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一氧化氮:其生成及与其他活性信号化合物的相互作用

Nitric Oxide: Its Generation and Interactions with Other Reactive Signaling Compounds.

作者信息

Hancock John T, Neill Steven J

机构信息

Department of Applied Sciences, University of the West of England, Bristol BS16 1QY, UK.

Faculty of Health and Applied Sciences, University of the West of England, Bristol BS16 1QY, UK.

出版信息

Plants (Basel). 2019 Feb 12;8(2):41. doi: 10.3390/plants8020041.

Abstract

Nitric oxide (NO) is an immensely important signaling molecule in animals and plants. It is involved in plant reproduction, development, key physiological responses such as stomatal closure, and cell death. One of the controversies of NO metabolism in plants is the identification of enzymatic sources. Although there is little doubt that nitrate reductase (NR) is involved, the identification of a nitric oxide synthase (NOS)-like enzyme remains elusive, and it is becoming increasingly clear that such a protein does not exist in higher plants, even though homologues have been found in algae. Downstream from its production, NO can have several potential actions, but none of these will be in isolation from other reactive signaling molecules which have similar chemistry to NO. Therefore, NO metabolism will take place in an environment containing reactive oxygen species (ROS), hydrogen sulfide (H₂S), glutathione, other antioxidants and within a reducing redox state. Direct reactions with NO are likely to produce new signaling molecules such as peroxynitrite and nitrosothiols, and it is probable that chemical competitions will exist which will determine the ultimate end result of signaling responses. How NO is generated in plants cells and how NO fits into this complex cellular environment needs to be understood.

摘要

一氧化氮(NO)是动植物体内极为重要的信号分子。它参与植物的繁殖、发育、气孔关闭等关键生理反应以及细胞死亡过程。植物中NO代谢的争议之一在于酶源的鉴定。尽管毫无疑问硝酸盐还原酶(NR)参与其中,但类似一氧化氮合酶(NOS)的酶的鉴定仍然难以捉摸,而且越来越清楚的是,高等植物中不存在这样的蛋白质,尽管在藻类中已发现其同源物。在其产生之后,NO可以有几种潜在作用,但这些作用都不会与其他化学性质与NO相似的活性信号分子孤立存在。因此,NO代谢将在含有活性氧(ROS)、硫化氢(H₂S)、谷胱甘肽、其他抗氧化剂且处于还原氧化态的环境中发生。与NO的直接反应可能会产生新的信号分子,如过氧亚硝酸盐和亚硝基硫醇,并且很可能存在化学竞争,这将决定信号反应的最终结果。需要了解植物细胞中NO是如何产生的以及NO如何融入这个复杂的细胞环境。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b818/6409986/91c5891b3fa8/plants-08-00041-g001.jpg

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