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.

Cancer Discovery
|October 17, 2022
PubMed

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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