Understanding the function of Pax5 in development of docetaxel-resistant neuroendocrine-like prostate cancers

Sreyashi Bhattacharya1, Hannah L Harris2, Ridwan Islam1

  • 1Department of Biochemistry and Molecular Biology, University of Nebraska Medical Center, Omaha, NE, USA.

Cell Death & Disease
|August 25, 2024
PubMed

Insights

Therapy-induced neuroendocrine-like prostate cancer (t-NEPC) develops resistance to ARSI treatments. Pax5 activation drives neuronal features and taxane resistance in t-NEPC, suggesting Pax5 as a therapeutic target to restore sensitivity.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Research

Background:

  • Androgen Receptor Signaling Inhibitor (ARSI) therapies can induce aggressive therapy-induced neuroendocrine-like prostate cancer (t-NEPC).
  • t-NEPC exhibits resistance to standard taxane chemotherapies and has poor survival rates.
  • Current treatments for t-NEPC have limited efficacy and significant systemic toxicity.

Purpose of the Study:

  • To identify key transcription factors driving neuronal characteristics in t-NEPC.
  • To investigate the role of these factors in taxane resistance.
  • To explore potential therapeutic targets for overcoming treatment resistance in t-NEPC.

Main Methods:

  • Utilized ATAC-Seq, ChIP-seq, and RNA-seq on NE-like cell line models.
  • Analyzed transcriptionally active and enriched NE-like cancer-specific genes.
  • Performed pathway analysis to understand gene expression regulation and functional roles.

Main Results:

  • Identified Pax5 as a crucial transcription factor for neuronal gene expression in t-NEPC.
  • Demonstrated that Pax5 regulates pathways involved in neuronal communication and adhesion.
  • Showed that Pax5 depletion sensitizes NE-like cells to docetaxel by disrupting cellular communication and growth factor signaling.
  • Revealed epigenetic modifications, including hydroxymethylation, that promote Pax5 expression via Pbx1 binding.

Conclusions:

  • ARSI therapy induces epigenetic changes leading to Pax5 activation in t-NEPC.
  • Pax5 activation promotes taxane resistance by enabling NE-like cancer traits.
  • Targeting the Pax5 pathway offers a promising strategy to re-sensitize t-NEPC to taxane therapies.