首页> 外文期刊>European Journal of Medicinal Chemistry: Chimie Therapeutique >Transcriptomic analysis reveals resistance mechanisms of Klebsiella michiganensis to copper toxicity under acidic conditions
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Transcriptomic analysis reveals resistance mechanisms of Klebsiella michiganensis to copper toxicity under acidic conditions

机译:转录组分析揭示了酸性条件下Klebsiella michiganensis对铜毒性的抗性机制

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The aim of this study was to elucidate the effect of pH on bacterial resistance mechanisms to copper (Cu) stress by genomic and transcriptomic analysis. Klebsiella michiganensis cells were exposed to 0.5 mM CuCl2 at pH 4 and 5. Lower pH (pH 4) strongly inhibited K. michiganensis growth, while Cu stress and higher pH (pH 5) induced Cu precipitation in the medium. Transcriptomic analyses indicated that two groups of genes related to quorum sensing (QS) systems (lsrABCDFGKR) and type II secretion systems (T2SS) (gspCDEFGHIJKLM) were significantly up-regulated at pH 4 only. These results suggest that T2SS may be induced and controlled by QS, thereby contributing to the formation of extracellular polymeric substances (EPS) and the secretion of proteins to prevent Cu ions from entering cells. Six Cu resistance genes (cusABF, copA, cueO, and gene05308) were more significantly up-regulated at pH 4 than at pH 5. In addition, the relative expression (log(2)|FC=) of the sulfur assimilation genes cysHJIK was relatively higher at pH 4 than at pH 5, while the gene encoding organic sulfur metabolism, tauB, was also significantly up-regulated at only pH 4. These results indicate that the Cu efflux system can remove intracellular Cu ions from cells, and that the sulfur assimilation system is related to the detoxification of Cu ions. Furthermore, increased free Cu ions at lower pH (4) could induce communication signals among cells, thereby stimulating the response of T2SS-related genes in K. michiganensis to tolerate Cu stress. Consequently, the resistance of K. michiganensis to Cu stress is a multisystem collaborative process composed of intracellular and extracellular components.
机译:本研究的目的是通过基因组和转录组学分析,阐明pH对细菌对铜(Cu)胁迫抗性机制的影响。将米氏克雷伯氏菌细胞暴露于pH值为4和5的0.5 mM CuCl2中。较低的pH值(pH 4)强烈抑制了米氏钾藻的生长,而铜胁迫和较高的pH值(pH 5)诱导了培养基中的铜沉淀。转录组学分析表明,与群体感应(QS)系统(lsrABCDFGKR)和II型分泌系统(T2SS)(gspCDEFGHIJKLM)相关的两组基因仅在pH值为4时显著上调。这些结果表明,T2SS可能由QS诱导和控制,从而促进细胞外聚合物(EPS)的形成和蛋白质的分泌,从而阻止铜离子进入细胞。六个铜抗性基因(cusABF、copA、cueO和gene05308)在pH值为4时比在pH值为5时更显著上调。此外,硫同化基因cysHJIK的相对表达(log(2)| FC=)在pH值为4时相对高于pH值为5时,而编码有机硫代谢的基因tauB仅在pH值为4时也显著上调。这些结果表明,铜外排系统可以去除细胞内的铜离子,硫同化系统与铜离子的解毒有关。此外,在较低的pH(4)下,增加游离铜离子可以诱导细胞间的通讯信号,从而刺激米氏K.michiganensis中T2SS相关基因对铜胁迫的反应。因此,米氏K.michiganensis对铜胁迫的抗性是一个由细胞内和细胞外成分组成的多系统协同过程。

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