Mitochondrial DNA copy number associated dementia risk by somatic mutations and frailty
Qu Tian1, David A Zweibaum2, Yong Qian2
1Translational Gerontology Branch, National Institute on Aging Intramural Research Program, 251 Bayview Blvd., Suite 100, Baltimore, MD, 21224, USA. qu.tian@nih.gov.
Abstract:
Mitochondrial dysfunction is linked to physical impairment and dementia. Mitochondrial DNA copy number (mtDNAcn) from blood may predict cognitive decline and dementia risk, but the effect of somatic mutations or frailty is unknown. We estimated mtDNAcn using fastMitoCalc and microheteroplasmies using mitoCaller, from Whole Genome Sequencing (WGS) data. In 189,566 participants free of dementia at study entry (mean age = 56 ± 8), we examined the association between mtDNAcn and subsequent dementia diagnosis using Cox regression. Cognition was assessed in a subset on average 8.9 years later. We examined the associations between mtDNAcn and cognitive measures using multivariable linear regression, adjusted for demographic factors, mtDNAcn-related parameters, and apolipoprotein E ε4 status. We further stratified by frailty and microheteroplasmies. Over an average follow-up of 13.2 years, 3533 participants developed dementia. Each SD higher mtDNAcn (16) was associated with 4.2% lower all-cause dementia hazard (HR = 0.958, p = 0.030), 6% lower non-AD dementia hazard (HR = 0.933, p = 0.022), and not-AD dementia hazard. The associations between mtDNAcn and all-cause dementia and non-AD dementia were stronger among those who were pre-frail or frail or with higher microheteroplasmies. Higher mtDNAcn was associated with higher DSST scores (p = 0.036) and significant only among those with higher microheteroplasmies or frailty (p = 0.029 and 0.048, respectively). mtDNAcn was also associated with delta TMT and paired associate learning only in pre-frail/frail participants (p = 0.007 and 0.045, respectively). Higher WGS-based mtDNAcn in human blood is associated with lower dementia risk, specifically non-AD dementia, and specific cognitive function. The relationships appear stronger in high somatic mutations or frailty. Future studies are warranted to investigate biological underpinnings.
Insights
Higher mitochondrial DNA copy number (mtDNAcn) in blood is linked to reduced dementia risk, particularly non-Alzheimer's dementia. This association is stronger in individuals with frailty or high somatic mutations.
Area of Science:
- Genetics
- Neurology
- Aging
Background:
- Mitochondrial dysfunction is implicated in physical impairment and dementia.
- Blood mitochondrial DNA copy number (mtDNAcn) may predict cognitive decline, but the influence of somatic mutations and frailty remains unclear.
Purpose of the Study:
- To investigate the association between blood mtDNAcn and subsequent dementia risk.
- To examine the relationship between mtDNAcn and cognitive function, considering frailty and microheteroplasmies.
Main Methods:
- Whole Genome Sequencing (WGS) data from 189,566 participants were used to estimate mtDNAcn and microheteroplasmies.
- Cox regression models assessed the association between mtDNAcn and dementia diagnosis over a 13.2-year follow-up.
- Multivariable linear regression analyzed cognitive measures in relation to mtDNAcn, adjusting for covariates and stratifying by frailty and microheteroplasmies.
Main Results:
- Each standard deviation increase in mtDNAcn was associated with a 4.2% lower hazard of all-cause dementia and a 6% lower hazard of non-Alzheimer's dementia.
- These associations were more pronounced in individuals who were pre-frail, frail, or had higher levels of microheteroplasmies.
- Higher mtDNAcn correlated with better performance on the Digit Symbol Substitution Test (DSST) and was significant in those with higher microheteroplasmies or frailty.
Conclusions:
- Increased blood mtDNAcn, determined by WGS, is associated with a reduced risk of dementia, especially non-Alzheimer's dementia.
- The protective effect of mtDNAcn on dementia risk and cognitive function appears to be amplified in individuals with higher somatic mutations or frailty.
- Further research is needed to elucidate the underlying biological mechanisms connecting mtDNAcn, frailty, somatic mutations, and dementia.
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