Acquired resistance during adoptive cell therapy by transcriptional silencing of immunogenic antigens
Ben Wylie1, Jonathan Chee2, Catherine A Forbes3
1Phylogica, Harry Perkins Institute for Medical Research, QEII Medical Centre, Nedlands, Australia.
Abstract:
Immunotherapies such as adoptive cell therapy (ACT) are promising treatments for solid cancers. However, relapsing disease remains a problem and the molecular mechanisms underlying resistance are poorly defined. We postulated that the deregulated epigenetic landscape in cancer cells could underpin the acquisition of resistance to immunotherapy. To address this question, two preclinical models of ACT were employed to study transcriptional and epigenetic regulatory processes within ACT-treated cancer cells. In these models ACT consistently causes robust tumor regression, but resistance develops and tumors relapse. We identified down-regulated expression of immunogenic antigens at the mRNA level correlated with escape from immune control. To determine whether this down-regulation was under epigenetic control, we treated escaped tumor cells with DNA demethylating agents, azacytidine (AZA) and decitabine (DEC). AZA or DEC treatment restored antigen expression in a proportion of the tumor population. To explore the importance of other epigenetic modifications we isolated tumor cells refractory to DNA demethylation and screened clones against a panel of 19 different epigenetic modifying agents (EMAs). The library of EMAs included inhibitors of a range of chromosomal and transcription regulatory protein complexes, however, when tested as single agents none restored further antigen expression. These findings suggest that tumor cells employ multiple epigenetic and genetic mechanisms to evade immune control, and a combinatorial approach employing several EMAs targeting transcription and genome stability may be required to overcome tumor resistance to immunotherapy.
Insights
Epigenetic changes in cancer cells can lead to resistance against adoptive cell therapy (ACT). DNA demethylating agents partially restored antigen expression, suggesting combination therapies may overcome tumor immune evasion.
Area of Science:
- Oncology
- Immunology
- Epigenetics
Background:
- Adoptive cell therapy (ACT) shows promise for solid cancers but faces challenges with relapsing disease.
- Molecular mechanisms of resistance to immunotherapy, particularly ACT, are not well understood.
- Epigenetic deregulation in cancer cells is hypothesized to contribute to immunotherapy resistance.
Purpose of the Study:
- To investigate the role of epigenetic modifications in cancer cells developing resistance to ACT.
- To identify transcriptional and epigenetic regulatory processes involved in ACT resistance.
- To explore strategies for overcoming tumor resistance to immunotherapy.
Main Methods:
- Utilized two preclinical models of ACT with consistent tumor regression followed by relapse.
- Analyzed gene expression and epigenetic changes in ACT-treated cancer cells.
- Treated resistant tumor cells with DNA demethylating agents (azacytidine, decitabine) and a panel of 19 epigenetic modifying agents (EMAs).
Main Results:
- Down-regulated expression of immunogenic antigens at the mRNA level correlated with immune escape.
- DNA demethylating agents (AZA, DEC) restored antigen expression in a subset of tumor cells.
- Single-agent epigenetic modifying agents (EMAs) did not restore further antigen expression in refractory cells.
Conclusions:
- Tumor cells utilize multiple epigenetic and genetic mechanisms to evade immune control during ACT.
- Overcoming ACT resistance may require combinatorial approaches targeting transcription and genome stability.
- Further research into epigenetic regulation is crucial for improving cancer immunotherapy outcomes.
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