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Articles

The effect of ventricular volume increase in the amplitude of intracranial pressure

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Pages 889-900 | Received 04 Jul 2018, Accepted 22 Feb 2019, Published online: 01 Apr 2019
 

Abstract

We study the impact of vascular pulse in the cerebrospinal fluid (CSF) pressure measured on the lateral cerebral ventricles, as well as its sensitivity with respect to ventricular volume change. Recent studies have addressed the importance of the compliance capacity in the brain and its relation to arterial pulse abortion in communicating hydrocephalus. Nevertheless, this mechanism is not fully understood. We propose a fluid-structure interaction (FSI) model on a 3 D idealized geometry based on realistic physiological and morphological parameters. The computational model describes the pulsatile deformation of the third ventricle due to arterial pulse and the resulting CSF dynamics inside brain pathways. The results show that when the volume of lateral ventricles increases up to 3.5 times, the amplitudes of both average and maximum pressure values, computed on the lateral ventricles surface, substantially decrease. This indicates that the lateral ventricles expansion leads to a dumping effect on the pressure exerted on the walls of the ventricles. These results strengthen the possibility that communicant hydrocephalus may, in fact, be a natural response to reduce abnormal high intracranial pressure (ICP) amplitude. This conclusion is in accordance with recent hypotheses suggesting that communicant hydrocephalus is related to a disequilibrium in brain compliance capacity.

Additional information

Funding

The authors acknowledge FCT - Fundação para a Ciência e Tecnologia (Portugal) through the Research Project UID/Multi/04621/2013 of CEMAT Center for Computational and Stochastic Mathematics (University of Lisbon), the grant SFRH/BPD/109574/2015 and the Physiomath project EXCL/MAT-NAN/0114/2012.

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