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Published on: February 14, 2014
Reduced Complexity of Pulse Rate Is Associated With Faster Cognitive Decline in Older Adults
Chenlu Gao1,2,3, Andrew S P Lim4, Shahab Haghayegh1,2,3
1Department of Anesthesia, Critical Care and Pain Medicine Massachusetts General Hospital Boston Massachusetts USA.
Insights
Pulse rate complexity, a measure of subclinical cardiovascular function, is linked to slower cognitive decline in older adults. Higher complexity indicates better cognitive preservation over time.
Area of Science:
- Gerontology
- Cardiology
- Neuroscience
Background:
- Cardiovascular diseases are strongly associated with cognitive health.
- Subclinical cardiovascular changes, like cardiac autonomic dysfunction, can predict cardiovascular diseases and aid risk stratification.
- Pulse rate monitoring is a common method for assessing cardiac cycle and autonomic regulation.
Purpose of the Study:
- To investigate the association between pulse rate complexity and longitudinal cognitive decline in older adults.
- To determine if pulse rate complexity serves as a proxy for subclinical cardiovascular function related to cognitive aging.
Main Methods:
- Overnight pulse oximetry data were collected from 503 older adults (mean age 82).
- Distribution entropy algorithm was used to quantify pulse rate complexity.
- Participants underwent cognitive testing at baseline and follow-up; linear mixed-effects models analyzed associations.
Main Results:
- Increased pulse rate complexity (distribution entropy) was significantly associated with slower global cognitive decline.
- A 1-SD increase in distribution entropy corresponded to an approximate 3-year slower cognitive aging.
- Conventional pulse rate variability measures showed no association with cognitive changes.
Conclusions:
- Higher pulse rate complexity is correlated with preserved cognitive function in aging.
- This finding suggests pulse rate complexity may be a valuable indicator of cognitive aging.
- Further research is needed to explore links with neurodegenerative disorders and causal relationships.
Background:
Cardiovascular diseases are closely linked to cognitive health. Subclinical cardiovascular functional changes, such as cardiac autonomic dysfunction, precede cardiovascular diseases and improve risk stratification. Continuous monitoring of heart rate or pulse rate is a commonly used approach to evaluate cardiac cycle and autonomic regulation. We investigated whether the complexity of pulse rate is associated with longitudinal cognitive decline in older adults.
Methods:
Overnight pulse oximetry data were collected from 503 participants (mean age=82±7 [SD] years, 76% female). We used a previously established distribution entropy algorithm to extract the complexity of pulse rate as a proxy for subclinical cardiovascular function. Participants completed a standardized cognitive test battery during the same visit of pulse oximetry and at least 1 follow-up visit. Linear mixed-effects models were conducted to test whether distribution entropy is associated with longitudinal changes in global cognition and separately, in 5 cognitive domains.
Results:
Greater distribution entropy (ie, better complexity) was associated with a slower decline in global cognition; the effect of 1-SD increase in distribution entropy was equivalent to being approximately 3 years younger. No associations were observed between conventional time- or frequency-domain pulse rate variability measures and cognitive changes.
Conclusions:
Higher complexity of pulse rate is linked with slower cognitive decline in older adults. Future studies should test whether complexity is also associated with future risks of neurodegenerative disorders, such as dementia, and further elucidate the causal directions.
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