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首页> 外文期刊>Frontiers in Microbiology >Genome Sequence, Assembly and Characterization of Two Metschnikowia fructicola Strains Used as Biocontrol Agents of Postharvest Diseases
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Genome Sequence, Assembly and Characterization of Two Metschnikowia fructicola Strains Used as Biocontrol Agents of Postharvest Diseases

机译:用作收获后疾病生物防治剂的两种 Metschnikowia fructicola 菌株的基因组序列,组装和表征

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The yeast Metschnikowia fructicola was reported as an efficient biological control agent of postharvest diseases of fruits and vegetables, and it is the bases of the commercial formulated product “Shemer.” Several mechanisms of action by which M. fructicola inhibits postharvest pathogens were suggested including iron-binding compounds, induction of defense signaling genes, production of fungal cell wall degrading enzymes and relatively high amounts of superoxide anions. We assembled the whole genome sequence of two strains of M. fructicola using PacBio and Illumina shotgun sequencing technologies. Using the PacBio, a high-quality draft genome consisting of 93 contigs, with an estimated genome size of approximately 26 Mb, was obtained. Comparative analysis of M. fructicola proteins with the other three available closely related genomes revealed a shared core of homologous proteins coded by 5,776 genes. Comparing the genomes of the two M. fructicola strains using a SNP calling approach resulted in the identification of 564,302 homologous SNPs with 2,004 predicted high impact mutations. The size of the genome is exceptionally high when compared with those of available closely related organisms, and the high rate of homology among M. fructicola genes points toward a recent whole-genome duplication event as the cause of this large genome. Based on the assembled genome, sequences were annotated with a gene description and gene ontology (GO term) and clustered in functional groups. Analysis of CAZymes family genes revealed 1,145 putative genes, and transcriptomic analysis of CAZyme expression levels in M. fructicola during its interaction with either grapefruit peel tissue or Penicillium digitatum revealed a high level of CAZyme gene expression when the yeast was placed in wounded fruit tissue.
机译:据报道,Metschnikowia fructicola酵母是水果和蔬菜收获后疾病的有效生物防治剂,它是商业配方产品“ Shemer”的基础。提出了果蝇分支杆菌抑制收获后病原体的几种作用机理,包括铁结合化合物,诱导防御信号基因,产生真菌细胞壁降解酶和相对大量的超氧阴离子。我们使用PacBio和Illumina shot弹枪测序技术组装了两株毛果分支杆菌的完整基因组序列。使用PacBio,获得了由93个重叠群组成的高质量草图基因组,估计的基因组大小约为26 Mb。对果蝇分支杆菌蛋白质与其他三个可用的密切相关基因组的比较分析显示,共有5776个基因编码的同源蛋白质的核心。使用SNP调用方法比较两个果蝇分枝杆菌菌株的基因组,结果鉴定出564,302个同源SNP和2,004个预测的高影响突变。与可用的密切相关生物相比,基因组的大小异常高,而毛果支原体基因之间的高同源性表明,最近的全基因组复制事件是该大基因组的原因。基于组装的基因组,序列用基因描述和基因本体(GO术语)进行注释,并聚集在功能组中。对CAZymes家族基因的分析揭示了1,145个推定基因,并且在果蝇与葡萄柚皮组织或指状青霉相互作用期间,其在果蝇中的CAZyme表达水平的转录组分析显示,将酵母置于受伤的水果组织中时,CAZyme基因表达水平很高。

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