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群体感应如何将苏云金芽孢杆菌的芽孢形成与坏死营养型联系起来。

How Quorum Sensing Connects Sporulation to Necrotrophism in Bacillus thuringiensis.

作者信息

Perchat Stéphane, Talagas Antoine, Poncet Sandrine, Lazar Noureddine, Li de la Sierra-Gallay Inès, Gohar Michel, Lereclus Didier, Nessler Sylvie

机构信息

Micalis Institute, INRA, AgroParisTech, Université Paris-Saclay, Jouy-en-Josas, France.

Institute of Integrative Biology of the Cell (I2BC), CEA, CNRS, Univ. Paris-Sud, Université Paris-Saclay, Gif-sur-Yvette, France.

出版信息

PLoS Pathog. 2016 Aug 2;12(8):e1005779. doi: 10.1371/journal.ppat.1005779. eCollection 2016 Aug.

Abstract

Bacteria use quorum sensing to coordinate adaptation properties, cell fate or commitment to sporulation. The infectious cycle of Bacillus thuringiensis in the insect host is a powerful model to investigate the role of quorum sensing in natural conditions. It is tuned by communication systems regulators belonging to the RNPP family and directly regulated by re-internalized signaling peptides. One such RNPP regulator, NprR, acts in the presence of its cognate signaling peptide NprX as a transcription factor, regulating a set of genes involved in the survival of these bacteria in the insect cadaver. Here, we demonstrate that, in the absence of NprX and independently of its transcriptional activator function, NprR negatively controls sporulation. NprR inhibits expression of Spo0A-regulated genes by preventing the KinA-dependent phosphorylation of the phosphotransferase Spo0F, thus delaying initiation of the sporulation process. This NprR function displays striking similarities with the Rap proteins, which also belong to the RNPP family, but are devoid of DNA-binding domain and indirectly control gene expression via protein-protein interactions in Bacilli. Conservation of the Rap residues directly interacting with Spo0F further suggests a common inhibition of the sporulation phosphorelay. The crystal structure of apo NprR confirms that NprR displays a highly flexible Rap-like structure. We propose a molecular regulatory mechanism in which key residues of the bifunctional regulator NprR are directly and alternatively involved in its two functions. NprX binding switches NprR from a dimeric inhibitor of sporulation to a tetrameric transcriptional activator involved in the necrotrophic lifestyle of B. thuringiensis. NprR thus tightly coordinates sporulation and necrotrophism, ensuring survival and dissemination of the bacteria during host infection.

摘要

细菌利用群体感应来协调适应性特性、细胞命运或芽孢形成的进程。苏云金芽孢杆菌在昆虫宿主体内的感染周期是研究群体感应在自然条件下作用的有力模型。它由属于RNPP家族的通讯系统调节因子调控,并直接受重新内化的信号肽的调节。一种这样的RNPP调节因子NprR,在其同源信号肽NprX存在的情况下作为转录因子发挥作用,调节一组与这些细菌在昆虫尸体中存活相关的基因。在这里,我们证明,在没有NprX的情况下且独立于其转录激活功能,NprR对芽孢形成起负调控作用。NprR通过阻止磷酸转移酶Spo0F的依赖KinA的磷酸化来抑制Spo0A调控基因的表达,从而延迟芽孢形成过程的起始。NprR的这种功能与Rap蛋白有显著相似性,Rap蛋白也属于RNPP家族,但缺乏DNA结合结构域,并且通过芽孢杆菌中的蛋白质-蛋白质相互作用间接控制基因表达。与Spo0F直接相互作用的Rap残基的保守性进一步表明对芽孢形成磷酸中继有共同的抑制作用。无配体NprR的晶体结构证实NprR呈现出高度灵活的类Rap结构。我们提出一种分子调控机制,其中双功能调节因子NprR的关键残基直接且交替地参与其两种功能。NprX的结合将NprR从芽孢形成的二聚体抑制剂转变为参与苏云金芽孢杆菌坏死营养型生活方式的四聚体转录激活剂。因此,NprR紧密协调芽孢形成和坏死营养作用,确保细菌在宿主感染期间的存活和传播。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e07/4970707/12866cd40bb2/ppat.1005779.g001.jpg

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