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在肺炎克雷伯菌生物膜调节回路中,环二鸟苷依赖性的MrkH蛋白对mrkHI进行正向自调节。

Positive autoregulation of mrkHI by the cyclic di-GMP-dependent MrkH protein in the biofilm regulatory circuit of Klebsiella pneumoniae.

作者信息

Tan Jason W H, Wilksch Jonathan J, Hocking Dianna M, Wang Nancy, Srikhanta Yogitha N, Tauschek Marija, Lithgow Trevor, Robins-Browne Roy M, Yang Ji, Strugnell Richard A

机构信息

Department of Microbiology and Immunology, The University of Melbourne at the Peter Doherty Institute for Infection and Immunity, Parkville, Victoria, Australia.

Department of Microbiology and Immunology, The University of Melbourne at the Peter Doherty Institute for Infection and Immunity, Parkville, Victoria, Australia

出版信息

J Bacteriol. 2015 May;197(9):1659-67. doi: 10.1128/JB.02615-14. Epub 2015 Mar 2.

Abstract

UNLABELLED

Klebsiella pneumoniae is an important cause of nosocomial infections, primarily through the formation of surface-associated biofilms to promote microbial colonization on host tissues. Expression of type 3 fimbriae by K. pneumoniae facilitates surface adherence, a process strongly activated by the cyclic di-GMP (c-di-GMP)-dependent transcriptional activator MrkH. In this study, we demonstrated the critical importance of MrkH in facilitating K. pneumoniae attachment on a variety of medically relevant materials and demonstrated the mechanism by which bacteria activate expression of type 3 fimbriae to colonize these materials. Sequence analysis revealed a putative MrkH recognition DNA sequence ("MrkH box"; TATCAA) located in the regulatory region of the mrkHI operon. Mutational analysis, electrophoretic mobility shift assay, and quantitative PCR experiments demonstrated that MrkH binds to the cognate DNA sequence to autoregulate mrkHI expression in a c-di-GMP-dependent manner. A half-turn deletion, but not a full-turn deletion, between the MrkH box and the -35 promoter element rendered MrkH ineffective in activating mrkHI expression, implying that a direct interaction between MrkH and RNA polymerase exists. In vivo analyses showed that residues L260, R265, N268, C269, E273, and I275 in the C-terminal domain of the RNA polymerase α subunit are involved in the positive control of mrkHI expression by MrkH and revealed the regions of MrkH required for DNA binding and transcriptional activation. Taken together, the data suggest a model whereby c-di-GMP-dependent MrkH recruits RNA polymerase to the mrkHI promoter to autoactivate mrkH expression. Increased MrkH production subsequently drives mrkABCDF expression when activated by c-di-GMP, leading to biosynthesis of type 3 fimbriae and biofilm formation.

IMPORTANCE

Bacterial biofilms can cause persistent infections that are refractory to antimicrobial treatments. This study investigated how a commonly encountered hospital-acquired pathogen, Klebsiella pneumoniae, controls the expression of MrkH, the principal regulator of type 3 fimbriae and biofilm formation. We discovered a regulatory circuit whereby MrkH acts as a c-di-GMP-dependent transcriptional activator of both the gene cluster of type 3 fimbriae and the mrkHI operon. In this positive-feedback loop, whereby MrkH activates its own production, K. pneumoniae has evolved a mechanism to ensure rapid MrkH production, expression of type 3 fimbriae, and subsequent biofilm formation under favorable conditions. Deciphering the molecular mechanisms of biofilm formation by bacterial pathogens is important for the development of innovative treatment strategies for biofilm infections.

摘要

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肺炎克雷伯菌是医院感染的重要病因,主要通过形成表面相关生物膜来促进微生物在宿主组织上的定植。肺炎克雷伯菌表达的3型菌毛有助于表面黏附,这一过程由环二鸟苷酸(c-di-GMP)依赖性转录激活因子MrkH强烈激活。在本研究中,我们证明了MrkH在促进肺炎克雷伯菌附着于多种医学相关材料上的关键重要性,并阐明了细菌激活3型菌毛表达以在这些材料上定植的机制。序列分析揭示了位于mrkHI操纵子调控区域的一个假定的MrkH识别DNA序列(“MrkH框”;TATCAA)。突变分析、电泳迁移率变动分析和定量PCR实验表明,MrkH以c-di-GMP依赖性方式结合同源DNA序列以自调控mrkHI表达。MrkH框与-35启动子元件之间的半圈缺失而非整圈缺失使MrkH在激活mrkHI表达方面无效,这意味着MrkH与RNA聚合酶之间存在直接相互作用。体内分析表明,RNA聚合酶α亚基C末端结构域中的L260、R265、N268、C269、E273和I275残基参与MrkH对mrkHI表达的正调控,并揭示了MrkH与DNA结合和转录激活所需的区域。综上所述,数据提示了一种模型,即c-di-GMP依赖性的MrkH将RNA聚合酶募集到mrkHI启动子以自激活mrkH表达。随后,当被c-di-GMP激活时,MrkH产量增加会驱动mrkABCDF表达,导致3型菌毛的生物合成和生物膜形成。

重要性

细菌生物膜可导致对抗菌治疗难治的持续性感染。本研究调查了一种常见的医院获得性病原体肺炎克雷伯菌如何控制3型菌毛和生物膜形成的主要调节因子MrkH的表达。我们发现了一个调节回路,其中MrkH作为3型菌毛基因簇和mrkHI操纵子的c-di-GMP依赖性转录激活因子。在这个正反馈回路中,MrkH激活其自身的产生,肺炎克雷伯菌进化出一种机制,以确保在有利条件下快速产生MrkH、表达3型菌毛并随后形成生物膜。解析细菌病原体生物膜形成的分子机制对于开发生物膜感染的创新治疗策略很重要。

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