Completed Cells, Biochemistry & Physiology Genetics & Molecular Biology

Molecular basis of the oxidative stress response and its regulation

In plain English

AI plain-English summary

Every living cell must constantly neutralise toxic oxygen byproducts or risk catastrophic damage to its DNA, proteins, and membranes. These reactive oxygen species (ROS) are unavoidable byproducts of breathing oxygen, and they double as important signalling molecules—but when levels climb too high, they drive the cell toward disease or death. Despite this central role in human health, the molecular machinery that senses ROS and decides whether a cell should detoxify or self-destruct remains poorly understood, especially in higher organisms. This project will use biophysical and structural techniques to map the key steps: how the master transcription factor controlling the redox response is regulated, how the detoxification enzymes are switched on, and what safety mechanisms prevent damaged cells from surviving when they should not. The work is fundamental science—it asks how a core survival system works at the atomic level. If successful, it will provide the molecular blueprint for understanding why this system fails in conditions such as cancer, neurodegeneration, and inflammatory disease, and could eventually guide the design of drugs that restore or override the cell’s oxidative stress response.

View original technical description
Reactive oxygen species (ROS) are obligatory by-products of aerobic living conditions and important signalling molecules. Excessive amounts of ROS can be deleterious for cells: they can damage proteins, membranes and the DNA. They are the cause and consequence of multiple human diseases. Complex pathways have evolved to maintain the redox balance and, if necessary, trigger apoptosis to protect cells from damage accumulation. Despite their importance in human health and disease, the molecular mechanisms of ROS-regulated gene expression and cell survival decisions under oxidative conditions are poorly understood, with several key questions remaining. What are the molecular mechanisms underlying redox stress response in higher eukaryotes? What are the safety mechanisms that protect cells from thriving under oxidative stress and how are these mechanisms hijacked in pathological conditions? To answer these questions, I will elucidate the key steps in the redox stress response using a combination of biophysical and structural techniques. This work will focus on: i) the regulation of the major transcription factor implicated in the redox stress response; ii) the activation of the detoxification machinery; iii) the safety mechanisms that govern cell fate under oxidative stress.

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Researchers

Carolyn Moores (EPMC Awardee)Jerome Gouge (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

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Original classification

Sir Henry Dale Fellowship

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