Guangdong Laboratory of Microbial Signals and Disease Control, Integrative Microbiology Research Centre, South China Agricultural Universitygrid.20561.30, Guangzhou, China.
Ministry of Education Key Laboratory for Ecology of Tropical Islands, Key Laboratory of Tropical Animal and Plant Ecology of Hainan Province, College of Life Sciences, Hainan Normal University, Haikou, China.
Appl Environ Microbiol. 2022 Aug 9;88(15):e0032522. doi: 10.1128/aem.00325-22. Epub 2022 Jul 25.
Quorum sensing (QS) is a widely conserved bacterial regulatory mechanism that relies on production and perception of autoinducing chemical signals to coordinate diverse cooperative activities, such as virulence, exoenzyme secretion, and biofilm formation. In Ralstonia solanacearum, a phytopathogen causing severe bacterial wilt diseases in many plant species, previous studies identified the PhcBSR QS system, which plays a key role in regulation of its physiology and virulence. In this study, we found that R. solanacearum strain EP1 contains the genes encoding uncharacterized LuxI/LuxR (LuxI/R) QS homologues (RasI/RasR [designated RasI/R here]). To determine the roles of the RasI/R system in strain EP1, we constructed a specific reporter for the signals catalyzed by RasI. Chromatography separation and structural analysis showed that RasI synthesized primarily -(3-hydroxydodecanoyl)-homoserine lactone (3-OH-C12-HSL). In addition, we showed that the transcriptional expression of is regulated by RasR in response to 3-OH-C12-HSL. Phenotype analysis unveiled that the RasI/R system plays a critical role in modulation of cellulase production, motility, biofilm formation, oxidative stress response, and virulence of R. solanacearum EP1. We then further characterized this system by determining the RasI/R regulon using transcriptome sequencing (RNA-seq) analysis, which showed that this newly identified QS system regulates the transcriptional expression of over 154 genes associated with bacterial physiology and pathogenic properties. Taken together, the findings from this study present an essential new QS system in regulation of R. solanacearum physiology and virulence and provide new insight into the complicated regulatory mechanisms and networks in this important plant pathogen. Quorum sensing (QS) is a key regulator of virulence factors in many plant-pathogenic bacteria. Previous studies unveiled two QS systems (i.e., PhcBSR and SolI/R) in several R. solanacearum strains. The PhcBSR QS system is known for its key roles in regulation of bacterial virulence, and the LuxI/LuxR (SolI/R) QS system appears dispensable for pathogenicity in a number of R. solanacearum strains. In this study, a new functional QS system (i.e., RasI/R) was identified and characterized in R. solanacearum strain EP1 isolated from infected eggplants. Phenotype analyses showed that the RasI/R system plays an important role in regulation of a range of biological activities associated with bacterial virulence. This QS system produces and responds to the QS signal 3-OH-C12-HSL and hence regulates critical bacterial abilities in survival and infection. To date, multiple QS signaling circuits in R. solanacearum strains are still not well understood. Our findings from this study provide new insight into the complicated QS regulatory networks that govern the physiology and virulence of R. solanacearum and present a valid target and clues for the control and prevention of bacterial wilt diseases.
群体感应(QS)是一种广泛存在的细菌调控机制,依赖于自动诱导化学信号的产生和感知来协调多种合作活动,如毒力、外酶分泌和生物膜形成。在茄科雷尔氏菌(Ralstonia solanacearum)中,这种植物病原菌可导致许多植物物种发生严重的细菌性萎蔫病,先前的研究确定了 PhcBSR QS 系统,该系统在其生理和毒力的调控中起着关键作用。在本研究中,我们发现茄科雷尔氏菌菌株 EP1 含有编码未鉴定的 LuxI/LuxR(LuxI/R)QS 同系物(在此称为 RasI/R)的基因。为了确定 RasI/R 系统在菌株 EP1 中的作用,我们构建了 RasI 催化信号的特异性报告基因。色谱分离和结构分析表明,RasI 主要合成 -(3-羟基十二烷酰基)-高丝氨酸内酯(3-OH-C12-HSL)。此外,我们表明,转录表达受 RasR 响应 3-OH-C12-HSL 的调控。表型分析表明,RasI/R 系统在调节纤维素酶产生、运动性、生物膜形成、氧化应激反应和茄科雷尔氏菌 EP1 的毒力方面起着关键作用。然后,我们通过使用转录组测序(RNA-seq)分析来进一步表征这个系统,结果表明,这个新鉴定的 QS 系统调节了与细菌生理和致病特性相关的超过 154 个基因的转录表达。总之,本研究中的发现为茄科雷尔氏菌生理和毒力的调控提供了一个重要的新的 QS 系统,并为这个重要的植物病原菌中复杂的调控机制和网络提供了新的见解。群体感应(QS)是许多植物病原菌中毒力因子的关键调节剂。先前的研究揭示了几个茄科雷尔氏菌菌株中的两个 QS 系统(即 PhcBSR 和 SolI/R)。PhcBSR QS 系统以其在调节细菌毒力方面的关键作用而闻名,而在许多茄科雷尔氏菌菌株中,LuxI/LuxR(SolI/R)QS 系统似乎对致病性可有可无。在本研究中,从感染的茄子中分离出的茄科雷尔氏菌菌株 EP1 中鉴定和表征了一个新的功能 QS 系统(即 RasI/R)。表型分析表明,RasI/R 系统在调节与细菌毒力相关的一系列生物学活性中起着重要作用。该 QS 系统产生并响应 QS 信号 3-OH-C12-HSL,从而调节细菌在存活和感染过程中的关键能力。迄今为止,茄科雷尔氏菌菌株中的多个 QS 信号转导电路仍未得到很好的理解。我们的研究结果为茄科雷尔氏菌的生理和毒力调控提供了新的见解,并为细菌萎蔫病的防治提供了一个有效的目标和线索。