School of Microbiology & APC Microbiome Ireland, University College Cork, Western Road, Cork T12 YT20, Ireland.
Univ. Littoral Côte d'Opale, UMR 1158 BioEcoAgro, Institut Charles Viollette, USC ANSES, INRAe, Univ. Artois, Univ. Lille, Univ. Picardie Jules Verne, Univ. Liège, Junia, F-62200 Boulogne-sur-Mer, France.
Int J Food Microbiol. 2024 Nov 2;424:110840. doi: 10.1016/j.ijfoodmicro.2024.110840. Epub 2024 Jul 31.
The biosynthetic machinery for cell wall polysaccharide (CWPS) formation in Lactococcus lactis and Lactococcus cremoris is encoded by the cwps locus. The CWPS of lactococci typically consists of a neutral rhamnan component, which is embedded in the peptidoglycan, and to which a surface-exposed side chain oligosaccharide or polysaccharide pellicle (PSP) component is attached. The rhamnan component has been shown for several lactococcal strains to consist of a repeating rhamnose trisaccharide subunit, while the side chain is diverse in glycan content, polymeric status and glycosidic linkage architecture. The observed structural diversity of the CWPS side chain among lactococcal strains is reflected in the genetic diversity within the variable 3' region of the corresponding cwps loci. To date, four distinct cwps genotypes (A, B, C, D) have been identified, while eight subtypes (C through to C) have been recognized among C-genotype strains. In the present study, we report the identification of three novel subtypes of the lactococcal cwps C genotypes, named C, C and C. The CWPS of four isolates representing C, C, C and C genotypes were analysed using 2D NMR to reveal their unique CWPS structures. Through this analysis, the structure of one novel rhamnan, three distinct PSPs and three exopolysaccharides were elucidated. Results obtained in this study provide further insights into the complex nature and fascinating diversity of lactococcal CWPSs. This highlights the need for a holistic view of cell wall-associated glycan structures which may contribute to robustness of certain strains against infecting bacteriophages. This has clear implications for the fermented food industry that relies on the consistent application of lactococcal strains in mesophilic production systems.
乳球菌细胞壁多糖 (CWPS) 的生物合成机制由 cwps 基因座编码。乳球菌的 CWPS 通常由中性鼠李糖成分组成,该成分嵌入肽聚糖中,并连接有表面暴露的侧链寡糖或多糖荚膜 (PSP) 成分。已经表明,对于几种乳球菌菌株,鼠李糖成分由重复的鼠李糖三糖亚基组成,而侧链在聚糖含量、聚合状态和糖苷键结构方面具有多样性。在乳球菌菌株中观察到的 CWPS 侧链结构多样性反映在相应 cwps 基因座可变 3' 区域内的遗传多样性中。迄今为止,已经确定了四种不同的 cwps 基因型 (A、B、C、D),而在 C 基因型菌株中已经识别出八种亚型 (C 到 C)。在本研究中,我们报告了三种新型乳球菌 cwps C 基因型的鉴定,分别命名为 C、C 和 C。使用 2D NMR 分析了代表 C、C、C 和 C 基因型的四个分离物的 CWPS,以揭示其独特的 CWPS 结构。通过该分析,阐明了一种新型鼠李糖、三种不同的 PSP 和三种胞外多糖的结构。本研究的结果进一步深入了解了乳球菌 CWPS 的复杂性质和迷人的多样性。这突出了需要从整体上看待与细胞壁相关的聚糖结构,这可能有助于某些菌株抵抗感染噬菌体的能力。这对依赖乳球菌菌株在中温生产系统中一致应用的发酵食品行业具有明确的意义。