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拟南芥泛素结合蛋白 2(AtUAP2)作为 E4 泛素因子发挥作用,并负调控脱水胁迫响应。

Arabidopsis thaliana ubiquitin-associated protein 2 (AtUAP2) functions as an E4 ubiquitin factor and negatively modulates dehydration stress response.

机构信息

Department of Applied Biology, Chonnam National University, 61186, Gwangju, Republic of Korea.

Department of Biochemistry and Biophysics, Texas A&M University, 300 Olsen Blvd, 77843-2128, College Station, TX, USA.

出版信息

Plant Mol Biol. 2024 Feb 7;114(1):13. doi: 10.1007/s11103-024-01419-y.

Abstract

E4, a ubiquitin (Ub) chain assembly factor and post-translational modification protein, plays a key role in the regulation of multiple cellular functions in plants during biotic or abiotic stress. We have more recently reported that E4 factor AtUAP1 is a negative regulator of the osmotic stress response and enhances the multi-Ub chain assembly of E3 ligase Arabidopsis thaliana RING Zinc Finger 1 (AtRZF1). To further investigate the function of other E4 Ub factors in osmotic stress, we isolated AtUAP2, an AtUAP1 homolog, which interacted with AtRZF1, using pull-down assay and bimolecular fluorescence complementation analysis. AtUAP2, a Ub-associated motif-containing protein, interacts with oligo-Ub, -Ub, and -Ub chains. The yeast functional complementation experiment revealed that AtUAP2 functions as an E4 Ub factor. In addition, AtUAP2 is localized in the cytoplasm, different from AtUAP1. The activity of AtUAP2 was relatively strongly induced in the leaf tissue of AtUAP2 promoter-β-glucuronidase transgenic plants by abscisic acid, dehydration, and oxidative stress. atuap2 RNAi lines were more insensitive to osmotic stress condition than wild-type during the early growth of seedlings, whereas the AtUAP2-overexpressing line exhibited relatively more sensitive responses. Analyses of molecular and physiological experiments showed that AtUAP2 could negatively mediate the osmotic stress-induced signaling. Genetic studies showed that AtRZF1 mutation could suppress the dehydration-induced sensitive phenotype of the AtUAP2-overexpressing line, suggesting that AtRZF1 acts genetically downstream of AtUAP2 during osmotic stress. Taken together, our findings show that the AtRZF1-AtUAP2 complex may play important roles in the ubiquitination pathway, which controls the osmotic stress response in Arabidopsis.

摘要

E4 是一种泛素 (Ub) 链组装因子和翻译后修饰蛋白,在植物的生物或非生物胁迫过程中,E4 发挥着调节多种细胞功能的关键作用。我们最近的研究报告表明,E4 因子 AtUAP1 是渗透胁迫反应的负调节剂,并增强了拟南芥 E3 连接酶 RING 锌指 1 (AtRZF1) 的多 Ub 链组装。为了进一步研究其他 E4 Ub 因子在渗透胁迫中的功能,我们通过下拉实验和双分子荧光互补分析分离了 AtUAP1 的同源物 AtUAP2。AtUAP2 是一种含有泛素相关基序的蛋白,与寡聚 Ub、Ub 和 Ub 链相互作用。酵母功能互补实验表明 AtUAP2 作为 E4 Ub 因子发挥作用。此外,AtUAP2 定位于细胞质中,与 AtUAP1 不同。AtUAP2 启动子-β-葡萄糖醛酸酶转基因植物叶片组织中,ABA、脱水和氧化胁迫可强烈诱导其活性。与野生型相比,atuap2 RNAi 系在幼苗早期对渗透胁迫条件的敏感性较低,而 AtUAP2 过表达系则表现出相对较高的敏感性反应。分子和生理实验分析表明,AtUAP2 可负调控渗透胁迫诱导的信号转导。遗传研究表明,AtRZF1 突变可抑制 AtUAP2 过表达系的脱水诱导敏感表型,提示 AtRZF1 在渗透胁迫过程中遗传上位于 AtUAP2 下游。综上所述,我们的研究结果表明,AtRZF1-AtUAP2 复合物可能在泛素化途径中发挥重要作用,该途径控制拟南芥的渗透胁迫反应。

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