最近对脑脊液流体动力学的新见解

Marin Bulat, Marijan Klarica
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引用次数: 198

摘要

根据传统的假设,脑脊液(CSF)在脑室内分泌,沿着蛛网膜下腔单向流动,通过蛛网膜绒毛和/或通过神经鞘进入淋巴管被静脉窦吸收。然而,根据最近的研究,似乎间质液(ISF)和脑脊液是通过中枢神经系统(CNS)动脉毛细血管壁的水过滤形成的,而血浆渗透物被过滤(保留),从而产生毛细血管渗透反压,这有助于ISF/CSF水吸收到静脉毛细血管和毛细血管后小静脉。这一假设得到了实验的支持,实验表明,占脑脊液和ISF体积99%的水不会沿着脑脊液空间流动,因为它会迅速被邻近的中枢神经系统微血管吸收,而其他物质沿着脑脊液空间的分布取决于它们进入微血管的速度:更快的去除意味着更有限的分布。此外,Sylvius输导管急性闭塞不改变离体脑室脑脊液压力,提示脑脊液的形成和吸收处于平衡状态。物质在CSF内部以及CSF与ISF之间的多向分布是由这些流体的来回脉动及其混合引起的。在生理压力下,脑脊液进入静脉窦和/或淋巴管的吸收应该是次要的,因为与微血管巨大的吸收表面积相比,它们的表面积很小。
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Recent insights into a new hydrodynamics of the cerebrospinal fluid

According to the traditional hypothesis, the cerebrospinal fluid (CSF) is secreted inside the brain ventricles and flows unidirectionally along subarachnoid spaces to be absorbed into venous sinuses across arachnoid villi and/or via paraneural sheaths of nerves into lymphatics. However, according to recent investigations, it appears that interstial fluid (ISF) and CSF are formed by water filtration across the walls of arterial capillaries in the central nervous system (CNS), while plasma osmolytes are sieved (retained) so that capillary osmotic counterpressure is generated, which is instrumental in ISF/CSF water absorption into venous capillaries and postcapillary venules. This hypothesis is supported by experiments showing that water, which constitutes 99% of CSF and ISF bulk, does not flow along CSF spaces since it is rapidly absorbed into adjacent CNS microvessels, while distribution of other substances along CSF spaces depends on the rate of their removal into microvessels: faster removal means more limited distribution. Furthermore, the acute occlusion of aqueduct of Sylvius does not change CSF pressure in isolated ventricles, suggesting that the formation and the absorption of CSF are in balance. Multidirectional distribution of substances inside CSF, as well as between CSF and ISF, is caused by to-and-fro pulsations of these fluids and their mixing. Absorption of CSF into venous sinuses and/or lymphatics under the physiological pressure should be of minor importance due to their minute surface area in comparison to the huge absorptive surface area of microvessels.

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Brain Research Reviews
Brain Research Reviews 医学-神经科学
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