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通过差异磷酸化和钙结合来精细调节 RBOHF 活性。

Fine-tuning of RBOHF activity is achieved by differential phosphorylation and Ca binding.

机构信息

State Key Laboratory of Plant Physiology and Biochemistry, College of Biological Sciences, China Agricultural University, Beijing, 100193, China.

Institut für Biologie und Biotechnologie der Pflanzen, Westfälische Wilhelms-Universität Münster, Schlossplatz 7/8, Münster, 48149, Germany.

出版信息

New Phytol. 2019 Mar;221(4):1935-1949. doi: 10.1111/nph.15543. Epub 2018 Nov 14.

Abstract

RBOHF from Arabidopsis thaliana represents a multifunctional NADPH oxidase regulating biotic and abiotic stress tolerance, developmental processes and guard cell aperture. The molecular components and mechanisms determining RBOHF activity remain to be elucidated. Here we combined protein interaction studies, biochemical and genetic approaches, and pathway reconstitution analyses to identify and characterize proteins that confer RBOHF regulation and elucidated mechanisms that adjust RBOHF activity. While the Ca sensor-activated kinases CIPK11 and CIPK26 constitute alternative paths for RBOHF activation, the combined activity of CIPKs and the kinase open stomata 1 (OST1) triggers complementary activation of this NADPH oxidase, which is efficiently counteracted through dephosphorylation by the phosphatase ABI1. Within RBOHF, several distinct phosphorylation sites (p-sites) in the N-terminus of RBOHF appear to contribute individually to activity regulation. These findings identify RBOHF as a convergence point targeted by a complex regulatory network of kinases and phosphatases. We propose that this allows for fine-tuning of plant reactive oxygen species (ROS) production by RBOHF in response to different stimuli and in diverse physiological processes.

摘要

拟南芥的 RBOHF 代表一种多功能 NADPH 氧化酶,可调节生物和非生物胁迫耐受性、发育过程和保卫细胞孔径。确定 RBOHF 活性的分子组成和机制仍有待阐明。在这里,我们结合蛋白质相互作用研究、生化和遗传方法以及途径重建分析,鉴定和表征赋予 RBOHF 调节功能的蛋白质,并阐明调节 RBOHF 活性的机制。虽然钙传感器激活激酶 CIPK11 和 CIPK26 构成了 RBOHF 激活的替代途径,但 CIPKs 的组合活性和激酶开放气孔 1(OST1)触发了这种 NADPH 氧化酶的互补激活,而这种激活可通过磷酸酶 ABI1 的去磷酸化来有效抵消。在 RBOHF 中,RBOHF N 端的几个不同的磷酸化位点(p 位点)似乎各自有助于活性调节。这些发现将 RBOHF 鉴定为一个汇聚点,该汇聚点是由激酶和磷酸酶的复杂调控网络靶向的。我们提出,这允许 RBOHF 根据不同的刺激和不同的生理过程,对植物活性氧(ROS)的产生进行精细调节。

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