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Patient-Specific Biomechanical Modeling of Ventricular Enlargement in Hydrocephalus from Longitudinal Magnetic Resonance Imaging

机译:从纵向磁共振成像中脑室脑室患者的特异性生物力学建模

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Ogden type of hyperelastic constitutive law has recently emerged in modeling ventricular enlargement in hydrocephalic brain with finite element method, but this material property for brain tissue has not been investigated in a patient-specific setting in hydrocephalus. Consequently, the accuracy of the simulated ventricular enlargement using this hyperelastic tissue property remains unknown. In this study, we evaluated this brain material model in four patients with communicating hydrocephalus under a small trans-mantle pressure difference (TPMD) between brain ventricle and subarachnoid space (<1mmHg). Based upon changes in ventricular geometries obtained with sequential MRI, we found that this hyper-elastic model has a great flexibility and accuracy in modeling ventricular enlargement (with errors less than 1mm). Our study supports the utility of this hyperelastic constitutive law for future hydrocephalus modeling and suggests that the observed ventricular enlargement in these patients may be caused by a slight increase in TMPD.
机译:奥格登型超弹性本构关系最近出现在脑积水大脑与有限元法造型心室扩大,但脑组织这种材料属性尚未在脑积水患者特定的设置进行了研究。因此,使用这种超弹性组织属性的模拟心室扩大的准确性仍然未知。在这项研究中,我们在脑室心室和蛛网膜下腔(<1mMHg)之间的小型型碎屑压力差(TPMD)下进行了四个患者的四个患者的脑材料模型。基于用顺序MRI获得的心室几何形状的变化,我们发现这种超弹性模型具有巨大的灵活性和准确性,在建模的心室扩大(具有误差小于1mm)。我们的研究支持这种超弹性本构法律的效用,以便未来的脑积水建模,并表明观察到这些患者的心室扩大可能是由于TMPD的轻微增加而导致。

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