从脑部谐波运动的核磁共振成像洞察创伤性脑损伤。

Journal of Experimental Neuroscience Pub Date : 2019-04-07 eCollection Date: 2019-01-01 DOI:10.1177/1179069519840444
Ruth J Okamoto, Anthony J Romano, Curtis L Johnson, Philip V Bayly
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引用次数: 0

摘要

通过分析颅骨外部谐波振动引起的人脑动态变形测量结果,阐明了轻度创伤性脑损伤(TBI)的力学原理。获得的剪切波传播速度矢量场说明了头骨和坚硬的内膜在向大脑传递运动方面的作用。对大脑和小脑之间的相对运动进行了量化,以评估连接结构的脆弱性。对整个大脑的机械变形进行了量化,以研究应变和轴突伸展的空间模式。当剪切波传播到大脑内部结构时,应变幅度普遍衰减;频率越高,衰减幅度越大。对剪切波传播方向的分析表明,硬膜(蝶骨和触角)对头骨外加运动时的大脑变形有很大影响,因为它们是剪切波的起始点和反射点。与这两个结构的整体运动相比,小脑和大脑之间的相对运动很小,这表明这种相对运动在创伤性脑损伤力学中可能只起很小的作用。沟底附近的应变幅度和轴突伸展量与皮层其他区域相似,灰白质边界未观察到局部应变集中。我们初步得出结论,在这些区域观察到的神经病理学反应差异可能是由于对机械变形反应的异质性而非变形本身的异质性造成的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Insights Into Traumatic Brain Injury From MRI of Harmonic Brain Motion.

Insights Into Traumatic Brain Injury From MRI of Harmonic Brain Motion.

Insights Into Traumatic Brain Injury From MRI of Harmonic Brain Motion.

Insights Into Traumatic Brain Injury From MRI of Harmonic Brain Motion.

Measurements of dynamic deformation of the human brain, induced by external harmonic vibration of the skull, were analyzed to illuminate the mechanics of mild traumatic brain injury (TBI). Shear wave propagation velocity vector fields were obtained to illustrate the role of the skull and stiff internal membranes in transmitting motion to the brain. Relative motion between the cerebrum and cerebellum was quantified to assess the vulnerability of connecting structures. Mechanical deformation was quantified throughout the brain to investigate spatial patterns of strain and axonal stretch. Strain magnitude was generally attenuated as shear waves propagated into interior structures of the brain; this attenuation was greater at higher frequencies. Analysis of shear wave propagation direction indicates that the stiff membranes (falx and tentorium) greatly affect brain deformation during imposed skull motion as they serve as sites for both initiation and reflection of shear waves. Relative motion between the cerebellum and cerebrum was small in comparison with the overall motion of both structures, which suggests that such relative motion might play only a minor role in TBI mechanics. Strain magnitudes and the amount of axonal stretch near the bases of sulci were similar to those in other areas of the cortex, and local strain concentrations at the gray-white matter boundary were not observed. We tentatively conclude that observed differences in neuropathological response in these areas might be due to heterogeneity in the response to mechanical deformation rather than heterogeneity of the deformation itself.

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