灰葡萄孢ppm4参与o糖基化、细胞壁组织、膜完整性和毒力。

IF 4.2 2区 生物学 Q2 MICROBIOLOGY Journal of Fungi Pub Date : 2025-01-17 DOI:10.3390/jof11010071
Verónica Plaza, Alice Pasten, Luz A López-Ramírez, Héctor M Mora-Montes, Julia Rubio-Astudillo, Evelyn Silva-Moreno, Luis Castillo
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引用次数: 0

摘要

真菌细胞壁内的蛋白质通常含有N-寡糖和o -寡糖。n -糖基化是这些低聚糖(以下简称:聚糖)与天冬酰胺残基结合的过程,而在o -糖基化中,聚糖与丝氨酸或苏氨酸残基共价结合。PMT家族分为PMT1、PMT2和PMT4亚家族。利用生物信息学分析,在灰葡萄孢基因组数据库中鉴定出与酿酒酵母(Saccharomyces cerevisiae) Pmt4等真菌有同源关系。本研究的目的是评估bcpmt4基因在葡萄球菌糖基化中的相关性。为此,利用潮霉素B抗性盒对B05.10菌株的bcpmt4基因进行同源重组。bcpmt4在酿酒酵母ΔScpmt4或ΔScpmt3零突变体中的表达恢复了与亲本菌株相似的聚糖水平。表型分析表明,Δbcpmt4零突变体菌丝细胞壁组成发生了显著变化,包括甘露聚糖水平降低,几丁质和葡聚糖含量增加。此外,bcpmt4的缺失导致灰孢杆菌细胞壁糖蛋白的糖基化降低。缺乏PMT4的零突变体对一系列细胞壁扰动剂、抗真菌药物和高静水压力敏感。因此,除了它们在糖基化中的作用外,PMT4对毒力、生物膜的形成和膜的完整性也是必需的。这项研究增加了我们对灰葡萄球菌bcpmt4基因作用的认识,该基因参与糖基化和细胞生物学,细胞壁形成和抗真菌反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Botrytis cinerea PMT4 Is Involved in O-Glycosylation, Cell Wall Organization, Membrane Integrity, and Virulence.

Proteins found within the fungal cell wall usually contain both N- and O-oligosaccharides. N-glycosylation is the process where these oligosaccharides (hereinafter: glycans) are attached to asparagine residues, while in O-glycosylation the glycans are covalently bound to serine or threonine residues. The PMT family is grouped into PMT1, PMT2, and PMT4 subfamilies. Using bioinformatics analysis within the Botrytis cinerea genome database, an ortholog to Saccharomyces cerevisiae Pmt4 and other fungal species was identified. The aim of this study was to assess the relevance of the bcpmt4 gene in B. cinerea glycosylation. For this purpose, the bcpmt4 gene was disrupted by homologous recombination in the B05.10 strain using a hygromycin B resistance cassette. Expression of bcpmt4 in S. cerevisiae ΔScpmt4 or ΔScpmt3 null mutants restored glycan levels like those observed in the parental strain. The phenotypic analysis showed that Δbcpmt4 null mutants exhibited significant changes in hyphal cell wall composition, including reduced mannan levels and increased amounts of chitin and glucan. Furthermore, the loss of bcpmt4 led to decreased glycosylation of glycoproteins in the B. cinerea cell wall. The null mutant lacking PMT4 was hypersensitive to a range of cell wall perturbing agents, antifungal drugs, and high hydrostatic pressure. Thus, in addition to their role in glycosylation, the PMT4 is required to virulence, biofilm formation, and membrane integrity. This study adds to our knowledge of the role of the B. cinerea bcpmt4 gene, which is involved in glycosylation and cell biology, cell wall formation, and antifungal response.

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来源期刊
Journal of Fungi
Journal of Fungi Medicine-Microbiology (medical)
CiteScore
6.70
自引率
14.90%
发文量
1151
审稿时长
11 weeks
期刊介绍: Journal of Fungi (ISSN 2309-608X) is an international, peer-reviewed scientific open access journal that provides an advanced forum for studies related to pathogenic fungi, fungal biology, and all other aspects of fungal research. The journal publishes reviews, regular research papers, and communications in quarterly issues. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on paper length. Full experimental details must be provided so that the results can be reproduced.
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