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亚麻真菌寄生菌f. sp. 的泛基因组学

Pangenomics of flax fungal parasite f. sp. .

作者信息

Logachev Anton, Kanapin Alexander, Rozhmina Tatyana, Stanin Vladislav, Bankin Mikhail, Samsonova Anastasia, Orlova Ekaterina, Samsonova Maria

机构信息

Mathematical Biology and Bioinformatics Laboratory, Peter the Great St.Petersburg Polytechnic University, Saint Petersburg, Russia.

Center for Computational Biology, Peter the Great St. Petersburg Polytechnic University, Saint Petersburg, Russia.

出版信息

Front Plant Sci. 2024 May 30;15:1383914. doi: 10.3389/fpls.2024.1383914. eCollection 2024.

DOI:10.3389/fpls.2024.1383914
PMID:38872883
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11169931/
Abstract

To assess the genomic diversity of f. sp. strains and compile a comprehensive gene repertoire, we constructed a pangenome using 13 isolates from four different clonal lineages, each exhibiting distinct levels of virulence. Syntenic analyses of two selected genomes revealed significant chromosomal rearrangements unique to each genome. A comprehensive examination of both core and accessory pangenome content and diversity points at an open genome state. Additionally, Gene Ontology (GO) enrichment analysis indicated that non-core pangenome genes are associated with pathogen recognition and immune signaling. Furthermore, the pansecterome, encompassing secreted proteins critical for fungal pathogenicity, primarily consists of three functional classes: effector proteins, CAZYmes, and proteases. These three classes account for approximately 3.5% of the pangenome. Each functional class within the pansecterome was meticulously annotated and characterized with respect to pangenome category distribution, PFAM domain frequency, and strain virulence assessment. This analysis revealed that highly virulent isolates have specific types of PFAM domains that are exclusive to them. Upon examining the repertoire of genes known for virulence in other formae speciales, it was found that all isolates had a similar gene content except for two, which lacked genes entirely.

摘要

为了评估叶斑病菌株的基因组多样性并编制一份全面的基因库,我们使用来自四个不同克隆谱系的13个分离株构建了一个泛基因组,每个分离株表现出不同程度的毒力。对两个选定基因组的共线性分析揭示了每个基因组特有的显著染色体重排。对核心和辅助泛基因组内容及多样性的全面检查表明基因组处于开放状态。此外,基因本体论(GO)富集分析表明,非核心泛基因组基因与病原体识别和免疫信号传导有关。此外,包含对真菌致病性至关重要的分泌蛋白的全分泌蛋白组主要由三个功能类别组成:效应蛋白、碳水化合物活性酶(CAZYmes)和蛋白酶。这三个类别约占泛基因组的3.5%。全分泌蛋白组内的每个功能类别都根据泛基因组类别分布、PFAM结构域频率和菌株毒力评估进行了详细注释和表征。该分析表明,高毒力分离株具有特定类型的PFAM结构域,这些结构域是它们独有的。在检查其他专化型中已知的毒力基因库时,发现除了两个完全缺乏相关基因的分离株外,所有分离株的基因含量相似。

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本文引用的文献

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Pathogenicity chromosome of Fusarium oxysporum f. sp. cepae.苏云金芽孢杆菌致病染色体。
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Transcriptome Analysis of Fusarium-Tomato Interaction Based on an Updated Genome Annotation of f. sp. Identifies Novel Effector Candidates That Suppress or Induce Cell Death in .基于尖孢镰刀菌(Fusarium oxysporum)更新基因组注释的番茄与尖孢镰刀菌相互作用的转录组分析,鉴定出在番茄中抑制或诱导细胞死亡的新型效应子候选物。
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An account of Fusarium wilt resistance in flax : The disease severity data.亚麻枯萎病抗性报告:病情严重程度数据。
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EffectorP 3.0: Prediction of Apoplastic and Cytoplasmic Effectors in Fungi and Oomycetes.EffectorP 3.0:真菌和卵菌质外和细胞质效应物的预测。
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