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PMID: 37805938 Published · ppublish English Journal Article

Comparison of computational fluid dynamics with transcranial Doppler ultrasound in response to physiological stimuli.

Biomechanics and modeling in mechanobiology ·Vol. 23 ·No. 1 ·2024-02-00 ·页码 255-269

Caddy HT, Thomas HJ, Kelsey LJ, Smith KJ, Doyle BJ, Green DJ

Abstract

Cerebrovascular haemodynamics are sensitive to multiple physiological stimuli that require synergistic response to maintain adequate perfusion. Understanding haemodynamic changes within cerebral arteries is important to inform how the brain regulates perfusion; however, methods for direct measurement of cerebral haemodynamics in these environments are challenging. The aim of this study was to assess velocity waveform metrics obtained using transcranial Doppler (TCD) with flow-conserving subject-specific three-dimensional (3D) simulations using computational fluid dynamics (CFD). Twelve healthy participants underwent head and neck imaging with 3 T magnetic resonance angiography. Velocity waveforms in the middle cerebral artery were measured with TCD ultrasound, while diameter and velocity were measured using duplex ultrasound in the internal carotid and vertebral arteries to calculate incoming cerebral flow at rest, during hypercapnia and exercise. CFD simulations were developed for each condition, with velocity waveform metrics extracted in the same insonation region as TCD. Exposure to stimuli induced significant changes in cardiorespiratory measures across all participants. Measured absolute TCD velocities were significantly higher than those calculated from CFD (P range < 0.001-0.004), and these data were not correlated across conditions (r range 0.030-0.377, P range 0.227-0.925). However, relative changes in systolic and time-averaged velocity from resting levels exhibited significant positive correlations when the distinct techniques were compared (r range 0.577-0.770, P range 0.003-0.049). Our data indicate that while absolute measures of cerebral velocity differ between TCD and 3D CFD simulation, physiological changes from resting levels in systolic and time-averaged velocity are significantly correlated between techniques.

Keywords
Cerebral vasculature Computational fluid dynamics Stimuli Transcranial Doppler ultrasound
MeSH 主题词
Humans Hydrodynamics Cerebral Arteries/diagnostic imaging Ultrasonography, Doppler, Transcranial/methods Brain/diagnostic imaging,blood supply Magnetic Resonance Angiography/methods Blood Flow Velocity/physiology Cerebrovascular Circulation/physiology
作者与单位
共 6 位作者,点击展开单位 / ORCID
Caddy Harrison T
Vascular Engineering Laboratory, Harry Perkins Institute of Medical Research, Queen Elizabeth II Medical Centre, Nedlands, Australia and the UWA Centre for Medical Research, The University of Western Australia, Perth, Australia. | School of Human Sciences (Exercise and Sport Sciences), The University of Western Australia, Perth, Australia.
Thomas Hannah J
School of Human Sciences (Exercise and Sport Sciences), The University of Western Australia, Perth, Australia.
Kelsey Lachlan J
Vascular Engineering Laboratory, Harry Perkins Institute of Medical Research, Queen Elizabeth II Medical Centre, Nedlands, Australia and the UWA Centre for Medical Research, The University of Western Australia, Perth, Australia. | School of Engineering, The University of Western Australia, Perth, Australia.
Smith Kurt J
School of Human Sciences (Exercise and Sport Sciences), The University of Western Australia, Perth, Australia. | Cerebrovascular Health, Exercise, and Environmental Research Sciences Laboratory, University of Victoria, Victoria, Canada.
Doyle Barry J
Vascular Engineering Laboratory, Harry Perkins Institute of Medical Research, Queen Elizabeth II Medical Centre, Nedlands, Australia and the UWA Centre for Medical Research, The University of Western Australia, Perth, Australia. [email protected]. | School of Engineering, The University of Western Australia, Perth, Australia. [email protected].
Green Daniel J
School of Human Sciences (Exercise and Sport Sciences), The University of Western Australia, Perth, Australia.
Article Info
Journal
Biomechanics and modeling in mechanobiology
Abbr.
Biomech Model Mechanobiol
ISSN
1617-7940
Corresponding email
Published
2024-02-00
电子出版
2023-00-08
页码
255-269
Language
English
Country/Region
Germany
NLM ID
101135325
基金资助
National Health and Medical Research Council Principal Research Fellowship · APP1080914
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