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Published on: February 28, 2019
Creating MHC-Restricted Neoantigens with Covalent Inhibitors That Can Be Targeted by Immune Therapy
Takamitsu Hattori1,2, Lorenzo Maso1, Kiyomi Y Araki1
1Laura and Isaac Perlmutter Cancer Center, New York University Langone Health, New York, New York.
Abstract:
Intracellular oncoproteins can be inhibited with targeted therapy, but responses are not durable. Immune therapies can be curative, but most oncogene-driven tumors are unresponsive to these agents. Fragments of intracellular oncoproteins can act as neoantigens presented by the major histocompatibility complex (MHC), but recognizing minimal differences between oncoproteins and their normal counterparts is challenging. We have established a platform technology that exploits hapten-peptide conjugates generated by covalent inhibitors to create distinct neoantigens that selectively mark cancer cells. Using the FDA-approved covalent inhibitors sotorasib and osimertinib, we developed "HapImmune" antibodies that bind to drug-peptide conjugate/MHC complexes but not to the free drugs. A HapImmune-based bispecific T-cell engager selectively and potently kills sotorasib-resistant lung cancer cells upon sotorasib treatment. Notably, it is effective against KRASG12C-mutant cells with different HLA supertypes, HLA-A*02 and A*03/11, suggesting loosening of MHC restriction. Our strategy creates targetable neoantigens by design, unifying targeted and immune therapies.
Significance:
Targeted therapies against oncoproteins often have dramatic initial efficacy but lack durability. Immunotherapies can be curative, yet most tumors fail to respond. We developed a generalizable technology platform that exploits hapten-peptides generated by covalent inhibitors as neoantigens presented on MHC to enable engineered antibodies to selectively kill drug-resistant cancer cells. See related commentary by Cox et al., p. 19. This article is highlighted in the In This Issue feature, p. 1.
Insights
This study introduces a novel platform creating unique cancer neoantigens using covalent inhibitors. These engineered antigens enable targeted therapies to effectively kill drug-resistant cancer cells, unifying targeted and immune approaches.
Area of Science:
- Oncology
- Immunology
- Drug Development
Background:
- Targeted therapies for oncoproteins show limited durability.
- Immunotherapies are curative but ineffective against most oncogene-driven tumors.
- Distinguishing oncoproteins from normal proteins for neoantigen presentation is difficult.
Purpose of the Study:
- To develop a generalizable technology platform for creating neoantigens from covalent inhibitors.
- To engineer antibodies that selectively target cancer cells marked by these neoantigens.
- To unify targeted and immune therapies for improved cancer treatment.
Main Methods:
- Established a platform technology using hapten-peptide conjugates from covalent inhibitors.
- Developed "HapImmune" antibodies binding drug-peptide conjugate/MHC complexes.
- Created a HapImmune-based bispecific T-cell engager.
Main Results:
- HapImmune antibodies selectively bind drug-peptide conjugate/MHC complexes, not free drugs.
- Bispecific T-cell engager potently kills sotorasib-resistant lung cancer cells.
- Demonstrated efficacy across different HLA supertypes, suggesting reduced MHC restriction.
Conclusions:
- The platform creates targetable neoantigens by design.
- This approach unifies targeted therapy and immune therapy principles.
- The technology offers a strategy to overcome resistance in cancer treatment.
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