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Spinal Cord Boundary Conditions Affect Brain Tissue Strains in Impact Simulations.

作者信息

Rycman Aleksander, McLachlin Stewart D, Cronin Duane S

机构信息

Department of Mechanical & Mechatronics Engineering, University of Waterloo, 200 University Avenue West, Waterloo, ON, N2L 3G1, Canada.

出版信息

Ann Biomed Eng. 2023 Apr;51(4):783-793. doi: 10.1007/s10439-022-03089-7. Epub 2022 Oct 1.


DOI:10.1007/s10439-022-03089-7
PMID:36183024
Abstract

Brain and spinal cord injuries have devastating consequences on quality of life but are challenging to assess experimentally due to the traumatic nature of such injuries. Finite element human body models (HBM) have been developed to investigate injury but are limited by a lack of biofidelic spinal cord implementation. In many HBM, brain models terminate with a fixed boundary condition at the brain stem. The goals of this study were to implement a comprehensive representation of the spinal cord into a contemporary head and neck HBM, and quantify the effect of the spinal cord on brain deformation during simulated impacts. Spinal cord tissue geometries were developed, based on 3D medical imaging and literature data, meshed, and implemented into the GHBMC 50th percentile male model. The model was evaluated in frontal, lateral, rear, and oblique impact conditions, and the resulting maximum principal strains in the brain tissue were compared, with and without the spinal cord. A new cumulative strain curve metric was proposed to quantify brain strain distribution. Presence of the spinal cord increased brain tissue strains in all simulated cases, owing to a more compliant boundary condition, highlighting the importance of the spinal cord to assess brain response during impact.

摘要

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Spinal Cord Boundary Conditions Affect Brain Tissue Strains in Impact Simulations.

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[2]
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[4]
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[5]
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本文引用的文献

[1]
Comparison of numerical methods for cerebrospinal fluid representation and fluid-structure interaction during transverse impact of a finite element spinal cord model.

Int J Numer Method Biomed Eng. 2022-3

[2]
Brain response of a computational head model for prescribed skull kinematics and simulated football helmet impact boundary conditions.

J Mech Behav Biomed Mater. 2021-3

[3]
Evaluation of Brain Response during Head Impact in Youth Athletes Using an Anatomically Accurate Finite Element Model.

J Neurotrauma. 2019-1-9

[4]
Compressive mechanical characterization of non-human primate spinal cord white matter.

Acta Biomater. 2018-5-2

[5]
Incorporating ligament laxity in a finite element model for the upper cervical spine.

Spine J. 2017-6-30

[6]
Development and validation of an atlas-based finite element brain model.

Biomech Model Mechanobiol. 2016-10

[7]
Development and Validation of the Total HUman Model for Safety (THUMS) Toward Further Understanding of Occupant Injury Mechanisms in Precrash and During Crash.

Traffic Inj Prev. 2015

[8]
Anatomic study and clinical significance of the dorsal meningovertebral ligaments of the thoracic dura mater.

Spine (Phila Pa 1976). 2015-5-15

[9]
The morphology and clinical significance of the dorsal meningovertebra ligaments in the cervical epidural space.

Spine J. 2014-11-1

[10]
The diameters and number of nerve fibers in spinal nerve roots.

J Spinal Cord Med. 2015-7

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