Impact of veterinary antibiotics on plasmid-encoded antibiotic resistance transfer

林可霉素 氟苯尼考 微生物学 土霉素 抗生素 质粒 林可酰胺 新霉素 恩诺沙星 硫木林 生物 抗生素耐药性 大肠杆菌 基因 环丙沙星 生物化学
作者
Otávio Hallal Ferreira Raro,Laurent Poirel,Maurine Tocco,Patrice Nordmann
出处
期刊:Journal of Antimicrobial Chemotherapy [Oxford University Press]
卷期号:78 (9): 2209-2216 被引量:13
标识
DOI:10.1093/jac/dkad226
摘要

Abstract Objectives Resistance genes can be genetically transmitted and exchanged between commensal and pathogenic bacterial species, and in different compartments including the environment, or human and animal guts (One Health concept). The aim of our study was to evaluate whether subdosages of antibiotics administered in veterinary medicine could enhance plasmid transfer and, consequently, resistance gene exchange in gut microbiota. Methods Conjugation frequencies were determined with Escherichia coli strains carrying IncL- (blaOXA-48) or IncI1-type (blaCTX-M-1) plasmids subjected to a series of subinhibitory concentrations of antibiotics used in veterinary medicine, namely amoxicillin, ceftiofur, apramycin, neomycin, enrofloxacin, colistin, erythromycin, florfenicol, lincomycin, oxytetracycline, sulfamethazine, tiamulin and the ionophore narasin. Treatments with subinhibitory dosages were performed with and without supplementation with the antioxidant edaravone, known as a mitigator of the inducibility effect of several antibiotics on plasmid conjugation frequency (PCF). Expression of SOS-response associated genes and fluorescence-based reactive oxygen species (ROS) detection assays were performed to evaluate the stress oxidative response. Results Increased PCFs were observed for both strains when treating with florfenicol and oxytetracycline. Increased expression of the SOS-associated recA gene also occurred concomitantly, as well as increased ROS production. Addition of edaravone to the treatments reduced their PCF and also showed a decreasing effect on SOS and ROS responses for both plasmid scaffolds. Conclusions We showed here that some antibiotics used in veterinary medicine may induce transfer of plasmid-encoded resistance and therefore may contribute to the worldwide spread of antibiotic resistance genes.
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