Molecular diversity of structure and function of the voltage-gated Na+ channels.

N. Ogata, Yoshiaki Ohishi
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引用次数: 164

Abstract

A variety of different isoforms of voltage-sensitive Na+ channels have now been identified. The recent three-dimensional analysis of Na+ channels has unveiled a unique and unexpected structure of the Na+ channel protein. Na+ channels can be classified into two categories on the basis of their amino acid sequence, Nav1 isoforms currently comprising nine highly homologous clones and Nax that possesses structure diverging from Nav1, especially in several critical functional motifs. Although the functional role of Nav1 isoforms is primarily to form an action potential upstroke in excitable cells, recent biophysical studies indicate that some of the Nav1 isoforms can also influence subthreshold electrical activity through persistent or resurgent Na+ currents. Nav1.8 and Nav1.9 contain an amino acid sequence common to tetrodotoxin resistant Na+ channels and are localized in peripheral nociceptors. Recent patch-clamp experiments on dorsal root ganglion neurons from Nav1.8-knock-out mice unveiled an additional tetrodotoxin-resistant Na+ current. The demonstration of its dependence on Nav1.9 provides evidence for a specialized role of Nav1.9, together with Nav1.8, in pain sensation. Although Nax has not been successfully expressed in an exogenous system, recent investigations using relevant native tissues combined with gene-targeting have disclosed their unique "concentration"-sensitive but not voltage-sensitive roles. In this context, these emerging views of novel functions mediated by different types of Na+ channels are reviewed, to give a perspective for future research on the expanding family of Na+ channel clones.
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电压门控Na+通道结构和功能的分子多样性。
现在已经确定了各种不同的电压敏感Na+通道同工异构体。最近对Na+通道的三维分析揭示了Na+通道蛋白的独特和意想不到的结构。根据Na+通道的氨基酸序列,Na+通道可以分为两类:Nav1同种异构体目前包括9个高度同源的克隆;Nax具有与Nav1不同的结构,特别是在几个关键的功能基序上。虽然Nav1亚型的功能作用主要是在可兴奋细胞中形成动作电位上升,但最近的生物物理学研究表明,一些Nav1亚型也可以通过持续或复苏的Na+电流影响阈下电活动。Nav1.8和Nav1.9含有与河豚毒素抗性Na+通道相同的氨基酸序列,并定位于外周伤害感受器。最近对nav1.8敲除小鼠背根神经节神经元进行的膜片钳实验发现了一个额外的抗河豚毒素Na+电流。其对Nav1.9的依赖证明了Nav1.9和Nav1.8在痛觉中的特殊作用。尽管Nax尚未在外源系统中成功表达,但最近利用相关天然组织结合基因靶向的研究揭示了其独特的“浓度”敏感而非电压敏感作用。在此背景下,本文综述了这些新兴的关于不同类型Na+通道介导的新功能的观点,为Na+通道克隆家族的进一步研究提供了一个视角。
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