (which also stimulates memory B cells polyclonally), a cocktail of growth factors (e.g., the TLR9 agonist CpG-2006, IL-2 (1000 IU / ml), IL-6 (10 ng / ml), IL-21 (10 ng / ml), and anti-B cell receptor (BCR) goat antibodies (to trigger the BCR)). After a suitable time (e.g., 14 days), the supernatants of such cultures can be tested in a primary luciferase-based screening system using two or more representative HIV-1 viruses or pseudoviruses that productively infect such cells. The pseudovirus can be incubated with B cell culture supernatant for an appropriate time and temperature (e.g., 1 hour at 37% (5% CO2)) before adding host cells (e.g., 3000TZM-bl cells). Incubation can then continue for an appropriate time (e.g., 72 hours), after which the supernatant can be removed and Steadylite reagent (Perkin Elmer) can be added (e.g., 15 μl). Luciferase activity can then be determined (e.g., after 5 minutes) in a Synergy microplate luminometer (BioTek). A decrease in luciferase activity compared to a negative control typically indicates neutralization of the virus. Neutralization assays such as these suitable for analyzing binding agents of the present disclosure are known in the art (see, e.g., Montefiori, DC Curr. Protocol. Immunol. Chapter 12, Unit 12.11 (2005); Edmonds, et al. Virology, 408(1): 1-13 (2010); Seaman, et al. J. Virol. 84(3): 1439-1452 (2010); Pace, et al. PNAS USA, 110(33): 13540-13545 (2013)).In some embodiments, the test sample can be screened for the presence of antibodies capable of neutralizing a panel of HIV pseudoviruses (e.g., eight HIV-1 pseudoviruses from the global panel of HIV-1 reference strains performed in the Examples herein (these pseudoviruses are TRO.11 (B), 246F3 (AC), BJOX2000 (CRF007_BC), CE1176 (C), CH119 (CRF07_BC), CNE55 (CRF01_AE), 25710 (C), and X1632 (see, e.g., Figures 2-5) that are not neutralized by the control virus SVA-MLV at about 10 μg / ml or less (see, e.g., Figure 5); DeCamp, A. et al. Global panel of HIV-1 Env reference strains for standardized assessments of vaccine-elicited neutralizing antibodies. J Virol 88, 2489-2507 (2014). Neutralization of a larger panel of pseudoviruses can also be tested; for example, de Camp et al. describe a group of 12 pseudoviruses (also known as HIV-1 Env reference strains): 398F1, 25710, CNE8, TRO11, X2278, BJOX2000, X1632, CE1176, 246F3, CH119, CE0217, and CNE55. In some embodiments, a panel of 10 HIV isolates can be tested, and bNabs can be identified that neutralize 6, 7, 8, 9 members of the panel of 9 pseudoviruses; or 6, 7, 8, 9, 10, 11, or 12 members of the panel of 12 pseudoviruses. In this way, Screening of larger panels of such pseudoviruses (e.g., a panel of 57 pseudoviruses as in the Examples herein) can also be performed. In one embodiment, test samples can then be tested for neutralizing antibodies. An exemplary panel of 57 pseudoviruses used in the Examples can include, for example, those shown in Figures 2-5 (e.g., Clade A(T / F), Clade B, Clade B(T / F), Clade BC, Clade C, Clade C(T / F), Clade E(T / F), or Clade G).In some embodiments, neutralization can be determined as a measure of the concentration (e.g., μg / ml) of monoclonal antibody that can neutralize about 50%, 60%, 70%, 80%, 90%, 95%, or 99% of the viral infection (referred to as percent neutralization and / or "IC." 50 " and / or "I.C. 80 " value). In some embodiments, the binding agent may be, for example, about 10 -5 , 10 -4 , 10 -3 , 10 -2 , 10 -1 , 10 0 , 10 1 , 10 2 , or 10 3 A concentration of any one of the antibodies can be considered neutralizing if it is able to neutralize 50% of the viral infection at any one of the concentrations in μg / ml (e.g., IC values ​​shown in Figures 2-5). 80 In some embodiments, the ability of a neutralizing antibody to neutralize a viral infection can be expressed as a percent neutralization (e.g., 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 95%, or 99% (e.g., as in FIG. 5 )). Also, in some embodiments, as in the Examples herein, the ability of a neutralizing antibody to neutralize a viral infection can be expressed as an IC 50 and / or IC 80 In the preferred embodiment, it can be expressed as an IC 50 and / or IC 80 Values ​​are less than 25 μg / ml, and even more preferably less than about any of 15, 10, 5, 2, 1, 0.5, 0.25, 0.1, 0.05, or 0.01 μg / ml (see, e.g., Figures 2-5). Other means of neutralization may also be appropriate as determined by one of skill in the art.

[0029] In some embodiments, the binding agents described herein may be broadly neutralizing antibodies (bNabs) identified in biological samples (e.g., plasma) obtained from HIV-infected individuals. As described above and shown in the examples herein, such bNabs can be identified by testing plasma samples from patients chronically infected with HIV (preferably patients not receiving antiretroviral therapy) for their ability to neutralize multi-clade HIV isolates (e.g., first using a 9 or 12 member panel of pseudoviruses, then using a larger panel (e.g., 57 members)). In some embodiments, the samples may be derived from patients known as "elite controllers" whose viremia is less than 50 HIV RNA copies per ml of plasma. Screening procedures such as these may lead to the identification of patients who may serve as lymph node donors for the subsequent isolation and characterization of bNab-producing B cells. In performing such screening assays, neutralizing activity is usually compared to a negative control, such as a murine leukemia virus (MLV) pseudovirus.

[0030] In some embodiments, the patient's germinal center cells and memory IgG B cells expressing neutralizing binding agents (e.g., antibodies) can be isolated and further studied. In some embodiments, the cells can be sorted separately according to expression of IgG (e.g., IgA and IgM negative cells), CD19, and CD38 (germinal center B cells are CD38 positive) and investigated for the production of HIV-1 neutralizing antibodies. For example, highly purified IgG memory B cells and IgG germline cells can be plated separately as single cell microcultures on human feeder cells in the presence of Epstein-Barr Virus (EBV) (which also stimulates memory B cells polyclonally) and a cocktail of growth factors (e.g., the constitutive TLR9 agonist CpG-2006, IL-2 (1000 IU / ml), IL-6 (10 ng / ml), IL-21 (10 ng / ml), and anti-BCR goat antibody (triggering the B cell receptor (BCR))). Supernatants from such cultures (e.g., from day 14 cultures) can then be tested in a primary screen (e.g., using a 384-well based HIV-1 pseudovirus neutralization assay using two strains in parallel, CE1176 and BJOX2000, representing clades C and CRF07, as shown in the Examples herein). Neutralization assays can be performed using any suitable host cell (e.g., TZM-bl cells (Seaman, et al. J. Virol. 84(3): 1439-52 (2010); NIH AIDS Reagent Program Catalog Number 8129)). A significant (e.g., 50-100×10 4HIV-1 pseudoviruses that yield an output relative light units (RLU) (i.e., indicative of productive infection of cells) can be incubated with B cell culture supernatant for an appropriate time and temperature (e.g., 1 hour at 37% (5% CO2)) before adding host cells (e.g., 3000 TZM-bl cells). Typically, incubation continues for an appropriate time (e.g., 72 hours), after which the supernatant can be removed and Steadylite reagent (Perkin Elmer) can be added (e.g., 15 μl). Luciferase activity can then be detected (e.g., after 5 minutes) in a Synergy microplate luminometer (BioTek). A decrease in luciferase activity indicates that less virus is released from the cells and that the virus has been neutralized. For example, if the base RLU of a particular pseudovirus is between 50 and 100 × 10 4 In terms of RLU, neutralizing antibodies reduce the RLU of the pseudovirus by 25–50 × 10 4 It can be determined that the RLU (i.e., 50% reduction) or less is reduced. Using such a system, supernatants capable of cross-neutralizing strains can be identified and further harvested and tested for their ability to neutralize other pseudoviruses.

[0031] Antibodies from such neutralizing antibody-containing cultures can then be further characterized by determining the amino acid and nucleotide sequences of the antibody variable and complementarity determining regions (CDRs). Using these techniques, an HIV-neutralizing binder designated "LN02" was identified as an IgG3-type fully human monoclonal antibody having the CDR, VH, and VL sequences shown in FIG. 1 (including SEQ ID NOs: 234, 235). As described herein, mutants of LN02 are currently being developed and shown to exhibit surprising functional properties (e.g., increased neutralization of HIV pseudoviruses). In some embodiments, the variable heavy chain (VH) of the binder is a nucleotide sequence that is sequenced with the nucleotide sequence of the VH sequence. H ) and variable light chain (V L) genes can be cloned into an IgG expression vector of the same or different isotype. As shown in the examples, for example, nucleic acids encoding the LN02M variable regions and / or CDR and / or non-CDR amino acid sequences were cloned into an IgG1 backbone and recombinant IgG1-based antibodies were produced by transfecting suitable host cells (e.g., Expi293F cells). The antibody full-length IgG1-based antibodies can then be purified using standard techniques (e.g., recombinant Protein A columns (GE-Healthcare) can be used to purify full-length IgG1-based antibodies). The recombinantly produced IgG1 antibodies can then be tested on suitable host cells (e.g., TZM-bl cells) against any of a panel of pseudoviruses such as any of those described herein (e.g., the global panel of nine HIV-1 reference pseudoviruses used in the examples). In a preferred embodiment, the binders exhibit the ability to neutralize a majority (i.e., at least about 50% or more) of the members of the pseudovirus panel (e.g., including 9, 12, or 118 members) without neutralizing a negative control virus (e.g., an MLV pseudovirus). Preferably, the binders exhibit the ability to neutralize a majority of such viruses (e.g., greater than about 50% neutralization, such as any of about 60%, 70%, 80%, 90%, 95%, 99%, or 100%) and exhibit an IC 50 and / or IC 80 A value of 0.1 is considered neutralization (see below). For example, in some embodiments, a binding agent of the disclosure can exhibit neutralization of the HIV-1 pseudoviruses TRO.11 (clade B), 25710 (clade C), CE1176, BJOX (CRF07_BC), CH119 (CRF07_BC), 246-F3 (clade AC), X1632 (clade G), CNE55 (CRF01_AE), and / or CD0217 (clade C). In some embodiments, neutralization of HIV-1 pseudoviruses is observed at antibody concentrations of 10 -2 ~10 0 μg / ml (i.e., 10 ng / ml to 1 μg / ml), or 10 0 ~10 1In some such embodiments, neutralization by the binder is at least about 50%. In some embodiments, infection with an HIV-1 isolate is observed when the infection with at least one of the isolates has an IC of less than 25 μg / ml. 50 IC<25μg / ml when neutralized by 50 and / or IC 80 is considered to be neutralized by the binding agent (e.g., antibody). In some embodiments, the binding agent is capable of binding to a described HIV-1 pseudovirus with an IC of less than 25 μg / ml, e.g., about 10 μg / ml, 9 μg / ml, 8 μg / ml, 7 μg / ml, 6 μg / ml, 5 μg / ml, 4 μg / ml, 3 μg / ml, 2 μg / ml, 1 μg / ml, 0.9 μg / ml, 0.8 μg / ml, 0.7 μg / ml, 0.6 μg / ml, 0.5 μg / ml, 0.4 μg / ml, 0.3 μg / ml, 0.2 μg / ml, 0.1 μg / ml, 0.09 μg / ml, 0.08 μg / ml, 0.07 μg / ml, 0.06 μg / ml, 0.05 μg / ml, 0.04 μg / ml, 0.03 μg / ml, 0.02 μg / ml, or 0.01 μg / ml. 50 and / or an IC of between about 0.001 and about 10 μg / ml 50In a preferred embodiment, the binding agent is a HIV-1 pseudovirus strain TRO.11 (clade B), 25710 (clade C), CE1176, BJOX (CRF07_BC), CH119 (CRF07_BC), 246-F3 (clade AC), X1632 (clade G), CNE55 (CRF01_AE), and / or CD0217 (clade C); and / or IDs MS208.A1, Q23.17, Q769.d22, Q842.d12, Q259.d2.17, 0260.v5.c36, 191955_A11, 191084 B7-19, TRO.11, 6535.3, REJO4541.67, SC422661.8, QH0692.42, TRJO4551.58, RHPA4259.7, PVO.4, SC05 8C11 2344, CNE17, CNE19, CNE20, CNE21, Du422.1, CAP210.2.00.E8, ZM249M.PB6, HIV-001428-2.42, ZM214M.PL15, CAP45.2.00.G3, Ce704809221_1B3, Ce1176_A3, ZM247v1(Rev-), Ce0682_E4, 249M B10, 246F C1G and / or BF1266.431a, for example at an IC of about 1 μg / ml or less 50 or IC 80 (FIGS. 2-4, FIG. 9, Tables 7A, 7B, and / or Tables 8A to 8M). It is further preferred that the binding agents do not exhibit clade dependency. For example, in some embodiments, the binding agents can exhibit the ability to neutralize pseudoviruses of HIV-1 clades, including but not limited to, Clade A(T / F), Clade B, Clade B(T / F), Clade BC, Clade C, Clade C(T / F), Clade E(T / F), and / or Clade G. In some preferred embodiments, the binding agents neutralize at least one pseudovirus of each of Clades A, A(T / F), B, B(T / F), BC, C, C(T / F), and G with an IC of about 1 μg / ml or less. 50 or IC 80In some preferred embodiments, the binding agent neutralizes at least one pseudovirus of each of clades A, A(T / F), B, B(T / F), BC, C, C(T / F) with an IC of about 0.5 μg / ml or less. 50 or IC 80 In some preferred embodiments, the binding agent has an IC of about 1 μg / ml or less. 80 can neutralize at least one pseudovirus of each of clades A, A(T / F), B, B(T / F), BC, C, and C(T / F). In some embodiments, the binding agent comprises any one or more of these properties and one or more of the LN02M variable region and / or CDR and / or non-CDR amino acid sequences.

