异戊二烯:保护植物免受压力的抗氧化剂

Q4 Agricultural and Biological Sciences
Perumalla Srikanth, A. Maxton, S. Masih, Adriano Sofo, Nafees A. Khan
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引用次数: 0

摘要

异戊二烯是一种化学式为 C5H8 的亲脂性不稳定化合物,它通过 2-C 甲基赤藓醇-4-磷酸(MEP)途径进入植物叶绿体,而这种途径依赖于光合作用。虽然只有约 20% 的陆生植物能合成异戊二烯,但能释放异戊二烯的植物对氧化和热应力的适应能力更强。为了揭示异戊二烯至今仍不为人知的保护机制,人们进行了大量研究。研究表明,异戊二烯能与单线态氧(1O2)等多种活性氧(ROS)发生反应并淬灭它们。异戊二烯的还原状态和共轭双键表明,它具有抗氧化功能,尽管这一点尚未得到最终证实。尽管异戊二烯在植物组织中的丰度相对于其他分子较低,但最近的研究探索了异戊二烯的几种潜在作用,包括作为抗氧化剂清除 ROS;强化细胞膜;调节基因组、蛋白质组和代谢组概况;与其他挥发性有机化合物(VOCs)相比,在邻近植物中发出应激反应信号;调节通过 MEP 途径产生的激素的代谢通量;甚至作为一种自由发育激素发挥作用。未来的前瞻性研究,如确定挥发性有机化合物的特定受体、转录因子(TFs)和参与信号传导途径的其他调控蛋白,以及代谢组学、转录组学和生理学分析,将有助于理解植物在胁迫条件下由挥发性有机化合物诱导的防御反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Isoprene: An Antioxidant to Guard Plants against Stress
Isoprene, a lipophilic and unstable compound with the chemical formula C5H8, is transported to plant chloroplasts via the 2-C-methyl-d-erythritol 4-phosphate (MEP) pathway, which relies on photosynthesis. Although only about 20% of terrestrial plants can synthesize isoprene, those that emit it are more adaptable to oxidative and thermal stresses. To shed light on the still-elusive protective mechanism of isoprene, numerous investigations have been conducted. Isoprene has been shown to react with and quench various reactive oxygen species (ROS) such as singlet oxygen (1O2). Its reduced state and conjugated double bonds suggest that it functions as an antioxidant, although this has yet to be conclusively proven. Despite its low abundance relative to other molecules in plant tissues, recent research has explored several potential roles for isoprene including acting as a scavenger of ROS by serving as an antioxidant; strengthening cell membranes; modulating genomic, proteomic and metabolomic profiles; signaling stress responses among neighboring plants compared with other volatile organic compounds (VOCs); regulating metabolic fluxes of hormones produced through the MEP pathway; or even functioning as a free developmental hormone. Future prospective studies, such as identifying the specific receptors for VOCs along with transcription factors (TFs) and other regulatory proteins participating in the signaling pathways and also metabolomic, transcriptomic and physiological analyses could help in comprehending VOC-induced defense responses in plants under stress conditions.
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来源期刊
International Journal of Plant Biology
International Journal of Plant Biology Agricultural and Biological Sciences-Plant Science
CiteScore
2.00
自引率
0.00%
发文量
44
审稿时长
10 weeks
期刊介绍: The International Journal of Plant Biology is an Open Access, online-only, peer-reviewed journal that considers scientific papers in all different subdisciplines of plant biology, such as physiology, molecular biology, cell biology, development, genetics, systematics, ecology, evolution, ecophysiology, plant-microbe interactions, mycology and phytopathology.
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