Back to Search Start Over

Reproducibility and Characterization of Head Kinematics During a Large Animal Acceleration Model of Traumatic Brain Injury

Authors :
Andrew R. Mayer
Josef M. Ling
Andrew B. Dodd
Julie G. Rannou-Latella
David D. Stephenson
Rebecca J. Dodd
Carissa J. Mehos
Declan A. Patton
D. Kacy Cullen
Victoria E. Johnson
Sharvani Pabbathi Reddy
Cidney R. Robertson-Benta
Andrew P. Gigliotti
Timothy B. Meier
Meghan S. Vermillion
Douglas H. Smith
Rachel Kinsler
Source :
Frontiers in Neurology, Vol 12 (2021), Frontiers in Neurology
Publication Year :
2021
Publisher :
Frontiers Media S.A., 2021.

Abstract

Acceleration parameters have been utilized for the last six decades to investigate pathology in both human and animal models of traumatic brain injury (TBI), design safety equipment, and develop injury thresholds. Previous large animal models have quantified acceleration from impulsive loading forces (i.e., machine/object kinematics) rather than directly measuring head kinematics. No study has evaluated the reproducibility of head kinematics in large animal models. Nine (five males) sexually mature Yucatan swine were exposed to head rotation at a targeted peak angular velocity of 250 rad/s in the coronal plane. The results indicated that the measured peak angular velocity of the skull was 51% of the impulsive load, was experienced over 91% longer duration, and was multi- rather than uni-planar. These findings were replicated in a second experiment with a smaller cohort (N = 4). The reproducibility of skull kinematics data was mostly within acceptable ranges based on published industry standards, although the coefficients of variation (8.9% for peak angular velocity or 12.3% for duration) were higher than the impulsive loading parameters produced by the machine (1.1 vs. 2.5%, respectively). Immunohistochemical markers of diffuse axonal injury and blood–brain barrier breach were not associated with variation in either skull or machine kinematics, suggesting that the observed levels of variance in skull kinematics may not be biologically meaningful with the current sample sizes. The findings highlight the reproducibility of a large animal acceleration model of TBI and the importance of direct measurements of skull kinematics to determine the magnitude of angular velocity, refine injury criteria, and determine critical thresholds.

Details

Language :
English
ISSN :
16642295
Volume :
12
Database :
OpenAIRE
Journal :
Frontiers in Neurology
Accession number :
edsair.doi.dedup.....83c6e9f7a0ba242059b9e0a30fd1cc7e