Targeting Hsp90 for the treatment of cancer

Martin J Drysdale1, Paul A Brough, Andrew Massey

  • 1Vernalis Ltd, Granta Park, Great Abington, Cambridge, CB1 6GB, UK. m.drysdale@vernalis.com

Current Opinion in Drug Discovery & Development
|August 8, 2006
PubMed

Insights

Heat shock protein (Hsp)90 inhibitors, like 17-AAG and 17-DMAG, show promise in cancer treatment by degrading oncogenic proteins. However, Hsp70 induction may limit their effectiveness.

Area of Science:

  • Oncology
  • Molecular Biology
  • Biochemistry

Background:

  • Heat shock protein (Hsp)90 is a crucial molecular chaperone.
  • Hsp90 facilitates the conformational maturation of client proteins, including oncogenic proteins driving tumor growth.

Purpose of the Study:

  • To review preclinical efficacy of Hsp90 inhibitors.
  • To discuss novel small-molecule Hsp90 inhibitors.
  • To explore Hsp90 inhibition mechanisms and potential limitations.

Main Methods:

  • Review of preclinical data for Hsp90 inhibitors 17-AAG and 17-DMAG.
  • Discussion of recent disclosures on purine and resorcinol analogs.
  • Analysis of Hsp70 induction and histone deacetylase inhibitor interactions.

Main Results:

  • 17-AAG and 17-DMAG demonstrated preclinical efficacy in mouse xenograft models.
  • New small-molecule Hsp90 inhibitors, including orally effective compounds, have been identified.
  • Hsp90 inhibition leads to client protein degradation and Hsp70 induction.

Conclusions:

  • Hsp90 inhibitors represent a promising therapeutic strategy in oncology.
  • The induction of anti-apoptotic Hsp70 may impact the long-term efficacy of Hsp90 inhibitors.
  • Histone deacetylase inhibitors can modulate Hsp90 activity, offering further avenues for research.

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