High-Content Screening Campaign to Identify Compounds That Inhibit or Disrupt Androgen Receptor-Transcriptional

Ashley T Fancher1, Yun Hua1, Daniel P Camarco1

  • 11 Department of Pharmaceutical Sciences, School of Pharmacy, University of Pittsburgh , Pittsburgh, Pennsylvania.

Insights

Researchers screened over 143,000 compounds to find new drugs targeting castration-resistant prostate cancer (CRPC). They identified compounds that disrupt the Androgen Receptor-TIF2 protein interaction, a key factor in CRPC progression.

Area of Science:

  • Oncology
  • Molecular Biology
  • Drug Discovery

Background:

  • Castration-resistant prostate cancer (CRPC) is an aggressive, noncurable form of prostate cancer.
  • Overexpression of Androgen Receptor (AR) coactivators, like transcriptional intermediary factor 2 (TIF2), is linked to poor CRPC patient outcomes.
  • Targeting the AR-TIF2 protein-protein interaction (PPI) presents a potential therapeutic strategy for CRPC.

Purpose of the Study:

  • To implement and validate an AR-TIF2 protein-protein interaction biosensor (PPIB) assay for high-content screening (HCS).
  • To identify novel small molecules that inhibit or disrupt AR-TIF2 PPI formation.
  • To discover potential therapeutic agents for treating prostate cancer and CRPC.

Main Methods:

  • A high-content screening (HCS) campaign of 143,535 compounds using the AR-TIF2 PPIB assay.
  • Utilized multiparameter HCS data to identify and deprioritize cytotoxic or autofluorescent compounds.
  • Conducted counter screens including p53-hDM2 PPIB, glucocorticoid receptor (GR) nuclear translocation, and AR nuclear localization assays to assess compound specificity and mechanism of action.

Main Results:

  • The AR-TIF2 PPIB assay demonstrated robust and reproducible performance.
  • Identified compounds that inhibit dihydrotestosterone (DHT)-induced AR-TIF2 PPI formation or disrupt existing AR-TIF2 PPIs.
  • Hit rate for the AR-TIF2 PPIB HCS campaign was 0.12%; 62.2% of confirmed actives inhibited AR-TIF2 PPI formation with IC50 < 40 μM.
  • Deprioritized compounds showing cross-reactivity with GR or AR pathways, focusing on AR-specific inhibitors.

Conclusions:

  • The HCS campaign successfully identified AR-TIF2 PPIB inhibitors/disruptors.
  • Most identified hits demonstrated dual activity in inhibiting AR-TIF2 PPI formation and disrupting pre-existing complexes.
  • Further characterization is ongoing to select lead compounds for medicinal chemistry optimization and development of novel CRPC therapeutics.

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