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Metabolic control of redox and redox control of metabolism in plants

机译:氧化还原的代谢控制和植物代谢的氧化还原控制

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Significance: Reduction-oxidation (Redox) status operates as a major integrator of subcellular and extracellular metabolism and is simultaneously itself regulated by metabolic processes. Redox status not only dominates cellular metabolism due to the prominence of NAD(H) and NADP(H) couples in myriad metabolic reactions but also acts as an effective signal that informs the cell of the prevailing environmental conditions. After relay of this information, the cell is able to appropriately respond via a range of mechanisms, including directly affecting cellular functioning and reprogramming nuclear gene expression. Recent Advances: The facile accession of Arabidopsis knockout mutants alongside the adoption of broad-scale post-genomic approaches, which are able to provide transcriptomic-, proteomic-, and metabolomic-level information alongside traditional biochemical and emerging cell biological techniques, has dramatically advanced our understanding of redox status control. This review summarizes redox status control of metabolism and the metabolic control of redox status at both cellular and subcellular levels. Critical Issues: It is becoming apparent that plastid, mitochondria, and peroxisome functions influence a wide range of processes outside of the organelles themselves. While knowledge of the network of metabolic pathways and their intraorganellar redox status regulation has increased in the last years, little is known about the interorganellar redox signals coordinating these networks. A current challenge is, therefore, synthesizing our knowledge and planning experiments that tackle redox status regulation at both inter- and intracellular levels. Future Directions: Emerging tools are enabling ever-increasing spatiotemporal resolution of metabolism and imaging of redox status components. Broader application of these tools will likely greatly enhance our understanding of the interplay of redox status and metabolism as well as elucidating and characterizing signaling features thereof. We propose that such information will enable us to dissect the regulatory hierarchies that mediate the strict coupling of metabolism and redox status which, ultimately, determine plant growth and development. Antioxid.
机译:启示:还原-氧化(Redox)状态是亚细胞和细胞外代谢的主要整合者,并同时受代谢过程的调节。氧化还原状态不仅由于无数代谢反应中NAD(H)和NADP(H)对的突出而主导细胞的新陈代谢,而且还充当有效信号,告知细胞当前的环境状况。传递这些信息后,细胞能够通过一系列机制做出适当反应,包括直接影响细胞功能和重新编程核基因表达。最新进展:拟南芥基因敲除突变体的容易获得以及大规模基因组后方法的采用,能够提供转录组,蛋白质组学和代谢组学水平的信息以及传统生化和新兴细胞生物学技术,已取得了显着进展我们对氧化还原状态控制的了解。这篇综述总结了细胞和亚细胞水平的代谢的氧化还原状态控制和氧化还原状态的代谢控制。关键问题:质体,线粒体和过氧化物酶体功能影响细胞器自身之外的多种过程,这一点已变得显而易见。尽管最近几年对代谢途径网络及其细胞内氧化还原状态调节的了解有所增加,但对于协调这些网络的细胞间氧化还原信号知之甚少。因此,当前的挑战是综合我们的知识和计划实验,以解决细胞间和细胞内水平的氧化还原状态调节。未来方向:新兴工具将使时空分辨率的代谢和氧化还原状态成分成像不断增加。这些工具的广泛应用可能会极大地增进我们对氧化还原状态和新陈代谢的相互作用以及阐明和表征其信号传导特征的理解。我们建议,此类信息将使我们能够剖析调节代谢和氧化还原状态之间严格耦合的调节等级,最终确定植物的生长发育。抗氧化。

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