College of Landscape Architecture, Sichuan Agricultural University, Chengdu, Sichuan, 611130, China.
Department of Biotechnology, Motilal Nehru National Institute of Technology, Allahabad, Uttar Pradesh, 211004, India.
Environ Pollut. 2018 Aug;239:53-68. doi: 10.1016/j.envpol.2018.03.106. Epub 2018 Apr 9.
The significant influence of NO on the stress response is well established; however, the precise metabolic pathways of NO and RNS under metal stresses remain unclear. Here, the key components of ROS and RNS metabolism under Cd stress were investigated with multi-level approaches using high-quality forage white clover (Trifolium repens L.) plants. For the studied plants, Cd disturbed the redox homeostasis, affected the absorption of minerals, and exacerbated the degree of lipid peroxidation, thus triggering oxidative stress. However, NO was also involved in regulating mineral absorption, ROS-scavenger levels and mRNA expression in Cd-treated white clover plants. In addition, GSNOR activity was up-regulated by Cd with the simultaneous depletion of NO generation and GSNO but was counteracted by the NO donor sodium nitroprusside. Response to Cd-stressed SNOs was involved in generating ONOO and NO-Tyr in accordance with the regulation of NO-mediated post-translational modifications in the ASC-GSH cycle, selected amino acids and NADPH-generating dehydrogenases, thereby provoking nitrosative stress. Taken together, our data provide comprehensive metabolite evidence that clearly confirms the relationships between ROS and RNS in Cd-stressed plants, supporting their regulatory roles in response to nitro-oxidative stress and providing an in-depth understanding of the interaction between two families subjected to metal stresses.
NO 对应激反应的显著影响已得到充分证实;然而,金属胁迫下 NO 和 RNS 的精确代谢途径仍不清楚。在这里,使用高质量的饲料白三叶草(Trifolium repens L.)植物,采用多层次的方法研究了 ROS 和 RNS 代谢在 Cd 胁迫下的关键组成部分。对于所研究的植物,Cd 破坏了氧化还原平衡,影响了矿物质的吸收,并加剧了脂质过氧化的程度,从而引发了氧化应激。然而,NO 也参与了调节 Cd 处理的白三叶草植物中矿物质吸收、ROS 清除剂水平和 mRNA 表达。此外,Cd 上调了 GSNOR 的活性,同时耗尽了 NO 的产生和 GSNO,但被 NO 供体硝普钠抵消。对 Cd 胁迫 SNO 的反应涉及生成 ONOO 和 NO-Tyr,同时调节 ASC-GSH 循环、选定氨基酸和 NADPH 生成脱氢酶中的 NO 介导的翻译后修饰,从而引发硝化应激。总之,我们的数据提供了全面的代谢物证据,清楚地证实了 ROS 和 RNS 在 Cd 胁迫植物中的关系,支持它们在应对硝基氧化应激中的调节作用,并深入了解两个家族在受到金属胁迫时的相互作用。