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Updated: Aug 6, 2025

Malachite Green Assay for the Discovery of Heat-Shock Protein 90 Inhibitors
Published on: January 20, 2023
Pan-HSP90 ligand binding reveals isoform-specific differences in plasticity and water networks
Timothy R Stachowski1, Stanley Nithianantham1, Murugendra Vanarotti1
1Department of Chemical Biology and Therapeutics, St. Jude Children's Research Hospital, Memphis, Tennessee, USA.
Abstract:
Isoforms of heat shock protein 90 (HSP90) fold oncoproteins that facilitate all 10 hallmarks of cancer. However, its promise as a therapeutic target remains unfulfilled as there is still no FDA-approved drug targeting HSP90 in disease. Among the reasons hindering progress are side effects caused by pan-HSP90 inhibition. Selective targeting of the four isoforms is challenging due to high sequence and structural similarity. Surprisingly, while decades of drug discovery efforts have produced almost 400 human HSP90 structures, no single ligand has been structurally characterized across all four human isoforms to date, which could reveal structural differences to achieve selectivity. To better understand the HSP90 landscape relevant for ligand binding and design we take a three-pronged approach. First, we solved the first complete set of structures of a single ligand bound to all four human isoforms. This enabled a systematic comparison of how side-chains and water networks respond to ligand binding across isoforms. Second, we expanded our analysis to publicly available, incomplete isoform-ligand series with distinct ligand chemistry. This highlighted general trends of protein and water mobility that differ among isoforms and impact ligand binding. Third, we further probed the Hsp90α conformational landscape for accommodating a congeneric series containing the purine scaffold common to HSP90 inhibitors. This revealed how minor ligand modifications flip ligand poses and perturb water and protein conformations. Taken together, this work illustrates how a systematic approach can shed new light on an "old" target and reveal hidden isoform-specific accommodations of congeneric ligands that may be exploited in ligand discovery and design.
Insights
Targeting heat shock protein 90 (HSP90) isoforms for cancer therapy is challenging. This study reveals isoform-specific ligand binding and conformational changes, offering new strategies for selective HSP90 inhibitor design.
Area of Science:
- Biochemistry
- Structural Biology
- Drug Discovery
Background:
- Heat shock protein 90 (HSP90) is crucial for cancer development by stabilizing oncoproteins.
- Despite its therapeutic potential, no FDA-approved HSP90 inhibitors exist due to challenges in isoform selectivity and off-target effects.
Purpose of the Study:
- To systematically investigate the structural basis for selective ligand binding across all four human HSP90 isoforms.
- To identify isoform-specific conformational differences and water network responses to guide the design of targeted HSP90 inhibitors.
Main Methods:
- Determined the first complete set of crystal structures of a single ligand bound to all four human HSP90 isoforms.
- Analyzed publicly available structural data for additional isoform-ligand interactions.
- Probed the conformational landscape of Hsp90α with congeneric ligand series.
Main Results:
- Revealed how side-chain and water network rearrangements differ upon ligand binding across HSP90 isoforms.
- Identified general trends in protein and water mobility impacting ligand binding specificity.
- Demonstrated how minor ligand modifications can alter binding poses and affect protein-ligand-water interactions.
Conclusions:
- A systematic structural approach can uncover isoform-specific ligand accommodations in HSP90.
- These findings provide critical insights for developing selective HSP90 inhibitors for cancer therapy.
- Exploiting identified isoform-specific binding characteristics is key for future drug discovery efforts.
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