Sundaresh SN, Finan JD, Elkin BS, Lee C, Xiao J, Morrison 3rd B (2021). Viscoelastic characterization of porcine brain tissue mechanical properties under indentation loading. Brain Multiphysics, 100041. doi.org/10.1016/j.brain.2021.100041.
The goal of this study was to measure the mechanical properties of porcine brain tissue and determine if they were dependent on anatomical region or direction.
Multistep stress relaxation indentations with a cylindrical probe were performed at 10, 20, and 30% nominal strain on multiple regions in the sagittal, horizontal, and coronal planes. Linear and nonlinear (using the quasilinear theory of viscoelasticity [QLV]) constitutive formulations were applied to extract parameters to capture the mechanical behavior of brain tissue.
The linear viscoelastic analytic approach provided the best fit to the experimental data of the models tested. Within each directional plane there were region-dependent differences. The cerebellum was the softest region within each loading direction. Although the majority of the regions were isotropic, the cerebellum white matter and thalamus were anisotropic. The characterization of these mechanical properties can be used to inform finite element models of the pig brain to help predict a more biofidelic response in animal models of traumatic brain injury.

