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本文引用的文献

1
The Borrelia burgdorferi outer-surface protein ErpX binds mammalian laminin.伯氏疏螺旋体外表面蛋白ErpX可结合哺乳动物层粘连蛋白。
Microbiology (Reading). 2009 Mar;155(Pt 3):863-872. doi: 10.1099/mic.0.024604-0.
2
Borrelia burgdorferi infection-associated surface proteins ErpP, ErpA, and ErpC bind human plasminogen.伯氏疏螺旋体感染相关表面蛋白ErpP、ErpA和ErpC可结合人纤溶酶原。
Infect Immun. 2009 Jan;77(1):300-6. doi: 10.1128/IAI.01133-08. Epub 2008 Nov 10.
3
Borrelia burgdorferi expression of the bba64, bba65, bba66, and bba73 genes in tissues during persistent infection in mice.伯氏疏螺旋体bba64、bba65、bba66和bba73基因在小鼠持续性感染期间组织中的表达。
Microb Pathog. 2008 Nov-Dec;45(5-6):355-60. doi: 10.1016/j.micpath.2008.08.006. Epub 2008 Sep 20.
4
Molecular mechanisms involved in vascular interactions of the Lyme disease pathogen in a living host.莱姆病病原体在活体宿主中与血管相互作用的分子机制。
PLoS Pathog. 2008 Oct 3;4(10):e1000169. doi: 10.1371/journal.ppat.1000169.
5
Borrelia burgdorferi lacking DbpBA exhibits an early survival defect during experimental infection.缺乏DbpBA的伯氏疏螺旋体在实验性感染期间表现出早期生存缺陷。
Infect Immun. 2008 Dec;76(12):5694-705. doi: 10.1128/IAI.00690-08. Epub 2008 Sep 22.
6
Laboratory maintenance of Borrelia burgdorferi.伯氏疏螺旋体的实验室保存
Curr Protoc Microbiol. 2007 Feb;Chapter 12:Unit 12C.1. doi: 10.1002/9780471729259.mc12c01s4.
7
Example of real-time quantitative reverse transcription-PCR (Q-RT-PCR) analysis of bacterial gene expression during mammalian infection: Borrelia burgdorferi in mouse tissues.哺乳动物感染期间细菌基因表达的实时定量逆转录聚合酶链反应(Q-RT-PCR)分析示例:小鼠组织中的伯氏疏螺旋体。
Curr Protoc Microbiol. 2005 Oct;Chapter 1D:Unit 1D.3. doi: 10.1002/9780471729259.mc01d03s00.
8
Assessment of decorin-binding protein A to the infectivity of Borrelia burgdorferi in the murine models of needle and tick infection.在针刺感染和蜱虫感染小鼠模型中,对核心蛋白聚糖结合蛋白A与伯氏疏螺旋体感染性的评估。
BMC Microbiol. 2008 May 28;8:82. doi: 10.1186/1471-2180-8-82.
9
The C-terminal variable domain of LigB from Leptospira mediates binding to fibronectin.钩端螺旋体LigB的C端可变结构域介导与纤连蛋白的结合。
J Vet Sci. 2008 Jun;9(2):133-44. doi: 10.4142/jvs.2008.9.2.133.
10
In LipL32, the major leptospiral lipoprotein, the C terminus is the primary immunogenic domain and mediates interaction with collagen IV and plasma fibronectin.在主要的钩端螺旋体脂蛋白LipL32中,C末端是主要的免疫原性结构域,并介导与IV型胶原和血浆纤连蛋白的相互作用。
Infect Immun. 2008 Jun;76(6):2642-50. doi: 10.1128/IAI.01639-07. Epub 2008 Apr 7.

伯氏疏螺旋体RevA抗原与宿主纤连蛋白结合。

Borrelia burgdorferi RevA antigen binds host fibronectin.

作者信息

Brissette Catherine A, Bykowski Tomasz, Cooley Anne E, Bowman Amy, Stevenson Brian

机构信息

Department of Microbiology, Immunology and Molecular Genetics, University of Kentucky College of Medicine, Chandler Medical Center MN469, Lexington, Kentucky 40536-0298, USA.

出版信息

Infect Immun. 2009 Jul;77(7):2802-12. doi: 10.1128/IAI.00227-09. Epub 2009 Apr 27.

DOI:10.1128/IAI.00227-09
PMID:19398540
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2708576/
Abstract

Borrelia burgdorferi, the Lyme disease-causing spirochete, can persistently infect its vertebrate hosts for years. B. burgdorferi is often found associated with host connective tissue, where it interacts with components of the extracellular matrix, including fibronectin. Some years ago, a borrelial surface protein, named BBK32, was identified as a fibronectin-binding protein. However, B. burgdorferi BBK32 mutants are still able to bind fibronectin, indicating that the spirochete possesses additional mechanisms for adherence to fibronectin. We now demonstrate that RevA, an unrelated B. burgdorferi outer surface protein, binds mammalian fibronectin in a saturable manner. Site-directed mutagenesis studies identified the amino terminus of the RevA protein as being required for adhesion to fibronectin. RevA bound to the amino-terminal region of fibronectin. RevA binding to fibronectin was not inhibited by salt or heparin, suggesting that adhesin-ligand interactions are primarily nonionic and occur through the non-heparin-binding regions of the fibronectin amino-terminal domains. revA genes are widely distributed among Lyme disease spirochetes, and the present studies determined that all RevA alleles tested bound fibronectin. In addition, RevB, a paralogous protein found in a subset of B. burgdorferi strains, also bound fibronectin. We also confirmed that RevA is produced during mammalian infection but not during colonization of vector ticks and determined that revA transcription is controlled through a mechanism distinct from that of BBK32.

摘要

莱姆病螺旋体伯氏疏螺旋体可在其脊椎动物宿主中持续感染数年。伯氏疏螺旋体常与宿主结缔组织相关联,在那里它与细胞外基质的成分相互作用,包括纤连蛋白。几年前,一种名为BBK32的伯氏疏螺旋体表面蛋白被鉴定为纤连蛋白结合蛋白。然而,伯氏疏螺旋体BBK32突变体仍能结合纤连蛋白,这表明该螺旋体拥有其他与纤连蛋白结合的机制。我们现在证明,RevA,一种无关的伯氏疏螺旋体外表面蛋白,以可饱和的方式结合哺乳动物纤连蛋白。定点诱变研究确定RevA蛋白的氨基末端是与纤连蛋白结合所必需的。RevA与纤连蛋白的氨基末端区域结合。RevA与纤连蛋白的结合不受盐或肝素的抑制,这表明黏附素-配体相互作用主要是非离子性的,并且通过纤连蛋白氨基末端结构域的非肝素结合区域发生。revA基因在莱姆病螺旋体中广泛分布,目前的研究确定所有测试的RevA等位基因都能结合纤连蛋白。此外RevB,一种在部分伯氏疏螺旋体菌株中发现的同源蛋白,也能结合纤连蛋白。我们还证实RevA在哺乳动物感染期间产生,但在媒介蜱的定殖过程中不产生,并确定revA转录是通过一种不同于BBK32的机制控制的。