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褪黑素与一氧化氮的相互作用:新兴分子 NOmela 的作用机制、主要靶点和推测作用。

Interaction between Melatonin and NO: Action Mechanisms, Main Targets, and Putative Roles of the Emerging Molecule NOmela.

机构信息

Center of Edaphology and Applied Biology of Segura CEBAS-CSIC, Campus Universitario Espinardo, 30100 Murcia, Spain.

Faculty of Biology, Department of Plant Physiology, University of Murcia, Campus Universitario Espinardo, 30100 Murcia, Spain.

出版信息

Int J Mol Sci. 2022 Jun 14;23(12):6646. doi: 10.3390/ijms23126646.

Abstract

Melatonin (MEL), a ubiquitous indolamine molecule, has gained interest in the last few decades due to its regulatory role in plant metabolism. Likewise, nitric oxide (NO), a gasotransmitter, can also affect plant molecular pathways due to its function as a signaling molecule. Both MEL and NO can interact at multiple levels under abiotic stress, starting with their own biosynthetic pathways and inducing a particular signaling response in plants. Moreover, their interaction can result in the formation of NOmela, a very recently discovered nitrosated form of MEL with promising roles in plant physiology. This review summarizes the role of NO and MEL molecules during plant development and fruit ripening, as well as their interactions. Due to the impact of climate-change-related abiotic stresses on agriculture, this review also focuses on the role of these molecules in mediating abiotic stress tolerance and the main mechanisms by which they operate, from the upregulation of the entire antioxidant defense system to the post-translational modifications (PTMs) of important molecules. Their individual interaction and crosstalk with phytohormones and HS are also discussed. Finally, we introduce and summarize the little information available about NOmela, an emerging and still very unknown molecule, but that seems to have a stronger potential than MEL and NO separately in mediating plant stress response.

摘要

褪黑素(MEL)是一种普遍存在的吲哚胺分子,由于其在植物代谢中的调节作用,在过去几十年中引起了人们的兴趣。同样,一氧化氮(NO)作为一种信号分子,也可以影响植物的分子途径。MEL 和 NO 均可在非生物胁迫下在多个层面相互作用,首先是它们自身的生物合成途径,并在植物中诱导特定的信号响应。此外,它们的相互作用可能导致形成 NOmela,这是一种最近发现的 MEL 亚硝酰化形式,在植物生理学中具有广阔的应用前景。

本综述总结了 NO 和 MEL 分子在植物发育和果实成熟过程中的作用及其相互作用。由于气候变化相关的非生物胁迫对农业的影响,本综述还重点讨论了这些分子在介导非生物胁迫耐受性中的作用,以及它们作用的主要机制,从整个抗氧化防御系统的上调到重要分子的翻译后修饰(PTMs)。还讨论了它们与植物激素和 HS 的单独相互作用和串扰。最后,我们介绍并总结了关于 NOmela 的少量信息,NOmela 是一种新兴的、仍知之甚少的分子,但它似乎在介导植物应激反应方面比 MEL 和 NO 单独作用具有更强的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a1d0/9223470/9fe350d84cfe/ijms-23-06646-g001.jpg

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