Catalysts for sulfur: understanding the intricacies of enzymes orchestrating plant sulfur anabolism.

IF 3.6 3区 生物学 Q1 PLANT SCIENCES Planta Pub Date : 2024-12-17 DOI:10.1007/s00425-024-04594-w
Ziyue Xu, Dun Liu, Jiadong Zhu, Jiayi Zhao, Shenghai Shen, Yueduo Wang, Pei Yu
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Abstract

Main conclusion: This review highlights the sulfur transporters, key enzymes and their encoding genes involved in plant sulfur anabolism, focusing on their occurrence, chemistry, location, function, and regulation within sulfur assimilation pathways. Sulfur, a vital element for plant life, plays diverse roles in metabolism and stress response. This review provides a comprehensive overview of the sulfur assimilation pathway in plants, highlighting the intricate network of enzymes and their regulatory mechanisms. The primary focus is on the key enzymes involved: ATP sulfurylase (ATPS), APS reductase (APR), sulfite reductase (SiR), serine acetyltransferase (SAT), and O-acetylserine(thiol)lyase (OAS-TL). ATPS initiates the process by activating sulfate to form APS, which is then reduced to sulfite by APR. SiR further reduces sulfite to sulfide, a crucial step that requires significant energy. The cysteine synthase complex (CSC), formed by SAT and OAS-TL, facilitates the synthesis of cysteine, thereby integrating serine metabolism with sulfur assimilation. The alternative sulfation pathway, catalyzed by APS kinase and sulfotransferases, is explored for its role in synthesizing essential secondary metabolites. This review also delves into the regulatory mechanism of these enzymes such as environmental stresses, sulfate availability, phytohormones, as well as translational and post-translational regulations. Understanding the key transporters and enzymes in sulfur assimilation pathways and their corresponding regulation mechanisms can help researchers grasp the importance of sulfur anabolism for the life cycle of plants, clarify how these enzymes and their regulatory processes are integrated to balance plant life systems in response to changes in both external conditions and intrinsic signals.

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硫的催化剂:了解协调植物硫合成代谢的酶的复杂性。
主要结论:本文综述了植物硫合成代谢中的硫转运体、关键酶及其编码基因,重点介绍了它们在硫同化途径中的发生、化学、定位、功能和调控。硫是植物生命的重要元素,在植物代谢和应激反应中起着多种作用。本文综述了植物硫同化途径的研究进展,重点介绍了植物硫同化酶的复杂网络及其调控机制。主要重点是涉及的关键酶:ATP硫酰化酶(ATPS), APS还原酶(APR),亚硫酸盐还原酶(SiR),丝氨酸乙酰转移酶(SAT)和o -乙酰丝氨酸(硫醇)裂解酶(OAS-TL)。ATPS通过激活硫酸盐生成APS, APS随后被apr还原为亚硫酸盐,SiR进一步将亚硫酸盐还原为硫化物,这是一个需要大量能量的关键步骤。由SAT和OAS-TL形成的半胱氨酸合成酶复合体(CSC)促进了半胱氨酸的合成,从而将丝氨酸代谢与硫同化结合起来。探讨了由APS激酶和硫转移酶催化的硫酸化途径在合成必需次生代谢物中的作用。本文还从环境胁迫、硫酸盐可利用性、植物激素、翻译和翻译后调控等方面探讨了这些酶的调控机制。了解硫同化途径中的关键转运体和酶及其相应的调控机制,有助于研究人员掌握硫合成代谢在植物生命周期中的重要性,阐明这些酶及其调控过程如何在响应外部条件和内在信号变化的情况下协调植物生命系统的平衡。
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来源期刊
Planta
Planta 生物-植物科学
CiteScore
7.20
自引率
2.30%
发文量
217
审稿时长
2.3 months
期刊介绍: Planta publishes timely and substantial articles on all aspects of plant biology. We welcome original research papers on any plant species. Areas of interest include biochemistry, bioenergy, biotechnology, cell biology, development, ecological and environmental physiology, growth, metabolism, morphogenesis, molecular biology, new methods, physiology, plant-microbe interactions, structural biology, and systems biology.
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