Short-tailed Stx phages exploit the conserved YaeT protein to disseminate Shiga Toxin genes among enterobacteria

被引:60
作者
Smith, Darren L. [1 ]
James, Chloe E. [1 ]
Sergeant, Martin J. [1 ]
Yaxian, Yan [1 ]
Saunders, Jon R. [1 ]
McCarthy, Alan J. [1 ]
Allison, Heather E. [1 ]
机构
[1] Univ Liverpool, Sch Biol Sci, Microbiol Res Grp, Liverpool L69 7ZB, Merseyside, England
关键词
D O I
10.1128/JB.00824-07
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Infection of Escherichia coli by Shiga toxin-encoding bacteriophages (Stx phages) was the pivotal event in the evolution of the deadly Shiga toxin-encoding E. coli (STEC), of which serotype O157:117 is the most notorious. The number of different bacterial species and strains reported to produce Shiga toxin is now more than 500, since the first reported STEC infection outbreak in 1982. Clearly, Stx phages are spreading rapidly, but the underlying mechanism for this dissemination has not been explained. Here we show that an essential and highly conserved gene product, YaeT, which has an essential role in the insertion of proteins in the gram-negative bacterial outer membrane, is the surface molecule recognized by the majority (ca. 70%) of Stx phages via conserved tail spike proteins associated with a short-tailed morphology. The yaeT gene was initially identified through complementation, and its role was confirmed in phage binding assays with and without anti-YaeT antiserum. Heterologous cloning of E. coli yaeT to enable Stx phage adsorption to Erwinia carotovora and the phage adsorption patterns of bacterial species possessing natural yaeT variants further supported this conclusion. The use of an essential and highly conserved protein by the majority of Stx phages is a strategy that has enabled and promoted the rapid spread of shigatoxigenic potential throughout multiple E. coli serogroups and related bacterial species. Infection of commensal bacteria in the mammalian gut has been shown to amplify Shiga toxin production in vivo, and the data from this study provide a platform for the development of a therapeutic strategy to limit this YaeT-mediated infection of the commensal flora.
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收藏
页码:7223 / 7233
页数:11
相关论文
共 57 条
[1]   Lipase secretion by bacterial hybrid ATP-binding cassette exporters: Molecular recognition of the LipBCD, PrtDEF, and HasDEF exporters [J].
Akatsuka, H ;
Binet, R ;
Kawai, E ;
Wandersman, C ;
Omori, K .
JOURNAL OF BACTERIOLOGY, 1997, 179 (15) :4754-4760
[2]   DegS and YaeL participate sequentially in the cleavage of RseA to activate the σE-dependent extracytoplasmic stress response [J].
Alba, BM ;
Leeds, JA ;
Onufryk, C ;
Lu, CZ ;
Gross, CA .
GENES & DEVELOPMENT, 2002, 16 (16) :2156-2168
[3]   Immunity profiles of wild-type and recombinant Shiga-Like toxin-encoding bacteriophages and characterization of novel double lysogens [J].
Allison, HE ;
Sergeant, MJ ;
James, CE ;
Saunders, JR ;
Smith, DL ;
Sharp, RJ ;
Marks, TS ;
McCarthy, AJ .
INFECTION AND IMMUNITY, 2003, 71 (06) :3409-3418
[4]   Stx-phages: drivers and mediators of the evolution of STEC and STEC-like pathogens [J].
Allison, Heather E. .
FUTURE MICROBIOLOGY, 2007, 2 (02) :165-174
[5]  
ANSUBEL FM, 1992, CURRENT PROTOCOLS MO
[6]   SPECIFIC-PURPOSE PLASMID CLONING VECTORS .2. BROAD HOST RANGE, HIGH COPY NUMBER, RSF1010-DERIVED VECTORS, AND A HOST-VECTOR SYSTEM FOR GENE CLONING IN PSEUDOMONAS [J].
BAGDASARIAN, M ;
LURZ, R ;
RUCKERT, B ;
FRANKLIN, FCH ;
BAGDASARIAN, MM ;
FREY, J ;
TIMMIS, KN .
GENE, 1981, 16 (1-3) :237-247
[7]   Interaction of bacteriophage Lambda with its cell surface receptor: An in vitro study of binding of the viral tail protein gpJ to LamB (Maltoporin) [J].
Berkane, E ;
Orlik, F ;
Stegmeier, JF ;
Charbit, A ;
Winterhalter, M ;
Benz, R .
BIOCHEMISTRY, 2006, 45 (08) :2708-2720
[8]   ANALYSIS OF GENE-CONTROL SIGNALS BY DNA-FUSION AND CLONING IN ESCHERICHIA-COLI [J].
CASADABAN, MJ ;
COHEN, SN .
JOURNAL OF MOLECULAR BIOLOGY, 1980, 138 (02) :179-207
[9]   Molecular characterization of a 17-kDa outer-membrane protein from Klebsiella pneumonia [J].
Climent, N ;
Ferrer, S ;
Rubires, X ;
Merino, S ;
Tomas, JM ;
Regue, M .
RESEARCH IN MICROBIOLOGY, 1997, 148 (02) :133-143
[10]   Characterization of the Escherichia coli σE regulon [J].
Dartigalongue, C ;
Missiakas, D ;
Raina, S .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (24) :20866-20875