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Emmanuelle Hodara1, Lisa Swartz1, Aubree Mades1
1Division of Medical Oncology, Department of Medicine, Keck School of Medicine of USC and Norris Comprehensive Cancer Center, Los Angeles, CA 90033, USA.
Abstract:
Cancer drug resistance arises not only from selection of resistant clones, but also through rapid activation of adaptive transcriptional programs. One mechanism of transcriptional regulation involves N6-methyladenosine (m6A) RNA modification, which dynamically regulates mRNA processing and alternative splicing, ultimately impacting cell fate and differentiation. In prostate cancer (PC), resistance to systemic therapies such as the androgen receptor pathway inhibitor (ARPI) enzalutamide is associated with a host of well-documented androgen receptor (AR) alterations, including amplification, mutation, and alternative splicing. Given these functions, we hypothesized that m6A modifications play a role in the transition to enzalutamide resistance in PC. To test this, we used methyl-RNA-immunoprecipitation followed by sequencing (MeRIP-seq) in parallel with RNA-seq to identify gene transcripts that were both differentially methylated and differentially expressed between enzalutamide-sensitive and enzalutamide-resistant PC cells. We filtered and prioritized these genes using clinical and functional database tools, including Gene Ontology (GO) enrichment analysis and Gene Set Enrichment Analysis (GSEA), The Cancer Genome Atlas (TCGA), and the Oncology Research Information Network (ORIEN) avatar. Using this approach, we identified 487 transcripts that were both differentially methylated and differentially expressed and validated six of the top 12 candidates via targeted qPCR and MeRIP-PCR. One of these, THBS1, was found to have increased m6A level associated with decreased transcript levels in enzalutamide-resistant cells, a finding recapitulated in publicly available preclinical and clinical data. Moreover, in enzalutamide-sensitive cells, depletion of THBS1 by siRNA-knockdown induced resistance to enzalutamide. While THBS1 has previously been implicated in aggressive PC phenotypes, we now show that THBS1 downregulation directly contributes to a rapid transition to enzalutamide resistance, suggesting a novel role for this gene in PC hormonal therapy resistance. These results constitute the first comprehensive epitranscriptomic profiling of ARPI resistance and identify THBS1 as a potential driver of acute resistance in prostate cancer.
Insights
N6-methyladenosine (m6A) RNA modifications influence cancer drug resistance. In prostate cancer, m6A changes and decreased THBS1 expression drive rapid enzalutamide resistance.
Area of Science:
- Molecular Biology
- Cancer Research
- Epigenetics
Background:
- Cancer drug resistance involves adaptive transcriptional programs.
- N6-methyladenosine (m6A) RNA modification regulates mRNA processing and impacts cell fate.
- Prostate cancer (PC) resistance to enzalutamide (ARPI) is linked to androgen receptor (AR) alterations.
Purpose of the Study:
- To investigate the role of m6A modifications in the transition to enzalutamide resistance in PC.
- To identify specific transcripts affected by m6A modifications during resistance development.
Main Methods:
- Utilized methyl-RNA-immunoprecipitation followed by sequencing (MeRIP-seq) and RNA-seq.
- Compared m6A profiles and gene expression between enzalutamide-sensitive and resistant PC cells.
- Prioritized candidate genes using bioinformatics tools (GO, GSEA, TCGA, ORIEN).
Main Results:
- Identified 487 differentially methylated and expressed transcripts.
- Validated six top candidates, including THBS1, showing increased m6A and decreased transcript levels in resistant cells.
- siRNA-knockdown of THBS1 in sensitive cells induced enzalutamide resistance.
Conclusions:
- m6A modifications play a significant role in the development of enzalutamide resistance in PC.
- Downregulation of THBS1 directly contributes to rapid enzalutamide resistance.
- THBS1 is a potential driver of acute resistance in prostate cancer, representing a novel therapeutic target.
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