四环素
质粒
RPO
泰特
微生物学
抗菌剂
生物
大肠杆菌
基因
副溶血性弧菌
水平基因转移
抗生素耐药性
抑制因子lexA
基因盒
细菌
遗传学
转录因子
发起人
抗生素
基因表达
整合子
抑制因子
系统发育学
作者
Haibo Zhou,Zhaoxin Lu,Xinmei Liu,Xiaomei Bie,Feng Xue,Sijie Tang,Qiushi Feng,Yiyu Cheng,Jun Yang
出处
期刊:Foods
[Multidisciplinary Digital Publishing Institute]
日期:2024-06-06
卷期号:13 (11): 1787-1787
被引量:17
标识
DOI:10.3390/foods13111787
摘要
The ubiquitous presence of antimicrobial-resistant organisms and antimicrobial resistance genes (ARGs) constitutes a major threat to global public safety. Tetracycline (TET) is a common antimicrobial agent that inhibits bacterial growth and is frequently detected in aquatic environments. Although TET may display coselection for resistance, limited knowledge is available on whether and how it might influence plasmid-mediated conjugation. Subinhibitory concentrations (3.9-250 ng/mL) of TET promoted horizontal gene transfer (HGT) via the mobilizable plasmid pVP52-1 from the donor Vibrio parahaemolyticus NJIFDCVp52 to the recipient Escherichia coli EC600 by 1.47- to 3.19-fold. The transcription levels of tetracycline resistance genes [tetA, tetR(A)], conjugation-related genes (traA, traD), outer membrane protein genes (ompA, ompK, ompV), reactive oxygen species (ROS)-related genes (oxyR, rpoS), autoinducer-2 (AI-2) synthesis gene (luxS), and SOS-related genes (lexA, recA) in the donor and recipient were significantly increased. Furthermore, the overproduced intracellular ROS generation and increased cell membrane permeability under TET exposure stimulated the conjugative transfer of ARGs. Overall, this study provides important insights into the contributions of TET to the spread of antimicrobial resistance.
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