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室管膜纤毛引起的流动主导了侧脑室近壁脑脊髓液动力学。

Flow induced by ependymal cilia dominates near-wall cerebrospinal fluid dynamics in the lateral ventricles.

机构信息

Laboratory of Thermodynamics in Emerging Technologies, Department of Mechanical and Process Engineering, ETH Zurich, , Zurich, Switzerland.

出版信息

J R Soc Interface. 2014 Mar 12;11(94):20131189. doi: 10.1098/rsif.2013.1189. Print 2014 May 6.

Abstract

While there is growing experimental evidence that cerebrospinal fluid (CSF) flow induced by the beating of ependymal cilia is an important factor for neuronal guidance, the respective contribution of vascular pulsation-driven macroscale oscillatory CSF flow remains unclear. This work uses computational fluid dynamics to elucidate the interplay between macroscale and cilia-induced CSF flows and their relative impact on near-wall dynamics. Physiological macroscale CSF dynamics are simulated in the ventricular space using subject-specific anatomy, wall motion and choroid plexus pulsations derived from magnetic resonance imaging. Near-wall flow is quantified in two subdomains selected from the right lateral ventricle, for which dynamic boundary conditions are extracted from the macroscale simulations. When cilia are neglected, CSF pulsation leads to periodic flow reversals along the ventricular surface, resulting in close to zero time-averaged force on the ventricle wall. The cilia promote more aligned wall shear stresses that are on average two orders of magnitude larger compared with those produced by macroscopic pulsatile flow. These findings indicate that CSF flow-mediated neuronal guidance is likely to be dominated by the action of the ependymal cilia in the lateral ventricles, whereas CSF dynamics in the centre regions of the ventricles is driven predominantly by wall motion and choroid plexus pulsation.

摘要

虽然越来越多的实验证据表明,室管膜纤毛的跳动引起的脑脊液(CSF)流动是神经元导向的一个重要因素,但血管搏动驱动的宏观 CSF 流动的各自贡献仍不清楚。本工作使用计算流体动力学来阐明宏观 CSF 流动和纤毛诱导的 CSF 流动之间的相互作用,以及它们对近壁动力学的相对影响。使用源自磁共振成像的特定于主体的解剖结构、壁运动和脉络丛搏动,在心室空间中模拟生理规模的 CSF 动力学。在右侧侧脑室中选择两个子域来量化近壁流动,从宏观模拟中提取动态边界条件。当忽略纤毛时,CSF 脉动会导致沿心室表面的周期性流动反转,从而导致心室壁上的平均力接近于零。纤毛促进更一致的壁剪切应力,其平均值比宏观脉动流产生的壁剪切应力大两个数量级。这些发现表明,CSF 流动介导的神经元导向可能主要由侧脑室中室管膜纤毛的作用主导,而心室中心区域的 CSF 动力学主要由壁运动和脉络丛搏动驱动。

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