Completed Genetics & Molecular Biology Brain & Nervous System

Biological determinants of ageing and late life health, and their pharmacological manipulation.

In plain English

AI plain-English summary

Getting older is the single biggest risk factor for diseases like cancer, heart disease and dementia, but a handful of gene mutations can make laboratory animals live longer and stay healthier. This research aims to understand why. The problem is that we treat each age-related disease separately, rather than targeting the ageing process itself. Decades of work in yeast, worms, flies and mice have shown that dialling down a specific nutrient-sensing network—the insulin/IGF/TOR signalling pathway—extends healthy lifespan. So does cutting calories. Both changes protect against multiple diseases at once, not just one. But we do not yet know exactly how this protection works at the molecular level, or whether we can mimic it safely with drugs. If this programme succeeds, it could shift medicine from treating individual late-life diseases to slowing the underlying ageing process. That would mean more years of good health for older people, reducing the burden on healthcare systems and families. The researchers will first map the signalling mechanisms in model organisms, then test existing and new drugs that target key molecules, and finally use human genetic and drug-response data to translate those findings into real treatments. This is fundamental biology with a clear translational path—if the mechanisms are conserved in humans, the payoff could be a single intervention that delays multiple diseases at once.

View original technical description
Age is the main risk factor for common, debilitating conditions including cancer, cardiovascular disease and neurodegeneration. Single gene mutations can extend healthy lifespan in laboratory animals. The mechanisms involved are evolutionarily conserved, with genetic and pharmacological inhibition of the nutrient-sensing insulin/insulin-like growth factor/TOR (IIT) signalling network extending healthy lifespan in yeast, nematode worms, fruit flies and mammals. Dietary restriction (DR) also exten ds healthy lifespan in these organisms, at least in part through altered IIT activity. Both reduced IIT activity and DR induce a broad-spectrum improvement in health and protection against pathology during ageing. Thus, amelioration of the ageing process can protect against diseases of ageing. This programme will have three key goals: 1. To discover how reduced activity IIT activity improves health during ageing, through experimental analysis of signalling and effector mechanisms in model orga nisms; 2 To recapitulate and extend improved health during ageing by pharmacological manipulation of key target molecules, both with existing drugs and new probe molecules; 3. To use results generated in 1 and 2, together with population genetic and drug response information from humans, to translate the discoveries into improvement in health of older people.

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Researchers

Linda Partridge (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Dissecting the mechanisms underlying lifespan extension in insulin signalling mutant mice
Investigating the mechanisms by which amino acid balance and reduced TOR signalling improve healthy lifespan
Studies of cellular processes involved in the control of nutrient signalling and their relevance to ageing
Dietary restriction of micronutrients to slow ageing and treat disease
Integrating cellular space and time: inteplays between subcellular organisation and lifespan

Original classification

Strategic Award - Science

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