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杨树中异戊二烯排放对蛋白质S-亚硝基化的调节作用

Modulation of Protein S-Nitrosylation by Isoprene Emission in Poplar.

作者信息

Vanzo Elisa, Merl-Pham Juliane, Velikova Violeta, Ghirardo Andrea, Lindermayr Christian, Hauck Stefanie M, Bernhardt Jörg, Riedel Katharina, Durner Jörg, Schnitzler Jörg-Peter

机构信息

Helmholtz Zentrum München, Research Unit Environmental Simulation (E.V., V.V., A.G., J.-P.S.), Institute of Biochemical Plant Pathology (C.L., J.D.), and Research Unit Protein Science (J.M.-P., S.M.H.), D-85764 Neuherberg, Germany;Institute of Plant Physiology and Genetics, Bulgarian Academy of Sciences, 1113 Sofia, Bulgaria (V.V.); andInstitute for Microbiology, Ernst-Moritz-Arndt University, 17487 Greifswald, Germany (J.B., K.R.).

Helmholtz Zentrum München, Research Unit Environmental Simulation (E.V., V.V., A.G., J.-P.S.), Institute of Biochemical Plant Pathology (C.L., J.D.), and Research Unit Protein Science (J.M.-P., S.M.H.), D-85764 Neuherberg, Germany;Institute of Plant Physiology and Genetics, Bulgarian Academy of Sciences, 1113 Sofia, Bulgaria (V.V.); andInstitute for Microbiology, Ernst-Moritz-Arndt University, 17487 Greifswald, Germany (J.B., K.R.)

出版信息

Plant Physiol. 2016 Apr;170(4):1945-61. doi: 10.1104/pp.15.01842. Epub 2016 Feb 5.

Abstract

Researchers have been examining the biological function(s) of isoprene in isoprene-emitting (IE) species for two decades. There is overwhelming evidence that leaf-internal isoprene increases the thermotolerance of plants and protects them against oxidative stress, thus mitigating a wide range of abiotic stresses. However, the mechanisms of abiotic stress mitigation by isoprene are still under debate. Here, we assessed the impact of isoprene on the emission of nitric oxide (NO) and the S-nitroso-proteome of IE and non-isoprene-emitting (NE) gray poplar (Populus × canescens) after acute ozone fumigation. The short-term oxidative stress induced a rapid and strong emission of NO in NE compared with IE genotypes. Whereas IE and NE plants exhibited under nonstressful conditions only slight differences in their S-nitrosylation pattern, the in vivo S-nitroso-proteome of the NE genotype was more susceptible to ozone-induced changes compared with the IE plants. The results suggest that the nitrosative pressure (NO burst) is higher in NE plants, underlining the proposed molecular dialogue between isoprene and the free radical NO Proteins belonging to the photosynthetic light and dark reactions, the tricarboxylic acid cycle, protein metabolism, and redox regulation exhibited increased S-nitrosylation in NE samples compared with IE plants upon oxidative stress. Because the posttranslational modification of proteins via S-nitrosylation often impacts enzymatic activities, our data suggest that isoprene indirectly regulates the production of reactive oxygen species (ROS) via the control of the S-nitrosylation level of ROS-metabolizing enzymes, thus modulating the extent and velocity at which the ROS and NO signaling molecules are generated within a plant cell.

摘要

二十年来,研究人员一直在研究异戊二烯在异戊二烯排放(IE)物种中的生物学功能。有确凿的证据表明,叶片内部的异戊二烯可提高植物的耐热性,并保护它们免受氧化应激,从而减轻多种非生物胁迫。然而,异戊二烯减轻非生物胁迫的机制仍存在争议。在此,我们评估了急性臭氧熏蒸后,异戊二烯对IE和非异戊二烯排放(NE)灰杨(Populus × canescens)一氧化氮(NO)排放以及S-亚硝基化蛋白质组的影响。与IE基因型相比,短期氧化应激诱导NE中NO快速且强烈地排放。虽然IE和NE植物在非胁迫条件下其S-亚硝基化模式仅表现出细微差异,但与IE植物相比,NE基因型的体内S-亚硝基化蛋白质组对臭氧诱导的变化更敏感。结果表明,NE植物中的亚硝化压力(NO爆发)更高,这突出了异戊二烯与自由基NO之间提议的分子对话。与IE植物相比,在氧化应激下,NE样品中属于光合光反应和暗反应、三羧酸循环、蛋白质代谢和氧化还原调节的蛋白质表现出增加的S-亚硝基化。由于通过S-亚硝基化对蛋白质进行的翻译后修饰通常会影响酶活性,我们的数据表明,异戊二烯通过控制ROS代谢酶的S-亚硝基化水平间接调节活性氧(ROS)的产生,从而调节植物细胞内ROS和NO信号分子产生的程度和速度。

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