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Generating tumor-selective conditionally active biologic anti-CTLA4 antibodies via protein-associated chemical
Hwai Wen Chang1, Gerhard Frey1, Haizhen Liu1
1BioAtla, Inc., San Diego, CA 92121.
Abstract:
Anticytotoxic T lymphocyte-associated protein 4 (CTLA4) antibodies have shown potent antitumor activity, but systemic immune activation leads to severe immune-related adverse events, limiting clinical usage. We developed novel, conditionally active biologic (CAB) anti-CTLA4 antibodies that are active only in the acidic tumor microenvironment. In healthy tissue, this binding is reversibly inhibited by a novel mechanism using physiological chemicals as protein-associated chemical switches (PaCS). No enzymes or potentially immunogenic covalent modifications to the antibody are required for activation in the tumor. The novel anti-CTLA4 antibodies show similar efficacy in animal models compared to an analog of a marketed anti-CTLA4 biologic, but have markedly reduced toxicity in nonhuman primates (in combination with an anti-PD1 checkpoint inhibitor), indicating a widened therapeutic index (TI). The PaCS encompass mechanisms that are applicable to a wide array of antibody formats (e.g., ADC, bispecifics) and antigens. Examples shown here include antibodies to EpCAM, Her2, Nectin4, CD73, and CD3. Existing antibodies can be engineered readily to be made sensitive to PaCS, and the inhibitory activity can be optimized for each antigen's varying expression level and tissue distribution. PaCS can modulate diverse physiological molecular interactions and are applicable to various pathologic conditions, enabling differential CAB antibody activities in normal versus disease microenvironments.
Insights
Novel conditionally active biologic (CAB) anti-cytotoxic T lymphocyte-associated protein 4 (CTLA4) antibodies are activated only in acidic tumor microenvironments. This approach reduces toxicity while maintaining antitumor efficacy, widening the therapeutic index.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- Cytotoxic T lymphocyte-associated protein 4 (CTLA4) antibodies demonstrate significant antitumor potential.
- Systemic immune activation by CTLA4 antibodies causes severe immune-related adverse events, restricting their clinical application.
Purpose of the Study:
- To develop novel, conditionally active biologic (CAB) anti-CTLA4 antibodies with enhanced safety profiles.
- To investigate a new mechanism for antibody activation specifically within the tumor microenvironment.
Main Methods:
- Engineered anti-CTLA4 antibodies utilizing protein-associated chemical switches (PaCS) for conditional activation.
- Tested antibody efficacy and toxicity in animal models and nonhuman primates, in combination with anti-PD1 inhibitors.
Main Results:
- CAB anti-CTLA4 antibodies exhibited comparable efficacy to existing biologics in preclinical models.
- Markedly reduced toxicity was observed in nonhuman primates, indicating a widened therapeutic index.
- The PaCS mechanism is enzyme-free, reversible, and applicable to various antibody formats and antigens.
Conclusions:
- Conditionally active biologic anti-CTLA4 antibodies offer a promising strategy to improve the therapeutic index of cancer immunotherapies.
- The PaCS technology platform can be broadly applied to engineer antibodies for targeted activity in disease-specific microenvironments.
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