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Generation of actionable, cancer-specific neoantigens from KRAS(G12C) with adagrasib
Lorenzo Maso1,2, Epsa Rajak1, Takamitsu Hattori1,3
1Perlmutter Cancer Center, New York University Langone Health, New York, NY 10016.
Abstract:
Effective immune therapy against cancer ideally should target a cancer-specific antigen, an antigen that is present exclusively in cancer cells. However, there is a paucity of cancer-specific antigens that are endogenously produced. HapImmune™ technology utilizes covalent inhibitors directed to an intracellular cancer driver to create cancer-specific neoantigens in the form of drug-peptide conjugates presented by class I MHC molecules. Our previous study with sotorasib, an FDA-approved covalent inhibitor of KRAS(G12C), demonstrated that drug-treated cells produce such neoantigens and can be killed by T cell engagers directed against the drug-peptide/MHC complex. Thus, this technology can unite targeted and immune therapies. In the present study, we examined whether this approach could generalize to another FDA-approved KRAS(G12C) inhibitor, adagrasib, whose chemical structure and cysteine reactivity differ substantially from sotorasib. We developed antibodies selective to adagrasib-KRAS(G12C) peptides presented by HLA-A*03 and A*11 that also show cross-reactivity to other KRAS(G12C) inhibitors presented in the same manner. Cryoelectron microscopy structures revealed a mode of adagrasib-peptide/HLA recognition distinctly different from that of sotorasib-directed HapImmune antibodies. The antibodies in a bispecific T cell engager format killed adagrasib-resistant lung cancer cells upon adagrasib treatment. These results support the broad applicability of the HapImmune approach for creating actionable cancer-specific neoantigens and offer candidates for therapeutic development.
Insights
HapImmune technology creates cancer-specific neoantigens using KRAS(G12C) inhibitors like adagrasib. Bispecific T cell engagers targeting these neoantigens effectively killed adagrasib-resistant lung cancer cells, validating the approach for cancer therapy.
Area of Science:
- Oncology
- Immunology
- Drug Development
Background:
- Targeting cancer-specific antigens is crucial for effective immunotherapy.
- A scarcity of naturally occurring cancer-specific antigens limits current approaches.
- HapImmune technology leverages covalent inhibitors to generate neoantigens from intracellular cancer drivers.
Purpose of the Study:
- To evaluate the generalization of HapImmune technology using adagrasib, a KRAS(G12C) inhibitor distinct from sotorasib.
- To develop antibodies targeting adagrasib-KRAS(G12C) neoantigens presented by specific HLA types.
- To assess the therapeutic potential of adagrasib-directed HapImmune approach in lung cancer models.
Main Methods:
- Developed antibodies specific for adagrasib-KRAS(G12C) peptide/HLA complexes.
- Utilized cryoelectron microscopy to elucidate recognition mechanisms.
- Engineered bispecific T cell engagers for therapeutic testing.
- Assessed efficacy in adagrasib-resistant lung cancer cell models.
Main Results:
- Generated antibodies with selectivity for adagrasib-KRAS(G12C) neoantigens, showing cross-reactivity with other inhibitors.
- Cryo-EM revealed distinct binding modes compared to sotorasib-based antibodies.
- Bispecific T cell engagers demonstrated potent killing of adagrasib-resistant lung cancer cells.
Conclusions:
- The HapImmune approach is broadly applicable for generating actionable cancer-specific neoantigens.
- Adagrasib-based neoantigens can be targeted by T cell engagers for cancer therapy.
- This strategy offers promising candidates for developing novel targeted immune therapies.
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