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Updated: Dec 11, 2025

Engineering Artificial Factors to Specifically Manipulate Alternative Splicing in Human Cells
Published on: April 26, 2017
Androgen receptor signaling regulates the transcriptome of prostate cancer cells by modulating global alternative
Kalpit Shah1,2, Teresa Gagliano3, Lisa Garland4
1Division of Cancer Epidemiology and Genetics, National Cancer Institute (NCI), National Institutes of Health (NIH), Bethesda, MD, 20892, USA. kalpit.shah2016@gmail.com.
Abstract:
Androgen receptor (AR), is a transcription factor and a member of a hormone receptor superfamily. AR plays a vital role in the progression of prostate cancer and is a crucial target for therapeutic interventions. While the majority of advanced-stage prostate cancer patients will initially respond to the androgen deprivation, the disease often progresses to castrate-resistant prostate cancer (CRPC). Interestingly, CRPC tumors continue to depend on hyperactive AR signaling and will respond to potent second-line antiandrogen therapies, including bicalutamide (CASODEX®) and enzalutamide (XTANDI®). However, the progression-free survival rate for the CRPC patients on antiandrogen therapies is only 8-19 months. Hence, there is a need to understand the mechanisms underlying CRPC progression and eventual treatment resistance. Here, we have leveraged next-generation sequencing and newly developed analytical methodologies to evaluate the role of AR signaling in regulating the transcriptome of prostate cancer cells. The genomic and pharmacologic stimulation and inhibition of AR activity demonstrates that AR regulates alternative splicing within cancer-relevant genes. Furthermore, by integrating transcriptomic data from in vitro experiments and in prostate cancer patients, we found that a significant number of AR-regulated splicing events are associated with tumor progression. For example, we found evidence for an inadvertent AR-antagonist-mediated switch in IDH1 and PL2G2A isoform expression, which is associated with a decrease in overall survival of patients. Mechanistically, we discovered that the epithelial-specific splicing regulators (ESRP1 and ESRP2), flank many AR-regulated alternatively spliced exons. And, using 2D invasion assays, we show that the inhibition of ESRPs can suppress AR-antagonist-driven tumor invasion. Our work provides evidence for a new mechanism by which AR alters the transcriptome of prostate cancer cells by modulating alternative splicing. As such, our work has important implications for CRPC progression and development of resistance to treatment with bicalutamide and enzalutamide.
Insights
Androgen receptor (AR) signaling drives prostate cancer progression and treatment resistance by altering gene splicing. Understanding this mechanism could lead to new therapies for castrate-resistant prostate cancer (CRPC).
Area of Science:
- Molecular Biology
- Oncology
- Genetics
Background:
- Androgen receptor (AR) signaling is critical in prostate cancer (PC) progression.
- Most advanced PC initially responds to androgen deprivation but progresses to castrate-resistant prostate cancer (CRPC).
- CRPC remains dependent on AR signaling, necessitating understanding resistance mechanisms.
Purpose of the Study:
- To investigate the role of AR signaling in regulating the prostate cancer cell transcriptome.
- To identify mechanisms underlying CRPC progression and treatment resistance.
- To explore AR's impact on alternative splicing in cancer-relevant genes.
Main Methods:
- Next-generation sequencing and advanced analytical methods.
- Genomic and pharmacologic manipulation of AR activity (stimulation and inhibition).
- Integration of in vitro transcriptomic data with patient data.
- 2D invasion assays to assess the role of splicing regulators.
Main Results:
- AR signaling regulates alternative splicing of cancer-relevant genes.
- AR-regulated splicing events are linked to tumor progression and decreased patient survival.
- AR-antagonist treatment can induce specific isoform switches (e.g., IDH1, PL2G2A) associated with poorer outcomes.
- Epithelial-specific splicing regulators (ESRP1, ESRP2) are involved in AR-regulated alternative splicing and invasion.
Conclusions:
- AR modulates the prostate cancer cell transcriptome through alternative splicing.
- This provides a novel mechanism for CRPC progression and resistance to antiandrogen therapies (bicalutamide, enzalutamide).
- Targeting splicing regulators may offer new therapeutic strategies for advanced prostate cancer.
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