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干旱胁迫条件下,钙调磷酸酶 B 类似物钙感受器 1-蛋白激酶 CIPK23 网络激活的葡萄蔓内 Shaker K(+) 通道在葡萄浆果中表达。

A grapevine Shaker inward K(+) channel activated by the calcineurin B-like calcium sensor 1-protein kinase CIPK23 network is expressed in grape berries under drought stress conditions.

机构信息

UMR1083, Sciences pour l'OEnologie, INRA, 2 Place Viala, 34060 Montpellier Cedex 1, France.

出版信息

Plant J. 2010 Jan;61(1):58-69. doi: 10.1111/j.1365-313X.2009.04029.x. Epub 2009 Sep 24.

DOI:10.1111/j.1365-313X.2009.04029.x
PMID:19781051
Abstract

Grapevine (Vitis vinifera), the genome sequence of which has recently been reported, is considered as a model species to study fleshy fruit development and acid fruit physiology. Grape berry acidity is quantitatively and qualitatively affected upon increased K(+) accumulation, resulting in deleterious effects on fruit (and wine) quality. Aiming at identifying molecular determinants of K(+) transport in grapevine, we have identified a K(+) channel, named VvK1.1, from the Shaker family. In silico analyses indicated that VvK1.1 is the grapevine counterpart of the Arabidopsis AKT1 channel, known to dominate the plasma membrane inward conductance to K(+) in root periphery cells, and to play a major role in K(+) uptake from the soil solution. VvK1.1 shares common functional properties with AKT1, such as inward rectification (resulting from voltage sensitivity) or regulation by calcineurin B-like (CBL)-interacting protein kinase (CIPK) and Ca(2+)-sensing CBL partners (shown upon heterologous expression in Xenopus oocytes). It also displays distinctive features such as activation at much more negative membrane voltages or expression strongly sensitive to drought stress and ABA (upregulation in aerial parts, downregulation in roots). In roots, VvK1.1 is mainly expressed in cortical cells, like AKT1. In aerial parts, VvK1.1 transcripts were detected in most organs, with expression levels being the highest in the berries. VvK1.1 expression in the berry is localized in the phloem vasculature and pip teguments, and displays strong upregulation upon drought stress, by about 10-fold.VvK1.1 could thus play a major role in K(+) loading into berry tissues, especially upon drought stress.

摘要

葡萄(Vitis vinifera),其基因组序列最近已被报道,被认为是研究肉质果实发育和酸果实生理学的模式物种。葡萄浆果酸度的增加会导致钾(K+)积累,从而对果实(和葡萄酒)质量产生有害影响。为了鉴定葡萄中 K+转运的分子决定因素,我们从 Shaker 家族中鉴定出一种 K+通道,命名为 VvK1.1。计算机分析表明,VvK1.1是拟南芥 AKT1 通道的葡萄对应物,AKT1 通道已知在根外周细胞的质膜内向电导中主导 K+,并在从土壤溶液中摄取 K+方面发挥主要作用。VvK1.1 与 AKT1 具有共同的功能特性,例如内向整流(由电压敏感性引起)或由钙调磷酸酶 B 样(CBL)相互作用蛋白激酶(CIPK)和钙感应 CBL 伴侣(在非洲爪蟾卵母细胞中异源表达时显示)调节。它还具有独特的特征,例如在更负的膜电压下激活或表达强烈受干旱胁迫和 ABA (地上部分上调,根下调)的影响。在根部,VvK1.1 主要在皮层细胞中表达,如 AKT1。在地上部分,VvK1.1 转录本在大多数器官中均被检测到,在浆果中的表达水平最高。VvK1.1 在浆果中的表达定位于韧皮部脉管系统和 pip 被膜,在干旱胁迫下表达水平上调约 10 倍。因此,VvK1.1 在 K+加载到浆果组织中可能发挥主要作用,特别是在干旱胁迫下。

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