PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 5, 2026Cancer Research0 citations

Abstract 5686: SF3B1 inhibition suppresses prostate cancer by disrupting ATRX splicing and inducing cell cycle arrest

View Full Paper
LLLinyue LiWDWeijian DingZNZhihao Nie

Key Points

  • This research aims to explore the effects of SF3B1 inhibition on prostate cancer progression and its underlying mechanisms.
  • Utilized SF3B1 inhibitor Pladienolide B in prostate cancer cell lines and xenograft models.
  • Conducted RNA-seq analysis to identify splicing alterations associated with cell-cycle arrest.
  • Performed flow cytometry and live-cell imaging to validate findings on cell cycle phases.
  • Investigated splicing changes in ATRX and its interaction with MeCP2.
  • Assessed combinatorial effects with existing prostate cancer therapies like docetaxel and olaparib.
  • Pladienolide B demonstrated significant antitumor activity in various prostate cancer models.
  • Inhibited SF3B1 resulted in prolonged S phase and induced cell cycle arrest in DU145 cells.
  • Identified aberrant splicing of ATRX disrupting genome stability pathways.
  • CDK12 was found to be an upstream regulator of SF3B1, with its inhibition leading to cell-cycle arrest.
  • Combined treatment with Pladienolide B and olaparib showed enhanced antitumor effects compared to monotherapy.

Abstract

Abstract Prostate cancer is the most common malignancy in men in the United States, and dysregulated RNA splicing has emerged as a critical driver of prostate cancer progression. Although alternative splicing pathway genes are mutated in approximately 4% of prostate cancers, mutations in the core splicing factor SF3B1 represent a disproportionately high fraction (27.5%). However, whether and how SF3B1 inhibition suppresses prostate cancer progression remains unclear. Here, we demonstrate that the SF3B1 inhibitor Pladienolide B exerts robust antitumor activity in prostate cancer cell lines, cell-derived xenografts, and patient-derived xenografts. RNA-seq analysis revealed widespread splicing alterations enriched in pathways regulating cell-cycle arrest, which we validated using flow cytometry and live-cell imaging. Following double-thymidine synchronization, Pladienolide B-treated DU145 cells exhibited a markedly prolonged S phase, indicating that SF3B1 inhibition suppresses tumor growth primarily by inducing cell-cycle arrest. To elucidate the molecular basis of this arrest, we examined individual splicing changes and identified a key event in ATRX, which retained a 74-bp cryptic exon before exon 25 upon Pladienolide B treatment. This aberrant splicing disrupted the ATRX-MeCP2 interaction required for maintaining genome stability through repression of R-loop accumulation in heterochromatin. Interestingly, we further identified CDK12 as a previously unrecognized upstream kinase of SF3B1. CDK12 physically interacted with SF3B1, and its inhibition by THZ531 reduced SF3B1 phosphorylation at T313, induced cell-cycle arrest, and suppressed tumor growth. Given the therapeutic potential of SF3B1 inhibition, we evaluated combinatorial strategies with current prostate cancer treatments. Inhibition of SF3B1 activity by THZ531 or Pladienolide B conferred resistance to docetaxel, a first-line therapy for metastatic disease. Notably, Pladienolide B exhibited synergistic antitumor effects when combined with the PARP inhibitor olaparib. Collectively, our findings reveal how SF3B1 inhibition impairs prostate cancer progression through RNA splicing dysregulation, and they provide a rationale for integrating SF3B1-targeted therapies into prostate cancer treatment. Citation Format: Linyue Li, Weijian Ding, Zhihao Nie, Congrong Jiang, Ruining Zhao, Siyuan Xia, Baotong Zhang. SF3B1 inhibition suppresses prostate cancer by disrupting ATRX splicing and inducing cell cycle arrest abstract. In: Proceedings of the American Association for Cancer Research Annual Meeting 2026; Part 1 (Regular Abstracts); 2026 Apr 17-22; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2026;86(7 Suppl):Abstract nr 5686.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69d1fd9ca79560c99a0a3c0fhttps://doi.org/10.1158/1538-7445.am2026-5686
Ask AI
Helpful
Bookmark
Share
View Full Paper