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整合糖组学分析揭示了蛋白质糖基化在真菌致病机制中的关键作用。

Integrative glycomic analysis reveals the crucial role of protein glycosylation in fungal pathogenesis.

作者信息

Moon Heeji, Thak Eun Jung, Choi Yejin, Kim Sieun, Park Jiyeun, Lee Nahyun, Shin Soobin, Jeon Hosung, Winarto Jessica, Choi Soyoung, Shin Ji Young, Kim Jung-Eun, Song Dae-Geun, Kim Hun, Choi Gyung Ja, Kang Hyun Ah, Son Hokyoung

机构信息

Department of Agricultural Biotechnology, Seoul National University, Seoul, Republic of Korea.

Department of Life Science, Chung-Ang University, Seoul, Republic of Korea.

出版信息

PLoS Pathog. 2025 Jul 7;21(7):e1013325. doi: 10.1371/journal.ppat.1013325. eCollection 2025 Jul.

Abstract

Protein glycosylation, a co- and post-translational modification that enhances the functional diversity of the proteome, contributes to various molecular and cellular functions by transferring different polysaccharides onto proteins. During the last decade, the role of glycosylation in plant pathogenic fungi has received significant attention, and glycoproteins are expected to play essential roles in various biological processes including pathogenicity. However, the comprehensive functional genetic analyses for protein glycosylation pathways and glycan structures of phytopathogenic fungi are still largely unknown. Here, we investigated the role of protein glycosylation in Fusarium graminearum by identifying 65 putative genes involved in protein glycosylation and characterizing their functions. Through cell wall component profiling and HPLC analysis, we characterized the overall N- and O-glycan structures in F. graminearum and found that deletion of ALG3 and ALG12 led to truncated core N-glycan structures. Quantitative proteomics analysis revealed that the truncated core N-glycans, generated by the loss of two key enzymes in the initial core N-glycosylation pathway, Alg3 and Alg12, affected a wide range of glycoproteins-including transcription factors, phosphatases, kinases, peroxidases, and other proteins involved in various biological processes-ultimately impacting the virulence of F. graminearum. This study elucidates the complex roles of glycosylation, highlighting the connections among genes involved in the protein glycosylation pathway, glycans, and glycoproteins in regulating the general biology and pathogenicity of F. graminearum. It also would be the fungal glycobiology study initiative.

摘要

蛋白质糖基化是一种共翻译和翻译后修饰,可增强蛋白质组的功能多样性,通过将不同的多糖转移到蛋白质上,参与各种分子和细胞功能。在过去十年中,糖基化在植物病原真菌中的作用受到了广泛关注,糖蛋白有望在包括致病性在内的各种生物学过程中发挥重要作用。然而,对植物病原真菌蛋白质糖基化途径和聚糖结构的全面功能基因分析仍知之甚少。在这里,我们通过鉴定65个参与蛋白质糖基化的假定基因并表征其功能,研究了蛋白质糖基化在禾谷镰刀菌中的作用。通过细胞壁成分分析和高效液相色谱分析,我们表征了禾谷镰刀菌中的整体N-和O-聚糖结构,发现缺失ALG3和ALG12会导致核心N-聚糖结构截短。定量蛋白质组学分析表明,初始核心N-糖基化途径中两种关键酶Alg3和Alg12的缺失产生的截短核心N-聚糖,影响了广泛的糖蛋白,包括转录因子、磷酸酶、激酶、过氧化物酶和参与各种生物学过程的其他蛋白质,最终影响了禾谷镰刀菌的毒力。这项研究阐明了糖基化的复杂作用,突出了参与蛋白质糖基化途径的基因、聚糖和糖蛋白之间在调节禾谷镰刀菌的一般生物学和致病性方面的联系。它也将成为真菌糖生物学研究的开端。

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