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唾液腺腺泡细胞中液体和电解质分泌的调节。

Regulation of fluid and electrolyte secretion in salivary gland acinar cells.

作者信息

Melvin James E, Yule David, Shuttleworth Trevor, Begenisich Ted

机构信息

The Center for Oral Biology in the Aab Institute of Biomedical Sciences, University of Rochester School of Medicine and Dentistry, Rochester, New York, 14642, USA.

出版信息

Annu Rev Physiol. 2005;67:445-69. doi: 10.1146/annurev.physiol.67.041703.084745.

Abstract

The secretion of fluid and electrolytes by salivary gland acinar cells requires the coordinated regulation of multiple water and ion transporter and channel proteins. Notably, all the key transporter and channel proteins in this process appear to be activated, or are up-regulated, by an increase in the intracellular Ca2+ concentration ([Ca2+]i). Consequently, salivation occurs in response to agonists that generate an increase in [Ca2+]i. The mechanisms that act to modulate these increases in [Ca2+]i obviously influence the secretion of salivary fluid. Such modulation may involve effects on mechanisms of both Ca2+ release and Ca2+ entry and the resulting spatial and temporal aspects of the [Ca2+]i signal, as well as interactions with other signaling pathways in the cells. The molecular cloning of many of the transporter and regulatory molecules involved in fluid and electrolyte secretion has yielded a better understanding of this process at the cellular level. The subsequent characterization of mice with null mutations in many of these genes has demonstrated the physiological roles of individual proteins. This review focuses on recent developments in determining the molecular identification of the proteins that regulate the fluid secretion process.

摘要

唾液腺腺泡细胞分泌液体和电解质需要多种水和离子转运蛋白及通道蛋白的协同调节。值得注意的是,此过程中所有关键的转运蛋白和通道蛋白似乎都被细胞内钙离子浓度([Ca2+]i)的升高所激活或上调。因此,唾液分泌是对能使[Ca2+]i升高的激动剂作出的反应。调节这些[Ca2+]i升高的机制显然会影响唾液的分泌。这种调节可能涉及对Ca2+释放和Ca2+内流机制以及由此产生的[Ca2+]i信号的时空方面的影响,以及与细胞内其他信号通路的相互作用。许多参与液体和电解质分泌的转运蛋白和调节分子的分子克隆,使我们在细胞水平上对这一过程有了更好的理解。随后对许多这些基因发生无效突变的小鼠进行的表征,证明了单个蛋白质的生理作用。本综述重点关注在确定调节液体分泌过程的蛋白质的分子身份方面的最新进展。

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