Active Genetics & Molecular Biology

Blood-based omics biomarkers for monitoring functional decline, incident disease risk, and intervention responses

In plain English

AI plain-English summary

A simple blood test could one day reveal how fast different organs in your body are ageing, years before disease strikes. Ageing is the single biggest risk factor for chronic disease, yet doctors lack reliable tools to measure biological ageing at the organ level. Existing biomarkers are blunt instruments—they miss early, organ-specific decline and cannot predict who will benefit from which intervention. This project tackles that gap by turning DNA methylation data into stable, long-term proxies for more than 4,000 blood proteins. These "EpiScores" act as molecular snapshots of the heart, brain, kidneys, and other organs, capturing cumulative damage that direct protein measurements miss because of short-term fluctuations. If successful, the work could transform how clinicians assess disease risk and monitor ageing. Instead of waiting for symptoms, doctors might stratify patients by organ-specific biological age, flagging those at highest risk of dementia, cardiovascular disease, or frailty. The same tool could track whether lifestyle changes or drugs are actually slowing ageing in a particular organ. This is fundamental science with a clear translational path—it aims to turn a cheap, scalable blood test into a dashboard for personalised, preventative medicine.

View original technical description
Aging is the leading risk factor for chronic diseases. As the global elderly population is projected to nearly double by 2050 and the prevalence of age- related diseases rises, there is an urgent need for tools to quantify biological aging, assess disease risk, and guide public health interventions. Biological aging is the progressive decline of physiological functions due to accumulating molecular and cellular damage, varying across individuals and organs. Traditional aging biomarkers lack sensitivity and organ specificity, but advances in proteomics and machine learning enabled estimation of biological ages for eleven organs, robustly predicting disease and mortality risk from a simple blood test. However, clinical translation is hindered by limited proteomic data availability and short-term protein fluctuations. To address this, I will utilise blood DNA methylation data to develop epigenetic proxies (EpiScores) for >4,000 proteins and organ-specific biological aging. EpiScores provide more stable estimates of long-term exposures, showing higher test-retest reliability and predictive power than direct protein measurements. My PhD will evaluate the clinical utility of these EpiScores by examining their associations with physical and cognitive decline, disease outcomes, mortality, and responsiveness to interventions. This work could advance disease risk prediction, patient stratification, and personalised strategies for anti-aging and disease interventions.

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Researchers

Maira Pyrgioti (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Metabolomic and omic assessment of biological ageing across the life-course (METAGE)
Blood- and saliva-based DNA methylation biomarkers of disease
Developing and evaluating tools to improve the quality of DNA methylation association studies
Proteome-guided identification of mechanisms and biomarkers in age-related cerebrovascular dysfunction
unlock:epi: unlocking the epigenome to understand, detect and modify age- related disease formation

Original classification

PhD Studentship (Basic)

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