Khanna Kanika, Bhardwaj Renu, Alam Pravej, Reiter Russel J, Ahmad Parvaiz
Department of Botanical and Environmental Sciences, Guru Nanak Dev University, Amritsar, 143005, Punjab, India; Department of Microbiology, DAV University, Sarmastpur, Jalandhar, 144001, Punjab, India.
Department of Botanical and Environmental Sciences, Guru Nanak Dev University, Amritsar, 143005, Punjab, India.
Plant Physiol Biochem. 2023 Mar;196:260-269. doi: 10.1016/j.plaphy.2023.01.035. Epub 2023 Jan 24.
Phytomelatonin is the multifunctional molecule that governs a range of developmental processes in plants subjected to a plethora of environmental cues. It acts as an antioxidant molecule to regulate the oxidative burst through reactive oxygen species (ROS) scavenging. Moreover, it also activates stress-responsive genes followed by alleviating oxidation. Phytomelatonin also stimulates antioxidant enzymes that further regulate redox homeostasis in plants under adverse conditions. This multifunctional molecule also regulates different physiological processes of plants in terms of leaf senescence, seed germination, lateral root growth, photosynthesis, etc. Due to its versatile nature, it is regarded as a master regulator of plant cell physiology and it holds a crucial position in molecular signaling as well. Phytomelatonin mediated oxidative stress management occurs through a series of antioxidative defense systems, both enzymatic as well as non-enzymatic, along with the formation of an array of secondary defensive metabolites that counteract the stresses. These phytomelatonin-derived antioxidants reduce the lipid peroxidation and improve membrane integrity of the cells subjected to stress. Here in, the data from transcriptomic and omics approaches are summarized which help to identify the gene regulatory mechanisms involved in the regulation of redox homeostasis and oxidative stress management. Further, we also recap the signaling cascade underlying phytomelatonin interactions with both ROS and reactive nitrogen species (RNS)and their crosstalk. The discoveries related to phytomelatonin have shown that this regulatory master molecule is critical for plant cell physiology. The current review is focussed the role of phytomelatonin as a multifunctional molecule in plant stress management.
植物褪黑素是一种多功能分子,它在受到大量环境信号影响的植物中调控一系列发育过程。它作为一种抗氧化分子,通过清除活性氧(ROS)来调节氧化爆发。此外,它还能激活应激反应基因,随后减轻氧化作用。植物褪黑素还能刺激抗氧化酶,在不利条件下进一步调节植物体内的氧化还原稳态。这种多功能分子还在叶片衰老、种子萌发、侧根生长、光合作用等方面调节植物的不同生理过程。由于其多功能性,它被视为植物细胞生理的主要调节因子,在分子信号传导中也占据关键地位。植物褪黑素介导的氧化应激管理是通过一系列抗氧化防御系统实现的,包括酶促和非酶促系统,同时还会形成一系列次生防御代谢产物来对抗压力。这些源自植物褪黑素的抗氧化剂可减少脂质过氧化,改善受胁迫细胞的膜完整性。在此,总结了转录组学和组学方法的数据,这些数据有助于识别参与氧化还原稳态调节和氧化应激管理的基因调控机制。此外,我们还概述了植物褪黑素与ROS和活性氮物质(RNS)相互作用及其相互作用的信号级联。与植物褪黑素相关的发现表明,这种调控主分子对植物细胞生理至关重要。本综述重点关注植物褪黑素作为多功能分子在植物胁迫管理中的作用。