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Respiratory Influence on Cerebrospinal Fluid Flow - a Computational Study Based on Long-term Intracranial Pressure Measurements

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Journal Sci Rep
Specialty Science
Date 2019 Jul 7
PMID 31278278
Citations 51
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Abstract

Current theories suggest that waste solutes are cleared from the brain via cerebrospinal fluid (CSF) flow, driven by pressure pulsations of possibly both cardiac and respiratory origin. In this study, we explored the importance of respiratory versus cardiac pressure gradients for CSF flow within one of the main conduits of the brain, the cerebral aqueduct. We obtained overnight intracranial pressure measurements from two different locations in 10 idiopathic normal pressure hydrocephalus (iNPH) patients. The resulting pressure gradients were analyzed with respect to cardiac and respiratory frequencies and amplitudes (182,000 cardiac and 48,000 respiratory cycles). Pressure gradients were used to compute CSF flow in simplified and patient-specific models of the aqueduct. The average ratio between cardiac over respiratory flow volume was 0.21 ± 0.09, even though the corresponding ratio between the pressure gradient amplitudes was 2.85 ± 1.06. The cardiac cycle was 0.25 ± 0.04 times the length of the respiratory cycle, allowing the respiratory pressure gradient to build considerable momentum despite its small magnitude. No significant differences in pressure gradient pulsations were found in the sleeping versus awake state. Pressure gradients underlying CSF flow in the cerebral aqueduct are dominated by cardiac pulsations, but induce CSF flow volumes dominated by respiration.

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References
1.
Dreha-Kulaczewski S, Joseph A, Merboldt K, Ludwig H, Gartner J, Frahm J . Identification of the Upward Movement of Human CSF and its Relation to the Brain Venous System. J Neurosci. 2017; 37(9):2395-2402. PMC: 6596847. DOI: 10.1523/JNEUROSCI.2754-16.2017. View

2.
WOMERSLEY J . Method for the calculation of velocity, rate of flow and viscous drag in arteries when the pressure gradient is known. J Physiol. 1955; 127(3):553-63. PMC: 1365740. DOI: 10.1113/jphysiol.1955.sp005276. View

3.
Takizawa K, Matsumae M, Sunohara S, Yatsushiro S, Kuroda K . Characterization of cardiac- and respiratory-driven cerebrospinal fluid motion based on asynchronous phase-contrast magnetic resonance imaging in volunteers. Fluids Barriers CNS. 2017; 14(1):25. PMC: 5615451. DOI: 10.1186/s12987-017-0074-1. View

4.
Antiga L, Piccinelli M, Botti L, Ene-Iordache B, Remuzzi A, Steinman D . An image-based modeling framework for patient-specific computational hemodynamics. Med Biol Eng Comput. 2008; 46(11):1097-112. DOI: 10.1007/s11517-008-0420-1. View

5.
Dreha-Kulaczewski S, Joseph A, Merboldt K, Ludwig H, Gartner J, Frahm J . Inspiration is the major regulator of human CSF flow. J Neurosci. 2015; 35(6):2485-91. PMC: 6605608. DOI: 10.1523/JNEUROSCI.3246-14.2015. View