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在鲍曼不动杆菌中,adeR 的插入序列中断和外排泵以及gyrA 和 parC 突变导致环丙沙星耐药。

Insertion sequence disruption of adeR and ciprofloxacin resistance caused by efflux pumps and gyrA and parC mutations in Acinetobacter baumannii.

机构信息

Medical Microbiology, The University of Edinburgh, Chancellor's Building, 49 Little France Crescent, Edinburgh EH16 4SB, UK.

出版信息

Int J Antimicrob Agents. 2013 Feb;41(2):117-21. doi: 10.1016/j.ijantimicag.2012.08.012. Epub 2012 Dec 3.

DOI:10.1016/j.ijantimicag.2012.08.012
PMID:23217848
Abstract

Acinetobacter baumannii is a pathogenic bacterium responsible for a wide range of infections in immunocompromised patients. This study examined the role of insertional inactivation of the adeR gene and its effect on adeABC gene expression along with characterisation of the gyrA and parC mutations involved in ciprofloxacin resistance in three A. baumannii clinical isolates and their derivatives. Primers designed for the detection of adeSRABC detected the presence of ISAba16, which disrupted the adeR gene in strain Ab12M, and ISAba1, which disrupted the same gene in strains Ab18 and Ab209. A second copy of ISAba1 was detected upstream of the adeA gene in Ab209 leading to AdeABC pump expression. AdeIJK pump expression was seen in all of the isolates but was not as significant as AdeABC expression. Minimum inhibitory concentrations of ciprofloxacin were ≥256 mg/L for all of the isolates and a decrease of ≥8-fold was seen following addition of the efflux pump inhibitor 1-(1-naphthylmethyl)-piperazine. Fluorometric analysis also demonstrated active efflux, with upregulation of adeIJK and some genes of the adeABC operon in some strains. Sequencing of the quinolone resistance-determining region of the gyrA and parC genes revealed a Ser83→Leu change in the gyrA gene and a novel change of Ser80→Trp in the parC gene of Ab12, Ab12M and Ab209; in Ab18 there was a Ser80→Leu change in parC. This study shows the multifactorial contribution of different mechanisms in A. baumannii leading to ciprofloxacin resistance.

摘要

鲍曼不动杆菌是一种致病性细菌,可导致免疫功能低下患者发生多种感染。本研究探讨了插入失活 adeR 基因的作用及其对 adeABC 基因表达的影响,并对 3 株鲍曼不动杆菌临床分离株及其衍生株中涉及环丙沙星耐药的 gyrA 和 parC 突变进行了特征分析。设计用于检测 adeSRABC 的引物检测到 ISAba16 的存在,该序列破坏了 Ab12M 菌株中的 adeR 基因,ISAba1 破坏了 Ab18 和 Ab209 菌株中的相同基因。在 Ab209 菌株的 adeA 基因上游检测到第二个 ISAba1 拷贝,导致 AdeABC 泵的表达。所有分离株均可见 AdeIJK 泵的表达,但不如 AdeABC 表达显著。所有分离株的环丙沙星最小抑菌浓度均≥256mg/L,加入外排泵抑制剂 1-(1-萘基甲基)-哌嗪后,环丙沙星最小抑菌浓度降低≥8 倍。荧光分析也表明存在主动外排,一些菌株的 AdeIJK 和 adeABC 操纵子的一些基因上调。gyrA 和 parC 基因喹诺酮耐药决定区的测序显示 Ab12、Ab12M 和 Ab209 中的 gyrA 基因发生了 Ser83→Leu 改变,parC 基因发生了 Ser80→Trp 改变;Ab18 中的 parC 基因发生了 Ser80→Leu 改变。本研究表明,不同机制在鲍曼不动杆菌中导致环丙沙星耐药的多因素贡献。

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