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Molecular Drivers of Potential Immunotherapy Failure in Adrenocortical Carcinoma
Chiara Fiorentini1, Salvatore Grisanti2, Deborah Cosentini2
1Section of Pharmacology, Department of Molecular and Translational Medicine, University of Brescia, Viale Europa 11, Brescia, Italy.
Abstract:
Adrenocortical carcinoma (ACC) is a rare, highly aggressive cancer, often insensitive to conventional chemotherapeutics agents. Early diagnosis, followed by radical surgical resection plus/minus adjuvant mitotane therapy, is nowadays the only valuable option. Unfortunately, one out of four patients has metastatic disease at diagnosis and most of radically resected ACC patients are destined to recur with local or metastatic disease. Numerous efforts aimed at identifying molecular alterations crucial for ACC pathogenesis have been extensively conducted, with the hope to develop new treatments. Indeed, multiple genes and pathways have been identified as potentially targetable in ACC patients; however, despite the strong preclinical rationale, translational findings to clinical trials led to date to disappointing results. The immunotherapeutic intervention targeting T-cell checkpoint molecules has been proposed as well, but results obtained in early studies indicate that ACC patients would be unlikely to benefit from immunotherapy. Genetic alterations of different pathways involved in ACC carcinogenesis are also known substrates of resistance to immunotherapy. Among them, β-catenin gene CTNNB1 and TP53 gene are frequently mutated in ACC samples. Overactivation of the β-catenin pathway and loss of p53 protein function are potential tumor-intrinsic factors that, impacting on the ability of ACC cells to recruit dendritic cells, leading to T-cell exclusion, put this tumor among those that are potentially resistant to immunotherapy. Moreover, the steroid phenotype, which implies glucocorticoids hypersecretion in a subset of ACC, contributes to generating an immunosuppressive microenvironment. Here, we review clinical results of immunotherapy in ACC and we highlight molecular mechanisms driving immunotherapy failure in ACC, suggesting possible approaches to overcome resistance.
Insights
Adrenocortical carcinoma (ACC) is aggressive and resistant to immunotherapy. Molecular alterations like CTNNB1 and TP53 mutations hinder T-cell recruitment, causing treatment failure and suggesting new therapeutic strategies are needed.
Area of Science:
- Oncology
- Cancer Immunology
- Molecular Biology
Background:
- Adrenocortical carcinoma (ACC) is a rare, aggressive cancer with poor prognosis.
- Current treatments, including surgery and chemotherapy, have limited efficacy, especially in metastatic cases.
- Existing immunotherapies show limited benefit in ACC patients.
Purpose of the Study:
- To review clinical outcomes of immunotherapy in ACC.
- To elucidate molecular mechanisms underlying immunotherapy resistance in ACC.
- To propose strategies for overcoming immunotherapy resistance in ACC.
Main Methods:
- Review of clinical trial data for immunotherapy in ACC.
- Analysis of genetic alterations (e.g., CTNNB1, TP53) associated with ACC.
- Examination of molecular pathways (e.g., beta-catenin, p53) impacting anti-tumor immunity.
Main Results:
- ACC exhibits resistance to T-cell checkpoint immunotherapy.
- Mutations in CTNNB1 and TP53 contribute to T-cell exclusion and immunosuppression.
- Steroid phenotype exacerbates the immunosuppressive tumor microenvironment.
Conclusions:
- ACC's molecular landscape presents significant barriers to effective immunotherapy.
- Targeting specific genetic alterations and the tumor microenvironment may enhance immunotherapy efficacy.
- Further research is needed to develop novel therapeutic approaches for ACC.
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