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Harpin Hpa1 Interacts with Aquaporin PIP1;4 to Promote the Substrate Transport and Photosynthesis in Arabidopsis

机译:Harpin Hpa1与Aquaporin PIP1; 4相互作用促进拟南芥中的底物转运和光合作用

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摘要

Harpin proteins produced by plant-pathogenic Gram-negative bacteria are the venerable player in regulating bacterial virulence and inducing plant growth and defenses. A major gap in these effects is plant sensing linked to cellular responses, and plant sensor for harpin Hpa1 from rice bacterial blight pathogen points to plasma membrane intrinsic protein (PIP). Here we show that Arabidopsis AtPIP1;4 is a plasma membrane sensor of Hpa1 and plays a dual role in plasma membrane permeability of CO2 and H2O. In particular, AtPIP1;4 mediates CO2 transport with a substantial contribute to photosynthesis and further increases this function upon interacting with Hpa1 at the plasma membrane. As a result, leaf photosynthesis rates are increased and the plant growth is enhanced in contrast to the normal process without Hpa1-AtPIP1;4 interaction. Our findings demonstrate the first case that plant sensing of a bacterial harpin protein is connected with photosynthetic physiology to regulate plant growth.
机译:植物病原性革兰氏阴性细菌产生的Harpin蛋白是调节细菌毒力并诱导植物生长和防御的重要参与者。这些效应的主要差距是与细胞反应相关的植物感测,而从稻瘟病病原体到harpin Hpa1的植物感测器指向质膜内在蛋白(PIP)。在这里,我们显示拟南芥AtPIP1; 4是Hpa1的质膜传感器,在CO2和H2O的质膜渗透性中起双重作用。特别是,AtPIP1; 4介导了CO2的运输,对光合作用有很大贡献,并且在质膜上与Hpa1相互作用后进一步增强了该功能。结果,与没有Hpa1-AtPIP1; 4相互作用的正常过程相比,叶片的光合作用速率增加,植物生长得到增强。我们的发现证明了第一种情况,即植物对细菌harpin蛋白的感知与光合生理调节植物的生长有关。

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