Steroid Sulphatase and Its Inhibitors: Past, Present, and Future
1Institute of Metabolism and Systems Research, University of Birmingham, Birmingham B15 2TT, UK.
Abstract:
Steroid sulphatase (STS), involved in the hydrolysis of steroid sulphates, plays an important role in the formation of both active oestrogens and androgens. Since these steroids significantly impact the proliferation of both oestrogen- and androgen-dependent cancers, many research groups over the past 30 years have designed and developed STS inhibitors. One of the main contributors to this field has been Prof. Barry Potter, previously at the University of Bath and now at the University of Oxford. Upon Prof. Potter's imminent retirement, this review takes a look back at the work on STS inhibitors and their contribution to our understanding of sulphate biology and as potential therapeutic agents in hormone-dependent disease. A number of potent STS inhibitors have now been developed, one of which, Irosustat (STX64, 667Coumate, BN83495), remains the only one to have completed phase I/II clinical trials against numerous indications (breast, prostate, endometrial). These studies have provided new insights into the origins of androgens and oestrogens in women and men. In addition to the therapeutic role of STS inhibition in breast and prostate cancer, there is now good evidence to suggest they may also provide benefits in patients with colorectal and ovarian cancer, and in treating endometriosis. To explore the potential of STS inhibitors further, a number of second- and third-generation inhibitors have been developed, together with single molecules that possess aromatase-STS inhibitory properties. The further development of potent STS inhibitors will allow their potential therapeutic value to be explored in a variety of hormone-dependent cancers and possibly other non-oncological conditions.
Insights
Steroid sulphatase (STS) inhibitors are crucial for understanding hormone-dependent diseases. Research has led to potent inhibitors like Irosustat, showing therapeutic potential in various cancers and conditions.
Area of Science:
- Biochemistry
- Endocrinology
- Pharmacology
Background:
- Steroid sulphatase (STS) hydrolyzes steroid sulphates, impacting active oestrogen and androgen formation.
- STS activity is linked to the proliferation of hormone-dependent cancers, driving research into inhibitors.
- Prof. Barry Potter's extensive work has significantly advanced the field of STS inhibitor development.
Purpose of the Study:
- To review the development of STS inhibitors over 30 years.
- To highlight their contribution to understanding sulphate biology.
- To assess their therapeutic potential in hormone-dependent diseases.
Main Methods:
- Review of scientific literature on STS inhibitors.
- Analysis of clinical trial data for compounds like Irosustat.
- Exploration of second- and third-generation inhibitor development.
Main Results:
- Numerous potent STS inhibitors have been developed.
- Irosustat is the only STS inhibitor to complete Phase I/II clinical trials for breast, prostate, and endometrial cancers.
- STS inhibition shows promise for colorectal and ovarian cancers, and endometriosis.
Conclusions:
- STS inhibitors offer therapeutic potential beyond breast and prostate cancer.
- Further development of STS inhibitors could benefit various hormone-dependent cancers and non-oncological conditions.
- Ongoing research focuses on next-generation inhibitors and dual aromatase-STS inhibitors.
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