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谷氨酸功能化氧化锌纳米粒子及其与硫代卡巴肼的共轭物改变了多重耐药株中外排泵基因的表达。

Functionalization of ZnO Nanoparticles by Glutamic Acid and Conjugation with Thiosemicarbazide Alters Expression of Efflux Pump Genes in Multiple Drug-Resistant Strains.

机构信息

Department of Biology, Rasht Branch, Islamic Azad University, Rasht, Iran.

Department of Biology, Faculty of Science, University of Guilan, Rasht, Iran.

出版信息

Microb Drug Resist. 2019 Sep;25(7):966-974. doi: 10.1089/mdr.2018.0304. Epub 2019 Mar 11.

DOI:10.1089/mdr.2018.0304
PMID:30855211
Abstract

Efflux-mediated drug resistance in bacterial strains is regarded as a major cause of drug resistance. In this study, we aimed to evaluate the expression of some major facilitator superfamily class efflux pump genes (EPGs) in the presence of ZnO nanoparticles (NPs) conjugated to thiosemicarbazide (TSC) under amine functionalization by glutamic acid (ZnO@Glu-TSC) as well as ciprofloxacin (CIP) among multiple drug-resistant . Synthesized NPs were characterized by ultraviolet-visible spectroscopy, X-ray diffraction pattern, and transmission electron microscopy. Antibiogram and ethidium bromide agar cartwheel method were used to determine the efflux-mediated multidrug-resistant phenotype of clinical strains. Then, expression of EPGs, including , , , and among the strains, exposed to ZnO@Glu-TSC and CIP was evaluated using quantitative real-time PCR (qPCR). According to the results, the strains resistant to CIP showed minimum inhibitory concentration (MIC) values ranging from 256 to 1,024 μg/mL, while ZnO@Glu-TSC NPs showed MICs from 8 to 256 μg/mL against bacterial strains, which indicates stronger antibacterial activity of NPs (2-8-fold) compared to CIP. ZnO@Glu-TSC NPs showed a good bacterial inhibitory potential with average inhibition zones of 11, 15, and 20 mm for concentrations of 50, 100, and 150 μg/mL, respectively. Moreover, simultaneous use of ZnO@Glu-TSC NPs (1/2 MIC) in combination with CIP (1/2 MIC) significantly reduced the expression of , , and by 5.4-, 3.8-, 2.1-, and 3.4-fold, respectively, compared to the CIP alone. Therefore, ZnO@Glu-TSC NPs with their potent antimicrobial effects could be used as an antimicrobial agent against for preventive and/or therapeutic approaches.

摘要

细菌中存在的外排泵介导的耐药性被认为是耐药性的主要原因。在这项研究中,我们旨在评估在谷氨酸(Glu)胺功能化下,与硫代氨基脲(TSC)偶联的氧化锌纳米粒子(NPs)(ZnO@Glu-TSC)以及环丙沙星(CIP)存在下,一些主要易化超家族类外排泵基因(EPGs)的表达,针对多药耐药菌。合成的 NPs 通过紫外-可见光谱、X 射线衍射图谱和透射电子显微镜进行了表征。药敏试验和溴化乙锭琼脂车轮法用于确定临床菌株中外排泵介导的多药耐药表型。然后,使用定量实时 PCR(qPCR)评估暴露于 ZnO@Glu-TSC 和 CIP 的菌株中外排泵基因(包括 、 、 、 )的表达。结果表明,对 CIP 耐药的菌株的最低抑菌浓度(MIC)值范围为 256 至 1024μg/ml,而 ZnO@Glu-TSC NPs 对细菌菌株的 MIC 值范围为 8 至 256μg/ml,这表明 NPs 的抗菌活性更强(2-8 倍)与 CIP 相比。ZnO@Glu-TSC NPs 表现出良好的抑菌潜力,浓度为 50、100 和 150μg/ml 时的平均抑菌圈直径分别为 11、15 和 20mm。此外,与单独使用 CIP 相比,ZnO@Glu-TSC NPs(1/2 MIC)与 CIP(1/2 MIC)同时使用可使 、 、 和 的表达分别降低 5.4 倍、3.8 倍、2.1 倍和 3.4 倍。因此,具有强大抗菌作用的 ZnO@Glu-TSC NPs 可作为预防和/或治疗 的抗菌剂。

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