[0032] In some embodiments, binding agents can be tested for neutralizing ability against HIV reference pseudoviruses (e.g., the above-mentioned global panel of nine HIV-1 reference pseudoviruses) using cells that may or may not express one or more types of Fc receptors (e.g., parental TZM-bl cells and TZM-bl cells expressing Fc-gamma receptor I (CD64) as in the examples; see, e.g., Perez, et al. Utilization of immunoglobulin G Fc receptors by human immunodeficiency virus type 1: a specific role for antibodies against the membrane-proximal external region of gp41. J Virol 83, 7397-7410 (2009); NIH AIDS Reagent Program Catalog No. 11798). Enhanced neutralizing activity in cells expressing Fc receptors can provide antibodies with a kinetic advantage in viral inhibition. This kinetic advantage may be unique to antibodies, whose epitopes are thought to be difficult to access or only briefly exposed to intermediate conformations of the Env protein during the early stages of fusion. Fc-γ receptors can also promote HIV-1 neutralization, which is phagocytosis, thereby enhancing the neutralizing capacity of antibodies. So far, HeLa cells, from which the TZM-bl cell line was constructed, are known to exhibit properties of non-professional phagocytes. Thus, TZM-bl cells could have been converted into professional phagocytes by introducing Fc-γ receptors on their surface. Fc-γ receptor-mediated antiviral effects on HIV-1 neutralizing antibodies, whether by entry inhibition or phagocytosis, could be beneficial for HIV treatment and vaccine regimens. Although Fc-γ receptors are rarely expressed on CD4+ lymphocytes, several other HIV-1 susceptible cell types express multiple Fc-γ receptors and are involved in sexually transmitted infection as well as the early establishment of long-lived viral reservoirs.In particular, macrophages are one of the first susceptible cells encountered by viruses after exposure to mucosa and are believed to function as long-lived viral reservoirs in chronic infections. Macrophages, as well as certain subsets of monocytes and dendritic cells, are known to express multiple Fc-γ receptors. It is also important to mention that Fc-γ receptors play a role in regulating adaptive immunity and peripheral tolerance by promoting antigen uptake, antigen presentation, cell activation, and B cell tolerance. Thus, in some embodiments, the binding agents described herein can be used in combination with agents that induce and / or enhance Fc receptor expression, including the introduction of nucleic acids encoding one or more Fc receptors, along with or in combination with treatment with the binding agents described herein.

[0033] The specificity of the binding agents described herein can be determined using any of a number of techniques available to those skilled in the art. For example, as shown in the examples herein, the specificity of a binding agent (e.g., IgG1 LN02 antibody) for a particular epitope can be confirmed using a panel of pseudoviruses (e.g., CAP45) encoding mutations of the HIV envelope gene. For example, HIV envelope protein (Env) can be modified to generate modified Env proteins (mEnv), and each binding agent (e.g., antibody) can be tested for its ability to bind to various mEnv proteins. Exemplary HIV-1 envelope amino acid sequences that can be used are those of the CAP45 pseudovirus (GenBank Accession No. EF203962; NCBI GenPept Accession No. ABQ02701.1; SEQ ID NO: 237), and / or the HXB2 Env sequence (SEQ ID NO: 238 (GenBank Accession No. MF944225.1, protein_id=ATG88205.1)), as shown below (with exemplary amino acids that can be modified shown in bold and underlined): TIFF0007678790000001.tif198170

[0034] In some embodiments, the binding agents of the present disclosure have the neutralizing properties described above (i.e., -2 ~10 0 μg / ml (i.e., 10 ng / ml to 1 μg / ml), or 10 0 ~10 1 At least about 50% neutralization of HIV-1 pseudoviruses TRO.11 (clade B), 25710 (clade C), CE1176, BJOX (CRF07_BC), CH119 (CRF07_BC), 246-F3 (clade AC), X1632 (clade G), CNE55 (CRF01_AE), and CD0217 (clade C) at concentrations between 1 and 10 μg / ml (i.e., 1 and 10 μg / ml) (Figures 3, 4, 9; Tables 7A, 7B, and Tables 8A to 8M), and IC of less than 25 μg / ml. 50 or IC 80 These binding specificities may be included along with neutralization of the majority of HIV-1 pseudoviruses at 100 ng / mL.

[0035] The specificity of the binders can also be tested for binding to soluble trimers representative of HIV proteins (e.g., soluble cleaved SOSIP.664 gp140 trimers based on the subtype A infectious / founder strain BG505 used in the Examples herein). Preferred trimers (such as those used in the Examples herein) are highly stable, homogenous, and closely resemble native viral spikes when visualized by negative staining electron microscopy (EM) (Sanders, RW et al. A next-generation cleaved, soluble HIV-1 Env trimer, BG505 SOSIP.664 gp140, expresses multiple epitopes for broadly neutralizing but not non-neutralizing antibodies. PLoS Pathog. 9, e1003618 (2013)). Typically, broadly neutralizing antibodies against multiple neutralizing epitopes on HIV-1 Env are highly reactive with such trimers. Conversely, non-neutralizing antibodies (NAbs) against the CD4 binding site, CD4-induced epitopes, or gp41 ectodomain will not react (and did not in the Examples) with the trimer, even if those epitopes are present in simpler forms of Env (e.g., gp120 monomers or dissociated gp41 subunits). The Examples also include assays that can be used in testing any of the binding agents described herein, where the MPER has also been deleted to improve trimer solubility and reduce aggregate formation. Binders can also be tested for binding to such trimers in the presence or absence of soluble CD4 (sCD4).The Examples herein describe LN02 and PGT151, which bind to sites at the interface with gp120 and gp41 antibodies for binding to the 426c WT SOSIP Env protein complex as measured by surface plasmon resonance (SPR) (Dingens et al. Cell Host Microbe. 2017 Jun 14;21(6):777-787.e4. doi: 10.1016 / j.chom.2017.05.003. Epub 2017 Jun 1). As shown in the Examples, biotinylated IgG1 LN02 antibody was shown to bind to 426c WT SOSIP Env protein, whereas binding of Env protein pre-incubated with unlabeled LN02 antibody was completely blocked. In a similar experiment, the biotinylated interface binding bNab PGT151 bound tightly to 426cWT SOSIP Env protein, whereas PGT151 bound weaker to LN02+426cWT SOSIPEnv protein complex. Thus, the results shown in the Examples suggest that the IgG1 LN02 antibody may recognize an epitope at the gp120 / gp41 interface of HIV-1 Env. Given that the binding of PGT151 to 426cWT SOSIP was not completely blocked by LN02, it is possible that LN02 binds to the same region but not to the same epitope as compared to PGT151. Other assay systems, including surface plasmon resonance, can be used to test the binding agents contemplated herein. Similar tests can also be performed on any of the binding agents contemplated herein.

[0036] "Binding affinity" and / or K D The term K refers to the off-rate of a particular antibody-antigen interaction. D is the dissociation rate ("off rate (k d )) binding rate ("on rate (k a )"). Therefore, K D is k d / k a and is expressed as molar concentration (M). Therefore, KD The smaller the K, the stronger the binding affinity. For example, a K of 1 mM D has a K of 1 nM D The binding is weaker than that of the antibody. D Values ​​can be determined using methods well established in the art, such as using a Biacore® system. In some embodiments, the binding agents described herein have their respective K D Each can be compared to another binder by reference to its respective value. These properties can be combined with other properties, such as neutralizing capacity and / or epitope specificity, to compare binders to one another. Thus, K D and possibly also sharing the neutralizing capabilities and epitope specificities described herein (e.g., as represented by LN02M) are also contemplated as part of this disclosure.

[0037] Any of the amino acid sequences of the LN02M variable regions and / or CDR and / or non-CDR amino acid sequences (and / or one or more fragments and / or derivatives thereof) can also be substituted with any other amino acid as desired by the skilled artisan. For example, the skilled artisan can make conservative substitutions by replacing a particular amino acid with another amino acid, as shown in Table 5 below. The particular amino acid substitution selected can depend on the location of the selected site. An amino acid substitution can be said to "correspond to" if the skilled artisan can ascertain a significant amount of similarity between the amino acid sequences surrounding the substituted amino acid. For example, a particular amino acid sequence can correspond to another sequence in which two, three, four, or more N-terminal and C-terminal amino acids surrounding the substituted amino acid are identical or similar in the compared polypeptides (e.g., as set forth in Table 5). Conservative amino acid substitutions can involve the substitution of a native amino acid residue with a non-native residue such that there is little or no effect on the size, polarity, charge, hydrophobicity, or hydrophilicity of the amino acid residue at that position, in particular without resulting in, for example, a reduced HIV neutralizing capacity and / or a different epitopic specificity.

[0038] [Table 1]

[0039] In certain embodiments, the nucleic acid molecules encoding one or more of the binding agents described herein can be inserted into one or more expression vectors, as discussed in more detail below. In such embodiments, the binding agent can be encoded by nucleotides corresponding to an amino acid sequence. The specific combinations of nucleotides (codons) that code for various amino acids (AA) are well known in the art, as described in various references used by those skilled in the art (e.g., Lewin, B. Genes V, Oxford University Press, 1994). The nucleotide sequences that code for the amino acids of the binding agent can be confirmed, for example, by reference to Table 6. The nucleic acid variant can use any combination of nucleotides that code for the binding agent.

[0040] [Table 2]

[0041] Those skilled in the art will understand that a nucleotide sequence encoding a particular amino acid sequence can be easily derived from the amino acid sequence of any of the LN02M variable regions and / or CDR and / or non-CDR amino acid sequences and the information presented in Table 6. For example, from the amino acid sequence YGSISRHFWG ​​(SEQ ID NO: 1) and the information presented in Table 6, it can be deduced that the amino acid sequence can be encoded by the nucleotide sequence TATGGCAGCATTAGCCGCCATTTTTGGGGC (SEQ ID NO: 34). Those skilled in the art will understand that a nucleotide sequence encoding an LN02M variable region and / or CDR and / or non-CDR amino acid sequence can be deduced in the same manner, and such nucleotide sequences are contemplated herein. Expression vectors comprising such nucleic acid sequences are also contemplated by the present disclosure. When the binding agent is an antibody, the nucleotide sequence encoding its variable region can also be isolated from phage and / or hybridoma cells expressing the same cloned into the expression vector. Methods for producing such preparations are well known in the art.

[0042] The nucleic acid molecules encoding the one or more HIV binding agents may be contained within viral and / or non-viral vectors, hi one embodiment, a DNA vector is utilized to deliver the nucleic acid encoding the one or more HIV binding agents to the patient. In doing so, various strategies can be utilized to improve the efficiency of such mechanisms, such as the use of self-replicating viral replicons (Caley, et al. 1999. Vaccine, 17: 3124-2135; Dubensky, et al. 2000. Mol. Med. 6: 723-732; Leitner, et al. 2000. Cancer Res. 60: 51-55), codon optimization (Liu, et al. 2000. Mol. Ther., 1: 497-500; Dubensky, supra; Huang, et al. 2001. J. Virol. 75: 4947-4951), in vivo electroporation (Widera, et al. 2000. J. Immunol. 164: 497-500), and the use of cytochrome P450 (CYP450) for the first time. 4635-3640), incorporation of nucleic acids encoding costimulatory molecules, cytokines, and / or chemokines (Xiang, et al. 1995. Immunity, 2: 129-135; Kim, et al. 1998. Eur. J. Immunol., 28: 1089-1103; Iwasaki, et al. 1997. J. Immunol. 158: 4591-3301; Sheerlinck, et al. 2001. Vaccine, 19: 2647-2656), incorporation of stimulatory motifs such as CpG (Gurunathan, supra; Leitner, supra), sequences for targeting endocytosis or ubiquitin processing pathways (Thomson, et al. 1998. J. Virol. 72: 2246-2252; Velders, et al. al. 2001. J. Immunol. 166: 5366-5373), prime-boost regimen (Gurunathan, supra; Sullivan, et al. 2000. Nature, 408: 605-609; Hanke, et al. 1998. Vaccine, 16: 439-445; Amara, et al. 2001.Science, 292: 69-74), proteasome-sensitive cleavage sites, and the use of mucosal delivery vectors such as Salmonella (Darji, et al. 1997. Cell, 91: 765-775; Woo, et al. 2001. Vaccine, 19: 2945-2954). Other methods are known in the art, some of which are described below. Various viral vectors that have been successfully used to introduce nucleic acid into a host include retroviruses, adenoviruses, adeno-associated viruses (AAV), herpes viruses, and pox viruses, among others. Vectors can be constructed using standard recombinant techniques that are widely available in the art. Such techniques can be found in general molecular biology references such as: Molecular Cloning: A Laboratory Manual (Sambrook, et al., 1989, Cold Spring Harbor Laboratory Press), Gene Expression Technology (Methods in Enzymology, Vol. 185, edited by D. Goeddel, 1991. Academic Press, San Diego, CA), and PCR Protocols: A Guide to Methods and Applications (Innis, et al. 1990.Academic Press, San Diego, ca). "Non-viral" plasmid vectors may also be suitable in certain embodiments. Preferred plasmid vectors are compatible with bacterial, insect, and / or mammalian host cells. Such vectors include, for example, PCR-ii, PCR3, and pcDNA3.1 (Invitrogen, San Diego, CA, USA), pBSii (Stratagene, La Jolla, CA, USA), pet15 (Novagen, Madison, WI, USA), pGEX (Pharmacia Biotech, Piscataway, NJ, USA), pEGFp-n2 (Clontech, Palo Alto, CA, USA), pETl (Bluebacii, Invitrogen), pDSR-alpha (WO 90 / 14363), and pFASTBACdual (Gibco-BRL, Grand Island, NY, USA), as well as Bluescript® plasmid derivatives (high copy number COLe1-based phagemid, Stratagene Cloning Systems, La Jolla, CA, USA), PCR cloning plasmids designed for cloning of TAQ-amplified PCR products (e.g., TOPO™ TA Cloning® Kit, PCR2.1® plasmid derivatives, Invitrogen, Carlsbad, Calif., USA). Bacterial vectors can also be used. These vectors include, for example, Shigella, Salmonella, Vibrio cholerae, Lactobacillus, Bacillus Calmette-Guerin (BCG), and Streptococcus (see, for example, WO 88 / 6626; WO 90 / 0594; WO 91 / 13157; WO 92 / 1796; and WO 92 / 21376). Many other non-viral plasmid expression vectors and systems are known in the art and can be used. Other delivery techniques may also suffice, including, for example, DNA-ligand complexes, adenovirus-ligand-DNA complexes, direct injection of DNA, CaPO4 precipitation, gene gun techniques, electroporation, and colloidal dispersion systems. Colloidal dispersion systems include macromolecular complexes, nanocapsules, microspheres, beads, and lipid-based systems, including oil-in-water emulsions, micelles, mixed micelles, and liposomes. A preferred colloidal system is a liposome, an artificial membrane vesicle useful as a delivery vehicle in vitro and in vivo. RNA, DNA, and intact virions can be encapsulated in the aqueous interior and delivered to cells in a biologically active form (Fraley, R., et al., 1981, Trends Biochem.Sci., 6: 77). The composition of liposomes is usually a combination of phospholipids, especially high-phase transition temperature phospholipids, usually in combination with steroids, especially cholesterol. Other phospholipids or other lipids can also be used. The physical properties of liposomes depend on pH, ionic strength, and the presence of divalent cations. Examples of lipids useful in the preparation of liposomes include phosphatidyl compounds such as phosphatidylglycerol, phosphatidylcholine, phosphatidylserine, phosphatidylethanolamine, sphingolipids, cerebrosides, and gangliosides. Particularly useful are diacylphosphatidylglycerols, in which the lipid moiety contains 14-18 carbon atoms, particularly 16-18 carbon atoms, and is saturated. Exemplary phospholipids include egg phosphatidylcholine, dipalmitoylphosphatidylcholine, and distearoylphosphatidylcholine.

