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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.
Abstract:
Antitumor T-cell responses raised by first-line therapies such as chemotherapy, radiation, tumor cell vaccines, and viroimmunotherapy tend to be weak, both quantitatively (low frequency) and qualitatively (low affinity). We show here that T cells that recognize tumor-associated antigens can directly kill tumor cells if used at high effector-to-target ratios. However, when these tumor-reactive T cells were present at suboptimal ratios, direct T-cell-mediated tumor cell killing was reduced and the ability of tumor cells to evolve away from a coapplied therapy (oncolytic or suicide gene therapy) was promoted. This T-cell-mediated increase in therapeutic resistance was associated with C to T transition mutations that are characteristic of APOBEC3 cytosine deaminase activity and was induced through a TNFα and protein kinase C-dependent pathway. Short hairpin RNA inhibition of endogenous APOBEC3 reduced rates of tumor escape from oncolytic virus or suicide gene therapy to those seen in the absence of antitumor T-cell coculture. Conversely, overexpression of human APOBEC3B in tumor cells enhanced escape from suicide gene therapy and oncolytic virus therapy both in vitro and in vivo Our data suggest that weak affinity or low frequency T-cell responses against tumor antigens may contribute to the ability of tumor cells to evolve away from first-line therapies. We conclude that immunotherapies need to be optimized as early as possible so that, if they do not kill the tumor completely, they do not promote treatment resistance.
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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