Marine Biological Section, Department of Biology, University of Copenhagen, Helsingør, Denmark.
Section for Biomolecular Sciences, Department of Biology, University of Copenhagen, Copenhagen N, Denmark.
Environ Microbiol. 2023 Jul;25(7):1344-1362. doi: 10.1111/1462-2920.16356. Epub 2023 Mar 16.
Bacterial populations communicate using quorum-sensing (QS) molecules and switch on QS regulation to engage in coordinated behaviour such as biofilm formation or virulence. The marine fish pathogen Vibrio anguillarum harbours several QS systems, and our understanding of its QS regulation is still fragmentary. Here, we identify the VanT-QS regulon and explore the diversity and trajectory of traits under QS regulation in Vibrio anguillarum through comparative transcriptomics of two wildtype strains and their corresponding mutants artificially locked in QS-on (ΔvanO) or QS-off (ΔvanT) states. Intriguingly, the two wildtype populations showed different QS responses to cell density changes and operated primarily in the QS-on and QS-off spectrum, respectively. Examining 27 V. anguillarum strains revealed that ~11% were QS-negative, and GFP-reporter measurements of nine QS-positive strains revealed a highly strain-specific nature of the QS responses. We showed that QS controls a plethora of genes involved in processes such as central metabolism, biofilm formation, competence, T6SS, and virulence properties in V. anguillarum, with large strain-specific differences. Moreover, we demonstrated that the QS state is an important driver of virulence towards fish larvae in one of two V. anguillarum strains. We speculate that infections by mixed-strain communities spanning diverse QS strategies optimize the infection efficiency of the pathogen.
细菌种群通过群体感应 (QS) 分子进行通讯,并开启 QS 调节以参与协调行为,如生物膜形成或毒力。海洋鱼类病原体鳗弧菌拥有多种 QS 系统,我们对其 QS 调节的理解仍然很零碎。在这里,我们确定了 VanT-QS 调控组,并通过对两种野生型菌株及其相应的人工锁定在 QS-on(ΔvanO)或 QS-off(ΔvanT)状态的突变体进行比较转录组学,探索了鳗弧菌中 QS 调节下的性状多样性和轨迹。有趣的是,这两个野生型群体对细胞密度变化表现出不同的 QS 反应,分别主要在 QS-on 和 QS-off 光谱中运作。检查 27 株鳗弧菌发现,约 11%为 QS 阴性,对 9 株 QS 阳性菌株的 GFP 报告基因测量显示 QS 反应具有高度的菌株特异性。我们表明,QS 控制着大量参与中央代谢、生物膜形成、感受态、T6SS 和鳗弧菌毒力特性等过程的基因,菌株间存在很大的特异性差异。此外,我们证明 QS 状态是两种鳗弧菌菌株之一对鱼仔幼虫致病性的重要驱动因素。我们推测,由具有不同 QS 策略的混合菌株群落引起的感染可以优化病原体的感染效率。