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.