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Vacuolar transcellular channels as a drainage pathway for cerebrospinal fluid

机译:液泡跨细胞通道作为脑脊液引流途径

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摘要

1. Based on our ultrastructural investigations in monkeys, we report here a new concept as to the physiological mechanism of drainage of cerebrospinal fluid (c.s.f.) which would seem to bridge the gap between the two apparently opposing views of `closed' and `open' system.2. Our studies reveal the presence of an intact mesothelial lining of the arachnoid mater, including its villus-like projections and herniations into the dural sinus and its lacunae, adjacent cells being joined by tight junctions; in addition we have observed for the first time that many lining cells in the region of the superior sagittal sinus are characterized by unit membrane-bound, electron-optically empty giant vacuoles of several micrometres diameter. In one monkey with a fresh subarachnoid haemorrhage, many vacuoles were filled with plasma proteins and some contained intact blood corpuscles.3. Serial section analysis showed that the vacuoles were in fact invaginations from the basal aspect of the cell surface and were evidently in direct communication with the c.s.f. in the subarachnoid space. Some vacuoles in addition showed openings on their apical surface thus constituting transcellular channels or pores. Basal openings up to 3·5 μm and apical openings up to 2·3 μm were seen.4. It is postulated that vacuoles are stages in the formation of a dynamic system of transcellular pores which allow the bulk outflow of c.s.f. down a pressure gradient, and that the mesothelial vacuolation cycle, in providing the requisite number of transcellular pores across the mesothelial barrier at any time, is a controlling factor in the outflow of c.s.f. and in the maintenance of its fluid-pressure within the subarachnoid space.5. The basic similarity between the bulk flow of the aqueous humour and c.s.f. from the anatomically closed cavities of the anterior chamber and the subarachnoid space, respectively, is underlined.6. The present study provides further support for our hypothesis that the bulk outflow of fluid, via a dynamic system of transcellular pores formed by gradually enlarging membranous surface infoldings in a single cell, termed as giant vacuoles, is a fundamental biological process not hitherto described.
机译:1.基于我们对猴子的超微结构研究,我们在此报告了脑脊液引流的生理机制的新概念,这似乎弥合了“闭合”和“开放”两种明显相反观点之间的差距。系统2。我们的研究揭示了蛛网膜基质完整的间皮内膜的存在,包括其绒毛状突起和硬脑膜窦及其腔内的突出,相邻细胞通过紧密的连接而连接。此外,我们首次观察到上矢状窦区域的许多内衬细胞的特征是单位膜结合的,电光空的几微米直径的巨大空泡。在一只新鲜蛛网膜下腔出血的猴子中,许多液泡中充满了血浆蛋白,其中一些含有完整的血球。3。连续切片分析表明,空泡实际上是从细胞表面的基础部分侵入,并且显然与c.s.f.c.s.f.直接接触。在蛛网膜下腔。另外,一些液泡在其顶表面上显示出开口,从而构成跨细胞的通道或孔。基底开口达3·5μm,顶端开口达2·3μm。4。假定液泡是跨细胞毛孔动态系统形成的阶段,该系统允许c.s.f.的大量流出。在压力梯度下降的情况下,间皮空泡化循环在任何时候提供跨过间皮屏障的必需数量的跨细胞孔时,是c.s.f流出的控制因素。并维持其在蛛网膜下腔内的流体压力; 5。房水的体积流量与c.s.f.的基本相似性。在前腔和蛛网膜下腔的解剖学封闭腔中分别标有下划线。6。本研究为我们的假说提供了进一步的支持,即通过逐渐扩大单个细胞中膜状表面折叠而形成的跨细胞孔的动态系统(称为巨空泡)形成的流体大量流出是迄今未描述的基本生物学过程。

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