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Pangenome analysis of Bifidobacterium longum and site-directed mutagenesis through by-pass of restriction-modification systems

机译:通过限制性修饰系统通过通过通过旁路分析双歧杆菌和定向诱变的pangenome分析

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Bifidobacterial genome analysis has provided insights as to how these gut commensals adapt to and persist in the human GIT, while also revealing genetic diversity among members of a given bifidobacterial (sub)species. Bifidobacteria are notoriously recalcitrant to genetic modification, which prevents exploration of their genomic functions, including those that convey (human) health benefits. PacBio SMRT sequencing was used to determine the whole genome seqeunces of two B. longum subsp. longum strains. The B. longum pan-genome was computed using PGAP v1.2 and the core B. longum phylogenetic tree was constructed using a maximum-likelihood based approach in PhyML v3.0. M.blmNCII was cloned in E. coli and an internal fragment if arfBarfB was cloned into pORI19 for insertion mutagenesis. In this study we present the complete genome sequences of two Bifidobacterium longum subsp. longum strains. Comparative analysis with thirty one publicly available B. longum genomes allowed the definition of the B. longum core and dispensable genomes. This analysis also highlighted differences in particular metabolic abilities between members of the B. longum subspecies infantis, longum and suis. Furthermore, phylogenetic analysis of the B. longum core genome indicated the existence of a novel subspecies. Methylome data, coupled to the analysis of restriction-modification systems, allowed us to substantially increase the genetic accessibility of B. longum subsp. longum NCIMB 8809 to a level that was shown to permit site-directed mutagenesis. Comparative genomic analysis of thirty three B. longum representatives revealed a closed pan-genome for this bifidobacterial species. Phylogenetic analysis of the B. longum core genome also provides evidence for a novel fifth B. longum subspecies. Finally, we improved genetic accessibility for the strain B. longum subsp. longum NCIMB 8809, which allowed the generation of a mutant of this strain.
机译:双歧杆菌基因组分析已经为这些肠道共生方式提供了洞察力,同时还揭示了给定双歧歧化(亚)物种的成员之间的遗传多样性。双歧杆菌是众所周知的克遗传修饰顽固性,这可以防止他们的基因组功能探索,包括传达(人类)健康益处的基因组功能。 PacBio SMRT测序用于确定两个B. Longum Subsp的全基因组Seqeuces。 Longum菌株。使用PGAP V1.2计算B. Longum Pan基因组,并且在PHYM1 V3.0中使用基于最大似然性的方法构建核心B. Longum phylogy曲线。如果Arfbarfb被克隆到Pori19中,将M.BlmnCii克隆到大肠杆菌中,内部片段克隆到插入诱变中。在这项研究中,我们介绍了两种双歧杆菌亚空间的完整基因组序列。 Longum菌株。对比较分析具有三十一只公开可用的B. Longum Genomes允许对B. Longum核心和可分配基因组的定义。该分析还突出了B. Longum亚种Infantiis,Longum和Suis的成员之间特定代谢能力的差异。此外,B. Longum核心基因组的系统发育分析表明了一种新型亚种类。与限制性修饰系统的分析相结合的甲基族数据使我们能够大大提高B. Longum Subsp的遗传可接近性。 Longum NCIMB 8809到显示允许网站导向诱变的水平。三十三年的比较基因组分析揭示了这种双歧杆菌物种的封闭泛基因组。 B. Longum核心基因组的系统发育分析也为新的第五B. Longum亚种提供了证据。最后,我们改善了菌株B. Longum Subsp的遗传可访问性。 Longum NCIMB 8809允许产生这种菌株的突变体。

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