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大肠杆菌包膜应激与缺乏外膜囊泡产生的综合效应。

Synthetic effect between envelope stress and lack of outer membrane vesicle production in Escherichia coli.

机构信息

Department of Biochemistry, Duke University Medical Center, Durham, NC, USA.

出版信息

J Bacteriol. 2013 Sep;195(18):4161-73. doi: 10.1128/JB.02192-12. Epub 2013 Jul 12.

Abstract

Outer membrane vesicles (OMVs) are composed of outer membrane and periplasmic components and are ubiquitously secreted by Gram-negative bacteria. OMVs can disseminate virulence factors for pathogenic bacteria as well as serve as an envelope stress response. From a transposon mutant screen for OMV phenotypes, it was discovered that an nlpA mutant of Escherichia coli produces fewer OMVs than the wild type, whereas a degP mutant produces higher levels of OMVs. NlpA is an inner-membrane-anchored lipoprotein that has a minor role in methionine import. DegP is a periplasmic chaperone/protease for misfolded envelope proteins that is critical when cells are heat shocked. To reveal how these proteins contribute to OMV production, the mutations were combined and the double mutant analyzed. The ΔnlpA ΔdegP strain displayed a high-temperature growth defect that corresponded to the production of fewer OMVs than produced by the ΔdegP strain. This phenotype also pertained to other undervesiculation mutations in a ΔdegP background. The hypovesiculation phenotype of ΔnlpA in the wild-type strain as well as in the degP deletion strain was found to be a stationary-phase phenomenon. The periplasm of the ΔnlpA ΔdegP strain was determined to contain significantly more protein in stationary phase than the wild type. Additionally, misfolded DegP substrate outer membrane porins were detected in ΔdegP mutant-derived OMVs. These data suggest that an accumulation of envelope proteins resulting from decreased vesiculation was toxic and contributed to the growth defect. We conclude that OMV production contributes to relieve the envelope of accumulated toxic proteins and that NlpA plays an important role in the production of vesicles in stationary phase.

摘要

外膜囊泡(OMVs)由外膜和周质成分组成,普遍由革兰氏阴性菌分泌。OMVs 可以传播致病菌的毒力因子,也可以作为一种包膜应激反应。通过对 OMV 表型的转座子突变体筛选发现,大肠杆菌的 nlpA 突变体比野生型产生的 OMV 更少,而 degP 突变体产生的 OMV 更多。NlpA 是一种膜内锚定脂蛋白,在蛋氨酸输入中作用较小。DegP 是一种周质伴侣/蛋白酶,用于折叠错误的包膜蛋白,在细胞受到热冲击时至关重要。为了揭示这些蛋白如何促进 OMV 的产生,对突变体进行了组合,并对双突变体进行了分析。ΔnlpA ΔdegP 菌株表现出高温生长缺陷,其产生的 OMV 比 ΔdegP 菌株少。这种表型也与 degP 背景下的其他囊泡缺失突变有关。在野生型菌株和 degP 缺失菌株中,ΔnlpA 的低囊泡化表型是一种静止期现象。与野生型相比,ΔnlpA ΔdegP 菌株的周质在静止期含有更多的蛋白质。此外,还在 degP 突变体衍生的 OMVs 中检测到折叠错误的 DegP 底物外膜孔蛋白。这些数据表明,由于囊泡形成减少而积累的包膜蛋白是有毒的,并导致了生长缺陷。我们得出结论,OMVs 的产生有助于缓解积累的有毒蛋白的包膜压力,而 NlpA 在静止期囊泡的产生中起着重要作用。

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本文引用的文献

1
Envelope control of outer membrane vesicle production in Gram-negative bacteria.
Biochemistry. 2013 May 7;52(18):3031-40. doi: 10.1021/bi400164t. Epub 2013 Apr 25.
2
Adenylate kinase release as a high-throughput-screening-compatible reporter of bacterial lysis for identification of antibacterial agents.
Antimicrob Agents Chemother. 2013 Jan;57(1):26-36. doi: 10.1128/AAC.01640-12. Epub 2012 Oct 1.
3
Role of the biofilm master regulator CsgD in cross-regulation between biofilm formation and flagellar synthesis.
J Bacteriol. 2011 May;193(10):2587-97. doi: 10.1128/JB.01468-10. Epub 2011 Mar 18.
4
The free and bound forms of Lpp occupy distinct subcellular locations in Escherichia coli.
Mol Microbiol. 2011 Mar;79(5):1168-81. doi: 10.1111/j.1365-2958.2011.07539.x. Epub 2011 Jan 24.
5
Biological functions and biogenesis of secreted bacterial outer membrane vesicles.
Annu Rev Microbiol. 2010;64:163-84. doi: 10.1146/annurev.micro.091208.073413.
6
Virulence and immunomodulatory roles of bacterial outer membrane vesicles.
Microbiol Mol Biol Rev. 2010 Mar;74(1):81-94. doi: 10.1128/MMBR.00031-09.
8
Escherichia coli DegP: a structure-driven functional model.
J Bacteriol. 2009 Aug;191(15):4705-13. doi: 10.1128/JB.00472-09. Epub 2009 May 22.
9
BolA inhibits cell elongation and regulates MreB expression levels.
J Mol Biol. 2009 Feb 6;385(5):1345-51. doi: 10.1016/j.jmb.2008.12.026. Epub 2008 Dec 24.
10
Structural basis for the regulated protease and chaperone function of DegP.
Nature. 2008 Jun 12;453(7197):885-90. doi: 10.1038/nature07004. Epub 2008 May 21.

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