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Biomechanics of Acute Subdural Hematoma in the Elderly: A Fluid-Structure Interaction Study.老年人急性硬脑膜下血肿的生物力学:流固耦合研究。
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Utilizing multiple scale models to improve predictions of extra-axial hemorrhage in the immature piglet.利用多尺度模型改善未成熟仔猪轴外出血的预测。
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预测快速头部转动时新生猪桥静脉破裂和外轴出血。

Predictions of neonatal porcine bridging vein rupture and extra-axial hemorrhage during rapid head rotations.

机构信息

Department of Bioengineering, University of Pennsylvania, USA.

Wallace H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology and Emory University, USA.

出版信息

J Mech Behav Biomed Mater. 2020 Jun;106:103740. doi: 10.1016/j.jmbbm.2020.103740. Epub 2020 Mar 23.

DOI:10.1016/j.jmbbm.2020.103740
PMID:32250951
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7228785/
Abstract

When the head is rotated rapidly, the movement of the brain lags that of the skull. Intracranial contents between the brain and skull include meninges, cerebrospinal fluid (CSF), and cerebral vasculature. Among the cerebral vasculature in this space are the parasagittal bridging veins (BVs), which drain blood from the brain into the superior sagittal sinus (SSS), which is housed within the falx cerebri, adhered to the inner surface of the skull. Differential motion between the brain and skull that may occur during a traumatic event is thought to stretch BVs, causing damage and producing extra-axial hemorrhage (EAH). Finite element (FE) modeling is a technique often used to aid in the understanding and prediction of traumatic brain injury (TBI), and estimation of tissue deformation during traumatic events provides insight into kinematic injury thresholds. Using a FE model of the newborn porcine head with neonatal porcine brain and BV properties, single and cyclic rapid head rotations without impact were simulated. Measured BV failure properties were used to predict BV rupture. By comparing simulation outputs to observations of EAH in a development group of in vivo studies of rapid non-impact head rotations in the piglet, it was determined that failure of 16.7% of BV elements was associated with a 50% risk of EAH, and showed in a separate validation group that this threshold predicted the occurrence of EAH with 100% sensitivity and 100% specificity for single rapid non-impact rotations. This threshold for failed BV elements performed with 90% overall correct prediction in simulations of cyclic rotational head injuries. A 50% risk of EAH was associated with head angular velocities of 94.74 rad/s and angular accelerations of 29.60 krad/s in the newborn piglet. Future studies may build on these findings for BV failure in the piglet to develop predictive models for BV failure in human infants.

摘要

当头部快速旋转时,大脑的运动滞后于颅骨。颅内内容物包括脑膜、脑脊液(CSF)和脑血管。在这个空间中的脑血管包括矢状窦旁桥静脉(BVs),它们将血液从大脑引流到位于大脑镰内的上矢状窦(SSS)。在创伤事件中,大脑和颅骨之间可能发生的差异运动被认为会拉伸 BVs,导致损伤并产生外轴出血(EAH)。有限元(FE)建模是一种常用于辅助理解和预测创伤性脑损伤(TBI)的技术,估计创伤事件期间的组织变形可以深入了解运动损伤阈值。使用具有新生儿猪脑和 BV 特性的新生仔猪头部 FE 模型,模拟了无冲击的单次和循环快速头部旋转。使用测量的 BV 失效特性来预测 BV 破裂。通过将模拟输出与新生仔猪快速非冲击性头部旋转的体内研究发展组中的 EAH 观察结果进行比较,确定 16.7%的 BV 元素失效与 50%的 EAH 风险相关,并且在单独的验证组中表明,该阈值以 100%的敏感性和 100%的特异性预测了 100%的 EAH 的发生。在对循环旋转性头部损伤的模拟中,该失效 BV 元素的阈值总体正确预测率为 90%。在新生仔猪中,50%的 EAH 风险与头部角速度为 94.74 rad/s 和角速度加速度为 29.60 krad/s 相关。未来的研究可能会基于这些发现,研究仔猪的 BV 失效,以开发人类婴儿的 BV 失效预测模型。