Corpas Francisco J, Del Río Luis A, Palma José M
Group of Antioxidants, Free Radicals and Nitric Oxide in Biotechnology, Food and Agriculture, Department of Biochemistry, Cell and Molecular Biology of Plants, Estación Experimental del Zaidín, CSIC, Profesor Albareda 1, 18008, Granada, Spain.
Subcell Biochem. 2018;89:473-493. doi: 10.1007/978-981-13-2233-4_21.
Plant peroxisomes are organelles with a very active participation in the cellular regulation of the metabolism of reactive oxygen species (ROS). However, during the last two decades peroxisomes have been shown to be also a relevant source of nitric oxide (NO) and other related molecules designated as reactive nitrogen species (RNS). ROS and RNS have been mainly associated to nitro-oxidative processes; however, some members of these two families of molecules such as HO, NO or S-nitrosoglutathione (GSNO) are also involved in the mechanism of signaling processes mainly through post-translational modifications. Peroxisomes interact metabolically with other cell compartments such as chloroplasts, mitochondria or oil bodies in different pathways including photorespiration, glyoxylate cycle or β-oxidation, but peroxisomes are also involved in the biosynthesis of phytohormones including auxins and jasmonic acid (JA). This review will provide a comprehensive overview of peroxisomal RNS metabolism with special emphasis in the identified protein targets of RNS inside and outside these organelles. Moreover, the potential interconnectivity between peroxisomes and other plant organelles, such as mitochondria or chloroplasts, which could have a regulatory function will be explored, with special emphasis on photorespiration.
植物过氧化物酶体是在细胞内活性氧(ROS)代谢调节中发挥积极作用的细胞器。然而,在过去二十年中,过氧化物酶体已被证明也是一氧化氮(NO)和其他被称为活性氮物质(RNS)的相关分子的重要来源。ROS和RNS主要与硝基氧化过程有关;然而,这两类分子中的一些成员,如羟基自由基(HO)、NO或S-亚硝基谷胱甘肽(GSNO),也主要通过翻译后修饰参与信号传导过程。过氧化物酶体在代谢上与其他细胞区室相互作用,如叶绿体、线粒体或油体,涉及不同的途径,包括光呼吸、乙醛酸循环或β-氧化,但过氧化物酶体也参与植物激素的生物合成,包括生长素和茉莉酸(JA)。本综述将全面概述过氧化物酶体RNS代谢,特别强调这些细胞器内外已确定的RNS蛋白质靶点。此外,还将探讨过氧化物酶体与其他植物细胞器(如线粒体或叶绿体)之间可能存在的具有调节功能的潜在相互联系,特别关注光呼吸。