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致病性岛相关整合酶在尿路致病性大肠杆菌菌株536基因组可塑性中的作用

Role of pathogenicity island-associated integrases in the genome plasticity of uropathogenic Escherichia coli strain 536.

作者信息

Hochhut Bianca, Wilde Caroline, Balling Gudrun, Middendorf Barbara, Dobrindt Ulrich, Brzuszkiewicz Elzbieta, Gottschalk Gerhard, Carniel Elisabeth, Hacker Jörg

机构信息

Institut für Molekulare Infektionsbiologie, Universität Würzburg, 97070 Würzburg, Germany.

出版信息

Mol Microbiol. 2006 Aug;61(3):584-95. doi: 10.1111/j.1365-2958.2006.05255.x.

DOI:10.1111/j.1365-2958.2006.05255.x
PMID:16879640
Abstract

The genome of uropathogenic Escherichia coli isolate 536 contains five well-characterized pathogenicity islands (PAIs) encoding key virulence factors of this strain. Except PAI IV(536), the four other PAIs of strain 536 are flanked by direct repeats (DRs), carry intact integrase genes and are able to excise site-specifically from the chromosome. Genome screening of strain 536 identified a sixth putative asnW-associated PAI. Despite the presence of DRs and an intact integrase gene, excision of this island was not detected. To investigate the role of PAI-encoded integrases for the recombination process the int genes of each unstable island of strain 536 were inactivated. For PAI I(536) and PAI II(536), their respective P4-like integrase was required for their excision. PAI III(536) carries two integrase genes, intA, encoding an SfX-like integrase, and intB, coding for an integrase with weak similarity to P4-like integrases. Only intB was required for site-specific excision of this island. For PAI V(536), excision could not be abolished after deleting its P4-like integrase gene but additional deletion of the PAI II(536)-specific integrase gene was required. Therefore, although all mediated by P4-like integrases, the activity of the PAI excision machinery is most often restricted to its cognate island. This work also demonstrates for the first time the existence of a cross-talk between integrases of different PAIs and shows that this cross-talk is unidirectional.

摘要

尿路致病性大肠杆菌菌株536的基因组包含五个特征明确的致病岛(PAIs),它们编码该菌株的关键毒力因子。除了PAI IV(536)之外,菌株536的其他四个PAIs侧翼均有正向重复序列(DRs),携带完整的整合酶基因,并且能够从染色体上进行位点特异性切除。对菌株536的基因组筛选鉴定出了第六个假定的与asnW相关的PAI。尽管存在DRs和完整的整合酶基因,但未检测到该岛的切除。为了研究PAI编码的整合酶在重组过程中的作用,菌株536每个不稳定岛的int基因被失活。对于PAI I(536)和PAI II(536),它们各自的P4样整合酶是其切除所必需的。PAI III(536)携带两个整合酶基因,intA编码一种SfX样整合酶,intB编码一种与P4样整合酶相似度较低的整合酶。该岛的位点特异性切除仅需要intB。对于PAI V(536),删除其P4样整合酶基因后切除不能被消除,但需要额外删除PAI II(536)特异性整合酶基因。因此,尽管所有这些都是由P4样整合酶介导的,但PAI切除机制的活性通常仅限于其同源岛。这项工作还首次证明了不同PAIs的整合酶之间存在相互作用,并且表明这种相互作用是单向的。

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