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首页> 外文期刊>BMC Microbiology >In vivo bioluminescence imaging of Escherichia coli O104:H4 and role of aerobactin during colonization of a mouse model of infection
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In vivo bioluminescence imaging of Escherichia coli O104:H4 and role of aerobactin during colonization of a mouse model of infection

机译:大肠杆菌O104:H4的体内生物发光成像和气杆菌素在感染小鼠模型定殖过程中的作用

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Background A major outbreak of bloody diarrhea associated with Shiga toxin-producing Escherichia coli O104:H4 occurred early in 2011, to which an unusual number of hemolytic uremic syndrome cases were linked. Due to limited information regarding pathogenesis and/or virulence properties of this particular serotype, we investigated the contribution of the aerobactin iron transport system during in vitro and in vivo conditions. Results A bioluminescent reporter construct was used to perform real-time monitoring of E. coli O104:H4 in a mouse model of infection. We verified that our reporter strain maintained characteristics and growth kinetics that were similar to those of the wild-type E. coli strain. We found that the intestinal cecum of ICR (CD-1) mice was colonized by O104:H4, with bacteria persisting for up to 7?days after intragastric inoculation. MALDI-TOF analysis of heat-extracted proteins was performed to identify putative surface-exposed virulence determinants. A protein with a high similarity to the aerobactin iron receptor was identified and further demonstrated to be up-regulated in E. coli O104:H4 when grown on MacConkey agar or during iron-depleted conditions. Because the aerobactin iron acquisition system is a key virulence factor in Enterobacteriaceae, an isogenic aerobactin receptor (iutA) mutant was created and its intestinal fitness assessed in the murine model. We demonstrated that the aerobactin mutant was out-competed by the wild-type E. coli O104:H4 during in vivo competition experiments, and the mutant was unable to persist in the cecum. Conclusion Our findings demonstrate that bioluminescent imaging is a useful tool to monitor E. coli O104:H4 colonization properties, and the murine model can become a rapid way to evaluate bacterial factors associated with fitness and/or colonization during E. coli O104:H4 infections.
机译:背景技术2011年初发生了与产志贺毒素的大肠杆菌O104:H4相关的血性腹泻的大爆发,这与不寻常的溶血性尿毒症综合征病例有关。由于关于该特定血清型的发病机理和/或毒力特性的信息有限,我们研究了在体外和体内条件下,气杆菌素铁转运系统的作用。结果使用生物发光报告基因构建体对感染的小鼠模型中的大肠杆菌O104:H4进行实时监控。我们验证了我们的报告菌株保持了与野生型大肠杆菌菌株相似的特性和生长动力学。我们发现,ICR(CD-1)小鼠的肠盲肠被O104:H4定殖,细菌在胃内接种后持续存在长达7天。进行了热提取蛋白的MALDI-TOF分析,以确定推定的表面暴露的毒力决定因素。鉴定出了一种与航空细菌素铁受体高度相似的蛋白质,并进一步证明了在MacConkey琼脂上或缺铁条件下生长时,在大肠杆菌O104:H4中上调。由于航空细菌素铁的获取系统是肠杆菌科的关键毒力因子,因此创建了同基因航空细菌素受体(iutA)突变体,并在鼠模型中评估了其肠道适应性。我们证明了在体内竞争实验中,aerobactin突变体与野生型大肠杆菌O104:H4竞争激烈,并且该突变体无法在盲肠中持久存在。结论我们的发现表明,生物发光成像是监测大肠杆菌O104:H4定植特性的有用工具,而鼠模型可以成为评估与大肠杆菌O104:H4感染过程中适应性和/或定居相关的细菌因子的快速方法。 。

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