[0043] Also provided are cultured cells comprising the vector. The cultured cells may be cultured cells transfected with the vector or progeny of the cells, where the cells express the immunogenic polypeptide. Suitable cell lines are known to those skilled in the art and are commercially available, for example, through the American Type Culture Collection (ATCC). The transfected cells may be used in a method for producing an immunogenic polypeptide. The method includes culturing the cells comprising the vector under conditions that allow expression of the immunogenic polypeptide, optionally under the control of an expression sequence. The immunogenic polypeptide may be isolated from the cells or medium using standard protein purification methods. In some embodiments, the binding agents described herein may be conjugated to an active agent to target and inhibit the function of and / or eliminate cell populations that express HIV polypeptides and / or host HIV (and / or another antigen in the case of binding agents with multiple specificities). For example, CD4 HIV containing replication-competent HIV may be used in a method for producing an immunogenic polypeptide. The method includes culturing the cells comprising the vector under conditions that allow expression of the immunogenic polypeptide, optionally under the control of an expression sequence. The immunogenic polypeptide may be isolated from the cells or medium using standard protein purification methods. In some embodiments, the binding agents described herein may be conjugated to an active agent to target and inhibit the function of and / or eliminate cell populations that express HIV polypeptides and / or host HIV (and / or another antigen in the case of binding agents with multiple specificities). + T-cell populations can be targeted and eliminated using binding agent / drug conjugates (e.g., antibody drug conjugates (ADCs)). Mono- and / or bispecific candidate binding agents can be conjugated to one or more drugs (e.g., DNA damaging drugs, microtubule targeting drugs). The binding agents and / or their derivatives described herein can also be conjugated and / or conjugated to functional agents for in vitro and / or in vivo use. For example, binding agents can be conjugated and / or conjugated to functional moieties such as cytotoxic drugs or toxins and / or active fragments thereof, such as diphtheria A chain, exotoxin A chain, ricin A chain, abrin A chain, curcin, crotin, phenomycin, enomycin, among others. Suitable functional moieties can also include radioactive chemicals. Binding agents such as antibodies can be conjugated and / or conjugated to one or more functional agents using standard techniques in the art.

[0044] In some embodiments, the present disclosure provides binding agents with multiple specificities such that the epitope bound by the LN02M binding agent and at least one other secondary antigen (e.g., a cell surface protein) can be bound by a single binding agent. In some embodiments, the secondary antigen can be one expressed by a cell infected with an infectious pathogen. For example, an exemplary secondary antigen can be an HIV Env antigen other than gp41. Such binding agents can bind to the secondary antigen and / or aid in neutralizing the infectious pathogen as can be determined using the assays described herein. Combinations of binding agents, such as one or more described herein and another available to one of skill in the art, are also contemplated herein. For example, in some embodiments, combinations can be identified to provide a statistically significant difference from results (e.g., neutralization assays) obtained using only one or more binding agents and not the others. In some embodiments, the combinations show, for example, additive and / or preferably synergistic neutralization of HIV. In some embodiments, the combination may include a first binding agent having characteristics of an LN02M binding agent (i.e., comprising an LN02M variable region and / or CDR and / or non-CDR amino acid sequence), and / or a derivative thereof, and one or more antibodies described in one or more of the following: U.S. Patent Nos. 5,087,557; 5,298,419; 5,459,060; 5,693,752; 5,731,189; 5,753,503; 5,756,674; 5,755,510; 5,755,520; 5,755,530; 5,755,540; 5,755,557 ... Nos. 77,074; 5,804,440; 5,831,034; 6,008,044; 7,774,887 (B2); U.S. Patent Application Publication Nos. 2003 / 0118985 (A1), 2007 / 0292390 (A1), or 2014 / 0205612 (A1); WO 2002 / 032452 (A1) (e.g., binding to the gp41 epitopes ELDKWA, ELEKWA, ELNKWA, ELDEWA); EP 0335134 US176077 (e.g., humanized versions of the murine mAbs described therein);DE 3932461 (mAb against the epitope Arg-Ile-Leu-Ala-Val-Glu-Arg-Leu-Lys-Try-Asp-Gln-Gln-Leu-Leu-Gly-Ile-Trp-Gly-Cys-Ser); Evans, et al. J. Immunol. 140(3): 941-3 (1988); Gorney, et al. Proc. Natl. Acad. Sci. USA, 86: 1624-28 (1989); Teeuwsen, et al. (1990) AIDS Res. Hum. Retroviruses 6, 381-392; Earl, et al. J. Virol. 71(4): 2674-2684 (1997); Jiang, et al. J. Virol.72(12): 10213-17 (1998); Zwick, et al. J. Virol.75(22): 10892-10905 (2001); Eckert et al. PNAS USA, 98(20): 11187-11192 (2001); Louis, et al. J. Biol. Chem. 278(22): 20278-20285 (2003); and / or Pietzsch, et al. J. Virol.84(10): 5032-42 (2010); all of which are incorporated herein in their entirety. For example, any of the binding agents described herein can be combined (i.e., used as a single composition and / or in combination) with one or more antibodies commonly known as 2F5, 4E10, and / or Z13e1, and / or derivatives thereof, among others. The binding agents of such compositions may be different entities, such as two or more different monoclonal antibodies or derivatives thereof, or may be found on the same entity, such as a bifunctional antibody (a single antibody or derivative thereof that contains multiple binding specificities). Such combinations as described herein may also be combined with one or more other agents that may affect immune cell function, such as antibodies against CTLA-4. Those skilled in the art will recognize that many such combinations may be suitable for use as described herein;

[0045] As mentioned above, the HIV binding agents described herein can be used to treat and / or prevent and / or ameliorate symptoms of infection with HIV. As is well known in the art, HIV isolates are currently classified into distinct genetic subtypes. HIV-1 is known to contain at least 10 subtypes (A1, A2, A3, A4, B, C, D, E, F1, F2, G, H, J, and K) (Taylor et al, NEJM, 359(18):1965-1966 (2008)). HIV-2 is known to contain at least 5 subtypes (A, B, C, D, and E). Subtype B is associated with the HIV epidemic in gay men and intravenous drug users worldwide. Most HIV-1 immunogens, laboratory adapted isolates, reagents, and mapped epitopes belong to subtype B. In areas with a high incidence of new HIV infections, such as sub-Saharan Africa, India, and China, HIV-1 subtype B accounts for only a small minority of infections, and subtype HIV-1C appears to be the most common infectious subtype. Any of these types of isolates can be addressed using the binding agents described herein. One or more binding agents can also be administered with or in combination with one or more drugs used to prevent, treat, and / or ameliorate HIV, such as, for example, protease inhibitors, HIV entry inhibitors, reverse transcriptase inhibitors, and / or antiretroviral nucleoside analogs.Suitable compounds include, for example, Agenerase (amprenavir), Combivir (retrovir / epivir), Crixivan (indinavir), Emtriva (emtricitabine), Epivir (3tc / lamivudine), Epzicom, Fortbase / Invirase (saquinavir), Fuzeon (enfuvirtide), Hivid (ddc / zalcitabine), Kaletra (lopinavir), Lexiva (fosamprenavir), Norvir (ritonavir), Rescripta (delavirdine), Retrovir (delavirdine), These include vir / AZT (zidovudine), Reyataz (atazanavir, BMS-232632), Sustiva (efavirenz), Trizivir (abacavir / zidovudine / lamivudine), Truvada (emtricitabine / tenofovir DF), Videx (ddI / didanosine), Videx EC (ddI, didanosine), Viracept (nevirapine), Vired (tenofovir disoproxil fumarate), Zerit (d4T / stavudine), and Ziagen (abacavir). Other suitable agents will be known to those of skill in the art and may be suitable for use as described herein. Such agents may be used before, during, or after administration of the binding agent and / or in any of the uses of the methods described herein.

[0046] Those skilled in the art have many suitable techniques for using the binding agents (e.g., antibodies) described herein to identify biological samples containing proteins that bind to them. For example, antibodies can be utilized to isolate HIV or cells containing HIV and / or cells expressing HIV antigens, for example, using immunoprecipitation or other capture-type assays. This well-known technique is performed by attaching the antibody to a solid support or chromatographic material (e.g., beads coated with Protein A, Protein G, and / or Protein L). The bound antibody is then introduced into a solution that contains or is suspected to contain HIV antigens (e.g., HIV-infected cells). The HIV antigen(s) are then allowed to bind to the antibody, and unbound material is washed away under conditions that maintain the HIV antigen(s) bound to the antibody. The bound protein can then be separated from the antibody and analyzed as required. Similar methods for isolating proteins using antibodies are well known in the art. The binding agents (e.g., antibodies) can also be utilized to detect HIV or HIV antigens in biological samples. For example, the antibodies can be used in assays such as, for example, flow cytometric analysis, ELISA, immunoblotting (e.g., Western blot), in situ detection, immunocytochemistry, and / or immunohistochemistry. Methods for performing such assays are well known in the art. In some embodiments, the binding agents can be joined and / or conjugated to one or more detectable labels.By way of example, suitable detectable labels include, for example, fluorescein (e.g., DyLight, Cy3, Cy5, FITC, HiLyte Fluor555, HiLyte Fluor647; 5-carboxy-2,7-dichlorofluorescein; 5-carboxyfluorescein (5-FAM); 5-HAT (hydroxytryptamine); 5-hydroxytryptamine (HAT); 6-JOE; 6-carboxyfluorescein (6-FAM); FITC; 6-carboxy-1,4-dichloro-2',7'-dichlorofluorescein (TET); 6-carboxy-1,4-dichloro-2',4',5',7'-tetrachlorofluorescein (HEX); 6-carboxy-4',5'-dichloro-2',7'-dimethoxyfluorescein (JOE); Alexa fluor (e.g., 350, 405, 430, 488, 500, 514, 532, 546, 555, 568, 594, 610, 633, 635, 647, 660, 680, 700, 750); BODIPY fluorophores (e.g., 492 / 515, 493 / 503, 500 / 510, 505 / 515, 530 / 550, 542 / 563, 558 / 568, 564 / 570, 576 / 589, 581 / 591, 630 / 650-X, 650 / 665-X, 665 / 676, FL, FL ATP, FI-ceramide, R6G SE, TMR, TMR-X conjugates, TMR-X, SE, TR, TR ATP, TR-X SE), rhodamine (e.g., 110, 123, B, B200, BB, BG, B Extra, 5-carboxytetramethylrhodamine (5-TAMRA), 5GLD, 6-carboxyrhodamine 6G, Lissamine, Lissamine rhodamine B, phallicidin, phalloidin, red, Rhod-2, ROX (6-carboxy-X-rhodamine), 5-ROX (carboxy-X-rhodamine), sulforhodamine B can C, sulforhodamine G Extra, TAMRA (6-carboxytetramethylrhodamine), tetramethylrhodamine (TRITC), WT), Texas Red, and / or Texas Red-X. Other detectable labels known in the art may also be suitable for use.Binding agents, such as antibodies, can be joined and / or conjugated to one or more detectable labels using standard techniques in the art.

