The RING-type E3 ligase RIE1 sustains leaf longevity by specifically targeting AtACS7 to fine-tune ethylene production in Arabidopsis.

IF 9.4 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Proceedings of the National Academy of Sciences of the United States of America Pub Date : 2024-11-26 Epub Date: 2024-11-20 DOI:10.1073/pnas.2411271121
Xianglin Tang, Yuanyuan Mei, Kaixuan He, Ran Liu, Xiaoyan Lv, Yujia Zhao, Wenjing Li, Qian Wang, Qinshan Gong, Shengnan Li, Chang Xu, Xu Zheng, Qingyu Cao, Dan Wang, Ning Ning Wang
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Abstract

Ethylene is widely recognized as a positive regulator of leaf senescence. However, how plants coordinate the biosynthesis of ethylene to meet the requirements of senescence progression has not been determined. The rate-limiting enzyme in the ethylene biosynthesis pathway is ACC synthase. AtACS7 was previously considered one of the major contributors to the synthesis of "senescence ethylene" in Arabidopsis. However, the "brake signal" that fine-tunes the expression of AtACS7 to ensure optimal ethylene production during leaf development has yet to be identified. In the present study, the RING-H2 zinc-finger protein RIE1 was found to specifically interact with and ubiquitinate AtACS7, among all functional ACSs in Arabidopsis, to promote its degradation. Overexpression of RIE1 markedly decreased ethylene biosynthesis and delayed leaf senescence, whereas loss of function of RIE1 significantly increased ethylene emission and accelerated leaf senescence. The ethylene-related phenotypes of RIE1 overexpressing or knockout mutants were effectively rescued by the ethylene precursor ACC or the competitive inhibitor of ACS, respectively. In particular, AtACS7-induced precocious leaf senescence was strongly enhanced by the loss of RIE1 but was significantly attenuated by the overexpression of RIE1. The specific regions of interaction between AtACS7 and RIE1, as well as the major ubiquitination sites of AtACS7, were further investigated. All results demonstrated that RIE1 functions as an important modulator of ethylene biosynthesis during leaf development by specifically targeting AtACS7 for degradation, thereby enabling plants to produce the optimal levels of ethylene needed.

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RING 型 E3 连接酶 RIE1 通过特异性靶向 AtACS7 来微调拟南芥的乙烯产量,从而维持叶片寿命。
乙烯被广泛认为是叶片衰老的正向调节因子。然而,植物如何协调乙烯的生物合成以满足衰老进程的要求,目前尚未确定。乙烯生物合成途径中的限速酶是 ACC 合酶。AtACS7 以前被认为是拟南芥合成 "衰老乙烯 "的主要贡献者之一。然而,对 AtACS7 的表达进行微调以确保其在叶片发育过程中产生最佳乙烯的 "制动信号 "尚未确定。本研究发现,在拟南芥的所有功能性 ACS 中,RING-H2 锌指蛋白 RIE1 与 AtACS7 发生特异性相互作用并泛素化,从而促进其降解。RIE1 的过表达明显降低了乙烯的生物合成并延迟了叶片的衰老,而 RIE1 的功能缺失则明显增加了乙烯的释放并加速了叶片的衰老。乙烯前体 ACC 或 ACS 竞争性抑制剂分别有效地挽救了 RIE1 过表达或基因敲除突变体的乙烯相关表型。特别是,RIE1缺失会强烈增强 AtACS7 诱导的叶片早衰,但 RIE1 的过表达则会显著减弱叶片早衰。研究人员进一步研究了AtACS7与RIE1相互作用的特定区域以及AtACS7的主要泛素化位点。所有结果表明,RIE1通过特异性靶向降解AtACS7,在叶片发育过程中充当乙烯生物合成的重要调节器,从而使植物产生所需的最佳乙烯水平。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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