Department of Biomedical Engineering, Wake Forest School of Medicine, 575 N. Patterson Avenue, Suite 530, Winston-Salem, NC, 27101, USA.
School of Biomedical Engineering and Sciences, Virginia Tech - Wake Forest University, 575 N. Patterson Avenue, Suite 530, Winston-Salem, NC, 27101, USA.
Ann Biomed Eng. 2021 Mar;49(3):1083-1096. doi: 10.1007/s10439-020-02685-9. Epub 2020 Nov 30.
Athletes participating in contact sports are exposed to repetitive subconcussive head impacts that may have long-term neurological consequences. To better understand these impacts and their effects, head impacts are often measured during football to characterize head impact exposure and estimate injury risk. Despite widespread use of kinematic-based metrics, it remains unclear whether any single metric derived from head kinematics is well-correlated with measurable changes in the brain. This shortcoming has motivated the increasing use of finite element (FE)-based metrics, which quantify local brain deformations. Additionally, quantifying cumulative exposure is of increased interest to examine the relationship to brain changes over time. The current study uses the atlas-based brain model (ABM) to predict the strain response to impacts sustained by 116 youth football athletes and proposes 36 new, or derivative, cumulative strain-based metrics that quantify the combined burden of head impacts over the course of a season. The strain-based metrics developed and evaluated for FE modeling and presented in the current study present potential for improved analytics over existing kinematically-based and cumulative metrics. Additionally, the findings highlight the importance of accounting for directional dependence and expand the techniques to explore spatial distribution of the strain response throughout the brain.
参与接触性运动的运动员会受到重复性亚临床性头部撞击,这可能会带来长期的神经学后果。为了更好地了解这些撞击及其影响,人们经常在橄榄球比赛中测量头部撞击,以描述头部撞击的暴露情况并估计受伤风险。尽管运动学指标得到了广泛应用,但仍不清楚头部运动学的任何单一指标是否与大脑的可测量变化密切相关。这一不足促使人们越来越多地使用基于有限元(FE)的指标来量化局部大脑变形。此外,量化累积暴露量也越来越受到关注,以研究其与大脑随时间变化的关系。本研究使用基于图谱的大脑模型(ABM)来预测 116 名青年橄榄球运动员头部撞击的应变响应,并提出了 36 种新的或衍生的累积应变指标,用于量化一个赛季中头部撞击的综合负荷。本研究中为 FE 建模开发和评估的应变指标提出了比现有运动学和累积指标更有潜力的分析方法。此外,研究结果强调了考虑方向依赖性的重要性,并扩展了技术以探索大脑内应变响应的空间分布。