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Brain Response to Extracranial Pressure Excitation Imaged in vivo by MR Elastography

机译:通过Eleastaprograph先生对体内成像的颅脑压激发的脑反应

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摘要

Traumatic brain injuries (TBI) are common, and often lead to permanent cognitive impairment. Despite the prevalence and severity of TBI, the condition remains poorly understood. Computer simulations of injury mechanics offer enormous potential for the study of TBI; however, computer models require accurate descriptions of tissue constitutive behavior and brain-skull boundary conditions. Magnetic resonance elastography (MRE) is a non-invasive imaging modality that provides quantitative spatial maps of tissue stiffness in vivo. MRE is performed by inducing micron-amplitude propagating shear waves into tissue and imaging the resulting motion with a specialized "motion-sensitive" MRI pulse sequence. Invoking a restricted form of Navier's equation these data can be inverted to estimate material stiffness. As such, clinical interest in MRE has largely been driven by the direct empirical relationship between tissue stiffness and health. However, the so-called "raw" MRE data themselves (3-D displacement measurements) and calculated strains can elucidate loading paths, anatomic boundaries and the dynamic response of the intact human head. In this study, we use the MRE imaging technique to measure in vivo displacement fields of brain motion as the cranium is exposed to acoustic frequency pressure excitation (45, 60, 80 Hz) and calculate the resulting shear-strain fields (2-D).
机译:创伤性脑损伤(TBI)是常见的,通常导致永久性认知障碍。尽管TBI的患病率和严重程度,但该病症仍然明白。伤害力学计算机模拟为TBI研究提供了巨大潜力;然而,计算机模型需要准确描述组织本构行为和脑颅骨边界条件。磁共振弹性显影(MRE)是一种非侵入性成像模态,可提供体内组织刚度的定量空间图。通过将微米幅度传播剪切波引入组织并将所得运动与专门的“运动敏感”MRI脉冲序列进行成像来执行MRE。调用限制形式的Navier的公式这些数据可以反转以估计材料刚度。因此,MRE的临床兴趣主要是由组织僵硬和健康之间的直接经验关系驱动。然而,所谓的“原始”MRE数据本身(3D位移测量)和计算的菌株可以阐明加载路径,解剖边界和完整人头的动态响应。在这项研究中,我们使用MRE成像技术在大脑运动的体内位移场中测量,因为颅骨暴露于声频压力激发(45,60,80Hz)并计算所得到的剪切应变场(2-D) 。

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