Next-generation steroidogenesis inhibitors, dutasteride and abiraterone, attenuate but still do not eliminate

Steven Pham1, Subrata Deb2, Dong Sheng Ming1

  • 1The Vancouver Prostate Centre at Vancouver General Hospital, 2660 Oak Street, Vancouver, BC V6H 3Z6, Canada.

Insights

Castration-resistant prostate cancer cells can still produce androgens. Abiraterone and dutasteride treatments partially inhibit this steroidogenesis, with combined use showing potential for enhanced therapeutic effects in prostate cancer treatment.

Area of Science:

  • Oncology
  • Endocrinology
  • Biochemistry

Background:

  • Castration-resistant prostate cancer (CRPC) remains androgen-dependent despite androgen ablation therapy.
  • CRPC tumors can synthesize androgens via de novo steroidogenesis from cholesterol.
  • Understanding steroidogenesis pathways is crucial for developing effective CRPC treatments.

Purpose of the Study:

  • To investigate the ability of 22RV1 prostate cancer cells to convert steroid precursors.
  • To evaluate the effects of abiraterone and dutasteride on de novo steroidogenesis in CRPC cells.
  • To assess the combined efficacy of these inhibitors on androgen production and androgen receptor (AR) activation.

Main Methods:

  • Utilized 22RV1 prostate cancer cells under steroid-starved conditions.
  • Supplemented cells with steroid precursors like dehydroepiandrosterone (DHEA) and progesterone.
  • Treated cells with abiraterone and dutasteride, alone and in combination, measuring testosterone, dihydrotestosterone (DHT), and precursor levels.
  • Assessed mRNA expression of steroidogenic enzymes and AR activation.

Main Results:

  • 22RV1 cells produced testosterone and DHT from DHEA and progesterone, with higher conversion from DHEA.
  • Abiraterone and dutasteride differentially affected steroid precursor levels and testosterone/DHT production.
  • Combined abiraterone and dutasteride showed varied effects on androgens depending on substrate presence, but decreased prostate-specific antigen (PSA) secretion more than MDV3100.
  • Abiraterone partially inhibited AR activation.

Conclusions:

  • Abiraterone and dutasteride alone or combined do not completely inhibit steroidogenesis in 22RV1 cells.
  • Combined inhibition of androgen production and AR blockade shows potential therapeutic benefit exceeding MDV3100.
  • Further research into bypass mechanisms is needed for optimal therapeutic suppression of androgens in CRPC.

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