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The Physiological Functions of Universal Stress Proteins and Their Molecular Mechanism to Protect Plants From Environmental Stresses

机译:普遍胁迫蛋白的生理功能及其保护植物免受环境胁迫的分子机制

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摘要

Since the original discovery of a Universal Stress Protein (USP) in Escherichia coli, a number of USPs have been identified from diverse sources including archaea, bacteria, plants, and metazoans. As their name implies, these proteins participate in a broad range of cellular responses to biotic and abiotic stresses. Their physiological functions are associated with ion scavenging, hypoxia responses, cellular mobility, and regulation of cell growth and development. Consistent with their roles in resistance to multiple stresses, USPs show a wide range of structural diversity that results from the diverse range of other functional motifs fused with the USP domain. As well as providing structural diversity, these catalytic motifs are responsible for the diverse biochemical properties of USPs and enable them to act in a number of cellular signaling transducers and metabolic regulators. Despite the importance of USP function in many organisms, the molecular mechanisms by which USPs protect cells and provide stress resistance remain largely unknown. This review addresses the diverse roles of USPs in plants and how the proteins enable plants to resist against multiple stresses in ever-changing environment. Bioinformatic tools used for the collection of a set of USPs from various plant species provide more than 2,100 USPs and their functional diversity in plant physiology. Data from previous studies are used to understand how the biochemical activity of plant USPs modulates biotic and abiotic stress signaling. As USPs interact with the redox protein, thioredoxin, in Arabidopsis and reactive oxygen species (ROS) regulates the activity of USPs, the involvement of USPs in redox-mediated defense signaling is also considered. Finally, this review discusses the biotechnological application of USPs in an agricultural context by considering the development of novel stress-resistant crops through manipulating the expression of USP genes.
机译:自从在大肠杆菌中首次发现通用应激蛋白(USP)以来,已经从包括古细菌,细菌,植物和后生动物在内的多种来源中鉴定出许多USP。顾名思义,这些蛋白质参与了对生物和非生物胁迫的广泛细胞反应。它们的生理功能与离子清除,缺氧反应,细胞迁移以及细胞生长发育的调节有关。与它们在抵抗多种压力中的作用一致,USP显示出广泛的结构多样性,这是由于与USP域融合的其他功能性基元的多样性所致。这些催化基序除了提供结构多样性外,还负责USP的多种生化特性,并使它们能够在许多细胞信号转导子和代谢调节剂中发挥作用。尽管USP在许多生物中发挥着重要的作用,但USP保护细胞并提供抗逆性的分子机制仍然未知。这篇综述阐述了USP在植物中的不同作用,以及蛋白质如何使植物在不断变化的环境中抵抗多种胁迫。用于从各种植物物种中收集一组USP的生物信息学工具提供了2,100多种USP及其在植物生理学中的功能多样性。先前研究的数据用于了解植物USP的生化活性如何调节生物和非生物胁迫信号。由于USP与拟南芥中的氧化还原蛋白硫氧还蛋白相互作用,而活性氧(ROS)调节USP的活性,因此也考虑了USP参与氧化还原介导的防御信号传导。最后,本文通过考虑通过操纵USP基因的表达来开发新型抗逆性作物,来讨论USP在农业领域的生物技术应用。

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