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高等植物中的质膜阴离子通道及其在根中的假定功能。

Plasma membrane anion channels in higher plants and their putative functions in roots.

作者信息

Roberts Stephen K

机构信息

Lancaster Environment Centre, Biology Department, Lancaster University, Lancaster LA1 4YQ, UK.

出版信息

New Phytol. 2006;169(4):647-66. doi: 10.1111/j.1469-8137.2006.01639.x.

Abstract

Recent years have seen considerable progress in identifying anion channel activities in higher plant cells. This review outlines the functional properties of plasma membrane anion channels in plant cells and discusses their likely roles in root function. Plant anion channels can be grouped according to their voltage dependence and kinetics: (1) depolarization-activated anion channels which mediate either anion efflux (R and S types) or anion influx (outwardly rectifying type); (2) hyperpolarization-activated anion channels which mediate anion efflux, and (3) anion channels activated by light or membrane stretch. These types of anion channel are apparent in root cells where they may function in anion homeostasis, membrane stabilization, osmoregulation, boron tolerance and regulation of passive salt loading into the xylem vessels. In addition, roots possess anion channels exhibiting unique properties which are consistent with them having specialized functions in root physiology. Most notable are the organic anion selective channels, which are regulated by extracellular Al3+ or the phosphate status of the plant. Finally, although the molecular identities of plant anion channels remain elusive, the diverse electrophysiological properties of plant anion channels suggest that large and diverse multigene families probably encode these channels.

摘要

近年来,在鉴定高等植物细胞中的阴离子通道活性方面取得了显著进展。本综述概述了植物细胞质膜阴离子通道的功能特性,并讨论了它们在根系功能中可能发挥的作用。植物阴离子通道可根据其电压依赖性和动力学进行分类:(1)去极化激活的阴离子通道,介导阴离子外流(R型和S型)或阴离子内流(外向整流型);(2)超极化激活的阴离子通道,介导阴离子外流;(3)由光或膜拉伸激活的阴离子通道。这些类型的阴离子通道在根细胞中很明显,它们可能在阴离子稳态、膜稳定、渗透调节、硼耐受性以及被动盐分加载到木质部导管的调节中发挥作用。此外,根中存在具有独特特性的阴离子通道,这与它们在根系生理学中具有特殊功能相一致。最值得注意的是有机阴离子选择性通道,它们受细胞外Al3+或植物的磷酸盐状态调节。最后,尽管植物阴离子通道的分子身份仍然难以捉摸,但植物阴离子通道多样的电生理特性表明,可能是庞大且多样的多基因家族编码了这些通道。

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