Active Cells, Biochemistry & Physiology Genetics & Molecular Biology

Unpicking the Specificity of the Protein Quality Control Network in Health and Disease

In plain English

AI plain-English summary

Inside human cells, a protein called DNAJB6b acts like a quality-control inspector that can either help refold damaged proteins or stop them from clumping into toxic aggregates—but no one knows exactly how it decides which job to do. This matters because when the cell’s protein quality-control system fails, proteins misfold and clump together, driving diseases like neurodegeneration and certain muscle disorders. The Hsp70 chaperone machine is the main tool cells use to fix misfolded proteins, but it relies on helper proteins called Hsp40s (DNAJs) to direct it to the right targets. DNAJB6b is one such helper, and mutations in it are linked to disease. Yet the molecular mechanisms that let it recognise specific toxic clients and either refold them or block their aggregation remain unknown. This project will use a combination of NMR spectroscopy, mass spectrometry, cryo-electron microscopy, cell-based assays, and organismal models to reveal how DNAJB6b’s long, low-complexity regions control its interactions with Hsp70 and its own ability to self-assemble and inhibit aggregation. The research is fundamental science—it aims to understand a core cellular process rather than produce an immediate therapy. But by revealing the molecular origins of DNAJB6b’s specificity, it could open the way to engineering optimised chaperones or small-molecule drugs tuned to target different disease-related protein aggregates.

View original technical description
The proteostasis network is at the forefront of cellular defence against protein misfolding diseases and its decline with age is directly associated with cell death. Chaperones of the Hsp70 family are the workhorses of the proteostasis network and their powerful refolding capabilities are crucially directed to specific clients by Hsp40s(DNAJs). However, the mechanisms that Hsp40s use to regulate Hsp70 functions and how they recognise specific toxic substrates remain unknown. Here, using the DNAJB6b isoform (that is related to neurodegeneration and myopathies) and utilising/developing NMR methods ideal to study dynamic/transient events, I will reveal how Hsp40s drive the multifunctionality of the Hsp70 machine using long, low-complexity regions. In addition to cooperating with Hsp70, DNAJB6b is able to inhibit protein aggregation on its own. The mysteries of DNAJB6b substrate antiaggregation functions are encrypted in its self-oligomerisation properties. By combining in vitro NMR, MS, and cryo-EM data with cellular assays and organismal models, I will reveal the origins of DNAJB6b self-assembly and how it interferes with toxic aggregation of client proteins. The interdisciplinary approach of this proposal will unravel the molecular origins of DNAJB6b specificity and will open the way to engineering optimised chaperones and therapeutic agents tuned to target different disease-related substrates.

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Researchers

Theodoros Karamanos (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

ChaperoneRegulome: Understanding cell-type-specificity of chaperone regulation
Protein quality control in health and disease
A novel strategy to control protein misfolding diseases and aging: Molecular mechanisms of transcellular chaperone signalling
The mechanism of a multi-chaperone system for promoting protein disaggregation
Hsp-associated proteasomal plastid pre-protein degradation as a regulatory and quality control mechanism in plants

Original classification

Sir Henry Dale Fellowship

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