Na+/K+-ATPase: ion pump, signal transducer, or cytoprotective protein, and novel biological functions

Songqiang Huang, Wanting Dong, Xiaoqian Lin, Jin-Song Bian
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Abstract

Na+/K+-ATPase is a transmembrane protein that has important roles in the maintenance of electrochemical gradients across cell membranes by transporting three Na+ out of and two K+ into cells. Additionally, Na+/K+-ATPase participates in Ca2+-signaling transduction and neurotransmitter release by coordinating the ion concentration gradient across the cell membrane. Na+/K+-ATPase works synergistically with multiple ion channels in the cell membrane to form a dynamic network of ion homeostatic regulation and affects cellular communication by regulating chemical signals and the ion balance among different types of cells. Therefore, it is not surprising that Na+/K+-ATPase dysfunction has emerged as a risk factor for a variety of neurological diseases. However, published studies have so far only elucidated the important roles of Na+/K+-ATPase dysfunction in disease development, and we are lacking detailed mechanisms to clarify how Na+/K+-ATPase affects cell function. Our recent studies revealed that membrane loss of Na+/K+-ATPase is a key mechanism in many neurological disorders, particularly stroke and Parkinson’s disease. Stabilization of plasma membrane Na+/K+-ATPase with an antibody is a novel strategy to treat these diseases. For this reason, Na+/K+-ATPase acts not only as a simple ion pump but also as a sensor/ regulator or cytoprotective protein, participating in signal transduction such as neuronal autophagy and apoptosis, glial cell migration, etc. Thus, the present review attempts to summarize the novel biological functions of Na+/K+-ATPase and Na+/K+-ATPase-related pathogenesis. The potential for novel strategies to treat Na+/K+-ATPase-related brain diseases will also be discussed.
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Na+/K+-ATP 酶:离子泵、信号转换器或细胞保护蛋白,以及新的生物功能
Na+/K+-ATPase 是一种跨膜蛋白,通过向细胞外输送 3 个 Na+,向细胞内输送 2 个 K+,在维持细胞膜上的电化学梯度方面发挥着重要作用。此外,Na+/K+-ATPase 通过协调细胞膜上的离子浓度梯度,参与 Ca2+ 信号转导和神经递质释放。Na+/K+-ATPase 与细胞膜上的多个离子通道协同作用,形成一个动态的离子平衡调节网络,并通过调节化学信号和不同类型细胞之间的离子平衡来影响细胞通信。因此,Na+/K+-ATPase 功能障碍成为多种神经系统疾病的风险因素也就不足为奇了。然而,迄今为止,已发表的研究仅阐明了 Na+/K+-ATP 酶功能障碍在疾病发生发展中的重要作用,我们还缺乏详细的机制来阐明 Na+/K+-ATP 酶是如何影响细胞功能的。我们最近的研究发现,Na+/K+-ATPase 的膜损失是许多神经系统疾病,尤其是中风和帕金森病的关键机制。用抗体稳定质膜 Na+/K+-ATP 酶是治疗这些疾病的新策略。因此,Na+/K+-ATPase 不仅是一种简单的离子泵,还是一种传感器/调节器或细胞保护蛋白,参与信号转导,如神经元自噬和凋亡、神经胶质细胞迁移等。因此,本综述试图总结 Na+/K+-ATP 酶的新型生物学功能以及与 Na+/K+-ATP 酶相关的发病机制。本综述还将讨论治疗 Na+/K+-ATPase 相关脑疾病的新策略的潜力。
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