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

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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