由微血管系统驱动的脑皮质组织流体流速的估计。

IF 3.6 3区 生物学 Q1 BIOLOGY
Timo Koch, Kent-André Mardal
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引用次数: 0

摘要

我们提出了一个模型框架来描述大脑组织中的大量流体流动。在此框架内,利用计算模拟,我们估计了由于静态或缓慢变化的水势梯度(静水压力梯度和渗透压梯度)而导致的灰质薄壁内的总体流速。正如我们所指出的,实验证据和一些模型参数估计目前不足以精确估计速度的情况下,我们探索了可行的参数范围,从而得出了一系列估计。我们考虑现实微血管结构(从小鼠皮质灰质中提取)的影响。虽然估计的速度在量级上很小(例如,与血流速度相比),但当考虑在较大距离上运输较大分子时,溶质与散装流体的被动运输可能是一个相关的过程。我们比较了过滤和脉动产生的速度大小。过滤可以导致薄壁中连续的定向流体流动,而脉动驱动的流动(至少部分)是可逆的。我们首次考虑了血管结构对大约1 mm3的皮层灰质组织中速度分布的影响。我们得出结论,过滤和脉动都是流体流动的潜在有力驱动因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Estimation of fluid flow velocities in cortical brain tissue driven by the microvasculature.

We present a modelling framework for describing bulk fluid flow in brain tissue. Within this framework, using computational simulation, we estimate bulk flow velocities in the grey matter parenchyma due to static or slowly varying water potential gradients-hydrostatic pressure gradients and osmotic pressure gradients. Working with the situation that experimental evidence and some model parameter estimates, as we point out, are presently insufficient to estimate velocities precisely, we explore feasible parameter ranges resulting in a range of estimates. We consider the effect of realistic microvascular architecture (extracted from mouse cortical grey matter). Although the estimated velocities are small in magnitude (e.g. in comparison to blood flow velocities), the passive transport of solutes with the bulk fluid can be a relevant process when considering larger molecules transported over larger distances. We compare velocity magnitudes resulting from filtration and pulsations. Filtration can lead to continuous directed fluid flow in the parenchyma, while pulsation-driven flow is (at least partly) reversible. For the first time, we consider the effect of the vascular architecture on the velocity distribution in a tissue sample of ca 1 mm3 cortical grey matter tissue. We conclude that both filtration and pulsations are potentially potent drivers for fluid flow.

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来源期刊
Interface Focus
Interface Focus BIOLOGY-
CiteScore
9.20
自引率
0.00%
发文量
44
审稿时长
6-12 weeks
期刊介绍: Each Interface Focus themed issue is devoted to a particular subject at the interface of the physical and life sciences. Formed of high-quality articles, they aim to facilitate cross-disciplinary research across this traditional divide by acting as a forum accessible to all. Topics may be newly emerging areas of research or dynamic aspects of more established fields. Organisers of each Interface Focus are strongly encouraged to contextualise the journal within their chosen subject.
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