Completed Cells, Biochemistry & Physiology Chemistry

Exploring mitochondrial metabolism in health and disease using targeted biological chemistry

In plain English

AI plain-English summary

Mitochondria—the tiny power plants inside our cells—produce damaging chemical byproducts that can either help or harm the body, but scientists lack good tools to watch them in action. This matters because mitochondrial dysfunction is linked to diabetes, neurodegeneration, and ageing, yet researchers cannot easily measure or control the reactive molecules and signals that drive these conditions. The team aims to solve this by designing chemical probes that can be delivered directly into mitochondria in living cells and animals. One set of probes will track reactive species and signalling pathways in real time; another will carry bioactive molecules into mitochondria to prevent damage. The third challenge tests both approaches in animal models of human disease. If successful, the work will provide general-purpose chemical tools to study mitochondrial biology in any tissue, under normal or diseased conditions. This is fundamental science—it will not produce a therapy tomorrow. But understanding how mitochondria actually behave in a living animal, rather than in a dish, could eventually reveal new drug targets for metabolic and degenerative diseases, much as earlier fundamental work on mitochondrial metabolism underpinned treatments for mitochondrial disorders.

View original technical description
The molecular mechanisms by which mitochondrial reactive species, metabolites and redox signals contribute to physiology and pathology are unclear. This is in large part because these processes are difficult to assess and modulate in vivo. Our goals are to establish general chemical biology approaches to determine the mechanisms of mitochondrial physiology and dysfunction in vivo and from this develop new therapeutic strategies. The aims are based on the success of our previous Joint Investigator Award, but the specific chemical biology approaches to be used, the insights to be attained and the models have been refined and developed, based on our work over the past four years. These goals will be achieved by addressing three research challenges in cells and in vivo: A: Can we determine how mitochondria operate during normal physiology, and are disrupted during pathology, by targeting probes to measure reactive species and alterations to signaling pathways? B: Can targeting bioactive molecules to mitochondria prevent pathological disruption of mitochondrial function and generate potential therapies? C: Can the above methods to monitor and modulate mitochondrial function be assessed in animal models of human diseases and thus drive the development of rational, translatable therapies?

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Researchers

Michael Murphy (EPMC Awardee)Richard Hartley (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Exploring mitochondrial metabolism in health and disease using targeted biological chemistry.
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Original classification

Investigator Award in Science

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