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Updated: Jun 2, 2026

Studies of Chaperone-Cochaperone Interactions using Homogenous Bead-Based Assay
Published on: July 21, 2021
Casein kinase 2 phosphorylation of Hsp90 threonine 22 modulates chaperone function and drug sensitivity
Mehdi Mollapour1, Shinji Tsutsumi, Yeong Sang Kim
1Urologic Oncology Branch, Center for Cancer Research, National Cancer Institute, Bethesda, MD 20892, USA. mollapourm@mail.nih.gov
Abstract:
The molecular chaperone Heat Shock Protein 90 (Hsp90) is essential for the function of various oncoproteins that are vital components of multiple signaling networks regulating cancer cell proliferation, survival, and metastasis. Hsp90 chaperone function is coupled to its ATPase activity, which can be inhibited by natural products such as the ansamycin geldanamycin (GA) and the resorcinol radicicol (RD). These compounds have served as templates for development of numerous natural product Hsp90 inhibitors. More recently, second generation, fully synthetic Hsp90 inhibitors, based on a variety of chemical scaffolds, have also been synthesized. Together, 18 natural product and synthetic Hsp90 inhibitors have entered clinical trial in cancer patients. To successfully develop Hsp90 inhibitors for oncology indications it is important to understand the factors that influence the susceptibility of Hsp90 to these drugs in vivo. We recently reported that Casein Kinase 2 phosphorylates a conserved threonine residue (T22) in helix-1 of the yeast Hsp90 N-domain both in vitro and in vivo. Phosphorylation of this residue reduces ATPase activity and affects Hsp90 chaperone function. Here, we present additional data demonstrating that ATP binding but not N-domain dimerization is a prerequisite for T22 phosphorylation. We also provide evidence that T22 is an important determinant of Hsp90 inhibitor sensitivity in yeast and we show that T22 phosphorylation status contributes to drug sensitivity in vivo.
Insights
Heat Shock Protein 90 (Hsp90) phosphorylation at T22 affects its function and drug sensitivity. This finding is crucial for developing effective Hsp90 inhibitors in cancer therapy.
Area of Science:
- Molecular Biology
- Biochemistry
- Oncology
Background:
- Heat Shock Protein 90 (Hsp90) is a molecular chaperone crucial for oncoprotein function in cancer.
- Hsp90 activity is linked to its ATPase function, targeted by inhibitors like geldanamycin and radicicol.
- Numerous Hsp90 inhibitors are in clinical trials for cancer treatment.
Purpose of the Study:
- To investigate the role of T22 phosphorylation in Hsp90 function and drug sensitivity.
- To determine the prerequisites for T22 phosphorylation.
- To establish T22 as a determinant of Hsp90 inhibitor efficacy in vivo.
Main Methods:
- In vitro and in vivo studies using yeast models.
- Analysis of Hsp90 phosphorylation status.
- Assessment of Hsp90 ATPase activity and chaperone function.
- Evaluation of Hsp90 inhibitor sensitivity.
Main Results:
- Casein Kinase 2 phosphorylates Hsp90 at T22, reducing ATPase activity and chaperone function.
- ATP binding, not N-domain dimerization, is required for T22 phosphorylation.
- T22 phosphorylation status influences Hsp90 inhibitor sensitivity in yeast and in vivo.
Conclusions:
- T22 phosphorylation is a key regulatory mechanism for Hsp90.
- Understanding T22 phosphorylation is vital for optimizing Hsp90 inhibitor therapy in oncology.
- T22 phosphorylation status may predict patient response to Hsp90-targeted drugs.
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