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Updated: Oct 3, 2026

Malachite Green Assay for the Discovery of Heat-Shock Protein 90 Inhibitors
Published on: January 20, 2023
HSP90 as a new therapeutic target for cancer therapy: the story unfolds
1CRC Centre for Cancer Therapeutics, Institute of Cancer Research, Block E, 15 Cotswold Road, Sutton, Surrey SM2 5NG, UK.
Abstract:
Current anticancer drug development strategies involve identifying novel molecular targets which are crucial for tumourigenesis. The molecular chaperone heat shock protein (HSP) 90 is of interest as an anticancer drug target because of its importance in maintaining the conformation, stability and function of key oncogenic client proteins involved in signal transduction pathways leading to proliferation, cell cycle progression and apoptosis, as well as other features of the malignant phenotype such as invasion, angiogenesis and metastasis. The natural product HSP90 inhibitors geldanamycin and radicicol exert their antitumour effect by inhibiting the intrinsic ATPase activity of HSP90, resulting in degradation of HSP90 client proteins via the ubiquitin proteosome pathway. Anticancer selectivity may derive from the simultaneous combinatorial effects of HSP90 inhibitors on multiple cancer targets and pathways. 17-allylamino, 17-demethoxygeldanamycin (17AAG), a geldanamycin derivative, showed good activity and cancer selectivity in preclinical models and has now progressed to Phase I clinical trial in cancer patients with encouraging initial results. Phase II trials including combination studies with cytotoxic agents are now being planned and these should allow the therapeutic activity of 17AAG to be determined. Second generation HSP90 inhibitors may be designed to overcome some of the drawbacks of 17AAG, including limited oral bioavailability and solubility. They could also be engineered to target specific functions of HSP90, which may not only provide greater molecular selectivity and clinical benefit but may also increase understanding of the complex functions of this molecular chaperone. HSP90 inhibitors provide proof of concept for drugs directed at HSP90 and protein folding and this principle may be applicable to other medical conditions involving protein aggregation and stability.
Insights
Heat shock protein (HSP) 90 inhibitors target key proteins in cancer cells. The HSP90 inhibitor 17-allylamino, 17-demethoxygeldanamycin (17AAG) shows promise in early clinical trials for cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Heat shock protein (HSP) 90 is crucial for maintaining oncogenic client proteins.
- HSP90's role in cancer includes proliferation, angiogenesis, and metastasis.
- Targeting HSP90 offers a novel strategy for anticancer drug development.
Purpose of the Study:
- To evaluate the potential of HSP90 inhibitors as anticancer agents.
- To assess the efficacy and selectivity of 17-allylamino, 17-demethoxygeldanamycin (17AAG).
- To explore the development of next-generation HSP90 inhibitors.
Main Methods:
- Investigated natural product HSP90 inhibitors (geldanamycin, radicicol).
- Studied the geldanamycin derivative 17AAG in preclinical models and Phase I clinical trials.
- Planning Phase II trials for 17AAG, including combination therapies.
Main Results:
- HSP90 inhibitors block HSP90 ATPase activity, leading to client protein degradation.
- 17AAG demonstrated significant anticancer activity and selectivity in preclinical studies.
- Initial Phase I clinical trial results for 17AAG are encouraging.
Conclusions:
- HSP90 inhibitors represent a validated therapeutic approach for cancer.
- 17AAG is a promising drug candidate progressing to further clinical evaluation.
- Future HSP90 inhibitors may offer improved bioavailability, solubility, and targeted inhibition.
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