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Updated: May 30, 2026

Murine Prostate Micro-dissection and Surgical Castration
Published on: May 11, 2016
Dihydrotestosterone synthesis bypasses testosterone to drive castration-resistant prostate cancer
Kai-Hsiung Chang1, Rui Li, Mahboubeh Papari-Zareei
1Division of Hematology and Oncology, Department of Internal Medicine, University of Texas Southwestern Medical Center, Dallas, TX 75390-8852, USA.
Abstract:
In the majority of cases, advanced prostate cancer responds initially to androgen deprivation therapy by depletion of gonadal testosterone. The response is usually transient, and metastatic tumors almost invariably eventually progress as castration-resistant prostate cancer (CRPC). The development of CRPC is dependent upon the intratumoral generation of the potent androgen, dihydrotestosterone (DHT), from adrenal precursor steroids. Progression to CRPC is accompanied by increased expression of steroid-5α-reductase isoenzyme-1 (SRD5A1) over SRD5A2, which is otherwise the dominant isoenzyme expressed in the prostate. DHT synthesis in CRPC is widely assumed to require 5α-reduction of testosterone as the obligate precursor, and the increased expression of SRD5A1 is thought to reflect its role in converting testosterone to DHT. Here, we show that the dominant route of DHT synthesis in CRPC bypasses testosterone, and instead requires 5α-reduction of androstenedione by SRD5A1 to 5α-androstanedione, which is then converted to DHT. This alternative pathway is operational and dominant in both human CRPC cell lines and fresh tissue obtained from human tumor metastases. Moreover, CRPC growth in mouse xenograft models is dependent upon this pathway, as well as expression of SRD5A1. These findings reframe the fundamental metabolic pathway that drives CRPC progression, and shed light on the development of new therapeutic strategies.
Insights
Castration-resistant prostate cancer (CRPC) progression is driven by a newly discovered DHT synthesis pathway bypassing testosterone. This pathway, utilizing androstenedione and SRD5A1, offers new therapeutic targets for advanced prostate cancer.
Area of Science:
- Oncology
- Biochemistry
- Metabolism
Background:
- Advanced prostate cancer initially responds to androgen deprivation therapy but progresses to castration-resistant prostate cancer (CRPC).
- CRPC development relies on dihydrotestosterone (DHT) synthesis from adrenal precursors.
- Increased steroid-5α-reductase isoenzyme-1 (SRD5A1) expression is observed in CRPC, previously thought to convert testosterone to DHT.
Purpose of the Study:
- To elucidate the dominant metabolic pathway for DHT synthesis in CRPC.
- To investigate the role of SRD5A1 in CRPC progression.
- To identify novel therapeutic targets for CRPC.
Main Methods:
- Analysis of DHT synthesis pathways in human CRPC cell lines and patient tumor tissues.
- Assessment of CRPC growth in mouse xenograft models.
- Evaluation of SRD5A1 expression and its role in the identified pathway.
Main Results:
- The primary route of DHT synthesis in CRPC bypasses testosterone.
- DHT is synthesized via 5α-reduction of androstenedione by SRD5A1 to 5α-androstanedione.
- CRPC growth is dependent on this alternative pathway and SRD5A1 expression.
Conclusions:
- A novel metabolic pathway drives CRPC progression, distinct from the assumed testosterone-dependent route.
- SRD5A1 plays a critical role in this alternative DHT synthesis pathway.
- These findings open new avenues for therapeutic strategies targeting CRPC metabolism.
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