Completed Cells, Biochemistry & Physiology Brain & Nervous System

Protein quality control in health and disease

In plain English

AI plain-English summary

A drug that temporarily slows down protein production inside cells could correct the folding errors that drive Alzheimer’s, Parkinson’s, and other neurodegenerative diseases. Proteins must fold into precise three-dimensional shapes to work properly. When they misfold, they accumulate and damage cells—a hallmark of many incurable brain disorders. The researcher’s lab has already discovered a molecule that briefly reduces the rate at which cells make new proteins, giving the cell’s quality-control machinery time to catch up and fix folding mistakes. This approach is safe in early tests and could work across many different diseases, not just one. This project will test that molecule in mouse models of common neurodegenerative diseases. The team will also purify the components involved and map how the drug changes the full set of proteins the cell produces. Separately, they will search for other enzymes that control the cell’s stress-response shutdown, aiming to keep natural defences switched on longer. If successful, this fundamental science could lead to a generic therapy for a group of devastating diseases that currently have no cure. The work is primarily curiosity-driven, but past discoveries in protein quality control have already transformed treatments for rare genetic disorders.

View original technical description
Accumulation of misfolded proteins is a defining feature of numerous diseases. My work aims to identify strategies that rescue cells from protein quality control failure with the view that such strategies may lead to generic therapies for diverse protein misfolding diseases. Recent and transformative discoveries in the lab have validated this concept. One recently discovered strategy consists of a selective inhibitor of the constitutive regulatory subunit of the eIF2α phosphatase to transiently decrease protein synthesis rates, thereby correcting folding defects by increasing protein quality control capacity. This approach is safe, novel and very promising because it may benefit common neurodegenerative diseases. This proposal aims at testing this new and exciting possibility in mouse models of common neurodegenerative diseases, reconstituting phosphatase inhibition using purified components and examining the functional consequences of the inhibitors on the translatome. We will also identify other phosphatases controlling the termination of stress signalling pathways anticipating that prolonging stress signalling could be a generic paradigm to enhance the natural cellular defence systems. This research programme will bring fundamental discoveries with a translational potential relevant to a group of devastating and so far incurable diseases.

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Researchers

Anne Bertolotti (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

The Unfolded Protein Response in Neurodegeneration
Unravelling signalling pathways controlling proteasome homeostasis under stressful conditions
A novel strategy to control protein misfolding diseases and aging: Molecular mechanisms of transcellular chaperone signalling
Protein folding homeostasis - from mechanisms to interventions
Translation-associated quality control of protein secretion.

Original classification

Investigator Award in Science

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