Completed Cells, Biochemistry & Physiology Genetics & Molecular Biology

The physiology and pathophysiology of unfolded protein responses.

In plain English

AI plain-English summary

Cells choke on their own misfolded proteins when internal quality-control systems fail. This project investigates how two different cellular compartments—the endoplasmic reticulum and the mitochondria—detect and signal that protein-folding crisis, and whether those signals can be deliberately tweaked. The problem is that chronic protein misfolding underpins many age-related diseases, including neurodegeneration and metabolic disorders. Current understanding of the signalling pathways is incomplete, especially for the mitochondrial unfolded protein response, which remains poorly mapped. Without that molecular detail, designing drugs to correct or compensate for the stress response is guesswork. The researchers will focus on three levers inside the endoplasmic reticulum: the phosphorylation switch on a key translation factor, the hyperoxidising enzyme ERO1, and the metabolic links that connect ER stress to whole-body ageing. For mitochondria, they will use genetic screens to identify the signalling components that trigger when proteins fail to fold inside that organelle. This is fundamental science. If it succeeds, it will provide a molecular wiring diagram of stress signalling that pharmaceutical developers could eventually use to design compounds that boost secretion of mutant proteins or protect cells from stress-induced death. No immediate clinical application is promised, but the pathways under study are the same ones that go awry in diabetes, Parkinson’s disease, and other conditions of ageing.

View original technical description
This project s overarching goal is to understand the molecular mechanisms involved in signaling unfolded protein stress from organelles in hope of identifying unique features that may enable manipulation of these signaling pathways to useful ends. In the better-understood endoplasmic reticulum (ER) unfolded protein response (UPRer) studies will focus on three potentially malleable aspects: A detailed molecular understanding of regulated phosphorylation and dephosphorylation of translation initia tion factor 2 will be sought, alongside a search for chemical probes to manipulate these activities in cells. These probes and genetic tools will be applied to test the hypothesis that tuning the level of phosphorylated eIF2 can promote secretion of mutant proteins and alter susceptibility of cells to ER stress. Genetic manipulation of the ER oxidase ERO1 will be applied to test the hypothesis that a hyperoxidizing ER contributes to dysfunction of mammalian cells experiencing severe ER stress an d the molecular basis of the regulation of intermediary metabolism by ER stress will be studied in effort to understand the physiological links to diseases of aging. Studies on the mitochondrial UPR will follow clues that matrix proteolysis contributes to stress signal generation and unbiased genetic screens will identify components of this signal transduction cascade.

View the original record at the funder ↗

Researchers

David Ron (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Structural and mechanistic studies of signal activation, transduction across the ER membrane, and propagation of the unfolded protein response and its link with other signalling pathways
Exploring accessible nodes in the Unfolded Protein Response
Structural and mechanistic understanding of UPR signal activation
Linking the unfolded protein response to oxygen sensing - A phosphoproteomic approach to identify novel substrates of the ER kinase PERK
Protein folding homeostasis - from mechanisms to interventions

Original classification

Principal Research Fellowship (New)

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