[0047] The binding agents described herein can also be used to determine the presence of a disease state in a patient, to predict prognosis, or to determine the effectiveness of a chemotherapy or other treatment regimen. Expression profile assays performed as described herein or as other methods known in the art can be used to determine, for example, the relative levels of expression of HIV in cells. Expression levels can then be correlated with baseline (e.g., control) levels to determine whether a particular disease is present in a patient, the patient's prognosis, or whether a particular treatment regimen is effective. For example, if a patient is being treated with a particular anti-infective regimen, an increase or decrease in the expression level of HIV in the patient's tissue (e.g., plasma) can suggest that the regimen is worsening or improving the HIV burden in the host. Increased or decreased expression suggests that the regimen is having or not having the desired effect, and therefore, an alternative treatment can be selected.

[0048] The binding agents described herein can also be used as reagents in drug screening assays, for example, to test new drug candidates. These reagents can be used to confirm the effect of drug candidates on the expression of immunogenic targets in cell lines, or in cells or tissues of patients. Expression profiling techniques can be combined with high-throughput screening techniques to allow for the rapid identification of useful compounds and to monitor the effectiveness of treatment with drug candidates (see, for example, Zlokarnik, et al., Science 279, 84-8 (1998)). Drug candidates can be chemical compounds, nucleic acids, proteins, antibodies, or derivatives derived therefrom, whether naturally occurring or synthetically derived. Drug candidates thus identified can be utilized, inter alia, as pharmaceutical compositions for administration to patients or for use in further screening assays.

[0049] In some embodiments, the binding agent is in purified form. A "purified" binding agent (e.g., an antibody) can be one that is separated from at least about 50% of the proteins and / or other components in which it is initially found (e.g., in the case of monoclonal antibodies, as part of a hybridoma supernatant or ascites preparation). A purified binding agent (e.g., an antibody) can be one that is separated from at least about 50%, 60%, 75%, 90%, or 95% of the proteins and / or other components in which it is initially found.

[0050] The binding agents (e.g., polypeptides, antibodies) and nucleic acids described herein can also be combined with one or more pharma- ceutically acceptable carriers prior to administration to a host. A pharma- ceutically acceptable carrier is not a biologically or otherwise undesirable material, e.g., capable of administering the material to a subject without causing undesirable biological effects or interacting in a detrimental manner with any of the other components of the pharmaceutical composition in which it is contained. As is well known to those skilled in the art, the carrier will naturally be selected to minimize degradation of the active ingredient and to minimize adverse side effects in the subject. Suitable pharmaceutical carriers and their formulations can be found, for example, in Remington's: The Science and Practice of Pharmacy, 21 stEdition, David B. Troy, ed., Lippicott Williams & Wilkins (2005). Typically, an appropriate amount of a pharma- ceutically acceptable salt is used in the formulation to make the formulation isotonic. Examples of pharma- ceutically acceptable carriers include, but are not limited to, sterile water, saline, buffers such as Ringer's solution, and dextrose solution. The pH of the solution is generally about 5 to about 8, or about 7 to about 7.5. Other carriers include sustained release preparations such as semipermeable matrices of solid hydrophobic polymers containing the polypeptide or fragments thereof. The matrices may be in the form of shaped articles, e.g., membranes, liposomes, or microparticles. It will be apparent to one of skill in the art that certain carriers may be more preferable depending, for example, on the route of administration and the concentration of the composition to be administered. The carrier is one suitable for administering the polypeptide and / or fragments thereof to humans or other subjects. The pharmaceutical composition may also include carriers, thickeners, diluents, buffers, preservatives, surfactants, adjuvants, and immunostimulants in addition to the immunogenic polypeptide. The pharmaceutical composition may also include one or more active ingredients, such as antibacterial agents, anti-inflammatory agents, and anesthetics. The pharmaceutical composition may be administered orally, parenterally, by inhalation spray, rectally, intranodally, or topically in dosage unit formulations containing conventional pharma- ceutically acceptable carriers, adjuvants, and vehicles. As used herein, the term "pharmaceutical acceptable carrier" or "physiologically acceptable carrier" refers to one or more formulation materials suitable for achieving or enhancing delivery of a nucleic acid, polypeptide, or peptide as a pharmaceutical composition. A "pharmaceutical composition" is a composition that includes a therapeutically effective amount of a nucleic acid or polypeptide. The terms "effective amount" and "therapeutically effective amount" refer to the amount of binding agent, nucleic acid, etc., used to observe the desired therapeutic effect (e.g., elimination of HIV), respectively.

[0051] Also provided are methods for treating one or more disease states (e.g., HIV or cancer) in a mammalian host comprising administering to the mammal at least one or more effective amounts of one or more of the binding agents described herein (and / or derivative(s) thereof). In some embodiments, the binding agent is a monoclonal antibody or a fragment or derivative thereof comprising one or more of the LN02M variable regions and / or CDRs and / or non-CDR amino acid sequences (i.e., comprising the LN02M variable regions and / or CDRs and / or non-CDR amino acid sequences). The one or more binding agents can be administered at a dosage of about 1 to about 50 mg / kg, about 1 to about 30 mg / kg, or about 5 to about 30 mg / kg (e.g., about any of 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 35, or 40 mg / kg). In certain embodiments, the one or more binding agents can be administered to the mammal (e.g., intradermally, intravenously, orally, rectally) one or more times at about 10 mg / kg. When multiple doses are administered, the doses can include about the same or different amounts of binding agent in each dose. The doses can also be separated in time from one another by the same or different intervals. For example, the doses may be separated by about 6, 12, 24, 36, 48, 60, 72, 84, or 96 hours, 1 week, 2 weeks, 3 weeks, 1 month, 2 months, 3 months, 4 months, 5 months, 6 months, 7 months, 8 months, 9 months, 10 months, 11 months, 12 months, 1.5 years, 2 years, 3 years, 4 years, 5 years, or any time period before, after, or between these time periods. In some embodiments, the binding agent may be administered in combination with other agents (e.g., anti-infective agents and / or chemotherapeutic agents). Such other agents may be administered at about the same time as the binding agent or at different times and / or frequencies. Other embodiments of such methods may also be suitable as can be readily determined by one of skill in the art.

[0052] To assist those skilled in the art in using the binding agents, such as the antibodies described herein, the same can be provided in kit form. Kits are also provided that contain one or more such binding agents, and optionally other components necessary for using them to detect cells expressing HIV. The binding agents of the kits can be provided in any suitable form, including frozen, lyophilized, or in a pharma- ceutically acceptable buffer, such as TBS or PBS. The kits can also include other reagents necessary for in vitro or in vivo use of the binding agents, such as buffers (e.g., TBS, PBS), blocking agents (solutions containing nonfat dry milk, normal serum, Tween-20 detergent, BSA, or casein), and / or detection reagents (e.g., goat anti-mouse IgG biotin, streptavidin-HRP conjugate, allophycocyanin, B-phycoerythrin, R-phycoerythrin, peroxidase, detectable labels, and other labeling and / or staining kits (e.g., ABC staining kit, Pierce)). The kit may also include other reagents and / or instructions for using the antibody in commonly utilized assays such as, for example, flow cytometric analysis, ELISA, immunoblotting (e.g., Western blot), in situ detection, immunocytochemistry, and / or immunohistochemistry, as described above. In one embodiment, the kit provides the binding agent in purified form. In another embodiment, the binding agent may be provided in biotinylated form, alone or with an avidin-conjugated detection reagent (e.g., an antibody). In another embodiment, the kit includes a binding agent that includes one or more detectable labels that can be used to directly detect HIV. Buffers and the like required for using any of these systems are well known in the art and / or can be prepared by the end user or provided as components of the kit. The kit may also include a solid support containing positive and negative control protein and / or tissue samples. For example, a kit for performing a spotting or Western blot type assay might include control cell or tissue lysates for use in SDS-PAGE, or nylon or other membranes containing pre-fixed control samples with additional space for experimental samples.A kit for visualizing HIV in cells on a slide may include pre-formatted slides containing control cell or tissue samples with additional space for experimental samples. As will be appreciated by those of skill in the art, other embodiments of the kit are contemplated herein.

[0053] Thus, the present disclosure provides binding agents, such as LN02 antibodies, that have specificity for HIV (e.g., and / or antigens thereof). In some embodiments, the binding agent is a polypeptide that comprises at least one amino acid sequence selected from the group consisting of one or more LN02M variable regions and / or CDR and / or non-CDR amino acid sequences. In some embodiments, the binding agent is a polypeptide that comprises one or more combinations of LN02M variable regions and / or CDR and / or non-CDR amino acid sequences. In some embodiments, the binding agent is an antibody. In some embodiments, the binding agent is a polypeptide, such as an antibody, that comprises any of the heavy and / or light chain CDRs and / or additional amino acid sequences shown in any of the binding agents (e.g., antibodies or derivatives thereof) in Figure 1; the variable regions shown in Figures 6A to 6E; the heavy chain mutants of Figures 7A to 7D; the light chain mutants of Figures 8A to 8F; any one or more of SEQ ID NOs: 3-92, 95-233, 248-482, or 491-699; and / or conservatively substituted variants thereof; and / or non-conservatively substituted variants thereof as described herein.

[0054] In some embodiments, the binding agent has specificity for an epitope that includes amino acid residues near the gp120 / gp41 interface of HIV-1 Env (corresponding residues underlined in SEQ ID NO: 237). 2 ~10 0 μg / ml, or 10 0 ~10 1 ug / ml, the above-mentioned neutralizing properties for at least about 50% (not present in the control virus) and / or an IC of less than 25 μg / ml 50 or IC 80The antibody may include any one or more of these binding properties as well as the ability to neutralize HIV-1 pseudoviruses in

[0055] In some embodiments, the binding agent is derived from or related to (e.g., by sequence or derivation) a human antibody, human IgG, human IgG1, human IgG2, human IgG2a, human IgG2b, human IgG3, human IgG4, human IgM, human IgA, human IgA1, human IgA2, human IgD, human IgE, dog antibody, dog IgGA, dog IgGB, dog IgGC, dog IgGD, chicken antibody, chicken IgA, chicken IgD, chicken IgE, chicken IgG, chicken IgM, chicken IgY, goat antibody, goat IgG, mouse antibody, mouse IgG, pig antibody, and / or rat antibody, and / or derivatives thereof. ab , F ab2 , Fab' single chain antibody, F v, single chain, monospecific antibodies, bispecific antibodies, trimeric antibodies, multispecific antibodies, multivalent antibodies, chimeric antibodies, dog-human chimeric antibodies, dog-mouse chimeric antibodies, canine Fc-containing antibodies, humanized antibodies, human antibodies, caninized antibodies, CDR-grafted antibodies, shark antibodies, nanobodies, and / or camelid antibodies. In some embodiments, the binding agent comprises at least a first and a second specificity, the first specificity being directed against HIV gp41 and the second specificity being directed against a different antigen (e.g., an antigen of an infectious pathogen such as HIV (e.g., env) and / or a tumor antigen). In some embodiments, the binding agent and / or derivatives thereof may comprise a detectable label fixably attached thereto. In some embodiments, any one of the binding agents and / or derivatives thereof comprises an effector moiety (e.g., a cytotoxic drug, a toxin, diphtheria A chain, exotoxin A chain, ricin A chain, abrin A chain, curcin, crotin, phenomycin, enomycin, and a radiochemical) fixedly attached thereto. In some embodiments, polynucleotides encoding one or more of the binding agents are also provided (e.g., as an expression vector). Host cells that contain and / or express the polypeptide products of such polynucleotides are also provided. In some embodiments, compositions are also provided that comprise at least one binding agent or derivative; at least one isolated polynucleotide; at least one expression vector; and / or at least one host cell; or combinations thereof; and a pharmaceutically acceptable carrier.

[0056] The present disclosure also provides a method for detecting HIV on a cell, comprising contacting a biological sample to be tested with a binding agent or derivative described herein and detecting the binding agent bound to the biological sample or a component thereof. Such a method may be an in vivo method or an in vitro method. In some embodiments, the method may comprise comparing the amount of binding to the biological sample to be tested or a component thereof to the amount of binding to a control biological sample or a component thereof, where an increase in binding to the biological sample to be tested or a component thereof compared to the control biological sample or a component thereof indicates the presence of cells expressing HIV polypeptides in the biological sample to be tested (e.g., blood of a mammal). In some embodiments, a kit for detecting expression of HIV in or on a cell, the kit comprising a binding agent or a derivative thereof and instructions for use. In some embodiments, the binding agent and / or derivative thereof is in lyophilized form. In some embodiments, the present disclosure provides a method for treating, preventing, and / or ameliorating infectious disease, cancer, and / or autoimmunity in a mammal, comprising administering to the mammal an effective amount of at least one pharmaceutical composition comprising a binding agent or a derivative thereof. In some embodiments, the infectious disease is human immunodeficiency virus (HIV). In some embodiments, multiple doses are administered to the animal. In some embodiments, the binding agent and / or derivatives thereof may be administered at a dose of about 1-50 mg / kg.

