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Updated: Jun 11, 2025

Engineering Artificial Factors to Specifically Manipulate Alternative Splicing in Human Cells
Published on: April 26, 2017
Defining Splicing Factor Requirements for Androgen Receptor Variant Synthesis in Advanced Prostate Cancer
Laura Walker1, Ruaridh Duncan1, Beth Adamson1
1Newcastle University Centre for Cancer, Newcastle upon Tyne, United Kingdom.
Abstract:
Resistance to androgen receptor (AR)-targeted therapies represents a major challenge in prostate cancer. A key mechanism of treatment resistance in patients who progress to castration-resistant prostate cancer (CRPC) is the generation of alternatively spliced AR variants (AR-V). Unlike full-length AR isoforms, AR-Vs are constitutively active and refractory to current receptor-targeting agents and hence drive tumor progression. Identifying regulators of AR-V synthesis may therefore provide new therapeutic opportunities in combination with conventional AR-targeting agents. Our understanding of AR transcript splicing, and the factors that control the synthesis of AR-Vs, remains limited. Although candidate-based approaches have identified a small number of AR-V splicing regulators, an unbiased analysis of splicing factors important for AR-V generation is required to fill an important knowledge gap and furnish the field with novel and tractable targets for prostate cancer treatment. To that end, we conducted a bespoke CRISPR screen to profile splicing factor requirements for AR-V synthesis. MFAP1 and CWC22 were shown to be required for the generation of AR-V mRNA transcripts, and their depletion resulted in reduced AR-V protein abundance and cell proliferation in several CRPC models. Global transcriptomic analysis of MFAP1-depleted cells revealed both AR-dependent and -independent transcriptional impacts, including genes associated with DNA damage response. As such, MFAP1 downregulation sensitized prostate cancer cells to ionizing radiation, suggesting that therapeutically targeting AR-V splicing could provide novel cellular vulnerabilities which can be exploited in CRPC. Implications: We have utilized a CRISPR screening approach to identify key regulators of pathogenic AR splicing in prostate cancer.
Insights
Identifying regulators of androgen receptor variant (AR-V) splicing is crucial for overcoming treatment resistance in prostate cancer. This study identified MFAP1 and CWC22 as key splicing factors for AR-V generation, offering new therapeutic targets for castration-resistant prostate cancer.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Androgen receptor (AR)-targeted therapies are challenged by treatment resistance in prostate cancer.
- Castration-resistant prostate cancer (CRPC) often involves constitutively active AR variants (AR-Vs) that drive tumor progression.
- Limited understanding of AR-V splicing regulation hinders the development of novel therapeutic strategies.
Purpose of the Study:
- To identify novel splicing factors regulating the synthesis of AR variants (AR-Vs) in prostate cancer.
- To uncover potential therapeutic targets for overcoming resistance to AR-targeted therapies in CRPC.
- To investigate the functional impact of AR-V splicing regulators in CRPC models.
Main Methods:
- A bespoke CRISPR screen was employed to systematically profile splicing factor requirements for AR-V synthesis.
- Depletion of identified splicing factors (MFAP1, CWC22) was performed in CRPC models.
- Global transcriptomic analysis was conducted on MFAP1-depleted cells.
Main Results:
- MFAP1 and CWC22 were identified as essential for AR-V mRNA transcript generation.
- Depletion of MFAP1 and CWC22 reduced AR-V protein levels and CRPC cell proliferation.
- MFAP1 downregulation sensitized prostate cancer cells to ionizing radiation, impacting DNA damage response pathways.
Conclusions:
- MFAP1 and CWC22 are critical regulators of pathogenic AR splicing in prostate cancer.
- Targeting AR-V splicing represents a promising therapeutic strategy for CRPC.
- MFAP1 inhibition may enhance sensitivity to DNA-damaging agents like ionizing radiation in CRPC treatment.
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