Eradication of Large Solid Tumors by Gene Therapy with a T-Cell Receptor Targeting a Single Cancer-Specific Point

Matthias Leisegang1, Boris Engels2, Karin Schreiber2

  • 1Institute of Immunology, Charité, Campus Buch, Berlin, Germany. matthias.leisegang@mdc-berlin.de.

Abstract

Insights

Gene therapy using T cells engineered with a single T-cell receptor (TCR) can eliminate large tumors by targeting a specific tumor antigen. However, uniform antigen expression or combination therapy is crucial to prevent cancer cells from escaping treatment.

Area of Science:

  • Oncology
  • Immunology
  • Cancer Genetics

Background:

  • Cancers harbor unique tumor-specific antigens arising from single amino acid substitutions (AAS).
  • These antigens are encoded by somatic mutations and can be recognized by T cells.

Purpose of the Study:

  • To determine if adoptively transferred T cells, engineered with a single T-cell receptor (TCR), can reject established solid tumors.
  • To investigate the efficacy of targeting a single AAS neoepitope for cancer rejection.

Main Methods:

  • Identification of a tumor-specific neoepitope (mp68) from a UV-induced tumor via exome and RNA sequencing.
  • Engineering T cells with a high-avidity mp68-specific TCR for adoptive therapy.
  • Generation of TCR-transgenic mice for preclinical studies.

Main Results:

  • Engineered T cells eradicated large, established solid tumors when the neoepitope was uniformly expressed at high levels.
  • Targeting the neoepitope as an autochthonous antigen led to cancer regression but also antigen-negative variant escape.
  • Combining T-cell therapy with local irradiation or increasing neoepitope expression levels prevented tumor escape.

Conclusions:

  • Gene therapy with a single TCR targeting a single AAS shows potential for eradicating established cancers.
  • Uniform and sufficient neoepitope expression is essential to overcome tumor escape.
  • Additional therapies, like local irradiation, may be required to enhance TCR-based cancer treatment efficacy.

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