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形式追随功能:将第三脑室-导水管-第四脑室复合体中的脑脊液流动估计为扩散器/喷嘴泵模型。

Form follows function: estimation of CSF flow in the third ventricle-aqueduct-fourth ventricle complex modeled as a diffuser/nozzle pump.

作者信息

Longatti Pierluigi, Fiorindi Alessandro, Peruzzo Paolo, Basaldella Luca, Susin Francesca Maria

机构信息

1Neurosurgical Unit, Treviso Hospital, University of Padova; and.

2Cardiovascular Fluid Dynamics Laboratory HER, Department of Civil, Environmental and Architectural Engineering, University of Padova, Italy.

出版信息

J Neurosurg. 2019 Aug 16;133(3):894-901. doi: 10.3171/2019.5.JNS19276. Print 2020 Sep 1.

Abstract

OBJECTIVE

In the last 20 years, researchers have debated cerebrospinal fluid (CSF) dynamics theories, commonly based on the classic bulk flow perspective. New hypotheses do not consider a possible hydraulic impact of the ventricular morphology. The present study investigates, by means of a mathematical model, the eventual role played by the geometric shape of the "third ventricle-aqueduct-fourth ventricle" complex in CSF circulation under the assumption that the complex behaves like a diffuser/nozzle (DN) pump.

METHODS

DN pumps are quite recent devices introduced as valveless micropumps in various industrial applications given their property of driving net flow when subjected to rhythmic pulsations. A novel peculiar DN pump configuration was adopted in this study to mimic the ventricular complex, with two reservoirs (the ventricles) and one tube provided with a conical reach (the aqueduct-proximal fourth ventricle). The flow was modeled according to the classic equations of laminar flow, and the external rhythmic pulsations forcing the system were reproduced as a pulsatile pressure gradient between the chambers. Several physiological scenarios were implemented with the integration of data acquired by MRI in 10 patients with no known pathology of CSF dynamics, and a quantitative analysis of the effect of geometric and hydraulic parameters (diverging angle, sizes, frequency of pulsations) on the CSF net flow was performed.

RESULTS

The results showed a craniocaudal net flow in all the given values, consistent with the findings of cine MRI studies. Moreover, the net flow estimated for the analyzed cohort of patients ranged from 0.221 to 0.505 ml/min, remarkably close to the values found on phase contrast cine MRI in healthy subjects. Sensitivity analysis underlines the pivotal role of the DN configuration, as well as of the frequency of forcing pressure, which promotes a relevant net flow considering both the heart and respiration rate.

CONCLUSIONS

This work suggests that the geometry of the third ventricle-aqueduct-fourth ventricle complex, which resembles a diverter, appears to be functional in the generation of a net craniocaudal flow and potentially has an impact on CSF dynamics. These conclusions can be drawn by observing the analogies between the shape of the ventricles and the geometry of DN pumps and by recognizing the basis of the mathematical model of the simplified third ventricle-aqueduct-fourth ventricle complex proposed.

摘要

目的

在过去20年里,研究人员一直在争论脑脊液(CSF)动力学理论,这些理论通常基于经典的整体流动观点。新的假说没有考虑脑室形态可能产生的水力影响。本研究通过数学模型,在假设“第三脑室-导水管-第四脑室”复合体表现得像一个扩散器/喷嘴(DN)泵的情况下,研究该复合体的几何形状在脑脊液循环中可能发挥的作用。

方法

DN泵是最近引入的一种无阀微型泵,因其在有节奏的脉动作用下驱动净流量的特性而被应用于各种工业领域。本研究采用一种新颖独特的DN泵配置来模拟脑室复合体,有两个储液器(脑室)和一根带有锥形段(导水管-近端第四脑室)的管道。根据层流的经典方程对流动进行建模,并将迫使系统产生外部有节奏的脉动模拟为腔室之间的脉动压力梯度。结合10例无已知脑脊液动力学病变患者的MRI数据,实施了几种生理场景,并对几何和水力参数(发散角、尺寸、脉动频率)对脑脊液净流量的影响进行了定量分析。

结果

结果显示在所有给定值下均有头尾向净流量,这与电影MRI研究结果一致。此外,所分析患者队列的净流量估计值在0.221至0.505毫升/分钟之间,与健康受试者相位对比电影MRI上发现的值非常接近。敏感性分析强调了DN配置以及强迫压力频率的关键作用,考虑到心脏和呼吸频率,这会促进显著的净流量。

结论

这项研究表明,类似于分流器的第三脑室-导水管-第四脑室复合体的几何形状似乎在产生头尾向净流量方面发挥作用,并可能对脑脊液动力学产生影响。这些结论可以通过观察脑室形状与DN泵几何形状之间的相似性以及认识所提出的简化第三脑室-导水管-第四脑室复合体数学模型的基础得出。

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