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April 5, 2026Cancer Research0 citations

Abstract 1787: Inhibition of MAOA suppresses intracrine androgen biosynthesis and enhances abiraterone treatment in castration-resistant prostate cancer

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KYKaisheng YuanHLHongling LiWGWen Guan

Key Points

  • This research aims to determine the role of MAOA in androgen biosynthesis and its potential as a target to improve abiraterone efficacy in CRPC.
  • Utilized ARSI-resistant CRPC models including cell lines and patient-derived xenografts.
  • Applied western blot and qPCR to assess expression of steroidogenic enzymes.
  • Measured testosterone and DHT levels using ELISA and mass spectrometry.
  • Conducted viability and tumorigenesis assays to evaluate the impact of MAOA inhibition combined with abiraterone.
  • ARSI-resistant models exhibited higher MAOA and steroidogenic enzyme expression than sensitive models.
  • MAOA silencing reduced CYP17A1 and AKR1C3 levels in resistant cancer cells.
  • Knocking down MAOA decreased testosterone and DHT levels in resistant cell lines.
  • MAOA inhibitors enhanced abiraterone effectiveness, restoring sensitivity in resistant models.

Abstract

Abstract Background: Androgen receptor signaling inhibitors (ARSIs), such as enzalutamide (Enz) and abiraterone (Abi), have become cornerstone treatments for castration-resistant prostate cancer (CRPC). Despite initial favorable responses, tumors often develop resistance to these agents, partly due to activation of intracrine androgen biosynthesis, underscoring the need for effective strategies to overcome resistance and prolong the utility of ARSIs. This study investigates the role of monoamine oxidase A (MAOA), a mitochondrial enzyme that degrades monoamines and has recently been implicated in prostate cancer, in intracrine androgen biosynthesis, and assesses the potential of MAOA inhibitors to improve Abi efficacy, an ARSI that blocks androgen biosynthesis. Methods: Multiple ARSI-resistant CRPC models were used, including C4-2B EnzR, VCaP EnzR, and C4-2B AbiR cell lines, as well as LuCaP147CR EnzR and AbiR patient-derived xenograft (PDX) models. Western blot and qPCR were used to analyze the expression of key steroidogenic enzymes involved in androgen biosynthesis in control and MAOA-knockdown cell lines. ELISA and mass spectrometry were used to measure testosterone and dihydrotestosterone (DHT) levels in cell conditioned media. Cell viability, colony formation, and in vivo tumorigenesis assays were used to evaluate the effects of MAOA inactivation by gene silencing or pharmacological approaches, combined with Abi, in both Abi-sensitive and -resistant CRPC models, including cell lines, PDX-derived organoids, and tumor xenografts. Results: The ARSI-resistant CRPC cells and PDXs showed increased expression levels of MAOA and select steroidogenic enzymes, including CYP17A1 and AKR1C3, compared to their sensitive counterparts. Silencing MAOA reduced the protein expression of CYP17A1 and AKR1C3, in EnzR and AbiR cells, likely through TWSIT1, a known MAOA downstream effector that mediates MAOA’s multifaceted functions in prostate cancer. MAOA knockdown also decreased testosterone and DHT levels, both with and without the androgen precursor androstenedione, in EnzR and AbiR cells. Further, antagonizing MAOA with gene silencing or pharmacological inhibitors, including clorgyline and phenelzine, enhanced Abi effectiveness in Abi-sensitive cells and restored Abi sensitivity in resistant cells both in vitro and in vivo. Conclusion: Our findings reveal that MAOA is essential for maintaining intracrine androgen biosynthesis associated with ARSI resistance and suggest that MAOA inhibitors could enhance Abi treatment in CRPC. Funding Acknowledgements: This work was supported by NIH/NCI grants R37CA233658, R01CA258634, and R01CA279528 to BJW. Citation Format: Kaisheng Yuan, Hongling Li, Wen Guan, Jing Wei, Boyang Wu. Inhibition of MAOA suppresses intracrine androgen biosynthesis and enhances abiraterone treatment in castration-resistant prostate cancer abstract. In: Proceedings of the American Association for Cancer Research Annual Meeting 2026; Part 1 (Regular Abstracts); 2026 Apr 17-22; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2026;86(7 Suppl):Abstract nr 1787.

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Yuan et al. (2026) studied this question.

synapsesocial.com/papers/69d1fe68a79560c99a0a4afehttps://doi.org/10.1158/1538-7445.am2026-1787
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