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Molecular mechanisms of fosfomycin resistance in clinical isolates of Escherichia coli

机译:大肠杆菌临床分离株中磷霉素耐药的分子机制

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摘要

To clarify the molecular mechanisms of fosfomycin resistance in clinical isolates of Escherichia coli, the murA, glpT, uhpT, uhpA, ptsI and cyaA genes were sequenced from six fosfomycin-resistant isolates. Two strains were found to harbour a mutation in the murA gene that leads to an amino acid substitution (Asp369Asn or Leu370Ile) in the target protein. The remaining four strains carried specific mutations in the glpT gene; one strain possessed a mutation and the other three strains possessed truncated versions of the GlpT transporter owing either to the presence of insertion sequences or a deletion in the coding region of the gene. Two of the strains with truncated GlpT had also lost the entire uhpT gene, which encodes another fosfomycin transporter. Uptake of specific substrates for the transporters was either totally blocked or reduced in strains possessing truncated forms of GlpT or those lacking the uhpT gene. Escherichia coli strains expressing an amino-acid-substituted MurA were at least eight-fold more resistant to fosfomycin than the strain overproducing wild-type MurA. In conclusion, novel amino acid substitutions in MurA or the loss of function of transporters were identified as mechanisms of fosfomycin resistance in clinical isolates of E. coli. (C) 2009 Elsevier B.V. and the International Society of Chemotherapy. All rights reserved.
机译:为了阐明大肠埃希菌临床分离株中对磷霉素耐药的分子机制,从六种对磷霉素耐药的分离物中分离了murA,glpT,uhpT,uhpA,ptsI和cyaA基因。发现两个菌株在murA基因中带有一个突变,该突变导致靶蛋白中的氨基酸取代(Asp369Asn或Leu370Ile)。其余四个菌株在glpT基因中带有特定的突变。由于存在插入序列或基因编码区的缺失,一种菌株具有突变,而其他三种菌株具有截短的GlpT转运蛋白。截短的GlpT的两个菌株也丢失了整个uhpT基因,该基因编码另一个磷霉素转运蛋白。在具有截短形式的GlpT的菌株或缺乏uhpT基因的菌株中,转运蛋白对特定底物的摄取被完全阻断或减少。表达氨基酸取代的MurA的大肠杆菌菌株对磷霉素的抗性比过量生产野生型MurA的菌株至少高八倍。总之,在大肠杆菌的临床分离株中,MurA中的新氨基酸取代或转运蛋白功能丧失被确定为对磷霉素的耐药性机制。 (C)2009 Elsevier B.V.和国际化学疗法学会。版权所有。

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