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多杀性巴氏杆菌温和转导噬菌体的分离与测序

Isolation and sequencing of a temperate transducing phage for Pasteurella multocida.

作者信息

Campoy Susana, Aranda Jesús, Alvarez Gerard, Barbé Jordi, Llagostera Montserrat

机构信息

Centre de Recerca en Sanitat Animal (CReSA), Universitat Autònoma de Barcelona, Edifici C, Bellaterra, 08193 Barcelona, Spain.

出版信息

Appl Environ Microbiol. 2006 May;72(5):3154-60. doi: 10.1128/AEM.72.5.3154-3160.2006.

Abstract

A temperate bacteriophage (F108) has been isolated through mitomycin C induction of a Pasteurella multocida serogroup A strain. F108 has a typical morphology of the family Myoviridae, presenting a hexagonal head and a long contractile tail. F108 is able to infect all P. multocida serogroup A strains tested but not those belonging to other serotypes. Bacteriophage F108, the first P. multocida phage sequenced so far, presents a 30,505-bp double-stranded DNA genome with cohesive ends (CTTCCTCCCC cos site). The F108 genome shows the highest homology with those of Haemophilus influenzae HP1 and HP2 phages. Furthermore, an F108 prophage attachment site in the P. multocida chromosome has been established to be inside a gene encoding tRNA(Leu). By using several chromosomal markers that are spread along the P. multocida chromosome, it has been demonstrated that F108 is able to perform generalized transduction. This fact, together with the absence of pathogenic genes in the F108 genome, makes this bacteriophage a valuable tool for P. multocida genetic manipulation.

摘要

通过丝裂霉素C诱导多杀性巴氏杆菌A血清型菌株,分离出了一种温和噬菌体(F108)。F108具有肌尾噬菌体科的典型形态,呈现六边形头部和长收缩尾。F108能够感染所有测试的多杀性巴氏杆菌A血清型菌株,但不能感染其他血清型的菌株。噬菌体F108是迄今为止首个测序的多杀性巴氏杆菌噬菌体,其基因组为30,505 bp的双链DNA,具有粘性末端(CTTCCTCCCC cos位点)。F108基因组与流感嗜血杆菌HP1和HP2噬菌体的基因组具有最高的同源性。此外,已确定多杀性巴氏杆菌染色体中的F108原噬菌体附着位点位于编码tRNA(Leu)的基因内。通过使用沿多杀性巴氏杆菌染色体分布的多个染色体标记,已证明F108能够进行普遍性转导。这一事实,再加上F108基因组中不存在致病基因,使得这种噬菌体成为多杀性巴氏杆菌基因操作的宝贵工具。

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本文引用的文献

1
2
The evolution of large DNA viruses: combining genomic information of viruses and their hosts.
Trends Microbiol. 2004 Oct;12(10):458-65. doi: 10.1016/j.tim.2004.08.005.
3
Community structure and metabolism through reconstruction of microbial genomes from the environment.
Nature. 2004 Mar 4;428(6978):37-43. doi: 10.1038/nature02340. Epub 2004 Feb 1.
4
The Pasteurella multocida toxin is encoded within a lysogenic bacteriophage.
Mol Microbiol. 2004 Jan;51(1):255-69. doi: 10.1046/j.1365-2958.2003.03829.x.
5
Genomic organization and molecular characterization of SM1, a temperate bacteriophage of Streptococcus mitis.
J Bacteriol. 2003 Dec;185(23):6968-75. doi: 10.1128/JB.185.23.6968-6975.2003.
6
Molecular basis of rifampicin resistance in Haemophilus influenzae.
J Antimicrob Chemother. 2003 Dec;52(6):1011-4. doi: 10.1093/jac/dkh008. Epub 2003 Nov 12.
8
Bacteriophage HP2 of Haemophilus influenzae.
J Bacteriol. 2002 Dec;184(24):6893-905. doi: 10.1128/JB.184.24.6893-6905.2002.

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