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管腔内高渗对美西螈胆囊电传导途径的影响。

Effects of luminal hyperosmolality on electrical pathways of Necturas gallbladder.

作者信息

Reuss L, Finn A L

出版信息

Am J Physiol. 1977 Mar;232(3):C99-108. doi: 10.1152/ajpcell.1977.232.3.C99.

Abstract

The electrical properties of the transepithelial pathways of Necturaus gallbladder were studied with intracellular microelectrode techniques under control conditions and after exposure to hyperosmotic mucosal bathing media (addition of sucrose or other solutes). Doubling mucosal osmolality produces a large increase in the resistance of the intercellular shunt pathway (from 420 +/- 50 to 700 +/- 70 omega - cm2, P is less than 0.001) and a significant decrease in the resistance of the apical membrane of the cells (from 3,510 +/- 420 to 1,540 +/- 380 omega p cm2, P is less than 0.001). The basolateral membrane resistance remains unchanged. Both the apical and basolateral membranes depolarize (from 59.5 +/- 1.8 to 36.6 +/- 2.8 mV, P less than 0.0001, and from 61.8 +/- 1.7 to 32.2 +/- 3.0 mV,P is less than 0.001, respectively). The transepithelial diffusion potential resulting from NaCl concentration gradients due to the osmotic water flow does not explain the cell potential changes. Mucosal solution ion substitution experiments demonstrate increases of gk, gcl, and gna (ca. 2.5-fold, 4-fold, and 7-fold, respectively). Therefore, cell depolarization appears to be produced mainly by a reduction of apical membrane K permselectivity. The increase in the resistance of the shunt is attributable to reduction of the width of the lateral intercellular spaces, because of the osmotic serosa-to-mucosa water flow.

摘要

在对照条件下以及暴露于高渗性黏膜灌流介质(添加蔗糖或其他溶质)后,运用细胞内微电极技术研究了美西螈胆囊跨上皮途径的电特性。将黏膜渗透压加倍会使细胞间旁路途径的电阻大幅增加(从420±50增至700±70Ω·cm²,P<0.001),同时细胞顶端膜的电阻显著降低(从3510±420降至1540±380Ω·cm²,P<0.001)。基底外侧膜电阻保持不变。顶端膜和基底外侧膜均发生去极化(分别从59.5±1.8降至36.6±2.8mV,P<0.0001;从61.8±1.7降至32.2±3.0mV,P<0.001)。由渗透水流导致的NaCl浓度梯度所产生的跨上皮扩散电位无法解释细胞电位的变化。黏膜溶液离子置换实验表明gk、gcl和gna增加(分别约为2.5倍、4倍和7倍)。因此,细胞去极化似乎主要是由顶端膜K选择性通透的降低所致。旁路电阻的增加归因于细胞间外侧间隙宽度的减小,这是由于从浆膜到黏膜的渗透水流造成的。

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