Age and gender based biomechanical shape and size analysis of the pediatric brain

Kerry A Danelson1, Carol P Geer, Joel D Stitzel

  • 1Wake Forest University School of Medicine. kdanelso@wfubmc.edu

Stapp Car Crash Journal
|December 17, 2008
PubMed

Insights

Pediatric brain shape and size changes influence injury prediction models. Brain size variations significantly impact finite element model responses more than shape changes, aiding in better injury assessment for children in car crashes.

Area of Science:

  • Biomechanical Engineering
  • Pediatric Traumatology
  • Neuroscience

Background:

  • Motor vehicle crashes (MVCs) are a primary cause of pediatric head injury and mortality in the US.
  • Understanding pediatric brain morphologic changes is crucial for injury prediction and finite element model (FEM) development.
  • Existing models may not fully capture age-related variations in brain structure.

Purpose of the Study:

  • To quantify age-related shape and size (morphologic) changes in the pediatric brain (cerebrum, cerebellum, brainstem, ventricles).
  • To assess how these morphologic changes affect the response of a pediatric head injury finite element model (FEM).
  • To develop a model describing pediatric brain morphologic changes as a function of age.

Main Methods:

  • Generalized Procrustes Analysis (GPA) with a sliding landmark method on MRI data from 63 normal subjects.
  • Regression analysis of shape and size changes against age to create an age-based morphologic model.
  • Application of affine transformations to the SIMon FEM using size and shape models to analyze injury response variations.

Main Results:

  • The cerebrum exhibited the most significant shape changes with age (p<0.009 for both sexes).
  • The age-based model explained over 80% of the variation in cerebrum size.
  • FEM responses, particularly the spatial distribution of elements exceeding 15% strain, varied with size and shape transformations, but overall response magnitude was driven by size variations.

Conclusions:

  • A novel methodology was established to quantify pediatric brain shape and size variation from infancy to adulthood.
  • FEM responses to simulated injury are more sensitive to age-related brain size changes than shape changes.
  • This research provides a foundation for more accurate pediatric head injury prediction and improved biomechanical modeling.