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大麦生长和非生长叶片细胞中摄取 K(+)途径的电生理特性分析。

Electrophysiological characterization of pathways for K(+) uptake into growing and non-growing leaf cells of barley.

机构信息

Division of Biological Sciences, University of Paisley, Paisley PA1 2BE, UK.

出版信息

Plant Cell Environ. 2009 Dec;32(12):1778-90. doi: 10.1111/j.1365-3040.2009.02034.x. Epub 2009 Aug 14.

Abstract

Potassium is a major osmolyte used by plant cells. The accumulation rates of K(+) in cells may limit the rate of expansion. In the present study, we investigated the involvement of ion channels in K(+) uptake using patch clamp technique. Ion currents were quantified in protoplasts of the elongation and emerged blade zone of the developing leaf 3 of barley (Hordeum vulgare L.). A time-dependent inward-rectifying K(+)-selective current was observed almost exclusively in elongation zone protoplasts. The current showed characteristics typical of Shaker-type channels. Instantaneous inward current was highest in the epidermis of the emerged blade and selective for Na(+) over K(+). Selectivity disappeared, and currents decreased or remained the same, depending on tissue, in response to salt treatment. Net accumulation rates of K(+) in cells calculated from patch clamp current-voltage curves exceeded rates calculated from membrane potential and K(+) concentrations of cells measured in planta by factor 2.5-2.7 at physiological apoplastic K(+) concentrations (10-100 mm). It is concluded that under these conditions, K(+) accumulation in growing barley leaf cells is not limited by transport properties of cells. Under saline conditions, down-regulation of voltage-independent channels may reduce the capacity for growth-related K(+) accumulation.

摘要

钾是植物细胞中主要的渗透调节剂。细胞中钾(K+)的积累速率可能限制了细胞的扩展速率。在本研究中,我们使用膜片钳技术研究了离子通道在 K+摄取中的作用。在大麦(Hordeum vulgare L.)发育第 3 片叶的伸长区和展开区原生质体中定量了离子电流。几乎只在伸长区原生质体中观察到时间依赖性内向整流的 K+选择性电流。该电流表现出 Shaker 型通道的典型特征。瞬时内向电流在展开叶片的表皮中最高,对 Na+的选择性高于 K+。选择性消失,电流减少或保持不变,这取决于组织对盐处理的反应。从膜片钳电流-电压曲线计算得出的细胞净钾(K+)积累速率比在生理质外体钾(K+)浓度(10-100 mM)下在体内测量的细胞膜电位和 K+浓度计算得出的速率高出 2.5-2.7 倍。因此得出结论,在这些条件下,生长中的大麦叶片细胞中 K+的积累不受细胞转运特性的限制。在盐胁迫条件下,电压非依赖性通道的下调可能会降低与生长相关的 K+积累能力。

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