[0057] In some embodiments, the disclosure provides binding agent(s) comprising a variable region as shown in Figures 6A to 6E; a mutant amino acid sequence of any of Figures 7A to 7D and / or Figures 8A to 8F, and any effective (e.g., HIV neutralizing) combinations thereof; any one or more of SEQ ID NOs: 3-92, 95-233, 248-482, or 491-699, and any effective (e.g., HIV neutralizing) combinations thereof; a light chain and heavy chain combination as shown in Table 9 (i.e., ML085, Mx152, MX067, MX129, MX130, ML126, Mx175, Mx176, and Mx181); a light chain and heavy chain combination as shown in Tables 10A to 10C, Table 11, Tables 12A to 12D, Tables 13A to 13D, or Table 14; and variants thereof. The present disclosure provides a binding agent (e.g., a polypeptide such as an antibody), or a combination thereof, comprising: a) an amino acid sequence corresponding to CDR1, CDR2, and / or CDR3 of the LN02 bNab heavy chain or the LN02 bNab light chain as set forth herein, including at least one CDR as set forth in FIG. 1 (i.e., one or more, or all, of the amino acid substitutions as set forth herein); b) an amino acid sequence selected from the group consisting of SEQ ID NOs: 3-92 or 491-699, preferably including one or more CDRs thereof (the underlined CDRs of the LN02_light chain amino acid sequence of SEQ ID NO: 1 in FIG. 6D); c) an amino acid sequence selected from the group consisting of SEQ ID NOs: 95-233 or 248-482, preferably including one or more CDRs thereof (the underlined CDRs of the LN02_heavy chain amino acid sequence of SEQ ID NO: 93 in FIG. 6A);d) MH01 (SEQ ID NO: 95), MH16 (SEQ ID NO: 110), MH22 (SEQ ID NO: 116), MH26 (SEQ ID NO: 120), MH30 (SEQ ID NO: 124), MH32 (SEQ ID NO: 126), MH35 (SEQ ID NO: 129), MH36 (SEQ ID NO: 130), MH37 (SEQ ID NO: 131), MH43 (SEQ ID NO: 136), MH44 (SEQ ID NO: 137), MH48 (SEQ ID NO: 141), MH49 (SEQ ID NO: 142), MH50 (SEQ ID NO: 143), MH51 (SEQ ID NO: 144), MH53 (SEQ ID NO: 146), MH59 (SEQ ID NO: 147), row number 151), MH61 (sequence number 153), MH64 (sequence number 156), MH68 (sequence number 159), MH73 (sequence number 163), MH84 (sequence number 174), MH89 (sequence number 177), MH91 (sequence number 178), MH92 (sequence number 179), MH106 (sequence number 193), MH107 (sequence number 194), MH108 (sequence number 195), MH111 (sequence number 198), MH112 (sequence number 199), MH115 (sequence number 202), MH119 (sequence number 206), MH120 (sequence number 209), row number 207), MH124 (SEQ ID NO: 211), MH131 (SEQ ID NO: 218), MH135 (SEQ ID NO: 222), MH136 (SEQ ID NO: 223), MH138 (SEQ ID NO: 225), and / or MH146 (SEQ ID NO: 232); e) variable heavy chain regions comprising ML01 (SEQ ID NO: 3), ML02 (SEQ ID NO: 4), ML05 (SEQ ID NO: 7), ML08 (SEQ ID NO: 10), ML10 (SEQ ID NO: 12), ML11 (SEQ ID NO: 13), ML12 (SEQ ID NO: 14), ML31 (SEQ ID NO: 31), ML32 (SEQ ID NO: 32), ML4 ML73 (SEQ ID NO: 68), ML74 (SEQ ID NO: 69), ML79 (SEQ ID NO: 74), ML84 (SEQ ID NO: 79), ML85 (SEQ ID NO: 80), ML92 (SEQ ID NO: 87), or ML94 (SEQ ID NO: 89); f) a combination of the CDRs, amino acid sequences, variable heavy chain regions, and / or variable light chain regions of a), b), c), d), or e) above;g) a combination of an LN02M variable light chain ("light chain mutant") and an LN02M variable heavy chain ("heavy chain mutant") as set forth in Table 4, Table 9, Tables 10A to 10C, Table 11, Tables 12A to 12D, Tables 13A to 13D, or Table 14; h) an LN02M variable light chain comprising ML01 (SEQ ID NO:3) and an MH02 (SEQ ID NO:96), MH04 (SEQ ID NO:98), MH22 (SEQ ID NO:116), MH23 (SEQ ID NO:117), MH30 (SEQ ID NO:124), MH31 (SEQ ID NO:125), MH35 (SEQ ID NO:129), MH36 ( i) the LN02M variable light chain ML12 (SEQ ID NO: 14) in combination with an LN02M variable heavy chain comprising MH02 (SEQ ID NO: 96), MH04 (SEQ ID NO: 98), MH22 (SEQ ID NO: 116), MH23 (SEQ ID NO: 117), MH30 (SEQ ID NO: 124), MH31 (SEQ ID NO: 125), MH35 (SEQ ID NO: 129), MH36 (SEQ ID NO: 130), and / or MH37 (SEQ ID NO: 131); j) the LN02M variable light chain k) the combination of the LN02M variable light chain ML30 (SEQ ID NO: 30) with the LN02M variable heavy chain comprising MH31 (SEQ ID NO: 125), MH43 (SEQ ID NO: 136), MH48 (SEQ ID NO: 141), or MH51 (SEQ ID NO: 144); l) the combination of the LN02M variable light chain ML31 (SEQ ID NO: 31) with the LN02M variable heavy chain comprising MH02 (SEQ ID NO: 96 ), MH04 (SEQ ID NO:98), MH22 (SEQ ID NO:116), MH23 (SEQ ID NO:117), MH30 (SEQ ID NO:124), MH31 (SEQ ID NO:125), MH35 (SEQ ID NO:129), MH36 (SEQ ID NO:130), MH37 (SEQ ID NO:131), MH43 (SEQ ID NO:136), MH48 (SEQ ID NO:141), or MH51 (SEQ ID NO:144); m) a combination of an LN02M variable light chain with ML32 (SEQ ID NO:32) and an LN02M variable heavy chain with MH31 (SEQ ID NO:125);n) the combination of the LN02M variable light chain ML85 (SEQ ID NO: 80) with an LN02M variable heavy chain comprising MH31 (SEQ ID NO: 125), MH35 (SEQ ID NO: 129), MH43 (SEQ ID NO: 136), MH49 (SEQ ID NO: 142), MH60 (SEQ ID NO: 152), MH76 (SEQ ID NO: 166), MH111 (SEQ ID NO: 198), or MH112 (SEQ ID NO: 199); o) the combination of light and heavy chain substitutions as shown in Table 9, optionally including a K93Y substitution in the light chain and a wild type LN ML085, which contains a wild-type LN02 heavy chain and a K93Y and E95Q substitution on the light chain of wild-type LN02; Mx152, which contains a K93Y substitution on the light chain of wild-type LN02 and a S19H substitution on the heavy chain of wild-type LN02; MX067, which contains a K93Y substitution on the light chain of wild-type LN02 and a S19H substitution on the heavy chain of wild-type LN02; MX129, which contains a K93Y and T29S substitution on the light chain of wild-type LN02 and a S19H substitution on the heavy chain of wild-type LN02; MX130, which includes a K93Y and E95Q substitution on the wild-type LN02 light chain and a Y substitution; ML126, which includes a wild-type LN02 heavy chain and a K93Y and E95Q substitution on the wild-type LN02 light chain; Mx175, which includes a K93Y and I97V substitution on the wild-type LN02 light chain and a S40A, Q42R, and T44G substitution on the wild-type LN02 heavy chain; Mx176, which includes a K93Y and I97V substitution on the wild-type LN02 light chain and a S40P, Q42R, G43K, and T44G substitution on the wild-type LN02 heavy chain; and a) a combination selected from the group consisting of Mx181 binders comprising K93Y and I97V substitutions and S40P, Q42R, G43K, and T44G substitutions on the heavy chain of wild type LN02; and / or p) a conservatively substituted variant of any of a) to o); and / or q) a non-conservatively substituted variant comprising one or more amino acid substitutions outside the CDR amino acid sequence of any of a) to p) or one to three substitutions within the CDR amino acid sequence of any of a) to p);A binding agent, preferably an antibody, comprising any of a) to p) above, which exhibits at least a 2-fold increase in neutralizing activity compared to LN02 and equivalent or improved potency compared to ML085. In preferred embodiments, such binding agents neutralize human immunodeficiency virus (HIV) in an in vitro HIV neutralization assay and / or in vivo. In some embodiments, the binding agent neutralizes 10; 2 From 10 0 μg / ml, or 10 0 From 10 1 The binding agents exhibit neutralization of HIV-1 pseudoviruses BJOX (CRF07_BC), CE1176, TRO.11 (B), X1632 (G), CH119 (CRF07_BC), CNE55 (CRF01_AE), 25710 (C), and CD0217 (C) at concentrations between 100 and 150 μg / ml. In some embodiments, the neutralization rate is at least about 50% or greater. In some embodiments, the binding agents exhibit an IC of less than 25 μg / ml. 50 or IC 80and neutralizes a majority of HIV-1 pseudoviruses tested. In some embodiments, the binding agent is an antibody, which in preferred embodiments is a monoclonal antibody, and in even more preferred embodiments is a human monoclonal antibody, or a derivative thereof. In some embodiments, the antibody isotype is IgG1 or IgG3. In some preferred embodiments, the binding agent comprises at least one heavy chain CDR amino acid sequence as shown in FIG. 1 (i.e., corresponding to the underlined CDR1, CDR2, or CDR3 of the LN02 bNab heavy chain and the substitutions thereto as shown therein), and / or as set forth in any of SEQ ID NOs: 95-233; and / or conservatively substituted variants thereof. In some preferred embodiments, the binding agent comprises at least one light chain CDR amino acid sequence set forth in Figure 1 (i.e., corresponding to the underlined CDR1, CDR2, or CDR3 of the LN02 bNab light chain and the substitutions therefor as indicated therein), and / or any of SEQ ID NOs: 3-92; and / or conservatively substituted variants thereof as described above; and / or non-conservatively substituted variants thereof. In some preferred embodiments, the binding agent comprises at least one variable chain amino acid sequence selected from the group consisting of SEQ ID NOs: 3-92 and / or 95-233; and / or conservatively substituted variants thereof as described above; and / or non-conservatively substituted variants thereof. In some embodiments, the binding agent is derived from or based on (e.g., including framework sequences of) a human antibody, human IgG, human IgG1, human IgG2, human IgG3, human IgG4, human IgM, human IgA, human IgA1, human IgA2, human IgD, human IgE, dog antibody, dog IgGA, dog IgGB, dog IgGC, dog IgGD, chicken antibody, chicken IgA, chicken IgD, chicken IgE, chicken IgG, chicken IgM, chicken IgY, goat antibody, goat IgG, mouse antibody, mouse IgG, pig antibody, rat antibody, or camel antibody. In some embodiments, the present disclosure provides derivatives of such binding agents, e.g., F ab , F ab2 , Fab' single chain antibody, F v, single chain, monospecific antibodies, bispecific antibodies, trimeric antibodies, multispecific antibodies, multivalent antibodies, chimeric antibodies, dog-human chimeric antibodies, dog-mouse chimeric antibodies, canine Fc-containing antibodies, humanized antibodies, human antibodies, caninized antibodies, CDR-grafted antibodies, shark antibodies, nanobodies, and camelid antibodies. In some embodiments, the binding agents or derivatives thereof comprise at least a first and a second specificity, the first specificity being directed against gp41 and the second specificity being directed against a different antigen. In some embodiments, the binding agents or derivatives thereof comprise one or more detectable labels immobilized thereto (e.g., fluorescein, DyLight, Cy3, Cy5, FITC, HiLyte Fluor5 ... e Fluor647, 5-carboxy-2,7-dichlorofluorescein, 5-carboxyfluorescein, 5-FAM, hydroxytryptamine, 5-hydroxytryptamine (5-HAT), 6-carboxyfluorescein (6-FAM), FITC, 6-carboxy-1,4-dichloro-2',7'-dichlorofluorescein (TET), 6-carboxy-1,4-dichloro-2',4',5',7'-tetrachlorofluorescein (HEX), 6-carboxy-4',5'-dichloro-2',7'-dimethoxyfluorescein (6-JOE), Alexa fluor, Alexa fluor350, Alexa fluor405, Alexa fluor430, Alexa fluor488, Alexa fluor500, Alexa fluor514, Alexa fluor532, Alexa fluor546, Alexa fluor555, Alexa fluor568, Alexa fluor594, Alexa fluor610, Alexa fluor633, Alexa fluor635, Alexa fluor647, Alexa fluor660, Alexa fluor680, Alexa fluor700, Alexa fluor750, BODIPY fluorophore, BODIPY492 / 515, BODIPY493 / 503, BODIPY500 / 510, BODIPY505 / 515, BODIPY530 / 550, BODIPY542 / 563, BODIPY558 / 568, BODIPY564 / 570, BODIPY576 / 589, BODIPY581 / 591, BODIPY630 / 650-X, BODIPY650 / 665-X, BODIPY665 / 676, FL, FL ATP, FI-ceramide, R6G SE, TMR, TMR-X conjugate, TMR-X, SE, TR, TR ATP, TR-XSE, rhodamine, rhodamine 110, rhodamine 123, rhodamine B, rhodamine B200, rhodamine BB, rhodamine BG, rhodamine B extra, 5-carboxytetramethylrhodamine (5-TAMRA), 5GLD, 6-carboxyrhodamine 6G, lissamine, lissamine rhodamine B, phallicidin, phalloidin, rhodamine red, Rhod-2, 6-carboxy-X-rhodamine (ROX), carboxy-X-rhodamine (5-ROX), sulforhodamine B can C, sulforhodamine G extra, 6-carboxytetramethylrhodamine (TAMRA), tetramethylrhodamine (TRITC), rhodamine WT, Texas Red, and Texas Red-X). In some embodiments, the binding agent or derivative thereof comprises one or more effector moieties (e.g., selected from the group consisting of cytotoxic drugs, toxins, diphtheria A chain, exotoxin A chain, ricin A chain, abrin A chain, curcin, crotin, phenomycin, enomycin, and radiochemicals) fixedly attached thereto.

