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头部姿势会影响大鼠在冲击波加载下颅内压的反应。

Head orientation affects the intracranial pressure response resulting from shock wave loading in the rat.

机构信息

Department of Biomedical Engineering, Wayne State University, Detroit, MI 48201, United States.

出版信息

J Biomech. 2012 Oct 11;45(15):2595-602. doi: 10.1016/j.jbiomech.2012.08.024. Epub 2012 Sep 1.

Abstract

Since an increasing number of returning military personnel are presenting with neurological manifestations of traumatic brain injury (TBI), there has been a great focus on the effects resulting from blast exposure. It is paramount to resolve the physical mechanism by which the critical stress is being inflicted on brain tissue from blast wave encounters with the head. This study quantitatively measured the effect of head orientation on intracranial pressure (ICP) of rats exposed to a shock wave. Furthermore, the study examined how skull maturity affects ICP response of animals exposed to shock waves at various orientations. Results showed a significant increase in ICP values in larger rats at any orientation. Furthermore, when side-ICP values were compared to the other orientations, the peak pressures were significantly lower suggesting a relation between ICP and orientation of the head due to geometry of the skull and location of sutures. This finding accentuates the importance of skull dynamics in explaining possible injury mechanisms during blast. Also, the rate of pressure change was measured and indicated that the rate was significantly higher when the top of the head was facing the shock front. The results confirm that the biomechanical response of the superior rat skull is distinctive compared to other areas of the skull, suggesting a skull flexure mechanism. These results not only present insights into the mechanism of brain injury, but also provide information which can be used for designing more effective protective head gear.

摘要

由于越来越多的退伍军人出现创伤性脑损伤(TBI)的神经表现,因此人们非常关注爆炸暴露带来的影响。当头部受到冲击波冲击时,解决关键压力对脑组织造成的物理机制至关重要。本研究定量测量了头部方向对暴露于冲击波的大鼠颅内压(ICP)的影响。此外,该研究还研究了颅骨成熟度如何影响以不同方向暴露于冲击波的动物的 ICP 反应。结果表明,在任何方向上,较大大鼠的 ICP 值均显着增加。此外,当将侧 ICP 值与其他方向进行比较时,峰值压力显着降低,这表明由于颅骨的几何形状和缝合线的位置,ICP 与头部的方向之间存在关系。这一发现强调了颅骨动力学在解释爆炸中可能的损伤机制中的重要性。此外,还测量了压力变化率,并表明当头顶朝向冲击波前缘时,压力变化率显着升高。结果证实,与颅骨的其他区域相比,大鼠颅骨的上半部分的生物力学响应是独特的,这表明存在颅骨弯曲机制。这些结果不仅为脑损伤的机制提供了深入的了解,还为设计更有效的头部保护装备提供了信息。

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