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液泡Ca2+激活通道TPC1调节种子萌发和气孔运动。

The vacuolar Ca2+-activated channel TPC1 regulates germination and stomatal movement.

作者信息

Peiter Edgar, Maathuis Frans J M, Mills Lewis N, Knight Heather, Pelloux Jérôme, Hetherington Alistair M, Sanders Dale

机构信息

Biology Department, Area 9, University of York, PO Box 373, York YO10 5YW, UK.

出版信息

Nature. 2005 Mar 17;434(7031):404-8. doi: 10.1038/nature03381.

Abstract

Cytosolic free calcium ([Ca2+]cyt) is a ubiquitous signalling component in plant cells. Numerous stimuli trigger sustained or transient elevations of [Ca2+]cyt that evoke downstream stimulus-specific responses. Generation of [Ca2+]cyt signals is effected through stimulus-induced opening of Ca2+-permeable ion channels that catalyse a flux of Ca2+ into the cytosol from extracellular or intracellular stores. Many classes of Ca2+ current have been characterized electrophysiologically in plant membranes. However, the identity of the ion channels that underlie these currents has until now remained obscure. Here we show that the TPC1 ('two-pore channel 1') gene of Arabidopsis thaliana encodes a class of Ca2+-dependent Ca2+-release channel that is known from numerous electrophysiological studies as the slow vacuolar channel. Slow vacuolar channels are ubiquitous in plant vacuoles, where they form the dominant conductance at micromolar [Ca2+]cyt. We show that a tpc1 knockout mutant lacks functional slow vacuolar channel activity and is defective in both abscisic acid-induced repression of germination and in the response of stomata to extracellular calcium. These studies unequivocally demonstrate a critical role of intracellular Ca2+-release channels in the physiological processes of plants.

摘要

胞质游离钙([Ca2+]cyt)是植物细胞中普遍存在的信号成分。许多刺激会引发[Ca2+]cyt的持续或短暂升高,从而引发下游特定刺激的反应。[Ca2+]cyt信号的产生是通过刺激诱导的Ca2+通透离子通道的开放来实现的,这些通道催化Ca2+从细胞外或细胞内储存库流入细胞质。许多类型的Ca2+电流已在植物膜中通过电生理学方法进行了表征。然而,构成这些电流基础的离子通道的身份至今仍不清楚。在这里,我们表明拟南芥的TPC1(“双孔通道1”)基因编码一类Ca2+依赖性Ca2+释放通道,在众多电生理学研究中,该通道被称为慢液泡通道。慢液泡通道在植物液泡中普遍存在,在微摩尔浓度的[Ca2+]cyt下,它们形成主要的电导率。我们表明,tpc1基因敲除突变体缺乏功能性慢液泡通道活性,并且在脱落酸诱导的种子萌发抑制和气孔对细胞外钙的反应方面均存在缺陷。这些研究明确证明了细胞内Ca2+释放通道在植物生理过程中的关键作用。

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