作为WD40-Repeat蛋白家族的一员,ApWD40a在人参叶枯病真菌的发育、毒素合成和致病性中起着至关重要的作用。

IF 4.2 2区 生物学 Q2 MICROBIOLOGY Journal of Fungi Pub Date : 2025-01-14 DOI:10.3390/jof11010059
Jinling Lan, Shengjie Mei, Yingxue Du, Meili Chi, Jiayi Yang, Shuliu Guo, Mingliang Chu, Ronglin He, Jie Gao
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引用次数: 0

摘要

白参是引起白参叶枯病的主要病原菌,可导致人参产量减少20-30%。WD40重复序列蛋白是一种进化保守蛋白,在不同的生物中具有不同的功能。在这项研究中,我们鉴定了含有WD40重复序列的蛋白在人参中的作用。ApWD40a基因的缺失使菌丝生长受损,产孢量减少,对各种碳源的利用效率显著降低。ΔApwd40a突变体对山梨醇、NaCl和KCl诱导的渗透胁迫和金属离子胁迫的敏感性增加,但对细胞壁应激因子(SDS)和氧化应激因子(百草枯和H2O2)的敏感性降低。对离体人参叶和根进行的致病性实验表明,破坏ApWD40a可通过降低人参的黑色素和真菌毒素产生而显著降低真菌毒力。比较转录组分析显示,ApWD40a参与多种代谢和生物合成过程,包括氨基酸代谢、碳代谢、硫酸盐代谢途径和次生代谢途径。特别是,在野生型菌株中,编码ΔApwd40a中硫酸盐渗透酶2蛋白的一个显著上调的基因(名为胶囊p2)被删除。在无硫酸盐条件下,缺失胶囊p2导致生物量减少,表明硫酸盐运输受损。综上所述,我们的研究结果表明,ApWD40a通过调节参与各种初级和次级代谢过程的基因表达,在白参的不同生物学过程和致病性中发挥了重要作用。
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ApWD40a, a Member of the WD40-Repeat Protein Family, Is Crucial for Fungal Development, Toxin Synthesis, and Pathogenicity in the Ginseng Alternaria Leaf Blight Fungus Alternaria panax.

Alternaria panax, the primary pathogen that causes ginseng Alternaria leaf blight disease, can lead to a 20-30% reduction in ginseng yield. WD40 repeat-containing proteins are evolutionarily conserved proteins with diverse functions between different organisms. In this study, we characterized the roles of a WD40 repeat-containing protein in A. panax. The deletion of ApWD40a impaired the mycelial growth, reduced the sporulation, and significantly decreased the efficiency in utilizing various carbon sources. The ΔApwd40a mutant showed increased sensitivity to osmotic stress and metal ion stress induced by sorbitol, NaCl, and KCl, but decreased the sensitivity to a cell wall stress factor (SDS) and oxidative stress factors (paraquat and H2O2). Pathogenicity assays performed on detached ginseng leaves and roots revealed that the disruption of ApWD40a significantly decreased the fungal virulence through attenuating melanin and mycotoxin production by A. panax. A comparative transcriptome analysis revealed that ApWD40a was involved in many metabolic and biosynthetic processes, including amino acid metabolism, carbon metabolism, sulfate metabolic pathways, and secondary metabolite pathways. In particular, a significantly upregulated gene that encoded a sulfate permease 2 protein in ΔApwd40a, named ApSulP2, was deleted in the wild-type strain of A. panax. The deletion of ApSulP2 resulted in reduced biomass under sulfate-free conditions, demonstrating that the sulfate transport was impaired. Taken together, our findings highlight that ApWD40a played crucial roles in different biological processes and the pathogenicity of A. panax through modulating the expressions of genes involved in various primary and secondary metabolic processes.

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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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