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Updated: Jul 16, 2025

Pulse Wave Velocity Testing in the Baltimore Longitudinal Study of Aging
Published on: February 7, 2014
Mechanistic insights on age-related changes in heart-aorta-brain hemodynamic coupling using a pulse wave model of the
Arian Aghilinejad1, Faisal Amlani2, Sohrab P Mazandarani3
1Department of Aerospace and Mechanical Engineering, University of Southern California, Los Angeles, California, United States.
Insights
Aging stiffens arteries, impacting brain blood flow and cognitive function. This study reveals how heart function and stiffening interact to affect brain perfusion, offering insights for neurodegenerative disease therapies.
Area of Science:
- Cardiovascular Physiology
- Neurovascular Coupling
- Computational Biology
Background:
- Age-related aortic stiffening reduces brain blood flow and increases pulsatile energy transmission.
- Heart failure and cognitive impairment are linked, but the interplay between aortic stiffness and left ventricle (LV) contractility on brain hemodynamics is unclear.
Purpose of the Study:
- To investigate how age-related changes in cardiac function and vasculature affect LV-aorta-brain hemodynamic coupling.
- To elucidate the impact of aortic stiffness and LV contractility interactions on pulsatile energy transmission and brain perfusion.
Main Methods:
- Utilized a validated one-dimensional computational model of the circulatory system.
- Simulated blood flow and pulse wave propagation through the LV, aorta, and cerebral network.
- Analyzed the effects of varying LV contractility and aortic stiffness on hemodynamic parameters.
Main Results:
- LV contractility significantly influences pulsatile energy transmission to the brain, independent of cardiac output.
- An optimal heart rate exists that minimizes pulsatile energy transmission to the brain across different contractility levels.
- Reduced LV contractility exacerbates cerebral blood flow reduction in the presence of age-related aortic stiffening.
Conclusions:
- Aging significantly alters heart-aorta-brain coupling via arterial stiffening and reduced LV contractility.
- Understanding these hemodynamic mechanisms is crucial for developing therapies against neurodegenerative diseases and dementia.
- Maintaining optimal brain blood flow may require interventions targeting LV contractility or heart rate.
Abstract:
Age-related changes in aortic biomechanics can impact the brain by reducing blood flow and increasing pulsatile energy transmission. Clinical studies have shown that impaired cardiac function in patients with heart failure is associated with cognitive impairment. Although previous studies have attempted to elucidate the complex relationship between age-associated aortic stiffening and pulsatility transmission to the cerebral network, they have not adequately addressed the effect of interactions between aortic stiffness and left ventricle (LV) contractility (neither on energy transmission nor on brain perfusion). In this study, we use a well-established and validated one-dimensional blood flow and pulse wave computational model of the circulatory system to address how age-related changes in cardiac function and vasculature affect the underlying mechanisms involved in the LV-aorta-brain hemodynamic coupling. Our results reveal how LV contractility affects pulsatile energy transmission to the brain, even with preserved cardiac output. Our model demonstrates the existence of an optimal heart rate (near the normal human heart rate) that minimizes pulsatile energy transmission to the brain at different contractility levels. Our findings further suggest that the reduction in cerebral blood flow at low levels of LV contractility is more prominent in the setting of age-related aortic stiffening. Maintaining optimal blood flow to the brain requires either an increase in contractility or an increase in heart rate. The former consistently leads to higher pulsatile power transmission, and the latter can either increase or decrease subsequent pulsatile power transmission to the brain.NEW & NOTEWORTHY We investigated the impact of major aging mechanisms of the arterial system and cardiac function on brain hemodynamics. Our findings suggest that aging has a significant impact on heart-aorta-brain coupling through changes in both arterial stiffening and left ventricle (LV) contractility. Understanding the underlying physical mechanisms involved here can potentially be a key step for developing more effective therapeutic strategies that can mitigate the contributions of abnormal LV-arterial coupling toward neurodegenerative diseases and dementia.
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