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氧脂途径中的氢过氧化物裂解酶分支可防止光合作用的光抑制。

The hydroperoxide lyase branch of the oxylipin pathway protects against photoinhibition of photosynthesis.

作者信息

Savchenko Tatyana, Yanykin Denis, Khorobrykh Andrew, Terentyev Vasily, Klimov Vyacheslav, Dehesh Katayoon

机构信息

Institute of Basic Biological Problems, RAS, Institutskaya st., 2, Pushchino, 142290, Moscow Region, Russia.

All-Russian Research Institute of Phytopathology, Institute st., 5, Odintsovo District, B. Vyazyomy, 143050, Moscow Region, Russia.

出版信息

Planta. 2017 Jun;245(6):1179-1192. doi: 10.1007/s00425-017-2674-z. Epub 2017 Mar 16.

Abstract

This study describes a new role for hydroperoxide lyase branch of oxylipin biosynthesis pathway in protecting photosynthetic apparatus under high light conditions. Lipid-derived signaling molecules, oxylipins, produced by a multi-branch pathway are central in regulation of a wide range of functions. The two most known branches, allene oxide synthase (AOS) and 13-hydroperoxide lyase (HPL) pathways, are best recognized as producers of defense compounds against biotic challenges. In the present work, we examine the role of these two oxylipin branches in plant tolerance to the abiotic stress, namely excessive light. Towards this goal, we have analyzed variable chlorophyll fluorescence parameters of intact leaves of Arabidopsis thaliana genotypes with altered oxylipin profile, followed by examining the impact of exogenous application of selected oxylipins on functional activity of photosynthetic apparatus in intact leaves and isolated thylakoid membranes. Our findings unequivocally bridge the function of oxylipins to photosynthetic processes. Specifically, HPL overexpressing lines display enhanced adaptability in response to high light treatment as evidenced by lower rate constant of photosystem 2 (PS2) photoinhibition and higher rate constant of PS2 recovery after photoinhibition. In addition, exogenous application of linolenic acid, 13-hydroperoxy linolenic acid, 12-oxophytodienoic acid, and methyl jasmonate individually, suppresses photochemical activity of PS2 in intact plants and isolated thylakoid membranes, while application of HPL-branch metabolites-does not. Collectively these data implicate function of HPL branch of oxylipin biosynthesis pathway in guarding PS2 under high light conditions, potentially exerted through tight regulation of free linolenic acid and 13-hydroperoxy linolenic acid levels, as well as competition with production of metabolites by AOS-branch of the oxylipin pathway.

摘要

本研究描述了氧脂生物合成途径中氢过氧化物裂解酶分支在高光条件下保护光合机构的新作用。由多分支途径产生的脂质衍生信号分子氧脂,在多种功能的调节中起着核心作用。两个最著名的分支,丙二烯氧化物合酶(AOS)和13-氢过氧化物裂解酶(HPL)途径,最广为人知的是作为抵御生物挑战的防御化合物的生产者。在本研究中,我们研究了这两个氧脂分支在植物对非生物胁迫(即强光)的耐受性中的作用。为了实现这一目标,我们分析了氧脂谱改变的拟南芥基因型完整叶片的可变叶绿素荧光参数,随后研究了外源施加选定的氧脂对完整叶片和分离类囊体膜中光合机构功能活性的影响。我们的研究结果明确地将氧脂的功能与光合过程联系起来。具体而言,过表达HPL的品系在高光处理下表现出增强的适应性,这表现为光系统2(PS2)光抑制的速率常数较低,以及光抑制后PS2恢复的速率常数较高。此外,单独外源施加亚麻酸、13-氢过氧化亚麻酸、12-氧代植物二烯酸和茉莉酸甲酯,会抑制完整植物和分离类囊体膜中PS2的光化学活性,而施加HPL分支代谢物则不会。这些数据共同表明,氧脂生物合成途径的HPL分支在高光条件下保护PS2的功能,可能是通过严格调节游离亚麻酸和13-氢过氧化亚麻酸的水平,以及与氧脂途径AOS分支代谢物的产生竞争来实现的。

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