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Transposon mutagenesis reveals genes involved in osmotic stress and drying in Cronobacter sakazakii

机译:转座子诱变揭示了阪崎肠杆菌中涉及渗透胁迫和干燥的基因

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摘要

This study characterizes the growth in hyperosmotic media and the resistance to desiccation of a collection of fifteen Cronobacter sakazakii strains. C. sakazakii strains showed similar abilities to grow/persist under osmotic stress conditions to strains from other related Enterobacteriaceae, i.e. Cronobacter muytjensii, Cronobacter malonaticus, Enterobacter gergoviae, Enterobacter cloacae, Enterobacter aerogenes, and S. Typhimurium. Nevertheless, some degree of heterogeneity among C. sakazakii strains could be observed, and in general strains isolated from clinical sources showed the greatest robustness. A transposon mutagenesis approach was used to identify genetic systems involved in the response of C. sakazakii DPC 6529 to hyperosmotic conditions. We obtained evidence that de novo protein synthesis, repair of damage in macromolecules and maintenance of the structure and integrity of the cellular envelope are essential processes for the cell under osmotic stress. Moreover, some metabolic activities are also important, including the synthesis of glutamine as a compatible solute and the regulation of nucleotide and nudeoside pools. The Cpx system, known as an envelope stress response regulator, and the sigma factors RpoN and RpoS seem to be the main signals regulating the bacterial response to hyperosmotic conditions. Among the identified salt-sensitive mutants, only those disrupted in dnaK and Ana], encoding two molecular chaperones, were important for C. sakazakii survival under desiccation. This suggests that the systems and proteins involved in the desiccation response differ from those responsible for growth under hyperosmotic conditions, at least under the conditions tested in the current study.
机译:这项研究的特点是高渗透性培养基的生长以及对一组十五种阪崎克氏杆菌菌株的抗干燥性。 sakazakii菌株在渗透胁迫条件下具有与其他相关肠杆菌科细菌(即多克隆克氏杆菌,丙酸克鲁氏杆菌,格氏肠杆菌,阴沟肠杆菌,产气肠杆菌和伤寒沙门氏菌)相似的生长/持久能力。然而,在阪崎肠梭菌菌株之间可以观察到一定程度的异质性,并且通常从临床来源分离出的菌株显示出最大的稳健性。转座子诱变方法用于鉴定参与阪崎肠梭菌DPC 6529对高渗条件的响应的遗传系统。我们获得的证据表明,从头进行蛋白质合成,修复大分子中的损伤以及维持细胞包膜的结构和完整性是渗透胁迫下细胞的基本过程。此外,一些代谢活动也很重要,包括合成谷氨酰胺作为相容性溶质以及调节核苷酸和核苷池。 Cpx系统(称为包膜应力响应调节剂)和sigma因子RpoN和RpoS似乎是调节细菌对高渗条件的响应的主要信号。在已鉴定的盐敏感性突变体中,只有在dnaK和Ana]中被破坏的,编码两个分子伴侣的突变体对于干燥下阪崎肠杆菌的存活很重要。这表明,至少在当前研究条件下,参与干燥反应的系统和蛋白质与在高渗条件下负责生长的系统和蛋白质不同。

著录项

  • 来源
    《Food research international》 |2014年第1期|45-54|共10页
  • 作者单位

    Department of Microbiology, University College Cork, Cork, Ireland,Food for Health Ireland, University College Cork, Cork, Ireland;

    Department of Microbiology, University College Cork, Cork, Ireland,Food for Health Ireland, University College Cork, Cork, Ireland;

    Department of Microbiology, University College Cork, Cork, Ireland,Food for Health Ireland, University College Cork, Cork, Ireland;

    Department of Microbiology, University College Cork, Cork, Ireland,Food for Health Ireland, University College Cork, Cork, Ireland;

    Department of Microbiology, University College Cork, Cork, Ireland,Food for Health Ireland, University College Cork, Cork, Ireland;

    Department of Microbiology, University College Cork, Cork, Ireland,Food for Health Ireland, University College Cork, Cork, Ireland,Alimentary Pharmabiotic Centre, University College Cork, Cork, Ireland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Cronobacter sakazakii; Osmotic stress; Salt; Dehydration; Genes; Regulation; Transposon mutagenesis;

    机译:阪崎肠杆菌渗透压盐;脱水基因;规;转座子诱变;

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