Old issues and new perspectives on prostate cancer hormonal therapy: the molecular substratum

Leonardo Oliveira Reis1

  • 1Urologic Oncology Division, School of Medical Sciences, University of Campinas, R Votorantim 51, ap 43, Unicamp, Campinas, SP 13073-090, Brazil. reisleo@unicamp.br

Insights

Secondary hormonal therapy for castration-resistant prostate cancer (CRPC) is underutilized. Understanding androgen receptor (AR) mechanisms is key to optimizing treatments and improving patient outcomes.

Area of Science:

  • Oncology
  • Molecular Biology
  • Endocrinology

Background:

  • Castration-resistant prostate cancer (CRPC) treatment relies on secondary hormonal therapy, which remains underutilized.
  • The androgen receptor (AR) is central to CRPC progression, with diverse molecular mechanisms driving treatment resistance.
  • Current androgen-depletion strategies are often incomplete, necessitating a deeper understanding of residual androgen activity.

Purpose of the Study:

  • To comprehensively review the molecular mechanisms underlying secondary hormonal therapies for CRPC.
  • To identify key AR-mediated pathways that promote tumor growth in CRPC.
  • To highlight targets for optimizing hormonal therapy in advanced prostate cancer.

Main Methods:

  • A comprehensive literature review was conducted on molecular mechanisms of secondary hormonal therapies in CRPC.
  • Analysis focused on AR-dependent and independent pathways contributing to treatment resistance.
  • Key concepts in clinical management, including maintaining castrate state and sequential therapy, were considered.

Main Results:

  • Five fundamental AR-mediated mechanisms drive CRPC tumor growth, including intratumoral androgen persistence, AR mutations, AR gene amplification, altered AR coactivator/corepressor ratios, and outlaw AR pathways.
  • Three of these mechanisms are ligand-dependent, highlighting the role of residual androgens.
  • The stem cell pathway also plays a crucial role in CRPC progression.

Conclusions:

  • Optimizing secondary hormonal therapy for CRPC requires a multimodal approach addressing the complex AR signaling network.
  • Understanding the molecular basis of resistance is paramount for developing more effective treatment strategies.
  • Targeting AR-dependent and independent pathways offers potential for improved survival and symptom management in CRPC patients.

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