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DEG/ENaC 离子通道在神经系统中的功能:从蠕虫到人。

DEG/ENaC Ion Channels in the Function of the Nervous System: From Worm to Man.

机构信息

Department Physiology and Biophysics, University of Miami, Miller School of Medicine, Miami, FL, USA.

出版信息

Adv Exp Med Biol. 2021;1349:165-192. doi: 10.1007/978-981-16-4254-8_9.

Abstract

DEG/ENaC channels are voltage-independent Na/Ca channels that are conserved across species and are expressed in many different cell types and tissues, where they contribute to a wide array of physiological functions from transepithelial Na transport, to sensory perception, and learning and memory. In this chapter, we focus on the members of this family that are expressed in the nervous system, grouping them based on their function. Structurally, DEG/ENaC channels are trimers formed by either identical or homologous subunits, each one protruding from the plasma membrane like a clenched hand. Crystallographic studies on chicken ASIC1a in the closed, inactivated, and open states revealed important details about the gating and permeation properties of these channels, and overall they show that the extracellular domain of the channel undergoes large conformational changes during gating. The vast majority of the channel's extracellular domain is conserved across different members and species; however, key changes including the insertion of extra loops near the finger and palm domains most likely confers gating specificity. Indeed, DEG/ENaC channels are gated by a wide range of stimuli, including mechanical forces, protons, and peptides, owing to the wide array of physiological functions they serve. Interestingly, DEG/ENaC channels are not only expressed in neurons but also in glia. Work in C. elegans is now beginning to shed new light on the role of glial DEG/ENaC in the function of the nervous system and suggests that they may be implicated in controlling ionic concentrations in the extracellular microenvironment. Finally, DEG/ENaC channels can become toxic and cause neuronal death when they are hyperactivated by genetic mutations or prolonged acidosis causing them to contribute to neuronal demise in stroke and ischemia. Taken together, molecular, structural, and behavioral work on DEG/ENaC channels expressed in the nervous system of different species highlights the crucial role of these channels in neuronal function. These data place DEG/ENaC channels in an excellent position for being considered as drug targets for the treatment of several neurological conditions and disorders from pain to epilepsy and ischemia.

摘要

DEG/ENaC 通道是电压不依赖的 Na/Ca 通道,在物种间保守,在许多不同的细胞类型和组织中表达,它们参与广泛的生理功能,从跨上皮 Na 转运到感觉感知、学习和记忆。在本章中,我们专注于在神经系统中表达的该家族成员,根据它们的功能进行分组。从结构上看,DEG/ENaC 通道由相同或同源亚基组成的三聚体形成,每个亚基从质膜中伸出,像紧握的拳头一样。鸡 ASIC1a 的晶体学研究处于关闭、失活和开放状态,揭示了这些通道门控和渗透性的重要细节,总体而言,它们表明通道的细胞外结构域在门控过程中经历了大的构象变化。通道的大部分细胞外结构域在不同成员和物种中是保守的;然而,关键的变化包括在手指和手掌结构域附近插入额外的环,很可能赋予门控特异性。事实上,DEG/ENaC 通道由广泛的刺激物门控,包括机械力、质子和肽,这归因于它们所服务的广泛的生理功能。有趣的是,DEG/ENaC 通道不仅在神经元中表达,而且在神经胶质中也表达。秀丽隐杆线虫的研究工作现在开始揭示神经胶质 DEG/ENaC 在神经系统功能中的作用,并表明它们可能参与控制细胞外微环境中的离子浓度。最后,DEG/ENaC 通道在遗传突变或长期酸中毒使其过度激活时会变得有毒并导致神经元死亡,从而导致中风和缺血性中风中神经元死亡。总之,不同物种神经系统中表达的 DEG/ENaC 通道的分子、结构和行为研究强调了这些通道在神经元功能中的关键作用。这些数据使 DEG/ENaC 通道处于被视为治疗几种神经疾病和病症(从疼痛到癫痫和缺血)药物靶点的有利位置。

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