首页> 外文期刊>Journal of Experimental Botany >The glycolytic enzyme, phosphoglycerate mutase, has critical roles in stomatal movement, vegetative growth, and pollen production in Arabidopsis thaliana
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The glycolytic enzyme, phosphoglycerate mutase, has critical roles in stomatal movement, vegetative growth, and pollen production in Arabidopsis thaliana

机译:糖酵解酶磷酸甘油酸变位酶在拟南芥的气孔运动,营养生长和花粉产生中具有关键作用

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Stomatal movements require massive changes in guard cell osmotic content, and both stomatal opening and stomatal closure have been shown to be energy-requiring processes. A possible role for glycolysis in contributing to the energetic, reducing requirements, or signalling processes regulating stomatal movements has not been investigated previously. Glycolysis, oxidization of glucose to pyruvate, is a central metabolic pathway and yields a net gain of 2 ATP and 2 NADH. 2,3-biphosphoglycerate-independent phosphoglycerate mutase (iPGAM) is a key enzymatic activity in glycolysis and catalyses the reversible interconversion of 3-phosphoglycerate to 2-phosphoglycerate. To investigate functions of iPGAMs and glycolysis in stomatal function and plant growth, Arabidopsis insertional mutants in At1g09780 and At3g08590, both of which have been annotated as iPGAMs on the basis of sequence homology, were identified and characterized. While single mutants were indistinguishable from the wild type in all plant phenotypes assayed, double mutants had no detectable iPGAM activity and showed defects in blue light-, abscisic acid-, and low CO2-regulated stomatal movements. Vegetative plant growth was severely impaired in the double mutants and pollen was not produced. The data demonstrate that iPGAMs and glycolytic activity are critical for guard cell function and fertility in Arabidopsis.
机译:气孔运动需要大量改变保卫细胞的渗透量,并且气孔打开和气孔关闭均已证明是需要能量的过程。以前尚未研究过糖酵解在调节气孔运动的能量,降低需求或信号传导过程中的可能作用。糖酵解(葡萄糖氧化为丙酮酸)是重要的新陈代谢途径,其净收益为2 ATP和2 NADH。不依赖于2,3-双磷酸甘油酸酯的磷酸甘油酸酯突变酶(iPGAM)是糖酵解中的关键酶活性,它催化3-磷酸甘油酸酯向2-磷酸甘油酸酯的可逆相互转化。为了研究iPGAM和糖酵解在气孔功能和植物生长中的功能,鉴定并鉴定了At1g09780和At3g08590中的拟南芥插入突变体,并根据序列同源性将它们都标记为iPGAM。尽管在所有检测到的植物表型中单突变体与野生型都没有区别,但双突变体没有可检测的iPGAM活性,并且在蓝光,脱落酸和低CO 2 调节的气孔运动中表现出缺陷。双突变体严重破坏了植物的生长,并且未产生花粉。数据表明,iPGAM和糖酵解活性对于拟南芥中保卫细胞的功能和生育能力至关重要。

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