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植物病原菌玉米黑粉菌中的蛋白糖基化:从核心寡糖合成到内质网糖蛋白质量控制系统的基因组分析。

Protein glycosylation in the phytopathogen Ustilago maydis: From core oligosaccharide synthesis to the ER glycoprotein quality control system, a genomic analysis.

机构信息

Centro Andaluz de Biología del Desarrollo, Universidad Pablo de Olavide - Consejo Superior de Investigaciones Científicas, Seville, Spain.

出版信息

Fungal Genet Biol. 2010 Sep;47(9):727-35. doi: 10.1016/j.fgb.2010.06.004. Epub 2010 Jun 8.

Abstract

The corn smut fungus Ustilago maydis has, over recent decades, become established as a robust pathogenic model for studying fungi-plant relationships. This use of U. maydis can be attributed to its biotrophic host interaction, easy culture and genetic manipulation in the laboratory, and the severe disease symptoms it induces in infected maize. Recent studies have shown that normal protein glycosylation is essential for pathogenic development, but dispensable for the saprophytic growth or mating. Given the relevance of protein glycosylation for U. maydis virulence, and consequently its role in the plant pathogenesis, here we review the main actors and events implicated in protein glycosylation. Furthermore, we describe the results of an in silico search, where we identify all the conserved members of the N- and O-glycosylation pathways in U. maydis at each stage: core oligosaccharide synthesis, addition of the core oligosaccharide to nascent target proteins, maturation and extension of the core oligosaccharide, and the quality control system used by the cell to avoid the presence of unfolded glycoproteins. Finally, we discuss how these genes could affect U. maydis virulence and their biotechnological implications.

摘要

玉米黑粉菌 Ustilago maydis 在过去几十年中已成为研究真菌-植物关系的强有力的致病模型。之所以选择 U. maydis 是因为其生物营养型的宿主相互作用、在实验室中易于培养和遗传操作,以及在感染的玉米中引起的严重疾病症状。最近的研究表明,正常的蛋白质糖基化对于致病发展至关重要,但对于腐生生长或交配是可有可无的。鉴于蛋白质糖基化对 U. maydis 毒力的重要性,以及它在植物发病机制中的作用,我们在这里回顾了蛋白质糖基化所涉及的主要因子和事件。此外,我们描述了一次计算机搜索的结果,其中我们在 U. maydis 的每个阶段都鉴定了 N-和 O-糖基化途径的所有保守成员:核心寡糖合成、将核心寡糖添加到新生靶蛋白、核心寡糖的成熟和延伸,以及细胞用于避免未折叠糖蛋白存在的质量控制系统。最后,我们讨论了这些基因如何影响 U. maydis 的毒力及其生物技术意义。

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