A frameshift-generated cancer neoepitope that controls tumor burden in prophylaxis as well as therapy

Mariam M George1,2, Cory A Brennick1,2, Adam T Hagymasi2

  • 1Department of Immunology, University of Connecticut School of Medicine, Farmington, CT, United States.

Insights

Insertion-deletion (InDel) neoepitopes show promise for cancer immunotherapy. One novel InDel-generated neoepitope controlled tumors in vivo via CD8 T cells, demonstrating therapeutic potential.

Area of Science:

  • Oncology
  • Immunology
  • Genetics

Background:

  • Frameshift mutations caused by insertions or deletions (InDels) can create novel neoepitopes.
  • These InDel-generated neoepitopes lack self-counterparts, offering a unique target for cancer immunotherapy.
  • Previous studies showed InDel neoepitopes can elicit CD8 T-cell responses, but in vivo tumor control was not demonstrated.

Purpose of the Study:

  • To identify and validate InDel-generated neoepitopes capable of controlling tumor growth in vivo.
  • To investigate the characteristics and efficacy of a novel InDel-generated neoepitope.
  • To compare the T-cell exhaustion profile of InDel-generated neoepitopes with those from point mutations.

Main Methods:

  • Screening of 11 InDels in a mouse colon carcinoma line.
  • Assessment of tumor control in vivo using prophylaxis and therapy models.
  • Analysis of neoepitope affinity for MHC I alleles.
  • Evaluation of CD8 T-cell responses and exhaustion levels.

Main Results:

  • One of 11 identified InDels generated a neoepitope that mediated tumor control in vivo.
  • This neoepitope, despite low MHC I affinity, elicited significant antitumor activity via CD8 T cells.
  • CD8 T cells induced by this InDel neoepitope exhibited less exhaustion compared to those from point mutation-derived neoepitopes.

Conclusions:

  • InDel-generated neoepitopes can elicit potent antitumor immunity in vivo.
  • Novel InDel neoepitopes can control tumors even with low MHC I affinity, challenging previous assumptions.
  • These findings highlight the therapeutic potential of InDel-generated neoepitopes in cancer treatment and suggest a less exhausted T-cell response.

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