[0058] In some embodiments, the disclosure provides an isolated polynucleotide encoding any of such binding agent(s), an expression vector comprising the same, and / or a host cell comprising the same. In some embodiments, the disclosure provides a composition comprising at least one such binding agent and / or derivative thereof, at least one isolated polynucleotide encoding it; at least one expression vector encoding it, and / or at least one host cell capable of producing it (e.g., comprising at least one such polynucleotide and / or expression vector), and / or a combination thereof; and a pharmaceutically acceptable carrier. In some embodiments, the disclosure also provides a method of producing the binding agent and / or derivative thereof. In some embodiments, such a production method comprises expressing one or more polynucleotides encoding the binding agent and / or derivative thereof of the disclosure in a host cell, and purifying it from the host cell, its cell culture supernatant, or the like, using standard techniques (e.g., to 90%, 95%, 99%, or 100% purity, as determined by one of skill in the art using standard techniques).

[0059] In some embodiments, the present disclosure provides a method for detecting HIV on cells, comprising contacting a biological sample to be tested with a binding agent or derivative of the present disclosure and detecting the binding agent bound to the biological sample or a component thereof. In some embodiments, such a method comprises comparing the amount of binding to the biological sample to be tested or a component thereof with the amount of binding to a control biological sample or a component thereof, where an increase in binding to the biological sample to be tested or a component thereof compared to the control biological sample or a component thereof indicates the presence of cells expressing HIV in the biological sample to be tested. In some embodiments, the biological sample to be tested comprises, is, or is derived from mammalian blood or a component thereof. In some embodiments, the method is an in vivo method, or the method is an in vitro method. In some embodiments, the present disclosure provides a method for treating, preventing, and / or ameliorating HIV infection and / or AIDS in a mammal, comprising administering to the mammal an effective amount of at least one pharmaceutical composition comprising the binding agent and / or derivative thereof of the present disclosure. In some embodiments, multiple doses of such pharmaceutical compositions are administered to an animal. In some embodiments, the binding agent and / or derivatives thereof can be administered at a dosage of about 1-50 mg / kg. In some embodiments, the present disclosure provides a kit for detecting HIV expression in or on a cell, the kit comprising a binding agent and / or derivatives thereof of the present disclosure, and optionally instructions for use. In some such embodiments, the binding agent, antibody, or derivative can be in lyophilized form.

[0060] The terms "about," "approximately," and the like, when placed before (after) a list of numerical values ​​or ranges, refer individually to each individual value in that list or range, as if the terms were placed immediately before (immediately after) that individual value in that list or range. These terms mean that the value to which the same refers is exact, close to, or similar to the value to which it refers.

[0061] As used herein, subject or host refers to an individual. Subjects include pets such as cats and dogs, livestock (e.g., cows, horses, pigs, sheep, and goats), laboratory animals (e.g., mice, rabbits, rats, guinea pigs), and birds. In one aspect, the subject is a mammal, such as a primate or a human.

[0062] Optionally or optionally means that the subsequently described event or circumstance may or may not occur, and the description includes cases where the event or circumstance occurs and does not occur. For example, optionally, the phrase that a composition can include a combination means that the composition can include a combination of different molecules, or may not include a combination such that the description includes both a combination and the absence of a combination (i.e., individual members of a combination).

[0063] As used herein, ranges can be expressed as from about one particular value and / or to about another particular value. When such a range is expressed, another aspect includes from the one particular value and / or to the other particular value. Similarly, when values ​​are expressed as approximations, for example by use of the antecedent about or approximately, it will be understood that the particular value forms another aspect. It will further be understood that the endpoints of each of the ranges are significant both in relation to the other endpoint, and independently of the other endpoint. Ranges (e.g., 90-100%) are meant to include the range itself, as well as each individual value within the range, as if each value were listed individually.

[0064] The terms "combined" or "in combination" or "concomitantly" can refer to the physical combination of agents administered together, or the use of two or more agents (e.g., administered separately, physically, and / or in time) in a regimen to treat, prevent, and / or ameliorate a particular disease.

[0065] The terms treatment, prevention, and / or amelioration, or their derivatives, when used herein in connection with a given treatment for a given condition (e.g., prevention of cancer infection by HIV), are meant to convey that a treated patient does not develop clinically observable levels of the condition at all, or develops the condition at a slower and / or lesser extent than if the treatment had not been administered. These terms are not limited to situations in which the patient does not experience any aspect of the condition at all. For example, a treatment is said to have prevented a condition if it is administered while the patient is exposed to a stimulus that would be expected to cause a given symptom of the condition, such that the patient experiences fewer and / or milder symptoms than would otherwise be expected. For example, a treatment can "prevent" an infection by resulting in the patient showing only mild overt symptoms of the infection; it does not mean that the infectious microorganism must not have invaded the cells.

[0066] Similarly, reduce, reducing and reduction, as used herein in relation to the prevention, treatment, and / or amelioration of a given condition by a particular treatment, typically refer to a subject developing an infection more slowly or to a lesser extent compared to a control or basal level that develops an infection without treatment (e.g., administration of one or more HIV binding agents). When the risk of infection is reduced, the patient may consequently only exhibit mild overt symptoms of infection or delayed symptoms of infection; it does not mean that the infectious microorganism must not have invaded cells.

[0067] All references cited in this disclosure are incorporated herein by reference in their entirety. Certain embodiments are further described in the following examples. These embodiments are provided as examples only and are not intended to limit the scope of the claims in any way. EXAMPLES

[0068] Example 1 Lymph node donors Selection of HIV-1 lymph node donors for isolation of broadly neutralizing antibodies. To isolate LN02 antibodies capable of broadly neutralizing multiclade HIV-1 isolates, 107 plasma samples from chronically infected patients not receiving antiretroviral therapy were screened for the presence of high-titer antibodies capable of neutralizing a panel of nine HIV-1 pseudoviruses derived from a global panel of HIV-1 reference strains, as described in more detail elsewhere (DeCamp, A. et al.Global panel of HIV-1 Env reference strains for standardized assessments of vaccine-elicited neutralizing antibodies.J Virol 88, 2489-2507 (2014)). This analysis resulted in the identification of eight patients (Figure 1) as lymph node donors for the subsequent isolation and characterization of potent broadly neutralizing antibodies. Notably, donor SA090 was identified as having high virus-neutralizing activity (and lacking background activity against a negative control MLV pseudovirus). Germinal center and memory IgG B cells from donor SA090 were separately sorted according to expression of IgG (i.e., IgA- and IgM-negative cells), CD19, and CD38 (germinal center B cells are CD38-positive, whereas memory B cells are absent) and investigated for the production of HIV-1 neutralizing antibodies. Specifically, highly purified IgG memory B cells and IgG germline cells were plated in separate plates as single-cell microcultures on human feeder cells in the presence of Epstein-Barr virus (EBV) (which also stimulates memory B cells polyclonally) and a cocktail of TLR9 agonists CpG-2006, IL-2 (1000 IU / ml), IL-6 (10 ng / ml), IL-21 (10 ng / ml), and anti-BCR goat antibodies (BCR trigger). Supernatants from day 14 cultures were then tested in a primary screen using a 384-well based HIV-1 pseudovirus neutralization assay (using two strains in parallel, CE1176 and BJOX2000, representing clade C and CRF07). Neutralization assays were performed in TZM-bl cells.In 384-well plates, 50-100 x 10 cells were cultured prior to the addition of 3,000 TZM-bl cells. 4 HIV-1 pseudoviruses, which gave an output of 1000 relative light units (RLU), were incubated with B cell culture supernatants for 1 h at 37% (5% CO2). These were further incubated for 72 h, after which the supernatants were removed and 15 μl of Steadylite reagent (Perkin Elmer) was added. Luciferase activity was detected after 5 min by reading the plates in a Synergy microplate luminometer (BioTek). Supernatants derived from germinal center B cells were found to produce antibodies that cross-neutralized one or more HIV strains. Supernatants from these two cultures were further harvested and tested for their ability to neutralize pseudoviruses. One of these produced an antibody called "LN02" and was found to neutralize HIV.

[0069] The LN02 antibody was characterized by determining the amino acid and nucleotide sequences of its variable regions and identifying the complementarity determining regions (CDRs). Thus, the binder, designated "LN02", is an IgG1 type fully human monoclonal antibody with the CDR, VH, and VL sequences shown in Figures 5 and 6 (e.g., SEQ ID NOs: 1, 93, 234, and 235). The LN02 antibody was also determined to be derived from the IGHV4-4*02 and IGLV3-21*01 germline genes and to be highly somatically mutated in both the heavy chain (31.2%) and kappa light chain (31.6%) variable genes compared to the germline. The recombinant LN02 antibody was produced and tested against a global panel of nine HIV-1 reference pseudoviruses on TZM-bl cells and found to be able to neutralize the majority of the HIV-1 pseudoviruses.

[0070] Modified LN02 (LN02M) antibodies, including modified CDR and non-CDR amino acid sequences, were also produced using recombinant techniques. To identify broadly neutralizing LN02M antibodies with improved virus neutralizing properties, a panel of single or multiple amino acid substitutions in LN02 was generated by site-directed mutagenesis of expression vectors encoding the heavy or light chain sequences of the LN02 antibody. LN02M antibodies were generated by transient transfection of CHO cells with a wild-type vector for the light chain cotransfected with one of the mutant heavy chain vectors (Table 1, Figure 6) or a wild-type vector for the LN02 heavy chain cotransfected with one of the mutant light chain expression vectors (Table 2, Figure 6). Cultures of transfected CHO cells were maintained for 6 days, the medium was harvested, and the mutant LN02 antibodies were purified from the cell culture supernatant on a protein A affinity column using standard protocols. The neutralizing activity of the resulting LN02M antibodies was then evaluated in an antibody concentration response inhibition assay using HIV-1 BaL virus in a TZM-bl luciferase reporter assay. In addition to neutralizing activity, protein production and concentration of the mutant LN02 variants in Tables 1 and 2 were evaluated to identify mutations that provide benefits in terms of improved antibody production and antibody stability required for therapeutic antibodies. Amino acid sequences of exemplary LN02M variable regions produced and tested in this manner are shown in Figure 5, Figures 6A-6E, Figures 7A-7E, Figures 8A-8F, and SEQ ID NOs: 3-92, 95-233, 248-482, and 491-699.

[0071] Table 1 lists the neutralizing activity of antibodies comprising the LN02M variable heavy chain amino acid sequences of SEQ ID NOs: 3-92 (identified in Table 1 and FIG. 6 as LN02 MH01-MH147). Table 2 lists the neutralizing activity of antibodies comprising the LN02M variable light chain amino acid sequences of SEQ ID NOs: 95-233 (identified in Table 2 and FIG. 6 as LN02 ML01-ML94). Tables 1 and 2 compare IC50 (mg / ml) compared to HIV pseudovirus and as a ratio to the neutralizing activity of LN02 (i.e., wild-type (WT) LN02 monoclonal antibody). The inhibitory concentration required for 50% neutralization (IC50) of BaL virus is shown for LN02 bNabs with heavy chain substitutions (Table 1) or light chain substitutions (Table 2), along with the ratio of IC50 of wild-type LN02 bNabs divided by IC50 of mutant LN02 variants tested in parallel. The latter value is used to limit inter-assay variability between virus neutralization assays performed on different days and to identify mutations that may confer small but significant advantages in neutralizing activity to LN02M compared to the wild-type LN02 control. Additional neutralization data for the LN02M antibody is shown in Figures 9A through 9I and Tables 7A-7B, Tables 8A through 8M, Tables 10A through 10C, Table 11, Tables 12A through 12D, Tables 13A through 13D, and Table 14.

[0072] Surprisingly, some of the LN02M antibodies showed higher neutralizing activity than LN02; these included, for example, the LN02M variable heavy chain regions MH01 (1.59), MH16 (1.69), MH22 (1.18), MH26 (1.40), MH30 (3.37), MH32 (1.32), MH35 (1.91), MH36 (1.37), MH37 (1.75), MH43 (1.90), MH44 (1.38), MH48 (2.12), and MH50 (2.26). ), MH49(1.71), MH50(2.74), MH51(2.46), MH53(1.45), MH59(1.31), MH61(1.43), MH64(1.52), MH68(1.12), MH73 (1.83), MH84(1.16), MH89(2.26), MH91(1.36), MH92(1.45), MH106(1.16), MH107(2.19), MH108(1.91), MH111(3. 34), MH112 (2.77), MH115 (1.41), MH119 (1.32), MH120 (1.55), MH124 (1.67), MH131 (1.55), MH135 (1.60), MH136 (1.84), MH138 (1.20), and MH146 (1.65); and the LN02M variable light chain regions ML01 (1.29), ML02 (1.93), ML05 (1.45), ML08 (2.31), ML10 (1.51), ML11 (1.25), ML12 (3.90), ML31 (5.74), ML32 (1.38), ML44 (1.57), ML49 (1.40), ML51 (1.10), ML52 (1.36), ML60 (1.17), ML71 (1.38), ML73 (1.20), ML74 (1.10), ML79 (1.46), ML84 (1.59), ML85 (9.94), and ML94 (6.42). Notably, all LN02H antibodies, including mutants LN02 MH30, LN02 MH111, LN02 ML12, LN02 ML31, LN02 ML85, LN02 ML92, and LN02 ML94 in Tables 1 and 2, demonstrated greater than 3-fold improved neutralization potency against BaL virus compared to the LN02 wild-type control.FIG. 1 provides an overview of amino acid substitutions in either the heavy or light chain of LN02 that confer improved neutralization potency of greater than about 1.4-fold, minimal effect (1.4-0.7-fold difference compared to LN02 WT), or less than 0.7-fold difference compared to wild-type LN02 corresponding mutations that induce loss of neutralizing activity.

