Related Experiment Video
Updated: Jul 9, 2026

Surveying Low-Cost Methods to Measure Lifespan and Healthspan in Caenorhabditis elegans
Published on: May 18, 2022
Accelerated Biological Aging and Longitudinal Progression of Cardiometabolic Disease, Subsequent Dementia, and Death:
Ning Zhang1, Haojiang Zuo1, Jiajie Cai1
1West China School of Public Health and West China Fourth Hospital, Sichuan University, Chengdu, CN, China.
Insights
Biological age acceleration significantly increases the risk of progressing from cardiometabolic disease (CMD) to dementia, particularly vascular dementia. Interventions slowing biological aging may help identify and slow disease progression.
Area of Science:
- Gerontology
- Cardiology
- Neurology
Background:
- The progression of biological age (BA) acceleration from health to cardiometabolic disease (CMD), dementia, and death is not fully understood.
- Biological age acceleration's role in the longitudinal progression to post-CMD dementia (vascular dementia [VaD] and Alzheimer's disease [AD]) requires further investigation.
Purpose of the Study:
- To investigate the association between biological age acceleration and the longitudinal progression of disease from health to CMD, post-CMD dementia, and death.
- To explore the specific roles of two BA acceleration measures (KDM-BA and PhenoAge) in CMD-specific and dementia-specific transitions.
Main Methods:
- Utilized UK Biobank data from 284,723 participants.
- Generated two BA measures (KDM-BA and PhenoAge) from baseline clinical biomarkers.
- Employed multistate analysis to examine associations between BA accelerations and longitudinal disease progression, defining post-CMD dementia as dementia occurring after CMD onset.
Main Results:
- Biologically older individuals exhibited significantly higher risks for progressing through the health-CMD-dementia-death continuum.
- Each SD increase in KDM-BA acceleration (HR: 1.34) and PhenoAge acceleration (HR: 1.19) was linked to increased risk of developing CMD.
- BA accelerations were associated with a higher risk of transitioning from CMD to post-CMD dementia (KDM-BA HR: 1.12; PhenoAge HR: 1.10), with a stronger link to VaD than AD.
Conclusions:
- Biological age accelerations are promising indicators for identifying disease progression in post-CMD dementia.
- Interventions aimed at slowing biological aging could potentially identify and mitigate the progression of post-CMD dementia in clinical practice.
Background:
The role of biological age (BA) acceleration in longitudinal disease progression from health to cardiometabolic disease (CMD), then to post-CMD dementia (including vascular dementia (VaD) and Alzheimer's disease (AD)), and finally to death remains unclear.
Methods:
Using data from 284,723 UK Biobank participants, two established BA measures (Klemera-Doubal Method Biological Age [KDM-BA] and PhenoAge) were generated on the basis of baseline clinical biomarkers. Post-CMD dementia was defined as dementia that occurred after the first occurrence of CMD. Multistate analysis was constructed to examine the association between BA accelerations and longitudinal progression of post-CMD dementia. We further explored the role of two BA accelerations in CMD-specific transitions and dementia-specific transitions, respectively.
Results:
Over a median follow-up of 13.7 years, 47,150 participants developed CMD, and 999 developed post-CMD dementia. Biologically older participants demonstrated robustly higher risks from healthy to CMD, then to post-CMD dementia, and finally to death. For the transition from baseline to CMD, adjusted HRs (95% CI) were 1.34 (1.32, 1.35) for each SD increase in KDM-BA acceleration and 1.19 (1.18, 1.20) for PhenoAge acceleration. For the transition from CMD to post-CMD dementia, HRs were 1.12 (1.04, 1.20) for KDM-BA acceleration and 1.10 (1.04, 1.17) for PhenoAge acceleration. Both BA accelerations were more strongly associated with the transition from CMD to post-CMD VaD than with the transition to post-CMD AD.
Conclusions:
BA accelerations hold promise for identifying the disease progression of post-CMD dementia in routine clinical practice and slowing down disease progression through the interventions that slow down biological aging.
Related Concept Videos
Alzheimer Disease l: Introduction
Aging
Cellular Clock Theory
The cellular clock theory posits that the human lifespan is closely tied to the finite capacity of cells to divide, a phenomenon governed by telomeres, which are protective caps at the ends of...
Dementia l: Introduction
Longitudinal Studies
The Effect of Aging on Tissues
Longitudinal Research