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A 3-D Rat Brain Model for Blast-Wave Exposure: Effects of Brain Vasculature and Material Properties

Exposure to blast waves is suspected to cause primary traumatic brain injury. However, existing finite-element (FE) models of the rat head lack the necessary fidelity to characterize the biomechanical responses in the brain due to blast exposure. They neglect to represent the cerebral vasculature, w...

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Autores principales: Unnikrishnan, Ginu, Mao, Haojie, Sundaramurthy, Aravind, Bell, E. David, Yeoh, Stewart, Monson, Kenneth, Reifman, Jaques
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer US 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6757019/
https://www.ncbi.nlm.nih.gov/pubmed/31054004
http://dx.doi.org/10.1007/s10439-019-02277-2
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author Unnikrishnan, Ginu
Mao, Haojie
Sundaramurthy, Aravind
Bell, E. David
Yeoh, Stewart
Monson, Kenneth
Reifman, Jaques
author_facet Unnikrishnan, Ginu
Mao, Haojie
Sundaramurthy, Aravind
Bell, E. David
Yeoh, Stewart
Monson, Kenneth
Reifman, Jaques
author_sort Unnikrishnan, Ginu
collection PubMed
description Exposure to blast waves is suspected to cause primary traumatic brain injury. However, existing finite-element (FE) models of the rat head lack the necessary fidelity to characterize the biomechanical responses in the brain due to blast exposure. They neglect to represent the cerebral vasculature, which increases brain stiffness, and lack the appropriate brain material properties characteristic of high strain rates observed in blast exposures. To address these limitations, we developed a high-fidelity three-dimensional FE model of a rat head. We explicitly represented the rat’s cerebral vasculature and used high-strain-rate material properties of the rat brain. For a range of blast overpressures (100 to 230 kPa) the brain-pressure predictions matched experimental results and largely overlapped with and tracked the incident pressure–time profile. Incorporating the vasculature decreased the average peak strain in the cerebrum, cerebellum, and brainstem by 17, 33, and 18%, respectively. When compared with our model based on rat-brain properties, the use of human-brain properties in the FE model led to a three-fold reduction in the strain predictions. For simulations of blast exposure in rats, our findings suggest that representing cerebral vasculature and species-specific brain properties has a considerable influence in the resulting brain strain but not the pressure predictions. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (10.1007/s10439-019-02277-2) contains supplementary material, which is available to authorized users.
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spelling pubmed-67570192019-10-07 A 3-D Rat Brain Model for Blast-Wave Exposure: Effects of Brain Vasculature and Material Properties Unnikrishnan, Ginu Mao, Haojie Sundaramurthy, Aravind Bell, E. David Yeoh, Stewart Monson, Kenneth Reifman, Jaques Ann Biomed Eng State-of-the-Art Modeling and Simulation of the Brain's Response to Mechanical Loads Exposure to blast waves is suspected to cause primary traumatic brain injury. However, existing finite-element (FE) models of the rat head lack the necessary fidelity to characterize the biomechanical responses in the brain due to blast exposure. They neglect to represent the cerebral vasculature, which increases brain stiffness, and lack the appropriate brain material properties characteristic of high strain rates observed in blast exposures. To address these limitations, we developed a high-fidelity three-dimensional FE model of a rat head. We explicitly represented the rat’s cerebral vasculature and used high-strain-rate material properties of the rat brain. For a range of blast overpressures (100 to 230 kPa) the brain-pressure predictions matched experimental results and largely overlapped with and tracked the incident pressure–time profile. Incorporating the vasculature decreased the average peak strain in the cerebrum, cerebellum, and brainstem by 17, 33, and 18%, respectively. When compared with our model based on rat-brain properties, the use of human-brain properties in the FE model led to a three-fold reduction in the strain predictions. For simulations of blast exposure in rats, our findings suggest that representing cerebral vasculature and species-specific brain properties has a considerable influence in the resulting brain strain but not the pressure predictions. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (10.1007/s10439-019-02277-2) contains supplementary material, which is available to authorized users. Springer US 2019-05-03 2019 /pmc/articles/PMC6757019/ /pubmed/31054004 http://dx.doi.org/10.1007/s10439-019-02277-2 Text en © The Author(s) 2019 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle State-of-the-Art Modeling and Simulation of the Brain's Response to Mechanical Loads
Unnikrishnan, Ginu
Mao, Haojie
Sundaramurthy, Aravind
Bell, E. David
Yeoh, Stewart
Monson, Kenneth
Reifman, Jaques
A 3-D Rat Brain Model for Blast-Wave Exposure: Effects of Brain Vasculature and Material Properties
title A 3-D Rat Brain Model for Blast-Wave Exposure: Effects of Brain Vasculature and Material Properties
title_full A 3-D Rat Brain Model for Blast-Wave Exposure: Effects of Brain Vasculature and Material Properties
title_fullStr A 3-D Rat Brain Model for Blast-Wave Exposure: Effects of Brain Vasculature and Material Properties
title_full_unstemmed A 3-D Rat Brain Model for Blast-Wave Exposure: Effects of Brain Vasculature and Material Properties
title_short A 3-D Rat Brain Model for Blast-Wave Exposure: Effects of Brain Vasculature and Material Properties
title_sort 3-d rat brain model for blast-wave exposure: effects of brain vasculature and material properties
topic State-of-the-Art Modeling and Simulation of the Brain's Response to Mechanical Loads
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6757019/
https://www.ncbi.nlm.nih.gov/pubmed/31054004
http://dx.doi.org/10.1007/s10439-019-02277-2
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