Alternative RNA splicing of the GIT1 gene is associated with neuroendocrine prostate cancer

Ahn R Lee1, Yu Gan1,2, Ning Xie1

  • 1Vancouver Prostate Centre, Department of Urologic Sciences, University of British Columbia, Vancouver, Canada.

Cancer Science
|November 13, 2018
PubMed

Insights

Alternative RNA splicing of the GIT1 gene is uniquely altered in treatment-induced neuroendocrine prostate cancer (t-NEPC). This splicing event, driven by SRRM4, impacts gene expression and cell function, potentially contributing to aggressive prostate cancer development.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Androgen receptor pathway inhibition (ARPI) therapies can induce aggressive neuroendocrine prostate cancer (t-NEPC).
  • t-NEPC is a growing clinical challenge, lacking targeted therapies due to unclear origins.
  • Approximately 20% of castration-resistant prostate cancer (CRPC) cases develop into t-NEPC.

Purpose of the Study:

  • To investigate the molecular underpinnings of treatment-induced neuroendocrine prostate cancer (t-NEPC).
  • To identify unique molecular events associated with t-NEPC development.
  • To explore the role of RNA splicing in t-NEPC pathogenesis.

Main Methods:

  • Analysis of GIT1 gene RNA splicing in t-NEPC patient tumors, xenografts, and cell models.
  • RNA-binding assays to determine SRRM4's role in GIT1 splicing.
  • Transcriptomic analysis to assess the functional impact of GIT1 splice variants (GIT1-A and GIT1-C).
  • Investigation of focal adhesion stability regulated by GIT1 variants.

Main Results:

  • Specific RNA splicing of the GIT1 gene, with increased GIT1-A and decreased GIT1-C, is uniquely associated with t-NEPC.
  • SRRM4 directly drives GIT1 splicing and is linked to the neuroendocrine phenotype in CRPC.
  • GIT1-A and GIT1-C variants differentially regulate transcriptomes, affecting cell adhesion, neural function, and epigenetic processes.
  • GIT1-A promotes focal adhesion stability, while GIT1-C has opposing effects.

Conclusions:

  • Alternative RNA splicing of the GIT1 gene is a novel hallmark of t-NEPC.
  • GIT1 splicing reprograms prostate cancer cell function through focal adhesion signaling.
  • These findings offer potential therapeutic targets for t-NEPC.

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