Deciphering molecular regulation of reactive oxygen species (ROS) and reactive nitrogen species (RNS) signalling networks in Oryza genus amid environmental stress.

IF 5.3 2区 生物学 Q1 PLANT SCIENCES
P S Abhijith Shankar, Pallabi Parida, Rupesh Bhardwaj, Ankush Yadav, Prashant Swapnil, Chandra Shekhar Seth, Mukesh Meena
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Abstract

The Oryza genus, containing Oryza sativa L., is quintessential to sustain global food security. This genus has a lot of sophisticated molecular mechanisms to cope with environmental stress, particularly during vulnerable stages like flowering. Recent studies have found key involvements and genetic modifications that increase resilience to stress, including exogenous application of melatonin, allantoin, and trehalose as well as OsSAPK3 and OsAAI1 in the genetic realm. Due to climate change and anthropogenic reasons, there is a rise in sea level which raises a concern of salinity stress. It is tackled through osmotic adjustment and ion homeostasis, mediated by genes like P5CS, P5CR, GSH1, GSH2, and SPS, and ion transporters like NHX, NKT, and SKC, respectively. Oxidative damage is reduced by a complex action of antioxidants, scavenging RONS. A complex action of genes mediates cold stress with studies highlighting the roles of OsWRKY71, microRNA2871b, OsDOF1, and OsICE1. There is a need to research the mechanism of action of proteins like OsRbohA in ROS control and the action of regulatory genes in stress response. This is highly relevant due to the changing climate which will raise a lot of environmental changes that will adversely affect production and global food security if certain countermeasures are not taken. Overall, this study aims to unravel the molecular intricacies of ROS and RNS signaling networks in Oryza plants under stress conditions, with the ultimate goal of informing strategies for enhancing stress tolerance and crop performance in this important agricultural genus.

Abstract Image

解密环境胁迫下禾本科植物活性氧(ROS)和活性氮(RNS)信号网络的分子调控。
蚕豆属(Oryza sativa L.)是维持全球粮食安全的关键。该属植物有许多复杂的分子机制来应对环境压力,尤其是在开花等脆弱阶段。最近的研究发现了提高抗逆性的关键参与和基因修饰,包括外源应用褪黑激素、尿囊素、曲哈糖以及基因领域的 OsSAPK3 和 OsAAI1。由于气候变化和人为原因,海平面上升,引发了对盐度胁迫的担忧。盐胁迫是通过渗透调节和离子平衡来解决的,分别由 P5CS、P5CR、GSH1、GSH2 和 SPS 等基因以及 NHX、NKT 和 SKC 等离子转运体介导。抗氧化剂和清除 RONS 的复杂作用减少了氧化损伤。基因的复杂作用介导了冷胁迫,研究强调了 OsWRKY71、microRNA2871b、OsDOF1 和 OsICE1 的作用。有必要研究 OsRbohA 等蛋白质在 ROS 控制中的作用机制,以及胁迫响应中调控基因的作用。这与气候变化密切相关,因为如果不采取某些应对措施,气候变化将引发大量环境变化,对生产和全球粮食安全造成不利影响。总之,本研究旨在揭示 ROS 和 RNS 信号网络在逆境条件下的复杂性,最终目的是为提高这一重要农作物属的抗逆性和作物性能的策略提供信息。
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来源期刊
Plant Cell Reports
Plant Cell Reports 生物-植物科学
CiteScore
10.80
自引率
1.60%
发文量
135
审稿时长
3.2 months
期刊介绍: Plant Cell Reports publishes original, peer-reviewed articles on new advances in all aspects of plant cell science, plant genetics and molecular biology. Papers selected for publication contribute significant new advances to clearly identified technological problems and/or biological questions. The articles will prove relevant beyond the narrow topic of interest to a readership with broad scientific background. The coverage includes such topics as: - genomics and genetics - metabolism - cell biology - abiotic and biotic stress - phytopathology - gene transfer and expression - molecular pharming - systems biology - nanobiotechnology - genome editing - phenomics and synthetic biology The journal also publishes opinion papers, review and focus articles on the latest developments and new advances in research and technology in plant molecular biology and biotechnology.
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