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BMX controls 3βHSD1 and sex steroid biosynthesis in cancer
Xiuxiu Li1, Michael Berk1, Christopher Goins2
1Genitourinary Malignancies Research Center, Lerner Research Institute.
Abstract:
Prostate cancer is highly dependent on androgens and the androgen receptor (AR). Hormonal therapies inhibit gonadal testosterone production, block extragonadal androgen biosynthesis, or directly antagonize AR. Resistance to medical castration occurs as castration-resistant prostate cancer (CRPC) and is driven by reactivation of the androgen-AR axis. 3β-hydroxysteroid dehydrogenase-1 (3βHSD1) serves as the rate-limiting step for potent androgen synthesis from extragonadal precursors, thereby stimulating CRPC. Genetic evidence in men demonstrates the role of 3βHSD1 in driving CRPC. In postmenopausal women, 3βHSD1 is required for synthesis of aromatase substrates and plays an essential role in breast cancer. Therefore, 3βHSD1 lies at a critical junction for the synthesis of androgens and estrogens, and this metabolic flux is regulated through germline-inherited mechanisms. We show that phosphorylation of tyrosine 344 (Y344) occurs and is required for 3βHSD1 cellular activity and generation of Δ4, 3-keto-substrates of 5α-reductase and aromatase, including in patient tissues. BMX directly interacts with 3βHSD1 and is necessary for enzyme phosphorylation and androgen biosynthesis. In vivo blockade of 3βHSD1 Y344 phosphorylation inhibits CRPC. These findings identify what we believe to be new hormonal therapy pharmacologic vulnerabilities for sex-steroid dependent cancers.
Insights
Targeting 3β-hydroxysteroid dehydrogenase-1 (3βHSD1) phosphorylation inhibits castration-resistant prostate cancer (CRPC) growth. This identifies a new therapeutic vulnerability in hormone-dependent cancers by blocking androgen synthesis.
Area of Science:
- Biochemistry
- Oncology
- Molecular Biology
Background:
- Prostate cancer relies heavily on androgens and the androgen receptor (AR).
- Castration-resistant prostate cancer (CRPC) emerges due to the reactivation of the androgen-AR axis.
- 3β-hydroxysteroid dehydrogenase-1 (3βHSD1) is crucial for potent androgen synthesis, driving CRPC progression.
Purpose of the Study:
- To investigate the role of 3βHSD1 phosphorylation in androgen synthesis and CRPC.
- To identify potential new therapeutic targets for hormone-dependent cancers.
Main Methods:
- Investigated the phosphorylation of 3βHSD1 at tyrosine 344 (Y344).
- Examined the interaction between BMX and 3βHSD1.
- Assessed the impact of blocking 3βHSD1 Y344 phosphorylation on CRPC in vivo.
Main Results:
- Phosphorylation of 3βHSD1 at Y344 is essential for its cellular activity and the generation of androgen precursors.
- BMX directly interacts with 3βHSD1, mediating its phosphorylation and subsequent androgen biosynthesis.
- Inhibition of 3βHSD1 Y344 phosphorylation effectively suppressed CRPC growth in vivo.
Conclusions:
- 3βHSD1 phosphorylation is a critical regulatory step in androgen synthesis.
- Targeting 3βHSD1 Y344 phosphorylation presents a novel pharmacologic strategy for treating CRPC and other sex-steroid dependent cancers.
- This study uncovers new vulnerabilities in hormonal therapies for hormone-driven malignancies.
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