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Localizing Clinical Patterns of Blast Traumatic Brain Injury Through Computational Modeling and Simulation

Blast traumatic brain injury is ubiquitous in modern military conflict with significant morbidity and mortality. Yet the mechanism by which blast overpressure waves cause specific intracranial injury in humans remains unclear. Reviewing of both the clinical experience of neurointensivists and neuros...

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Autores principales: Miller, Scott T., Cooper, Candice F., Elsbernd, Paul, Kerwin, Joseph, Mejia-Alvarez, Ricardo, Willis, Adam M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8173077/
https://www.ncbi.nlm.nih.gov/pubmed/34093380
http://dx.doi.org/10.3389/fneur.2021.547655
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author Miller, Scott T.
Cooper, Candice F.
Elsbernd, Paul
Kerwin, Joseph
Mejia-Alvarez, Ricardo
Willis, Adam M.
author_facet Miller, Scott T.
Cooper, Candice F.
Elsbernd, Paul
Kerwin, Joseph
Mejia-Alvarez, Ricardo
Willis, Adam M.
author_sort Miller, Scott T.
collection PubMed
description Blast traumatic brain injury is ubiquitous in modern military conflict with significant morbidity and mortality. Yet the mechanism by which blast overpressure waves cause specific intracranial injury in humans remains unclear. Reviewing of both the clinical experience of neurointensivists and neurosurgeons who treated service members exposed to blast have revealed a pattern of injury to cerebral blood vessels, manifested as subarachnoid hemorrhage, pseudoaneurysm, and early diffuse cerebral edema. Additionally, a seminal neuropathologic case series of victims of blast traumatic brain injury (TBI) showed unique astroglial scarring patterns at the following tissue interfaces: subpial glial plate, perivascular, periventricular, and cerebral gray-white interface. The uniting feature of both the clinical and neuropathologic findings in blast TBI is the co-location of injury to material interfaces, be it solid-fluid or solid-solid interface. This motivates the hypothesis that blast TBI is an injury at the intracranial mechanical interfaces. In order to investigate the intracranial interface dynamics, we performed a novel set of computational simulations using a model human head simplified but containing models of gyri, sulci, cerebrospinal fluid (CSF), ventricles, and vasculature with high spatial resolution of the mechanical interfaces. Simulations were performed within a hybrid Eulerian—Lagrangian simulation suite (CTH coupled via Zapotec to Sierra Mechanics). Because of the large computational meshes, simulations required high performance computing resources. Twenty simulations were performed across multiple exposure scenarios—overpressures of 150, 250, and 500 kPa with 1 ms overpressure durations—for multiple blast exposures (front blast, side blast, and wall blast) across large variations in material model parameters (brain shear properties, skull elastic moduli). All simulations predict fluid cavitation within CSF (where intracerebral vasculature reside) with cavitation occurring deep and diffusely into cerebral sulci. These cavitation events are adjacent to high interface strain rates at the subpial glial plate. Larger overpressure simulations (250 and 500kPa) demonstrated intraventricular cavitation—also associated with adjacent high periventricular strain rates. Additionally, models of embedded intraparenchymal vascular structures—with diameters as small as 0.6 mm—predicted intravascular cavitation with adjacent high perivascular strain rates. The co-location of local maxima of strain rates near several of the regions that appear to be preferentially damaged in blast TBI (vascular structures, subpial glial plate, perivascular regions, and periventricular regions) suggest that intracranial interface dynamics may be important in understanding how blast overpressures leads to intracranial injury.
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spelling pubmed-81730772021-06-04 Localizing Clinical Patterns of Blast Traumatic Brain Injury Through Computational Modeling and Simulation Miller, Scott T. Cooper, Candice F. Elsbernd, Paul Kerwin, Joseph Mejia-Alvarez, Ricardo Willis, Adam M. Front Neurol Neurology Blast traumatic brain injury is ubiquitous in modern military conflict with significant morbidity and mortality. Yet the mechanism by which blast overpressure waves cause specific intracranial injury in humans remains unclear. Reviewing of both the clinical experience of neurointensivists and neurosurgeons who treated service members exposed to blast have revealed a pattern of injury to cerebral blood vessels, manifested as subarachnoid hemorrhage, pseudoaneurysm, and early diffuse cerebral edema. Additionally, a seminal neuropathologic case series of victims of blast traumatic brain injury (TBI) showed unique astroglial scarring patterns at the following tissue interfaces: subpial glial plate, perivascular, periventricular, and cerebral gray-white interface. The uniting feature of both the clinical and neuropathologic findings in blast TBI is the co-location of injury to material interfaces, be it solid-fluid or solid-solid interface. This motivates the hypothesis that blast TBI is an injury at the intracranial mechanical interfaces. In order to investigate the intracranial interface dynamics, we performed a novel set of computational simulations using a model human head simplified but containing models of gyri, sulci, cerebrospinal fluid (CSF), ventricles, and vasculature with high spatial resolution of the mechanical interfaces. Simulations were performed within a hybrid Eulerian—Lagrangian simulation suite (CTH coupled via Zapotec to Sierra Mechanics). Because of the large computational meshes, simulations required high performance computing resources. Twenty simulations were performed across multiple exposure scenarios—overpressures of 150, 250, and 500 kPa with 1 ms overpressure durations—for multiple blast exposures (front blast, side blast, and wall blast) across large variations in material model parameters (brain shear properties, skull elastic moduli). All simulations predict fluid cavitation within CSF (where intracerebral vasculature reside) with cavitation occurring deep and diffusely into cerebral sulci. These cavitation events are adjacent to high interface strain rates at the subpial glial plate. Larger overpressure simulations (250 and 500kPa) demonstrated intraventricular cavitation—also associated with adjacent high periventricular strain rates. Additionally, models of embedded intraparenchymal vascular structures—with diameters as small as 0.6 mm—predicted intravascular cavitation with adjacent high perivascular strain rates. The co-location of local maxima of strain rates near several of the regions that appear to be preferentially damaged in blast TBI (vascular structures, subpial glial plate, perivascular regions, and periventricular regions) suggest that intracranial interface dynamics may be important in understanding how blast overpressures leads to intracranial injury. Frontiers Media S.A. 2021-05-20 /pmc/articles/PMC8173077/ /pubmed/34093380 http://dx.doi.org/10.3389/fneur.2021.547655 Text en Copyright © 2021 Miller, Cooper, Elsbernd, Kerwin, Mejia-Alvarez and Willis. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neurology
Miller, Scott T.
Cooper, Candice F.
Elsbernd, Paul
Kerwin, Joseph
Mejia-Alvarez, Ricardo
Willis, Adam M.
Localizing Clinical Patterns of Blast Traumatic Brain Injury Through Computational Modeling and Simulation
title Localizing Clinical Patterns of Blast Traumatic Brain Injury Through Computational Modeling and Simulation
title_full Localizing Clinical Patterns of Blast Traumatic Brain Injury Through Computational Modeling and Simulation
title_fullStr Localizing Clinical Patterns of Blast Traumatic Brain Injury Through Computational Modeling and Simulation
title_full_unstemmed Localizing Clinical Patterns of Blast Traumatic Brain Injury Through Computational Modeling and Simulation
title_short Localizing Clinical Patterns of Blast Traumatic Brain Injury Through Computational Modeling and Simulation
title_sort localizing clinical patterns of blast traumatic brain injury through computational modeling and simulation
topic Neurology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8173077/
https://www.ncbi.nlm.nih.gov/pubmed/34093380
http://dx.doi.org/10.3389/fneur.2021.547655
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