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人体健康与疾病中的钠转运体

Sodium Transporters in Human Health and Disease.

作者信息

Gagnon Kenneth B, Delpire Eric

机构信息

Department of Internal Medicine, UT Southwestern Medical Center, Dallas, TX, United States.

Department of Anesthesiology, School of Medicine, Vanderbilt University, Nashville, TN, United States.

出版信息

Front Physiol. 2021 Feb 25;11:588664. doi: 10.3389/fphys.2020.588664. eCollection 2020.

Abstract

Sodium (Na) electrochemical gradients established by Na/K ATPase activity drives the transport of ions, minerals, and sugars in both excitable and non-excitable cells. Na-dependent transporters can move these solutes in the same direction (cotransport) or in opposite directions (exchanger) across both the apical and basolateral plasma membranes of polarized epithelia. In addition to maintaining physiological homeostasis of these solutes, increases and decreases in sodium may also initiate, directly or indirectly, signaling cascades that regulate a variety of intracellular post-translational events. In this review, we will describe how the Na/K ATPase maintains a Na gradient utilized by multiple sodium-dependent transport mechanisms to regulate glucose uptake, excitatory neurotransmitters, calcium signaling, acid-base balance, salt-wasting disorders, fluid volume, and magnesium transport. We will discuss how several Na-dependent cotransporters and Na-dependent exchangers have significant roles in human health and disease. Finally, we will discuss how each of these Na-dependent transport mechanisms have either been shown or have the potential to use Na in a secondary role as a signaling molecule.

摘要

由钠钾ATP酶活性建立的钠(Na)电化学梯度驱动着可兴奋细胞和不可兴奋细胞中离子、矿物质及糖类的运输。钠依赖性转运体可使这些溶质在极化上皮细胞的顶端和基底外侧质膜上同向(协同转运)或反向(交换)移动。除维持这些溶质的生理稳态外,钠含量的增减还可能直接或间接启动信号级联反应,从而调节多种细胞内翻译后事件。在本综述中,我们将描述钠钾ATP酶如何维持一个由多种钠依赖性转运机制利用的钠梯度,以调节葡萄糖摄取、兴奋性神经递质、钙信号传导、酸碱平衡、失盐性疾病、液体容量及镁运输。我们将讨论几种钠依赖性协同转运体和钠依赖性交换体在人类健康和疾病中的重要作用。最后,我们将讨论这些钠依赖性转运机制中的每一种是如何已被证明或有潜力将钠作为信号分子发挥次要作用的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/77c2/7947867/3a8edc23fa5b/fphys-11-588664-g001.jpg

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