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双歧杆菌属位置多样性在嗜热链球菌对应于其含有鼠李糖的细胞壁多糖的骨干和侧链差异。

Bipartite Locus Diversity in Streptococcus thermophilus Corresponds to Backbone and Side Chain Differences of Its Rhamnose-Containing Cell Wall Polysaccharide.

机构信息

School of Microbiology and APC Microbiome Ireland, University College Corkgrid.7872.a, Cork, Ireland.

Université du Littoral Côte d'Opale, Boulogne-sur-Mer, France.

出版信息

Appl Environ Microbiol. 2022 Dec 13;88(23):e0150422. doi: 10.1128/aem.01504-22. Epub 2022 Nov 9.

Abstract

The rhamnose-glucose polysaccharide (Rgp) of Streptococcus thermophilus represents a major cell wall component, and the gene cluster responsible for its biosynthesis (termed ) has recently been identified. Significant genetic diversity among these loci has previously been reported, with five distinct genotypes identified (designated through -). In the present study, two additional genotypes were identified (designated and ) through comparative analysis of the loci of 78 Streptococcus thermophilus genomes. The locus of a given S. thermophilus strain encoded the biosynthetic machinery for a rhamnan-rich backbone and a variable side chain component, the latter being associated with the highly specific interactions with many bacteriophages that infect this species. The chemical structure of the Rgp from three S. thermophilus strains, representing the , , and -4 genotypes, was elucidated, and based on bioinformatic and biochemical analyses we propose a model for Rgp biosynthesis in dairy streptococci. Furthermore, we exploited the genetic diversity within the S. thermophilus bipartite locus to develop a two-step multiplex PCR system to classify strains based on gene content associated with the biosynthesis of the variable side chain structure as well as the rhamnan backbone. Streptococcus thermophilus is present and applied in industrial and artisanal dairy fermentations for the production of various cheeses and yogurt. During these fermentations, S. thermophilus is vulnerable to phage predation, and recent studies have identified the rhamnose-glucose polymer (Rgp) as the definitive receptor for at least one problematic phage species. Detailed analysis of S. thermophilus loci has revealed an unprecedented level of genetic diversity, particularly within the glycosyltransferase-encoding gene content of a given locus. Our study shows that this genetic diversity reflects the biochemical structure(s) of S. thermophilus Rgp. As such, we harnessed the genetic diversity of S. thermophilus loci to develop a two-step multiplex PCR method for the classification of strain collections and, ultimately, the formation of phage-robust rational starter sets.

摘要

嗜热链球菌的鼠李糖-葡萄糖多糖(Rgp)代表主要的细胞壁成分,负责其生物合成的基因簇(称为)最近已被鉴定。先前已经报道了这些基因座之间存在显著的遗传多样性,已经确定了 5 种不同的基因型(命名为 通过 -)。在本研究中,通过比较 78 株嗜热链球菌基因组的 基因座,鉴定出另外两种基因型(命名为 和 )。给定嗜热链球菌菌株的 基因座编码了富含鼠李糖的骨架和可变侧链成分的生物合成机制,后者与感染该物种的许多噬菌体的高度特异性相互作用有关。代表 、 和 -4 基因型的 3 株嗜热链球菌菌株的 Rgp 的化学结构得到阐明,并且基于生物信息学和生化分析,我们提出了在乳链球菌中 Rgp 生物合成的模型。此外,我们利用嗜热链球菌二分体 基因座内的遗传多样性,开发了一种两步多重 PCR 系统,根据与可变侧链结构以及鼠李糖骨架生物合成相关的基因内容对菌株进行分类。嗜热链球菌存在于工业和手工乳制品发酵中,用于生产各种奶酪和酸奶。在这些发酵过程中,嗜热链球菌易受噬菌体捕食,最近的研究已经确定了鼠李糖-葡萄糖聚合物(Rgp)是至少一种有问题的噬菌体物种的明确受体。对嗜热链球菌 基因座的详细分析揭示了前所未有的遗传多样性,特别是在给定基因座中的糖基转移酶编码基因的内容中。我们的研究表明,这种遗传多样性反映了嗜热链球菌 Rgp 的生化结构。因此,我们利用嗜热链球菌 基因座的遗传多样性,开发了一种两步多重 PCR 方法,用于分类菌株集合,最终形成抗噬菌体的合理起始集合。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b1e6/9746298/a5d56865b233/aem.01504-22-f001.jpg

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