Only time will tell: lipopolysaccharide glycoform and biofilm-formation kinetics in Salmonella species and Escherichia coli.

IF 2.7 3区 生物学 Q3 MICROBIOLOGY Journal of Bacteriology Pub Date : 2024-10-24 Epub Date: 2024-09-24 DOI:10.1128/jb.00318-24
Magdalena Laekas-Hameder, France Daigle
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Abstract

In Gram-negative bacteria, LPS (lipopolysaccharide) has been thoroughly characterized and has been shown to play a major role in pathogenesis and bacterial defense. In Salmonella and Escherichia coli, LPS also influences biofilm development. However, the overall role of LPS glycoform in biofilm formation has not been conclusively settled, as there is a lack of consensus on the topic. Some studies show that LPS mutants produce less biofilm biomass than the wild-type strains, while others show that they produce more. This review summarizes current knowledge of LPS biosynthesis and explores the impact of defective steps on biofilm-related characteristics, such as motility, adhesion, auto-aggregation, and biomass production in Salmonella and E. coli. Overall, motility tends to decrease, while adhesion and auto-aggregation phenotypes tend to increase in most LPS-mutant strains. Interestingly, biofilm biomass of various LPS mutants revealed a clear pattern dependent on biofilm maturation time. Incubation times of less than 24 h resulted in a biofilm-defective phenotype compared to the wild-type, while incubation exceeding 24 h led to significantly higher levels of biofilm production. This explains conflicting results found in reports describing the same LPS mutations. It is therefore critical to consider the effect of biofilm maturation time to ascertain the effects of LPS glycoform on biofilm phenotype. Underlying reasons for such changes in biofilm kinetics may include changes in signalling systems affecting biofilm maturation and composition, and dynamic LPS modifications. A better understanding of the role of LPS in the evolution and modification of biofilms is crucial for developing strategies to disperse biofilms.

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只有时间才能证明:沙门氏菌和大肠埃希氏菌的脂多糖糖形和生物膜形成动力学。
在革兰氏阴性细菌中,LPS(脂多糖)的特性已被彻底研究,并被证明在致病和细菌防御中发挥着重要作用。在沙门氏菌和大肠杆菌中,LPS 也会影响生物膜的形成。然而,LPS 的糖型在生物膜形成中的总体作用还没有定论,因为在这个问题上缺乏共识。一些研究表明,LPS 突变体产生的生物膜生物量比野生型菌株少,而另一些研究则表明它们产生的生物膜生物量更多。本综述总结了目前有关 LPS 生物合成的知识,并探讨了有缺陷的步骤对生物膜相关特性的影响,如沙门氏菌和大肠杆菌的运动性、粘附性、自动聚集和生物量产生。总体而言,大多数 LPS 突变菌株的运动能力趋于降低,而粘附性和自动聚集表型趋于增加。有趣的是,各种 LPS 突变菌株的生物膜生物量显示出一种取决于生物膜成熟时间的明显模式。与野生型相比,培养时间少于 24 小时会导致生物膜缺陷表型,而培养时间超过 24 小时则会导致生物膜生成量显著增加。这就解释了为什么在描述相同 LPS 突变的报告中发现了相互矛盾的结果。因此,必须考虑生物膜成熟时间的影响,以确定 LPS 糖型对生物膜表型的影响。生物膜动力学发生这种变化的根本原因可能包括影响生物膜成熟和组成的信号系统的变化以及 LPS 的动态修饰。更好地了解 LPS 在生物膜演变和修饰过程中的作用,对于制定驱散生物膜的策略至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Bacteriology
Journal of Bacteriology 生物-微生物学
CiteScore
6.10
自引率
9.40%
发文量
324
审稿时长
1.3 months
期刊介绍: The Journal of Bacteriology (JB) publishes research articles that probe fundamental processes in bacteria, archaea and their viruses, and the molecular mechanisms by which they interact with each other and with their hosts and their environments.
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