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Published on: June 5, 2018
In situ deformations in the immature brain during rapid rotations
Nicole G Ibrahim1, Rahul Natesh, Spencer E Szczesny
1Department of Bioengineering, University of Pennsylvania, 240 Skirkanich Hall, 210 South 33rd Street, Philadelphia, PA 19104-6321, USA.
Insights
Brain tissue strain from rapid head rotation increases with age in juvenile pigs. These findings help validate computational models for predicting age-dependent head injury thresholds in children.
Area of Science:
- Biomechanical Engineering
- Pediatric Traumatology
- Neuroscience
Background:
- Head trauma is a primary cause of death and disability in children.
- Computational models require experimental validation to accurately predict head injury mechanisms.
Purpose of the Study:
- To measure in situ brain deformation during rapid, nonimpact head rotation in juvenile pigs of varying ages.
- To provide data for validating computational models and identifying age-dependent axonal injury thresholds.
Main Methods:
- Transected piglet heads (5 days and 4 weeks old) were subjected to rapid (20-28 ms) 65-degree rotations at varying velocities (50-75 rad/s).
- Brain surface deformation was captured at 2500 frames/s, and principal strain (E(peak)) was computed using MATLAB.
- Strain measurements were analyzed for differences related to rotation speed, deceleration vs. acceleration, and piglet age.
Main Results:
- Peak principal strain (E(peak)) was significantly higher during deceleration than acceleration (p<0.05) and doubled with a 50% velocity increase.
- E(peak) increased significantly with repeated rotation at 75 rad/s (p<0.0001), suggesting structural alteration.
- E(peak) was significantly higher in 4-week-old piglets compared to 5-day-old piglets at 50 rad/s (16.5% vs. 12.4%, p<0.003), attributed to age-related differences in brain mass and viscoelasticity.
Conclusions:
- Brain tissue strain during rapid, nonimpact head rotation in juvenile pigs is significantly age-dependent.
- The empirical data will validate computational models of brain motion and aid in developing age-specific axonal injury thresholds.
- Future research will investigate brain-skull displacement to refine computational models of brain-skull interactions.
Abstract:
Head trauma is the leading cause of death and debilitating injury in children. Computational models are important tools used to understand head injury mechanisms but they must be validated with experimental data. In this communication we present in situ measurements of brain deformation during rapid, nonimpact head rotation in juvenile pigs of different ages. These data will be used to validate computational models identifying age-dependent thresholds of axonal injury. Fresh 5 days (n=3) and 4 weeks (n=2) old piglet heads were transected horizontally and secured in a container. The cut surface of each brain was marked and covered with a transparent, lubricated plate that allowed the brain to move freely in the plane of rotation. For each brain, a rapid (20-28 ms) 65 deg rotation was applied sequentially at 50 rad/s, 75 rad/s, and 75 rad/s. Each rotation was digitally captured at 2500 frames/s (480x320 pixels) and mark locations were tracked and used to compute strain using an in-house program in MATLAB. Peak values of principal strain (E(peak)) were significantly larger during deceleration than during acceleration of the head rotation (p<0.05), and doubled with a 50% increase in velocity. E(peak) was also significantly higher during the second 75 rad/s rotation than during the first 75 rad/s rotation (p<0.0001), suggesting structural alteration at 75 rad/s and the possibility that similar changes may have occurred at 50 rad/s. Analyzing only lower velocity (50 rad/s) rotations, E(peak) significantly increased with age (16.5% versus 12.4%, p<0.003), which was likely due to the larger brain mass and smaller viscoelastic modulus of the 4 weeks old pig brain compared with those of the 5 days old. Strain measurement error for the overall methodology was estimated to be 1%. Brain tissue strain during rapid, nonimpact head rotation in the juvenile pig varies significantly with age. The empirical data presented will be used to validate computational model predictions of brain motion under similar loading conditions and to assist in the development of age-specific thresholds for axonal injury. Future studies will examine the brain-skull displacement and will be used to validate brain-skull interactions in computational models.
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