Suboptimal T-cell Therapy Drives a Tumor Cell Mutator Phenotype That Promotes Escape from First-Line Treatment

Laura Evgin1, Amanda L Huff1, Timothy Kottke1

  • 1Department of Molecular Medicine, Mayo Clinic, Rochester, Minnesota.

Insights

Weak antitumor T-cell responses can unexpectedly promote tumor resistance to therapies like oncolytic viruses. Optimizing immunotherapies early is crucial to prevent tumor cells from evolving resistance mechanisms.

Area of Science:

  • Immunology
  • Cancer Biology
  • Molecular Oncology

Background:

  • First-line cancer therapies often induce weak antitumor T-cell responses (low frequency/affinity).
  • Weak T-cell responses can impair direct tumor cell killing and promote therapeutic resistance.

Purpose of the Study:

  • To investigate how suboptimal antitumor T-cell responses influence tumor evolution and resistance to therapy.
  • To elucidate the molecular mechanisms underlying T-cell-mediated tumor escape.

Main Methods:

  • Co-culture of tumor cells with T cells at varying effector-to-target ratios.
  • Analysis of tumor cell mutations (C to T transitions) and APOBEC3 activity.
  • Inhibition and overexpression of APOBEC3 in tumor cells.
  • Assessment of tumor escape from oncolytic virus and suicide gene therapy in vitro and in vivo.

Main Results:

  • Suboptimal T-cell presence reduced direct tumor killing and promoted tumor escape from oncolytic/suicide gene therapy.
  • Tumor resistance was linked to APOBEC3 cytosine deaminase activity via TNFα and protein kinase C.
  • APOBEC3 inhibition decreased tumor escape rates, while its overexpression enhanced escape.

Conclusions:

  • Weak T-cell responses against tumor antigens can drive tumor evolution and resistance to therapy.
  • Targeting APOBEC3 activity may be a strategy to overcome treatment resistance.
  • Early optimization of immunotherapies is essential to prevent treatment-induced tumor evolution.

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