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ABC Transporters as Virulence Factors in Nectria haematococca MPVI and Genomic Analysis of the Fungus Suggest Involvement of Horizontal Gene Transfer in its Evolution

机译:ABC转运蛋白是血球菌MPVI中的致病因子,并且对真菌进行基因组分析表明水平基因转移参与了其进化

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摘要

Nectria haematococca mating population (MP) VI has a cytochrome P450 which confers tolerance to the pea phytoalexin pisatin. This enzyme, termed pisatin demethylase (PDA), detoxifies pisatin and is a virulence factor on pea. PDA is on a 1.6 Mb conditionally dispensable chromosome, and PDA is in a cluster of three other genes involved in pea pathogenicity. Analysis of the PEP cluster suggests it may have been acquired by horizontal gene transfer (HGT). Isolates lacking PDA are still more tolerant of pisatin than other closely related fungi and a "nondegradative" tolerance mechanism was demonstrated previously that might be responsible for this tolerance.ABC transporter, NhABC1, was identified as the gene responsible for this tolerance, fulfilling the major goal of this dissertation. NhABC1 is induced by pisatin and NhABC1 mutants are reduced in virulence on pea to a similar degree as PDA mutants. However, isolates lacking both PDA and NhABC1 are essentially non-pathogenic on pea and are more sensitive to pisatin than either single mutant, demonstrating these two proteins are the major mechanisms responsible for pisatin tolerance. A second ABC transporter in N. haematococca (NhADP1) was also shown to be involved in virulence on pea, however its function in planta remains unknown. The final part of this dissertation concerns a partial analysis of the genome sequence of N. haematococca MPVI. The genome encodes 68 ABC transporters, some of which were in multiple copies when compared to other fungal genomes. This finding led to a whole genome approach to identify extra copies of genes, which are in single copies in the most closely related sequenced fungus, Gibberella zeae. When a comparison between the orthologs found in both genomes and the unique genes found in N. haematococca was made, the results suggest HGT may have shaped the genome of N. haematococca. Several lines of evidence supports this: the large genome size of N. haematococca, the unexpected phylogenetic relationship of the extra copies of genes, the enrichment of the unique genes on dispensable portions of the genome, and a difference between codon usage and GC content of the orthologs versus the unique genes.
机译:Nectria haematococca交配种群(MP)VI具有赋予豌豆植物抗毒素新素抗性的细胞色素P450。这种酶称为pisatin脱甲基酶(PDA),可以使pisatin排毒,并且是豌豆的致病因子。 PDA位于1.6 Mb有条件可分配的染色体上,而PDA位于与豌豆致病性有关的其他三个基因的簇中。对PEP簇的分析表明,它可能是通过水平基因转移(HGT)获得的。与其他紧密相关的真菌相比,缺乏PDA的菌株对pisatin的耐受性更高,并且先前已经证明了“非降解”耐受机制可能是这种耐受的原因。本文的目标。 NhABC1由pisatin诱导,NhABC1突变体在豌豆上的毒力降低程度与PDA突变体相似。然而,缺乏PDA和NhABC1的分离株对豌豆基本上没有致病性,并且比任何一个突变体都对pisatin更为敏感,表明这两种蛋白是造成pisatin耐受的主要机制。 N. haematococca中的第二个ABC转运蛋白(NhADP1)也显示出对豌豆的毒力,但是其在植物中的功能仍然未知。本文的最后部分涉及部分血红球菌MPVI基因组序列的部分分析。该基因组编码68个ABC转运蛋白,与其他真菌基因组相比,其中一些具有多个拷贝。这一发现导致了一种全基因组方法来鉴定额外的基因拷贝,这些拷贝在最紧密相关的测序真菌玉米赤霉菌中呈单拷贝。当在两个基因组中发现的直向同源物与在血球菌中发现的独特基因之间进行比较时,结果表明HGT可能已经塑造了血球菌的基因组。有几条证据支持这一点:血球猪笼草的基因组规模大,基因多余拷贝的意想不到的系统发育关系,基因组可分配部分上独特基因的富集以及密码子使用和GC含量之间的差异直系同源物与独特基因。

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  • 作者

    Coleman Jeffrey;

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  • 年度 2008
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  • 原文格式 PDF
  • 正文语种 EN
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