BET Bromodomain Inhibition Blocks an AR-Repressed, E2F1-Activated Treatment-Emergent Neuroendocrine Prostate Cancer

Dae-Hwan Kim1, Duanchen Sun1, William K Storck2,3

  • 1Knight Cancer Institute, Oregon Health & Science University (OHSU), Portland, Oregon.

Abstract

Insights

Androgen receptor (AR) inhibition drives neuroendocrine prostate cancer (NEPC) lineage plasticity. Transcription factors E2F1 and BRD4 activate this AR-repressed program, which BET inhibitors can block, offering a new treatment strategy.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Research

Background:

  • Lineage plasticity, particularly the switch to neuroendocrine prostate cancer (NEPC), is a key mechanism of treatment resistance in prostate cancer.
  • Treatment-emergent NEPC (t-NEPC) is increasing with novel androgen receptor (AR) inhibitors, and its underlying drivers remain unclear.
  • While t-NEPC often expresses AR, its functional role in this aggressive subtype is unknown.

Purpose of the Study:

  • To investigate the role of the AR in regulating lineage plasticity in enzalutamide-resistant t-NEPC.
  • To identify targetable factors that promote t-NEPC lineage plasticity.

Main Methods:

  • Utilized an integrative systems biology approach comparing enzalutamide-resistant t-NEPC cell lines with their parental, enzalutamide-sensitive adenocarcinoma counterparts.
  • Investigated the functional role of AR and other key factors in t-NEPC lineage plasticity.

Main Results:

  • AR inhibition specifically accentuates lineage plasticity in t-NEPC cells, unlike in sensitive adenocarcinoma cells.
  • The AR-repressed lineage plasticity program is driven by the coordinated activation of transcription factor E2F1 and BET bromodomain protein BRD4.
  • BET inhibition (BETi) effectively blocks the E2F1/BRD4-regulated program and reduces the growth of t-NEPC tumor models.

Conclusions:

  • E2F1 and BRD4 are critical regulators of the AR-repressed lineage plasticity program in t-NEPC.
  • BET inhibition represents a promising therapeutic strategy to counteract t-NEPC lineage plasticity.

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