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Steroid sulphatase inhibitors for breast cancer therapy
A Purohit1, L W L Woo, S K Chander
1Endocrinology and Metabolic Medicine and Sterix Ltd, Faculty of Medicine, Imperial College, St. Mary's Hospital, London W2 1NY, UK. a.purohit@imperial.ac.uk
Abstract:
In contrast to aromatase inhibitors, which are now in clinical use, the development of steroid sulphatase (STS) inhibitors for breast cancer therapy is still at an early stage. STS regulates the formation of oestrone from oestrone sulphate (E1S) but also controls the hydrolysis of dehydroepiandrosterone sulphate (DHEA-S). DHEA can be reduced to 5-androstenediol (Adiol), a steroid with potent oestrogenic properties. The active pharmacophore for potent STS inhibitors has now been identified, i.e. a sulphamate ester group linked to an aryl ring. This has led to the development of a number of STS inhibitors, some of which are due to enter Phase I trials in the near future. Such first generation inhibitors include the tricyclic coumarin-based 667 COUMATE. Aryl sulphamates, such as 667 COUMATE, are taken up by red blood cells (rbc), binding to carbonic anhydrase II (CA II), and transit the liver without undergoing first-pass inactivation. 667 COUMATE is also a potent inhibitor of CA II activity with an IC50 of 17 nM. Second generation STS inhibitors, such as 2-methoxyoestradiol bis-sulphamate (2-MeOE2bisMATE), in addition to inhibiting STS activity, also inhibit the growth of oestrogen receptor negative (ER-) tumours in mice and are anti-angiogenic. As the active pharmacaphores for the inhibition of aromatase and STS are now known it may be possible to develop third generation inhibitors that are capable of inhibiting the activities of both enzymes. Whilst exploring the potential of such a strategy it was discovered that 667 COUMATE possessed weak aromatase inhibitory properties with an IC50 of 300 nM in JEG-3 cells. The identification of potent STS inhibitors will allow the therapeutic potential of this new class of drug to be explored in post-menopausal women with hormone-dependent breast cancer. Second generation inhibitors, such as 2-MeOE2bisMATE, which also inhibit the growth of ER- tumours should be active against a wide range of cancers.
Insights
Steroid sulphatase (STS) inhibitors are a new class of breast cancer drugs. First-generation inhibitors like 667 COUMATE show promise, with second-generation drugs demonstrating broader anti-cancer effects.
Area of Science:
- Endocrinology
- Oncology
- Medicinal Chemistry
Background:
- Steroid sulphatase (STS) is crucial for oestrogen formation and dehydroepiandrosterone sulphate hydrolysis.
- Development of STS inhibitors for breast cancer therapy is emerging, distinct from current aromatase inhibitors.
- The active pharmacophore for STS inhibition is identified as a sulphamate ester linked to an aryl ring.
Purpose of the Study:
- To review the development and potential of steroid sulphatase (STS) inhibitors for breast cancer treatment.
- To highlight first and second-generation STS inhibitors and their mechanisms.
- To explore the possibility of developing dual aromatase and STS inhibitors.
Main Methods:
- Identification of the active pharmacophore for STS inhibitors.
- Development and characterization of first-generation STS inhibitors (e.g., 667 COUMATE).
- Development and evaluation of second-generation STS inhibitors (e.g., 2-MeOE2bisMATE) for broader anti-cancer activity.
Main Results:
- First-generation STS inhibitors, such as 667 COUMATE, utilize a sulphamate ester pharmacophore and interact with carbonic anhydrase II.
- Second-generation STS inhibitors, like 2-MeOE2bisMATE, exhibit STS inhibition, anti-angiogenic properties, and inhibit oestrogen receptor-negative tumors.
- 667 COUMATE demonstrated weak aromatase inhibitory activity.
Conclusions:
- Potent STS inhibitors are being developed, offering new therapeutic avenues for hormone-dependent breast cancer in post-menopausal women.
- Second-generation STS inhibitors show potential against a wider range of cancers, including oestrogen receptor-negative types.
- Further research into dual-action inhibitors targeting both STS and aromatase may yield novel cancer therapies.
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