Redox Control of Seed Germination is Mediated by the Crosstalk of Nitric Oxide and Reactive Oxygen Species.

IF 5.9 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Antioxidants & redox signaling Pub Date : 2024-11-27 DOI:10.1089/ars.2024.0699
Natalia V Bykova, Abir U Igamberdiev
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Abstract

Significance: Seed germination and seedling establishment are characterized by changes in the intracellular redox state modulated by accelerated production of nitric oxide (NO) and reactive oxygen species (ROS). Redox regulation and enhanced accumulation of NO and ROS, approaching excessively high levels during seed imbibition, are critically important for breaking endodormancy and inducing germination. Recent Advances: Upon depletion of oxygen under the seed coat, NO is produced anaerobically in the reductive pathway associated mainly with mitochondria, and it participates in the energy metabolism of the seed until radicle protrusion. NO turnover involves nitrate reduction to nitrite in the cytosol, nitrite reduction to NO in mitochondria, and NO oxygenation in the cytosol in the reaction involving the hypoxically induced class 1 phytoglobin. In postgerminative degradation of seed tissues, NO and ROS are involved in redox signaling via post-translational modification of proteins and mediation of phytohormonal responses. Critical Issues: The crosstalk between the cellular redox potential, NO, ROS, and phytohormones integrates major physiological processes related to seed germination. Intensive accumulation of NO and ROS during imbibition is critically important for breaking seed dormancy. Upon oxygen depletion, NO and other nitrous oxides (NOx) are produced anaerobically and support energy metabolism prior to radicle protrusion. Future Directions: The turnover of NOx and ROS is determined by the intracellular redox balance, and it self-controls redox and energy levels upon germination. The particular details, regulation of this process, and its physiological significance remain to be established. Antioxid. Redox Signal. 00, 000-000.

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种子萌发的氧化还原控制是由一氧化氮和活性氧的相互作用介导的
重要意义:种子萌发和幼苗形成的特点是细胞内氧化还原状态的变化,这种变化受一氧化氮(NO)和活性氧(ROS)加速产生的调节。氧化还原调节和一氧化氮与 ROS 的累积增强,在种子浸种期间接近过高的水平,对于打破内冬眠和诱导萌发至关重要。最新进展当种皮下的氧气耗尽时,NO 在主要与线粒体相关的还原途径中无氧产生,并参与种子的能量代谢,直至胚根突起。NO 的转换包括在细胞质中将硝酸盐还原为亚硝酸盐,在线粒体中将亚硝酸盐还原为 NO,以及在细胞质中通过低氧诱导的 1 类植物血红蛋白的反应将 NO 氧合。在种子组织的发芽后降解过程中,NO 和 ROS 通过蛋白质翻译后修饰参与氧化还原信号转导,并介导植物激素反应。关键问题:细胞氧化还原电位、NO、ROS 和植物激素之间的相互作用整合了与种子萌发有关的主要生理过程。浸种期间 NO 和 ROS 的大量积累对打破种子休眠至关重要。氧气耗尽时,氮氧化物和其他氧化亚氮(NOx)会在无氧状态下产生,并支持胚根萌发前的能量代谢。未来方向:NOx 和 ROS 的周转由细胞内氧化还原平衡决定,在萌芽时可自我控制氧化还原和能量水平。这一过程的具体细节、调节及其生理意义仍有待确定。抗氧化。氧化还原信号。00, 000-000.
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Antioxidants & redox signaling
Antioxidants & redox signaling 生物-内分泌学与代谢
CiteScore
14.10
自引率
1.50%
发文量
170
审稿时长
3-6 weeks
期刊介绍: Antioxidants & Redox Signaling (ARS) is the leading peer-reviewed journal dedicated to understanding the vital impact of oxygen and oxidation-reduction (redox) processes on human health and disease. The Journal explores key issues in genetic, pharmaceutical, and nutritional redox-based therapeutics. Cutting-edge research focuses on structural biology, stem cells, regenerative medicine, epigenetics, imaging, clinical outcomes, and preventive and therapeutic nutrition, among other areas. ARS has expanded to create two unique foci within one journal: ARS Discoveries and ARS Therapeutics. ARS Discoveries (24 issues) publishes the highest-caliber breakthroughs in basic and applied research. ARS Therapeutics (12 issues) is the first publication of its kind that will help enhance the entire field of redox biology by showcasing the potential of redox sciences to change health outcomes. ARS coverage includes: -ROS/RNS as messengers -Gaseous signal transducers -Hypoxia and tissue oxygenation -microRNA -Prokaryotic systems -Lessons from plant biology
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