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脑积水分流术治疗 Chiari 畸形伴脊髓空洞症后脑脊液压力的计算流体动力学模型。

Computational fluid dynamics modelling of cerebrospinal fluid pressure in Chiari malformation and syringomyelia.

机构信息

Murray Maxwell Biomechanics Laboratory, Kolling Institute of Medical Research, Sydney Medical School, University of Sydney, Level 10, Kolling Building 6, RNS Hospital, St Leonards, NSW 2065, Australia.

出版信息

J Biomech. 2013 Jul 26;46(11):1801-9. doi: 10.1016/j.jbiomech.2013.05.013. Epub 2013 Jun 12.

Abstract

The pathogenesis of syringomyelia in association with Chiari malformation (CM) is unclear. Studies of patients with CM have shown alterations in the CSF velocity profile and these could contribute to syrinx development or enlargement. Few studies have considered the fluid mechanics of CM patients with and without syringomyelia separately. Three subject-specific CFD models were developed for a normal participant, a CM patient with syringomyelia and a CM patient without syringomyelia. Model geometries, CSF flow rate data and CSF velocity validation data were collected from MRI scans of the 3 subjects. The predicted peak CSF pressure was compared for the 3 models. An extension of the study performed geometry and flow substitution to investigate the relative effects of anatomy and CSF flow profile on resulting spinal CSF pressure. Based on 50 monitoring locations for each of the models, the CM models had significantly higher magnitude (p<0.01) peak CSF pressure compared with normal. When using the same CSF input flow waveform, changing the upper spinal geometry changed the magnitude of the CSF pressure gradient, and when using the same upper spinal geometry, changing the input flow waveform changed the timing of the peak pressure. This study may assist in understanding syringomyelia mechanisms and relative effects of CSF velocity profile and spinal geometry on CSF pressure.

摘要

与 Chiari 畸形(CM)相关的脊髓空洞症的发病机制尚不清楚。对 CM 患者的研究表明,CSF 速度分布发生改变,这可能导致脊髓空洞症的发展或增大。很少有研究分别考虑了伴有和不伴有脊髓空洞症的 CM 患者的流体力学。为一名正常参与者、一名伴有脊髓空洞症的 CM 患者和一名不伴有脊髓空洞症的 CM 患者分别开发了三个特定于个体的 CFD 模型。从 3 名受试者的 MRI 扫描中收集了模型几何形状、CSF 流速数据和 CSF 速度验证数据。比较了 3 个模型的预测峰值 CSF 压力。该研究的扩展部分进行了几何形状和流量替换,以研究解剖结构和 CSF 流速分布对脊髓 CSF 压力的相对影响。基于每个模型的 50 个监测位置,CM 模型的峰值 CSF 压力明显高于正常模型(p<0.01)。当使用相同的 CSF 输入流量波形时,改变上部脊柱几何形状会改变 CSF 压力梯度的幅度,而当使用相同的上部脊柱几何形状时,改变输入流量波形会改变峰值压力的时间。本研究可能有助于了解脊髓空洞症的发病机制,以及 CSF 速度分布和脊柱几何形状对 CSF 压力的相对影响。

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