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Biological Age Acceleration and Motoric Cognitive Risk Syndrome
Sanish Sathyan1, Emmeline Ayers1, Dristi Adhikari1
1Department of Neurology, Albert Einstein College of Medicine, Bronx, NY, USA.
Objective:
Motoric cognitive risk (MCR) syndrome, a predementia syndrome characterized by slow gait and subjective cognitive concerns, is associated with multiple age-related risk factors. We hypothesized that MCR is associated with biological age acceleration. We examined the associations of biological age acceleration with MCR, and mortality risk in MCR cases.
Methods:
Biological age was determined using proteomic and epigenetic clocks in participants aged 65 years and older in the LonGenity study (N = 700, females = 57.9%) and Health and Retirement Study (HRS; N = 1,043, females = 57.1%) cohorts. Age acceleration (AgeAccel) was operationally defined as the residual from regressing predicted biological age (from both clocks separately) on chronological age. Association of AgeAccel with incident MCR in the overall sample as well as with mortality risk in MCR cases was examined using Cox models and reported as hazard ratios (HRs).
Results:
AgeAccel scores derived from a proteomic clock were associated with prevalent MCR (odds ratio adjusted for age, gender, education years, and chronic illnesses [aOR] = 1.36, 95% confidence interval [CI] = 1.09-1.71) as well as predicted incident MCR (HR = 1.19, 95% CI = 1.00-1.41) in the LonGenity cohort. In HRS, the association of AgeAccel using an epigenetic clock with prevalent MCR was confirmed (aOR = 1.47, 95% CI = 1.16-1.85). Participants with MCR and accelerated aging (positive AgeAccel score) were at the highest risk for mortality in both LonGenity (HR = 3.38, 95% CI = 2.01-5.69) and HRS (HR = 2.47, 95% CI = 1.20-5.10).
Interpretation:
Accelerated aging predicts risk for MCR, and is associated with higher mortality in MCR patients. ANN NEUROL 2023;93:1187-1197.
Insights
Accelerated aging, measured by biological age clocks, predicts the risk of developing motoric cognitive risk (MCR) syndrome. Individuals with MCR and accelerated aging face a significantly higher risk of mortality.
Area of Science:
- Gerontology
- Neuroscience
- Biomarkers
Background:
- Motoric cognitive risk (MCR) syndrome is a predementia condition characterized by slow gait and cognitive concerns.
- MCR is linked to various age-related risk factors, suggesting a potential connection to biological aging processes.
Purpose of the Study:
- To investigate the association between biological age acceleration and the prevalence and incidence of MCR.
- To examine the relationship between accelerated biological aging and mortality risk in individuals diagnosed with MCR.
Main Methods:
- Biological age was assessed using proteomic and epigenetic clocks in two cohorts (LonGenity and Health and Retirement Study) of individuals aged 65 and older.
- Age acceleration (AgeAccel) was calculated as the residual from regressing predicted biological age on chronological age.
- Cox models were employed to analyze the association of AgeAccel with incident MCR and mortality risk in MCR cases.
Main Results:
- Proteomic clock-derived AgeAccel was associated with prevalent and incident MCR in the LonGenity cohort.
- Epigenetic clock-derived AgeAccel was associated with prevalent MCR in the Health and Retirement Study cohort.
- MCR patients with accelerated aging exhibited significantly higher mortality risk in both cohorts.
Conclusions:
- Accelerated biological aging is a significant predictor of MCR development.
- Accelerated aging in MCR patients is linked to increased mortality, highlighting its clinical relevance.
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