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Phase variation in Bordetella pertussis by frameshift mutation in a gene for a novel two-component system.

作者信息

Stibitz S, Aaronson W, Monack D, Falkow S

机构信息

Center for Biologics Evaluation and Research, Food and Drug Administration, Bethesda, Maryland 20892.

出版信息

Nature. 1989 Mar 16;338(6212):266-9. doi: 10.1038/338266a0.

DOI:10.1038/338266a0
PMID:2537932
Abstract

Bordetella pertussis, the aetiological agent of whooping cough, coordinately regulates the expression of many virulence-associated determinants, including filamentous haemagglutinin, pertussis toxin, adenylyl cyclase toxin, dermonecrotic toxin and haemolysin. The coordinate regulation is apparent in the repression of synthesis of these determinants in response to environmental stimuli; a phenomenon known as antigenic or phenotypic modulation. B. pertussis also varies between metastable genetic states, or phases. There is a virulent phase in which virulence-associated determinants are synthesized, and an avirulent phase in which they are not. Previous studies have shown that a genetic locus, vir, is required for expression from many virulence-associated loci, and that replacing the cloned vir locus in trans can restore the virulent phase phenotype to spontaneously occurring avirulent phase strains. Here, we show that phase variation in one series of strains is due to a frameshift mutation within an open reading frame that is predicted to code for a Vir protein product. The deduced protein sequence is similar to both components of the 'two-component' regulatory system which control gene expression in response to environmental stimuli in a range of bacterial species.

摘要

相似文献

1
Phase variation in Bordetella pertussis by frameshift mutation in a gene for a novel two-component system.
Nature. 1989 Mar 16;338(6212):266-9. doi: 10.1038/338266a0.
2
The vir locus and phase-variation in Bordetella pertussis.百日咳博德特氏菌中的vir位点与相变
Tokai J Exp Clin Med. 1988;13 Suppl:223-6.
3
Signal transduction and virulence regulation in Bordetella pertussis.百日咳博德特氏菌中的信号转导与毒力调控
Microbiologia. 1996 Jun;12(2):185-96.
4
A 23-kilodalton protein, distinct from BvgA, expressed by virulent Bordetella pertussis binds to the promoter region of vir-regulated toxin genes.一种由强毒株百日咳博德特氏菌表达的、与BvgA不同的23千道尔顿蛋白,可结合至毒力调节毒素基因的启动子区域。
Infect Immun. 1991 Jul;59(7):2389-95. doi: 10.1128/iai.59.7.2389-2395.1991.
5
Molecular cloning and analysis of P. 69, a vir-controlled protein from Bordetella pertussis.百日咳博德特氏菌的一种受病毒控制的蛋白质P. 69的分子克隆与分析
Tokai J Exp Clin Med. 1988;13 Suppl:227-34.
6
Vir90, a virulence-activated gene coding for a Bordetella pertussis iron-regulated outer membrane protein.Vir90,一种编码百日咳博德特氏菌铁调节外膜蛋白的毒力激活基因。
Res Microbiol. 2003 Jul-Aug;154(6):443-50. doi: 10.1016/S0923-2508(03)00115-3.
7
[Selection of Bvg- variants of Bordetella pertussis].[百日咳博德特氏菌Bvg-变异株的选择]
Rev Argent Microbiol. 1997 Apr-Jun;29(2):75-83.
8
[Structural organization of a segment of chromosome, containing the vir gene of Bordetella pertussis].[包含百日咳博德特氏菌毒力基因的一段染色体的结构组织]
Mol Gen Mikrobiol Virusol. 1990 Dec(12):27-32.
9
Genetic and immunological studies on polypeptides encoded by the vir locus of Bordetella pertussis.
Dev Biol Stand. 1991;73:87-91.
10
Demonstration of differential virulence gene promoter activation in vivo in Bordetella pertussis using RIVET.利用RIVET技术在体内证明百日咳博德特氏菌中差异毒力基因启动子的激活
Mol Microbiol. 2005 Feb;55(3):788-98. doi: 10.1111/j.1365-2958.2004.04418.x.

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