[0073] Example 2 Neutralization of LN02 bNabs and LN02 mutants against a global panel of eight pseudotyped HIV-1 virus strains. A preliminary evaluation of the neutralization breadth of a selected panel of LN02 bNabs mutants with mutations in the heavy and / or light chains of LN02 was performed using a panel of eight pseudotyped HIV-1 viruses. A summary of the 80% inhibitory concentrations (IC80) of LN02 mutants (MH for heavy chain mutants, ML for light chain mutants, and MX for both heavy and light chain mutants) on each of the eight pseudotyped viruses (TRO.11, 25710, CD1176, BJOX, CH119, 246-F3, X1632, and CNE55) is shown in Figures 2-4. As a reference, Figure 4 also shows the IC80 values ​​of 3BNC117, 10-1074, and VRC01 against our global panel of pseudotyped viruses. Representative concentration-response virus neutralization curves for LN02 mutants including LN02 ML85, LN02 ML8542, and LN02 MX48, which have significantly improved potency compared to wild-type LN02 and an overall improved neutralization profile compared to 10-1074 and 3BNC117 tested in parallel in Table 3, are shown in Figure 5. Profiling of LN02M against the SVA-MLV pseudotyped virus control in Figure 5 also demonstrates that the LN02M bNab does not exhibit nonspecific inhibition.

[0074] While certain embodiments have been described with reference to preferred embodiments, those skilled in the art will recognize that variations and modifications may occur, and it is therefore intended that the appended claims cover all such equivalent variations that come within the scope of the following claims. Preferred embodiments of the present invention will be described below in detail. EMBODIMENT 1 A binder comprising: a) at least one CDR as depicted in Figure 1, Figures 6A to 6E, Figures 7A-7E, or Figures 8A-F; b) an amino acid sequence selected from the group consisting of SEQ ID NOs: 3 to 92 or 491 to 699; c) an amino acid sequence selected from the group consisting of SEQ ID NOs: 95 to 233 or 248 to 482; d) MH01 (SEQ ID NO: 95), MH16 (SEQ ID NO: 110), MH22 (SEQ ID NO: 116), MH26 (SEQ ID NO: 120), MH30 (SEQ ID NO: 124), MH32 (SEQ ID NO: 126), MH35 (SEQ ID NO: 129), MH36 (SEQ ID NO: 130), MH37 (SEQ ID NO: 131), MH43 (SEQ ID NO: 136), MH44 (SEQ ID NO: 137), MH48 (SEQ ID NO: 141), MH49 (SEQ ID NO: 142), MH50 (SEQ ID NO: 143), MH51 (SEQ ID NO: 144), MH53 (SEQ ID NO: 146), MH59 (SEQ ID NO: 151), MH61 ( a variable heavy chain region comprising: SEQ ID NO:153), MH64 (SEQ ID NO:156), MH68 (SEQ ID NO:159), MH73 (SEQ ID NO:163), MH84 (SEQ ID NO:174), MH89 (SEQ ID NO:177), MH91 (SEQ ID NO:178), MH92 (SEQ ID NO:179), MH106 (SEQ ID NO:193), MH107 (SEQ ID NO:194), MH108 (SEQ ID NO:195), MH111 (SEQ ID NO:198), MH112 (SEQ ID NO:199), MH115 (SEQ ID NO:202), MH119 (SEQ ID NO:206), MH120 (SEQ ID NO:207), MH124 (SEQ ID NO:211), MH 131 (SEQ ID NO:218), MH135 (SEQ ID NO:222), MH136 (SEQ ID NO:223), MH138 (SEQ ID NO:225), and / or MH146 (SEQ ID NO:232); e) a variable light chain region comprising ML01 (SEQ ID NO:3), ML02 (SEQ ID NO:4), ML05 (SEQ ID NO:7), ML08 (SEQ ID NO:10), ML10 (SEQ ID NO:12), ML11 (SEQ ID NO:13), ML12 (SEQ ID NO:14), ML31 (SEQ ID NO:31), ML32 (SEQ ID NO:32), ML44 (SEQ ID NO:42), ML49 (SEQ ID NO:47), ML51 (SEQ ID NO:48), ML52 (SEQ ID NO:49), ML60 (SEQ ID NO:56), ML71 (SEQ ID NO:66), ML73 (SEQ ID NO:68), ML74 (SEQ ID NO:69), ML79 (SEQ ID NO:74), ML84 (SEQ ID NO:79), ML85 (SEQ ID NO:80), ML92 (SEQ ID NO:87), or ML94 (SEQ ID NO:89); f) a combination of the CDRs, amino acid sequences, variable heavy chain regions, and / or variable light chain regions of a), b), c), d), or e); g) a combination of an LN02M variable light chain and an LN02M variable heavy chain as found in any of Table 4, Table 9, Tables 10A to 10C, Table 11, Tables 12A to 12D, Tables 13A to 13D, or Table 14; h) a LN02M variable light chain comprising ML01 (SEQ ID NO:3) in combination with a LN02M variable heavy chain comprising MH02 (SEQ ID NO:96), MH04 (SEQ ID NO:98), MH22 (SEQ ID NO:116), MH23 (SEQ ID NO:117), MH30 (SEQ ID NO:124), MH31 (SEQ ID NO:125), MH35 (SEQ ID NO:129), MH36 (SEQ ID NO:130), and / or MH37 (SEQ ID NO:131); i) the combination of the LN02M variable light chain ML12 (SEQ ID NO: 14) with a LN02M variable heavy chain comprising MH02 (SEQ ID NO: 96), MH04 (SEQ ID NO: 98), MH22 (SEQ ID NO: 116), MH23 (SEQ ID NO: 117) MH30 (SEQ ID NO: 124), MH31 (SEQ ID NO: 125), MH35 (SEQ ID NO: 129), MH36 (SEQ ID NO: 130), and / or MH37 (SEQ ID NO: 131); j) the combination of the LN02M variable light chain ML23 (SEQ ID NO:24) with the LN02M variable heavy chain comprising MH31 (SEQ ID NO:125), MH43 (SEQ ID NO:136), MH48 (SEQ ID NO:141), and MH51 (SEQ ID NO:144); k) the combination of an LN02M variable light chain ML30 (SEQ ID NO: 30) with an LN02M variable heavy chain comprising MH31 (SEQ ID NO: 125), MH43 (SEQ ID NO: 136), MH48 (SEQ ID NO: 141), or MH51 (SEQ ID NO: 144); l) the combination of an LN02M variable light chain ML31 (SEQ ID NO:31) with an LN02M variable heavy chain comprising MH02 (SEQ ID NO:96), MH04 (SEQ ID NO:98), MH22 (SEQ ID NO:116), MH23 (SEQ ID NO:117), MH30 (SEQ ID NO:124), MH31 (SEQ ID NO:125), MH35 (SEQ ID NO:129), MH36 (SEQ ID NO:130), MH37 (SEQ ID NO:131), MH43 (SEQ ID NO:136), MH48 (SEQ ID NO:141), or MH51 (SEQ ID NO:144); m) the combination of the LN02M variable light chain ML32 (SEQ ID NO: 32) and the LN02M variable heavy chain MH31 (SEQ ID NO: 125); n) the combination of an LN02M variable light chain ML85 (SEQ ID NO:80) with an LN02M variable heavy chain comprising MH31 (SEQ ID NO:125), MH35 (SEQ ID NO:129), MH43 (SEQ ID NO:136), MH49 (SEQ ID NO:142), MH60 (SEQ ID NO:152), MH76 (SEQ ID NO:166), MH111 (SEQ ID NO:198), or MH112 (SEQ ID NO:199); O) ML085, which contains a K93Y substitution on the light chain and a wild-type LN02 heavy chain; Mx152, which contains a K93Y and E95Q substitution on the light chain of wild-type LN02 and a S19H substitution on the heavy chain of wild-type LN02; MX067, which contains a K93Y substitution on the light chain of wild-type LN02 and a S19H substitution on the heavy chain of wild-type LN02; MX129, which contains a K93Y and T29S substitution on the light chain of wild-type LN02 and a S19H substitution on the heavy chain of wild-type LN02; MX130, which contains a K93Y and E95Q substitution on the light chain of wild-type LN02 and a T21Y substitution for the heavy chain of wild-type LN02; a combination of light and heavy chain substitutions as shown in Table 9, optionally selected from the group consisting of: ML126, which comprises a wild-type LN02 heavy chain; Mx175, which comprises K93Y and I97V substitutions on the light chain of wild-type LN02 and S40A, Q42R, and T44G substitutions on the heavy chain of wild-type LN02; Mx176, which comprises K93Y and I97V substitutions on the light chain of wild-type LN02 and S40P, Q42R, G43K, and T44G substitutions on the heavy chain of wild-type LN02; and Mx181, which comprises K93Y and I97V substitutions on the light chain of wild-type LN02 and S40P, Q42R, G43K, and T44G substitutions on the heavy chain of wild-type LN02; and p) conservatively substituted variants of a) to o); A binder comprising any one of the following: A binding agent comprising any of a) to p) above, which has at least 2-fold improved neutralizing activity compared to LN02 and exhibits equivalent or improved efficacy compared to ML085. EMBODIMENT 2 The binding agent of embodiment 1, wherein the binding agent neutralizes Human Immunodeficiency Virus (HIV) in an in vitro HIV neutralization assay and / or in vivo. EMBODIMENT 3 The binder is 10 2 ~10 0 μg / ml, or 10 0 ~10 1 The binding agent of embodiment 1 or 2, which exhibits neutralization of the HIV-1 pseudoviruses BJOX (CRF07_BC), CE1176, TRO.11 (B), X1632 (G), CH119 (CRF07_BC), CNE55 (CRF01_AE), 25710 (C), CD0217 (C) at concentrations between 100 and 150 μg / ml. EMBODIMENT 4 The binder of embodiment 2 or 3, wherein the neutralization rate is at least about 50%. EMBODIMENT 5 The binder has an IC of less than 25 μg / ml 50 or IC 80 5. The binding agent according to any of the preceding embodiments, which neutralizes a majority of the HIV-1 pseudoviruses tested in EMBODIMENT 6 6. The binding agent of any one of embodiments 1 to 5, which is an antibody. EMBODIMENT 7 The binding agent of embodiment 6, which is an isolated monoclonal antibody. EMBODIMENT 8 The binding agent of embodiment 6, wherein said monoclonal antibody is a human monoclonal antibody. EMBODIMENT 9 The binding agent of embodiment 7 or 8, wherein the antibody isotype is IgG1 or IgG3. EMBODIMENT 10 The binding agent according to embodiment 1, comprising at least one heavy chain CDR amino acid sequence as shown in FIG. 1 and / or as set forth in any of SEQ ID NOs: 95-233; and / or a conservatively substituted variant thereof. EMBODIMENT 11 The binding agent according to embodiment 1, comprising at least one light chain CDR amino acid sequence as set forth in any of FIG. 1 and / or SEQ ID NOs: 3-92; and / or a conservatively substituted variant thereof. EMBODIMENT 12 The binding agent according to embodiment 1, comprising at least one variable chain amino acid sequence selected from the group consisting of SEQ ID NOs: 3 to 92 and / or 95 to 233; and / or conservatively substituted variants thereof. EMBODIMENT 13 13. The binding agent according to any of the preceding embodiments, which is derived from a human antibody, human IgG, human IgG1, human IgG2, human IgG3, human IgG4, human IgM, human IgA, human IgA1, human IgA2, human IgD, human IgE, dog antibody, dog IgGA, dog IgGB, dog IgGC, dog IgGD, chicken antibody, chicken IgA, chicken IgD, chicken IgE, chicken IgG, chicken IgM, chicken IgY, goat antibody, goat IgG, mouse antibody, mouse IgG, pig antibody, and rat antibody. EMBODIMENT 14 A derivative of the binding agent according to any one of embodiments 1 to 13. EMBODIMENT 15 F ab 、F ab2 , Fab' single chain antibody, F v , a single chain, a monospecific antibody, a bispecific antibody, a trimeric antibody, a multispecific antibody, a multivalent antibody, a chimeric antibody, a dog-human chimeric antibody, a dog-mouse chimeric antibody, an antibody comprising a canine Fc, a humanized antibody, a human antibody, a caninized antibody, a CDR-grafted antibody, a shark antibody, a nanobody, and a camelid antibody. EMBODIMENT 16 16. The binding agent or derivative according to any of the preceding embodiments, comprising at least a first and a second specificity, said first specificity being directed against gp41 and said second specificity being directed against a different antigen. EMBODIMENT 17 17. The binding agent or derivative according to any of the preceding embodiments, comprising a detectable label fixably attached thereto. EMBODIMENT 18 The detectable label may be fluorescein, DyLight, Cy3, Cy5, FITC, HiLyte Fluor555, HiLyte Fluor647, 5-carboxy-2,7-dichlorofluorescein, 5-carboxyfluorescein, 5-FAM, hydroxytryptamine, 5-hydroxytryptamine (5-HAT), 6-carboxyfluorescein (6-FAM), FITC, 6-carboxy-1,4-dichloro-2',7'-dichlorofluorescein (TET), 6-carboxy-1,4-dichloro-2',4',5',7'-tetrachlorofluorescein (HEX), 6-carboxy-4',5'-dichloro-2',7'-Dimethoxyfluorescein (6-JOE), Alexa fluor, Alexa fluor350, Alexa fluor405, Alexa fluor430, Alexa fluor488, Alexa fluor500, Alexa fluor514, Alexa fluor532, Alexa fluor546, Alexa fluor555, Alexa fluor568, Alexa fluor594, Alexa fluor610, Alexa fluor633, Alexa fluor635, Alexa fluor647, Alexa fluor660, Alexa fluor680, Alexa fluor700, Alexa fluor750, BODIPY fluorophores, BODIPY492 / 515, BODIPY493 / 503, BODIPY500 / 510, BODIPY505 / 515, BODIPY530 / 550, BODIPY542 / 563, BODIPY558 / 568, BODIPY564 / 570, BODIPY576 / 589, BODIPY581 / 591, BODIPY630 / 650-X, BODIPY650 / 665-X, BODIPY665 / 676, FL, FL ATP, FI-ceramide, R6G SE, TMR, TMR-X conjugates, TMR-X, SE, TR, TR ATP, TR-X The binder or derivative according to embodiment 17 is selected from the group consisting of Se, rhodamine, rhodamine 110, rhodamine 123, rhodamine B, rhodamine B200, rhodamine BB, rhodamine BG, rhodamine B extra, 5-carboxytetramethylrhodamine (5-TAMRA), 5GLD, 6-carboxyrhodamine 6G, lissamine, lissamine rhodamine B, phallicidin, phalloidin, rhodamine red, Rhod-2, 6-carboxy-X-rhodamine (ROX), carboxy-X-rhodamine (5-ROX), sulforhodamine B can C, sulforhodamine G extra, 6-carboxytetramethylrhodamine (TAMRA), tetramethylrhodamine (TRITC), rhodamine WT, Texas Red, and Texas Red-X. EMBODIMENT 19 19. The binding agent or derivative of any of embodiments 1 to 18, comprising an effector moiety fixedly attached thereto. EMBODIMENT 20 The binding agent or derivative of embodiment 19, wherein the effector moiety is selected from the group consisting of cytotoxic drugs, toxins, diphtheria A chain, exotoxin A chain, ricin A chain, abrin A chain, curcin, crotin, phenomycin, enomycin, and radiochemicals. EMBODIMENT 21 16. An isolated polynucleotide encoding the binding agent of any of embodiments 1 to 15. EMBODIMENT 22 22. An expression vector comprising one or more polynucleotides according to embodiment 21. EMBODIMENT 23 23. A host cell comprising the isolated polynucleotide of embodiment 21 and / or the expression vector of embodiment 22. EMBODIMENT 24 A composition comprising at least one binding agent or derivative according to any one of embodiments 1 to 20; at least one isolated polynucleotide according to embodiment 21; or at least one expression vector according to embodiment 23; and / or at least one host cell according to embodiment 23; or a combination thereof; and a pharma- ceutically acceptable carrier. EMBODIMENT 25 A method for detecting HIV on a cell, comprising contacting a biological sample to be tested with a binding agent or derivative according to any one of embodiments 1 to 20, and detecting said binding agent bound to said biological sample or a component thereof. EMBODIMENT 26 26. The method of embodiment 25, further comprising the step of comparing the amount of binding to the test biological sample or component thereof to the amount of binding to a control biological sample or component thereof, wherein an increase in binding to the test biological sample or component thereof compared to the control biological sample or component thereof indicates the presence of cells expressing HIV in the test biological sample. EMBODIMENT 27 27. The method of embodiment 25 or 26, wherein the biological sample to be tested is mammalian blood. EMBODIMENT 28 28. The method according to any of embodiments 25 to 27, wherein said method is an in vivo method. EMBODIMENT 29 28. The method according to any of embodiments 25 to 27, wherein said method is an in vitro method. EMBODIMENT 30 A method of treating, preventing and / or ameliorating HIV infection and / or AIDS in a mammal comprising administering to said mammal an effective amount of at least one pharmaceutical composition comprising the binding agent or derivative of any of embodiments 1 to 20. EMBODIMENT 31 The method of embodiment 30, wherein multiple doses are administered to the animal. EMBODIMENT 32 The method of embodiment 30 or 31, wherein the binding agent is administered at a dosage of about 1 to 50 mg / kg. EMBODIMENT 33 21. A kit for detecting expression of HIV in or on a cell, comprising a binding agent or derivative according to any one of embodiments 1 to 20 and instructions for use. EMBODIMENT 34 The kit of embodiment 33, wherein the binding agent, antibody, or derivative is in lyophilized form.

