Identification of transcription factor co-regulators that drive prostate cancer progression

Manjunath Siddappa1, Sajad A Wani1, Mark D Long2

  • 1College of Pharmacy, Pharmaceutics and Pharmaceutical Chemistry, The Ohio State University, 536 Parks Hall, 500 West 12th Ave, Columbus, OH, 43210, USA.

Scientific Reports
|November 24, 2020
PubMed

Insights

This study identifies key transcription factors and coregulators altered in prostate cancer (PCa). Reduced PGC1α expression drives aggressive PCa, impacting gene networks and patient survival.

Area of Science:

  • Cancer Biology
  • Genomics
  • Molecular Oncology

Background:

  • Transcriptional control is crucial in hormone-dependent cancers like prostate cancer (PCa).
  • Identifying specific transcription factors (TFs) and coregulators driving PCa oncogenesis is challenging due to their vast number and genomic targets.

Purpose of the Study:

  • To identify commonly altered TFs and coregulators in PCa across multiple cohorts.
  • To investigate the functional impact of altered coregulators, specifically PGC1α, on PCa progression and gene expression.

Main Methods:

  • Generated comprehensive lists of TFs, coactivators (COA), corepressors (COR), and mixed-function coregulators (MIXED).
  • Analyzed expression, copy number alterations, and mutation status across seven PCa cohorts using bootstrapping.
  • Performed stable knockdown of PGC1α, followed by cell biology experiments and RNA-Seq.

Main Results:

  • Significant down-regulation of TFs, COAs, CORs, and MIXED genes was observed, correlating with protein expression.
  • Reduced PPARGC1A (encoding PGC1α) expression was linked to worse disease-free survival in localized PCa.
  • PGC1α knockdown increased cell growth and invasiveness, profoundly altering gene expression and the AR-dependent transcriptome.

Conclusions:

  • PGC1α is a clinically significant, yet underexplored, coregulator in aggressive early-stage PCa.
  • The study presents a robust methodology for identifying cancer-driver coregulators.
  • Altered PGC1α expression impacts key gene networks associated with PCa progression and survival.

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