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Identification of novel functional inhibitors of 17beta-hydroxysteroid dehydrogenase type III (17beta-HSD3)
Thomas E Spires1, Brian E Fink, Ellen K Kick
1Oncology Drug Discovery, Bristol-Myers Squibb, Pharmaceutical Research Institute, Princeton, NJ 08543, USA.
Background:
Endocrine therapy of prostate cancer (PCa) relies on agents which disrupt the biosynthesis of testosterone in the testis and/or by direct antagonism of active hormone on the androgen receptor (AR) in non-gonadal target tissues of hormone action such as the prostate.
Methods:
In an effort to evaluate new therapies which could inhibit gonadal or non-gonadal testosterone biosynthesis, we developed high throughput biochemical and cellular screening assays to identify inhibitors of 17beta-hydroxysteroid dehydrogenase type III (17beta-HSD3), the enzyme catalyzing the conversion of androstenedione (AdT) to testosterone.
Results:
Initial screening efforts identified a natural product, 18beta-glycyrrhetinic acid, and a novel derivative of AdT, 3-O-benzylandrosterone, as potent inhibitors of the enzyme. Further efforts led to the identification of several classes of non-steroidal, low molecular weight compounds that potently inhibited 17beta-HSD3 enzymatic activity. One of the most potent classes of 17beta-HSD3 inhibitors was a series of anthranilamide small molecules identified from a collection of compounds related to non-steroidal modulators of nuclear hormone receptors. The anthranilamide based 17beta-HSD3 inhibitors were exemplified by BMS-856, a compound displaying low nanomolar inhibition of 17beta-HSD3 enzymatic activity. In addition, this series of compounds displayed potent inhibition of 17beta-HSD3-mediated cellular conversion of AdT to testosterone and inhibited the 17beta-HSD3-mediated conversion of testosterone necessary to promote AR-dependent transcription.
Conclusions:
The identification of non-steroidal functional inhibitors of 17beta-HSD3 may be a useful complementary approach for the disruption of testosterone biosynthesis in the treatment of PCa.
Insights
Researchers identified novel non-steroidal compounds that inhibit 17beta-hydroxysteroid dehydrogenase type III (17beta-HSD3), an enzyme crucial for testosterone biosynthesis. These inhibitors offer a potential new strategy for treating prostate cancer (PCa).
Area of Science:
- Endocrinology
- Medicinal Chemistry
- Oncology
Background:
- Prostate cancer (PCa) endocrine therapy targets testosterone biosynthesis and androgen receptor (AR) signaling.
- Current treatments disrupt testicular testosterone production or AR antagonism in non-gonadal tissues.
Purpose of the Study:
- To develop screening assays for identifying inhibitors of 17beta-hydroxysteroid dehydrogenase type III (17beta-HSD3).
- To discover novel agents targeting gonadal or non-gonadal testosterone biosynthesis for PCa treatment.
Main Methods:
- Developed high-throughput biochemical and cellular screening assays.
- Screened for inhibitors of 17beta-HSD3, the enzyme converting androstenedione (AdT) to testosterone.
- Evaluated inhibition of 17beta-HSD3 enzymatic activity and cellular testosterone conversion.
Main Results:
- Identified 18beta-glycyrrhetinic acid and 3-O-benzylandrosterone as initial inhibitors.
- Discovered potent, low molecular weight, non-steroidal 17beta-HSD3 inhibitors, including anthranilamide derivatives.
- BMS-856, an anthranilamide, showed low nanomolar inhibition of 17beta-HSD3 and blocked testosterone conversion essential for AR-dependent transcription.
Conclusions:
- Non-steroidal inhibitors of 17beta-HSD3 represent a promising complementary strategy.
- Targeting 17beta-HSD3 offers a novel approach to disrupt testosterone biosynthesis in PCa therapy.
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