[0075]

Table 3

[0076]

Table 4

[0077]

Table 5

[0078]

Table 6

[0079]

Table 7A

[0080]

Table 7B

[0081]

Table 8A

[0082]

Table 8B

[0083]

Table 8C

[0084]

Table 8D

[0085]

Table 8E

[0086]

Table 8F

[0087]

Table 8G

[0088]

Table 8H

[0089]

Table 8I

[0090]

Table 8J

[0091]

Table 8K

[0092]

Table 8L

[0093]

Table 8M

[0094]

Table 9

[0095] [Table 10A]

[0096]

Table 10B

[0097]

Table 10C

[0098]

Table 11

[0099]

Table 12A

[0100]

Table 12B

[0101]

Table 12C

[0102]

Table 12D

[0103]

Table 13A

[0104]

Table 13B

[0105]

Table 13C

[0106]

Table 13D

[0107]

Table 14

Claims

1. An antibody for neutralizing human immunodeficiency virus (HIV), selected from the group consisting of: ML085 having a variable heavy chain region of SEQ ID NO: 234 and a variable light chain region of SEQ ID NO: 235, in which amino acid at position 93 is Y; Mx152 having a variable heavy chain region of SEQ ID NO:234, in which the amino acid at position 19 is H, and a variable light chain region of SEQ ID NO:235, in which the amino acid at position 93 is Y and the amino acid at position 95 is Q; MX067 having a variable heavy chain region of SEQ ID NO:234, where amino acid at position 19 is H, and a variable light chain region of SEQ ID NO:235, where amino acid at position 93 is Y; MX129 having a variable heavy chain region of SEQ ID NO:234, in which the amino acid at position 19 is H, and a variable light chain region of SEQ ID NO:235, in which the amino acid at position 29 is S and the amino acid at position 93 is Y; MX130 having a variable heavy chain region of SEQ ID NO:234, in which amino acid at position 21 is Y, and a variable light chain region of SEQ ID NO:235, in which amino acid at position 29 is S and amino acid at position 93 is Y; ML126 having a variable heavy chain region of SEQ ID NO: 234 and a variable light chain region of SEQ ID NO: 235, in which amino acid at position 93 is Y and amino acid at position 95 is Q; Mx175 having a variable heavy chain region of SEQ ID NO:234, where the amino acid at position 40 is A, the amino acid at position 42 is R, and the amino acid at position 44 is G, and a variable light chain region of SEQ ID NO:235, where the amino acid at position 93 is Y and the amino acid at position 97 is V; Mx176 having a variable heavy chain region of SEQ ID NO:234, where the amino acid at position 40 is P, the amino acid at position 42 is R, the amino acid at position 43 is K, and the amino acid at position 44 is G, and a variable light chain region of SEQ ID NO:235, where the amino acid at position 93 is Y and the amino acid at position 97 is V; and Mx181, having a variable heavy chain region of SEQ ID NO:234, in which the amino acid at position 40 is P, the amino acid at position 42 is R, the amino acid at position 43 is K, and the amino acid at position 44 is G, and a variable light chain region of SEQ ID NO:235, in which the amino acid at position 93 is Y and the amino acid at position 95 is Q; An antibody showing improved potency compared to LN02 containing the variable heavy chain region of SEQ ID NO:234 ​​and the variable light chain region of SEQ ID NO:

235.

2. The antibody of claim 1 , wherein the antibody neutralizes human immunodeficiency virus (HIV) in an in vitro HIV neutralization assay and / or in vivo.

3. The antibody is 2 ~10 0 μg / ml, or 10 0 ~10 1 3. The antibody of claim 1 or 2, which exhibits neutralization of the HIV-1 pseudoviruses BJOX (CRF07_BC), CE1176, TRO.11 (B), X1632 (G), CH119 (CRF07_BC), CNE55 (CRF01_AE), 25710 (C), CD0217 (C) at a concentration between 0.1 μg / ml and 0.2 μg / ml.

4. The antibody of claim 2 or 3, having a neutralization rate of at least 50%.

5. The antibody has an IC 50 Or IC 80 5. The antibody of claim 1, which neutralizes a majority of the HIV-1 pseudoviruses tested.

6. 6. The antibody of claim 1 which is an isolated monoclonal antibody.

7. The antibody of claim 6 , wherein the monoclonal antibody is a human monoclonal antibody.

8. The antibody of claim 6 or 7, wherein the antibody isotype is IgG1 or IgG3.

9. 9. The antibody of any one of claims 1 to 8, which is derived from a human antibody, human IgG, human IgG1, human IgG2, human IgG3, human IgG4, human IgM, human IgA, human IgA1, human IgA2, human IgD, human IgE, dog antibody, dog IgGA, dog IgGB, dog IgGC, dog IgGD, chicken antibody, chicken IgA, chicken IgD, chicken IgE, chicken IgG, chicken IgM, chicken IgY, goat antibody, goat IgG, mouse antibody, mouse IgG, pig antibody, and rat antibody.

10. 10. The antibody of claim 1, comprising a detectable label fixably attached thereto.

11. The detectable label may be fluorescein, DyLight, Cy3, Cy5, FITC, HiLyte Fluor555, HiLyte Fluor647, 5-carboxy-2,7-dichlorofluorescein, 5-carboxyfluorescein, 5-FAM, hydroxytryptamine, 5-hydroxytryptamine (5-HAT), 6-carboxyfluorescein (6-FAM), FITC, 6-carboxy-1,4-dichloro-2',7'-dichlorofluorescein (TET), 6-carboxy-1,4-dichloro-2',4',5',7'-tetrachlorofluorescein (HEX), 6-carboxy-4',5'-dichloro-2',7'-dimethoxyfluorescein (6-JOE), Alexa fluor, Alexa fluor350, Alexa fluor405, Alexa fluor430, Alexa fluor488, Alexa fluor500, Alexa fluor514, Alexa fluor532, Alexa fluor546, Alexa fluor555, Alexa fluor568, Alexa fluor594, Alexa fluor610, Alexa fluor633, Alexa fluor635, Alexa fluor647, Alexa fluor660, Alexa fluor680, Alexa fluor700, Alexa fluor750, BODIPY fluorophore, BODIPY492 / 515, BODIPY493 / 503, BODIPY500 / 510, BODIPY505 / 515, BODIPY530 / 550, BODIPY542 / 563, BODIPY558 / 568, BODIPY564 / 570, BODIPY576 / 589, BODIPY581 / 591, BODIPY630 / 650-X, BODIPY650 / 665-X, BODIPY665 / 676, FL, FL ATP, FI-ceramide, R6G SE, TMR, TMR-X conjugate, TMR-X, SE, TR, TR ATP, TR-X Se, rhodamine, rhodamine 110, rhodamine 123, rhodamine B, rhodamine B200, rhodamine BB, rhodamine BG, rhodamine B extra, 5-carboxytetramethylrhodamine (5-TAMRA), 5GLD, 6-carboxyrhodamine 6G, lissamine, lissamine rhodamine B, phallicidin, phalloidin, rhodamine red, Rhod-2, 6-carboxy-X-rhodamine (ROX), carboxy-X-rhodamine (5-ROX), sulforhodamine B can The antibody according to claim 10, which is selected from the group consisting of rhodamine C, sulforhodamine G extra, 6-carboxytetramethylrhodamine (TAMRA), tetramethylrhodamine (TRITC), rhodamine WT, Texas Red, and Texas Red-X.

12. 12. An antibody according to any one of claims 1 to 11, comprising an effector moiety fixedly attached thereto.

13. 13. The antibody of claim 12, wherein the effector moiety is selected from the group consisting of a cytotoxic drug, a toxin, diphtheria A chain, exotoxin A chain, ricin A chain, abrin A chain, curcin, crotin, phenomycin, enomycin, and a radiochemical.

14. An isolated polynucleotide encoding the antibody of any one of claims 1 to 9.

15. 15. An expression vector comprising one or more polynucleotides according to claim 14.

16. 16. A host cell comprising the isolated polynucleotide of claim 14 and / or the expression vector of claim 15.

17. A composition comprising at least one antibody described in any one of claims 1 to 13; at least one isolated polynucleotide described in claim 14; or at least one expression vector described in claim 15; and / or at least one host cell described in claim 16; or a combination thereof; and a pharma- ceutically acceptable carrier.

18. An in vitro method for detecting HIV on a cell, comprising the steps of contacting a biological sample to be tested with an antibody described in any one of claims 1 to 13, and detecting said antibody bound to said biological sample or a component thereof.

19. 20. The method of claim 18, further comprising the step of comparing the amount of binding to the test biological sample or its component with the amount of binding to a control biological sample or its component, wherein an increase in binding to the test biological sample or its component compared to the control biological sample or its component indicates the presence of cells expressing HIV in the test biological sample.

20. 20. The method of claim 18 or 19, wherein the biological sample to be tested is mammalian blood.

21. 14. A pharmaceutical composition for treating, preventing and / or alleviating HIV infection and / or AIDS in a mammal comprising an effective amount of at least one antibody according to any one of claims 1 to 13.

22. 22. The pharmaceutical composition of claim 21, wherein multiple doses are administered to the animal.

23. The pharmaceutical composition of claim 21 or 22, wherein the antibody is administered at a dosage of 1 to 50 mg / kg.

24. A kit for detecting HIV expression in or on a cell, comprising an antibody according to any one of claims 1 to 13 and instructions for use.

25. 25. The kit of claim 24, wherein the antibody is in lyophilized form.

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