Active Brain & Nervous System

Understanding the mechanisms behind accelerated ageing and their impact on neurodegenerative disease: a multivariate genomic approach

In plain English

AI plain-English summary

A person’s biological age can race ahead of their calendar age, and the genes driving that acceleration differ between individuals, sexes, and ethnic groups. This matters because age-related diseases—from heart failure to dementia—account for over half of all adult illness, and the global population is ageing fast. The “Geroscience Hypothesis” suggests that slowing biological ageing could prevent many of these diseases at once. But current genetic studies of frailty, a common measure of accelerated ageing, have two major gaps: they rely almost entirely on people of European ancestry, and they lump together very different symptoms into a single score, which hides the specific biological pathways at work. This fellowship will apply new multivariate genomic methods to map the genetic drivers of frailty across multiple ancestries, including sex-specific differences. The researcher will then test how those same pathways influence neurodegenerative disease risk, aiming to identify drug targets that could slow both accelerated ageing and neurodegeneration. If successful, the work could shift how we develop treatments for dementia and other age-related conditions—not by targeting each disease separately, but by tackling the underlying biology of ageing itself.

View original technical description
Age-related diseases account for over half of the disease burden in adults, which is projected to rise as the global population ages. The “Geroscience Hypothesis” posits that developing therapies that reduce biological ageing will also broadly prevent age-related diseases, including neurodegenerative diseases. However, the pace of biological ageing varies dramatically between individuals, and even when two individuals age at a similar pace they may exhibit very different characteristics. Understanding why this variation occurs is crucial to identifying biological ageing aetiology and developing targeted treatments. Frailty is a commonly used measure of accelerated ageing, but our understanding of its genetic architecture is severely lacking for two key reasons. Firstly, previous studies have been limited to populations of European ancestry limiting the generalisability of findings, and secondly, they have used single aggregate scores that combine highly heterogeneous features, severely reducing our power to detect individual risk pathways. In my fellowship, I will apply new multivariate genomic methods to characterise the mechanisms and key drivers of frailty across multiple ancestries, including an exploration of sex-specific differences. Using these results, I will then explore how accelerated ageing impacts neurodegenerative disease risk to identify promising drug targets that might prevent both accelerated ageing and neurodegeneration.

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Researchers

Isabelle Foote (EPMC Awardee)

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Original classification

Early-Career Award

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