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Plasma membrane protein OsMCA1 is involved in regulation of hypo-osmotic shock-induced Ca2+ influx and modulates generation of reactive oxygen species in cultured rice cells

机译:质膜蛋白OsMCA1参与调节低渗休克诱导的Ca2 +流入并调节水稻细胞中活性氧的产生

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Background Mechanosensing and its downstream responses are speculated to involve sensory complexes containing Ca2+-permeable mechanosensitive channels. On recognizing osmotic signals, plant cells initiate activation of a widespread signal transduction network that induces second messengers and triggers inducible defense responses. Characteristic early signaling events include Ca2+ influx, protein phosphorylation and generation of reactive oxygen species (ROS). Pharmacological analyses show Ca2+ influx mediated by mechanosensitive Ca2+ channels to influence induction of osmotic signals, including ROS generation. However, molecular bases and regulatory mechanisms for early osmotic signaling events remain poorly elucidated. Results We here identified and investigated OsMCA1, the sole rice homolog of putative Ca2+-permeable mechanosensitive channels in Arabidopsis (MCAs). OsMCA1 was specifically localized at the plasma membrane. A promoter-reporter assay suggested that OsMCA1 mRNA is widely expressed in seed embryos, proximal and apical regions of shoots, and mesophyll cells of leaves and roots in rice. Ca2+ uptake was enhanced in OsMCA1-overexpressing suspension-cultured cells, suggesting that OsMCA1 is involved in Ca2+ influx across the plasma membrane. Hypo-osmotic shock-induced ROS generation mediated by NADPH oxidases was also enhanced in OsMCA1-overexpressing cells. We also generated and characterized OsMCA1-RNAi transgenic plants and cultured cells; OsMCA1-suppressed plants showed retarded growth and shortened rachises, while OsMCA1-suppressed cells carrying Ca2+-sensitive photoprotein aequorin showed partially impaired changes in cytosolic free Ca2+ concentration ([Ca2+]cyt) induced by hypo-osmotic shock and trinitrophenol, an activator of mechanosensitive channels. Conclusions We have identified a sole MCA ortholog in the rice genome and developed both overexpression and suppression lines. Analyses of cultured cells with altered levels of this putative Ca2+-permeable mechanosensitive channel indicate that OsMCA1 is involved in regulation of plasma membrane Ca2+ influx and ROS generation induced by hypo-osmotic stress in cultured rice cells. These findings shed light on our understanding of mechanical sensing pathways.
机译:推测背景机械传感及其下游响应涉及包含Ca 2 + -可渗透机械敏感通道的感觉复合物。识别渗透信号后,植物细胞会启动广泛的信号转导网络的激活,该网络会诱导第二信使并触发可诱导的防御反应。早期信号特征性事件包括Ca 2+ 大量涌入,蛋白质磷酸化和活性氧(ROS)的产生。药理分析表明,机械敏感的Ca 2+ 通道介导的Ca 2+ 内流影响渗透信号的诱导,包括ROS的产生。但是,早期渗透信号事件的分子基础和调控机制仍然不清楚。结果我们在这里鉴定并研究了拟南芥(MCA)中推测的Ca 2 + 渗透性机械敏感性通道的唯一水稻同源物OsMCA1。 OsMCA1专门定位在质膜上。启动子报告基因分析表明,OsMCA1 mRNA在水稻的种子胚,芽的近端和根尖区域以及叶和根的叶肉细胞中广泛表达。在过表达OsMCA1的悬浮培养细胞中Ca 2+ 的摄取增加,这表明OsMCA1参与了Ca 2+ 跨质膜的流入。由NADPH氧化酶介导的低渗休克诱导的ROS生成在过表达OsMCA1的细胞中也得到增强。我们还生成并鉴定了OsMCA1-RNAi转基因植物和培养的细胞;受OsMCA1抑制的植物表现出生长迟缓和缩短的轴突,而受OsMCA1抑制的携带Ca 2 + 敏感光蛋白水母发光蛋白的细胞显示出部分胞质游离Ca 2 + 浓度变化受到损害(低渗休克和机械敏感通道激活剂三硝基苯酚诱导的[Ca 2 + ] cyt )。结论我们已经在水稻基因组中鉴定出唯一的MCA直系同源基因,并开发了过表达和抑制系。推测的Ca 2 + 渗透性机械敏感通道水平发生变化的培养细胞分析表明,OsMCA1参与了质膜Ca 2+ 内流的调控和ROS诱导的ROS生成。培养的水稻细胞中的低渗胁迫。这些发现为我们对机械感测途径的理解提供了启示。

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