Completed Cells, Biochemistry & Physiology Genetics & Molecular Biology

Recognition, activation and targeted degradation of protein kinases clients by the HSP90-molecular chaperone

In plain English

AI plain-English summary

Many cancer-driving proteins rely on a cellular helper called HSP90 to stay folded and active. This project will map, in atomic detail, how HSP90 and its partner CDC37 recognise these proteins, switch them into their active shapes, and—when blocked by drugs—tag them for destruction. The problem is that current HSP90-inhibiting drugs are blunt tools. They shut down the entire chaperone system, causing side effects because HSP90 also helps hundreds of healthy proteins. Researchers do not yet understand how CDC37 picks out only the cancer-related "client" kinases, or what happens to those clients when HSP90's ATP-driven cycle is interrupted. Without that structural knowledge, designing selective drugs that spare normal proteins remains guesswork. This is fundamental science. The team will use cryo-electron microscopy, X-ray crystallography, and NMR to visualise the key molecular handoffs—from initial client recognition to release or degradation. If they succeed, the work will provide the structural blueprints needed to design next-generation cancer drugs that target only the rogue kinases, leaving HSP90's other duties intact. Similar structural studies of chaperone systems have already enabled targeted protein degradation therapies now in clinical trials.

View original technical description
Many oncogenic protein kinases depend on interaction with the HSP90 molecular chaperone, mediated by the co-chaperone CDC37, for their cellular stability and oncogenic activity. Inhibition of HSP90's conformationally-coupled ATPase mechanism leads to the ubiqtuitylation and degradation of these protein kinase 'clients'. Consequently HSP90 is an important target for therapeutic intervention in cancer. Although there has been substantial progress in this field, important issues remain unresolved. In particular we wish to understand : 1. How protein kinase clients are specifically and selectively recognised by the CDC37 co-chaperone, and recruited to HSP90 ? 2. What structural and biochemical changes are elicited in the client protein by recruitment to HSP90 and by its conformationally-coupled ATPase cycle ? 3. How dephosphorylation of CDC37 by the HSP90-targeted protein phosphatase PP5 regulates client protein release ? 4. How protein kinase clients are targeted for proteasomal degradation when HSP90's ATPase is inhibited ? To address these questions we will use cryoelectron microscopy, X-ray crystallography, NMR spectroscopy, and a range of biochemical and biophysical approaches, to determine structures of key complexes along the pathway from initial client recognition to release or ubiquitylation, and define the structural and biochemical transitions that connect them.

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Researchers

Laurence Pearl (EPMC Awardee)

Related Research

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Original classification

Investigator Award in Science

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