Unlocking the versatility of nitric oxide in plants and insights into its molecular interplays under biotic and abiotic stress

IF 3.2 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Ritu Kumari , Preedhi Kapoor , Bilal Ahmad Mir , Maninder Singh , Zubair Ahmad Parrey , Gurseen Rakhra , Parul Parihar , M. Nasir Khan , Gurmeen Rakhra
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Abstract

In plants, nitric oxide (NO) has become a versatile signaling molecule essential for mediating a wide range of physiological processes under various biotic and abiotic stress conditions. The fundamental function of NO under various stress scenarios has led to a paradigm shift in which NO is now seen as both a free radical liberated from the toxic product of oxidative metabolism and an agent that aids in plant sustenance. Numerous studies on NO biology have shown that NO is an important signal for germination, leaf senescence, photosynthesis, plant growth, pollen growth, and other processes. It is implicated in defense responses against pathogensas well as adaptation of plants in response to environmental cues like salinity, drought, and temperature extremes which demonstrates its multifaceted role. NO can carry out its biological action in a variety of ways, including interaction with protein kinases, modifying gene expression, and releasing secondary messengers. In addition to these signaling events, NO may also be in charge of the chromatin modifications, nitration, and S-nitrosylation-induced posttranslational modifications (PTM) of target proteins. Deciphering the molecular mechanism behind its essential function is essential to unravel the regulatory networks controlling the responses of plants to various environmental stimuli. Taking into consideration the versatile role of NO, an effort has been made to interpret its mode of action based on the post-translational modifications and to cover shreds of evidence for increased growth parameters along with an altered gene expression.

揭示一氧化氮在植物中的多功能性,深入了解其在生物和非生物胁迫下的分子相互作用。
在植物中,一氧化氮(NO)已成为一种多功能信号分子,在各种生物和非生物胁迫条件下,它对介导广泛的生理过程至关重要。一氧化氮在各种胁迫情况下的基本功能导致了一种范式的转变,即一氧化氮现在既被视为从氧化代谢的有毒产物中释放出来的自由基,也被视为一种有助于植物生存的物质。大量有关 NO 生物学的研究表明,NO 是萌芽、叶片衰老、光合作用、植物生长、花粉生长和其他过程的重要信号。它还参与植物对病原体的防御反应,以及植物对盐度、干旱和极端温度等环境线索的适应反应,这表明它具有多方面的作用。NO 可以通过多种方式发挥其生物作用,包括与蛋白激酶相互作用、改变基因表达和释放次级信使。除了这些信号事件,NO 还可能负责染色质修饰、硝化和 S-亚硝基化引起的靶蛋白翻译后修饰(PTM)。破译其重要功能背后的分子机制对于揭示控制植物对各种环境刺激做出反应的调控网络至关重要。考虑到氮氧化物的多功能作用,人们努力根据翻译后修饰来解释其作用模式,并收集了一些关于生长参数增加和基因表达改变的证据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nitric oxide : biology and chemistry
Nitric oxide : biology and chemistry 生物-生化与分子生物学
CiteScore
7.50
自引率
7.70%
发文量
74
审稿时长
52 days
期刊介绍: Nitric Oxide includes original research, methodology papers and reviews relating to nitric oxide and other gasotransmitters such as hydrogen sulfide and carbon monoxide. Special emphasis is placed on the biological chemistry, physiology, pharmacology, enzymology and pathological significance of these molecules in human health and disease. The journal also accepts manuscripts relating to plant and microbial studies involving these molecules.
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