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research article

A coupled hydrodynamic model of the cardiovascular and cerebrospinal fluid system

Martin, Bryn A.
•
Reymond, Philippe  
•
Novy, Jan
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2012
American Journal Of Physiology-Heart And Circulatory Physiology

Martin BA, Reymond P, Novy J, Baledent O, Stergiopulos N. A coupled hydrodynamic model of the cardiovascular and cerebrospinal fluid system. Am J Physiol Heart Circ Physiol 302: H1492-H1509, 2012. First published January 20, 2012; doi: 10.1152/ajpheart.00658.2011.-Coupling of the cardiovascular and cerebrospinal fluid (CSF) system is considered to be important to understand the pathophysiology of cerebrovascular and craniospinal disease and intrathecal drug delivery. A coupled cardiovascular and CSF system model was designed to examine the relation of spinal cord (SC) blood flow (SCBF) and CSF pulsations along the spinal subarachnoid space (SSS). A one-dimensional (1-D) cardiovascular tree model was constructed including a simplified SC arterial network. Connection between the cardiovascular and CSF system was accomplished by a transfer function based on in vivo measurements of CSF and cerebral blood flow. A 1-D tube model of the SSS was constructed based on in vivo measurements in the literature. Pressure and flow throughout the cardiovascular and CSF system were determined for different values of craniospinal compliance. SCBF results indicated that the cervical, thoracic, and lumbar SC each had a signature waveform shape. The cerebral blood flow to CSF transfer function reproduced an in vivo-like CSF flow waveform. The 1-D tube model of the SSS resulted in a distribution of CSF pressure and flow and a wave speed that were similar to those in vivo. The SCBF to CSF pulse delay was found to vary a great degree along the spine depending on craniospinal compliance and vascular anatomy. The properties and anatomy of the SC arterial network and SSS were found to have an important impact on pressure and flow and perivascular fluid movement to the SC. Overall, the coupled model provides predictions about the flow and pressure environment in the SC and SSS. More detailed measurements are needed to fully validate the model.

  • Details
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Type
research article
DOI
10.1152/ajpheart.00658.2011
Web of Science ID

WOS:000302341000014

Author(s)
Martin, Bryn A.
Reymond, Philippe  
Novy, Jan
Baledent, Olivier
Stergiopulos, Nikolaos  
Date Issued

2012

Published in
American Journal Of Physiology-Heart And Circulatory Physiology
Volume

302

Start page

H1492

End page

H1509

Subjects

spinal cord blood flow

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craniospinal disorders

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cardiovascular model

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one-dimensional computational model

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pulse wave velocity

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craniospinal compliance

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cerebral blood flow

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interstitial fluid

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perivascular flow

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syringomyelia

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hydrocephalus

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intrathecal drug delivery

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Chiari-I Malformation

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Cerebral-Blood-Flow

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Human Intracranial Hydrodynamics

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Normal-Pressure Hydrocephalus

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Scanning-Electron-Microscopy

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Intrathecal Drug-Delivery

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Lumbar Dura-Mater

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Spinal Pia Mater

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Magnetic-Resonance

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Subarachnoid Space

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LHTC  
Available on Infoscience
April 26, 2012
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/79714
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