Proteome and Ubiquitinome Analyses Reveal the Involvement of Ubiquitination in Resistance to Maize Lethal Necrosis.

IF 4.9 1区 农林科学 Q1 PLANT SCIENCES
Huiyan Guo, Xue Dong, Kaiqiang Hao, Xinran Gao, Jinxiu Guo, Jian Li, Shixue Zhao, Lijun Sang, Zhiping Wang, Mengnan An, Zihao Xia, Yuanhua Wu
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Abstract

The co-infection of maize chlorotic mottle virus (MCMV) and sugarcane mosaic virus (SCMV) causes maize lethal necrosis (MLN), which seriously affects the yield and quality of maize. Ubiquitination is one of the most important protein post-translational modifications. However, the role of ubiquitination modification in regulating maize resistance to viral infection remains largely unknown. In this study, we found that the ubiquitination levels in SCMV- and/or MCMV-infected maize plants were higher than that in the non-infected maize plants. Ubiquitinome and proteome analyses of the above maize plants revealed that most down-regulated differentially accumulated proteins that possessed up-regulated lysine ubiquitination sites were mainly involved in photosynthesis, fructose and mannose metabolism, and glyoxylate and dicarboxylate metabolism. Functional analyses of three DAPs involved in glyoxylate metabolism demonstrated that silencing ZmGOX1 facilitated SCMV and MCMV single and co-infection, while knockdown of ZmHPR1 or ZmHPR2 suppressed viral infections. Moreover, overexpression of ZmGOX1 and its mutants at Kub sites enhanced maize resistance to SCMV infection. We also found that exogenous application of sodium sulphide could up-regulate the expression of ZmGOX1 and effectively inhibit viral infections. These findings provide novel insights into the roles of ubiquitination in the regulation of maize resistance to viral infection.

蛋白质组和泛素组分析揭示泛素化参与玉米致死性坏死的抗性。
玉米变色斑驳病毒(MCMV)和甘蔗花叶病毒(SCMV)共同侵染造成玉米致死性坏死(MLN),严重影响玉米的产量和品质。泛素化是蛋白质翻译后最重要的修饰之一。然而,泛素化修饰在调节玉米对病毒感染的抗性中的作用在很大程度上仍然未知。在本研究中,我们发现SCMV-和/或mcmv -感染的玉米植株的泛素化水平高于未感染的玉米植株。对上述玉米植株的泛素组和蛋白质组分析表明,大多数下调的差异积累蛋白具有上调的赖氨酸泛素化位点,主要参与光合作用、果糖和甘露糖代谢以及乙醛酸盐和二羧酸盐代谢。对三种参与乙醛酸盐代谢的DAPs的功能分析表明,沉默ZmGOX1可促进SCMV和MCMV的单一和共同感染,而敲低ZmHPR1或ZmHPR2可抑制病毒感染。此外,ZmGOX1及其突变体在Kub位点的过表达增强了玉米对SCMV感染的抗性。我们还发现,外源硫化钠可以上调ZmGOX1的表达,有效抑制病毒感染。这些发现为泛素化在玉米抗病毒感染调控中的作用提供了新的见解。
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来源期刊
Molecular plant pathology
Molecular plant pathology 生物-植物科学
CiteScore
9.40
自引率
4.10%
发文量
120
审稿时长
6-12 weeks
期刊介绍: Molecular Plant Pathology is now an open access journal. Authors pay an article processing charge to publish in the journal and all articles will be freely available to anyone. BSPP members will be granted a 20% discount on article charges. The Editorial focus and policy of the journal has not be changed and the editorial team will continue to apply the same rigorous standards of peer review and acceptance criteria.
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