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首页> 外文期刊>Biomechanics and modeling in mechanobiology >An anatomically detailed and personalizable head injury model: Significance of brain and white matter tract morphological variability on strain
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An anatomically detailed and personalizable head injury model: Significance of brain and white matter tract morphological variability on strain

机译:一个解剖学细致和可个性的头部伤害模型:脑和白质的意义菌株对菌株的形态变异性

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摘要

Finite element head (FE) models are important numerical tools to study head injuries and develop protection systems. The generation of anatomically accurate and subject-specific head models with conforming hexahedral meshes remains a significant challenge. The focus of this study is to present two developmental works: first, an anatomically detailed FE head model with conforming hexahedral meshes that has smooth interfaces between the brain and the cerebrospinal fluid, embedded with white matter (WM) fiber tracts; second, a morphing approach for subject-specific head model generation via a new hierarchical image registration pipeline integrating Demons and Dramms deformable registration algorithms. The performance of the head model is evaluated by comparing model predictions with experimental data of brain-skull relative motion, brain strain, and intracranial pressure. To demonstrate the applicability of the head model and the pipeline, six subject-specific head models of largely varying intracranial volume and shape are generated, incorporated with subject-specific WM fiber tracts. DICE similarity coefficients for cranial, brain mask, local brain regions, and lateral ventricles are calculated to evaluate personalization accuracy, demonstrating the efficiency of the pipeline in generating detailed subject-specific head models achieving satisfactory element quality without further mesh repairing. The six head models are then subjected to the same concussive loading to study the sensitivity of brain strain to inter-subject variability of the brain and WM fiber morphology. The simulation results show significant differences in maximum principal strain and axonal strain in local brain regions (one-way ANOVA test,p < 0.001), as well as their locations also vary among the subjects, demonstrating the need to further investigate the significance of subject-specific models. The techniques developed in this study may contribute to better evaluation of individual brain injury and the development of individualized head protection systems in the future. This study also contains general aspects the research community may find useful: on the use of experimental brain strain close to or at injury level for head model validation; the hierarchical image registration pipeline can be used to morph other head models, such as smoothed-voxel models.
机译:有限元头(FE)模型是学习头部损伤和开发保护系统的重要数值工具。具有符合六面谱网格的解剖学上准确和主题的头部模型的产生仍然是一个重大挑战。本研究的重点是提出两个发展作品:第一,一个解剖学上详细的Fe头模型,具有符合血管和脑脊液之间具有光滑界面的六面向网格,嵌入白质(WM)纤维束之间;其次,通过新的分层图像登记流水线集成恶魔和DRAM可变形登记算法,成为特定主题头模型的变形方法。通过将模型预测与脑颅骨相对运动,脑菌株和颅内压的实验数据进行比较来评估头部模型的性能。为了证明头部模型和管道的适用性,产生了六种特异性的颅内体积和形状的特异性头部模型,并掺入了专用的WM纤维束。计算颅脑,脑掩模,局部脑区和侧脑室和侧脑室的骰子相似度系数以评估个性化精度,证明在没有进一步的网眼修复的情况下实现令人满意的元件质量的详细主题专用头模型的管道效率。然后对六种头部模型进行相同的巨大兴奋,以研究脑菌株对脑和WM纤维形态的互变异性的敏感性。仿真结果显示出局部脑区最大主应变和轴突应变的显着差异(单向ANOVA测试,P <0.001),以及它们的位置在受试者中也有所不同,表明需要进一步研究主题的重要性实惠的模型。本研究开发的技术可能有助于更好地评估未来个体脑损伤和个性化头保护系统的发展。本研究还含有一般方面,研究界可能会发现有用:关于使用实验性脑菌株,接近或伤害水平的损伤水平验证;分层图像登记流水线可用于变形其他头部模型,例如平滑体素模型。

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