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Updated: Aug 24, 2025

Population and Single-Cell Analysis of Antibiotic Persistence in Escherichia coli
Published on: March 24, 2023
Aged microplastics enhance their interaction with ciprofloxacin and joint toxicity on Escherichia coli
Li-Juan Feng1, Kai-Xin Zhang2, Zong-Lin Shi3
1College of Geography and Environment, Shandong Normal University, Jinan, Shandong 250014, PR China; Shandong Key Laboratory of Water Pollution Control and Resource Reuse, School of Environmental Science and Engineering, Shandong University, Qingdao, Shandong 266237, PR China; Hebei Key Laboratory of Wetland Ecology and Conservation, Hengshui, Hebei 053000, PR China.
Abstract:
Microplastics (MPs) in natural environments undergo complex aging processes, changing their interactions with coexisting antibiotics, and posing unpredictable ecological risks. However, the joint toxicity of aged MPs (aMPs) and antibiotics to bacteria, especially at the molecular level, is unclear. In this study, non-thermal plasma technology was used to simultaneously simulate various radical oxidation and physical reactions that occur naturally in the environment, breaking the limitation of simple aging process in laboratory aging technologies. After aging, we investigated the altered properties of aMPs, their interactions with ciprofloxacin (CIP), and the molecular responses of E. coli exposed to pristine MPs (13.5 mg/L), aMPs (13.5 mg/L), and CIP (2 μg/L) individually or simultaneously. aMPs bound far more CIP to their surfaces than pristine MPs, especially in freshwater ecosystems. Notably, the growth of E. coli exposed to aMPs alone was inhibited, whereas pristine MPs exposure didn't affect the growth of E. coli. Moreover, the most differentially expressed genes in E. coli were induced by the coexposure of aMPs and CIP. Although E. coli depended on chemotaxis to improve its flagellar rotation and escaped the stress of pollutants, the coexposure of aMPs and CIP still caused cell membrane damage, oxidative stress, obstruction of DNA replication, and osmotic imbalance in E. coli. This study filled the knowledge gap between the toxicity of aMPs and pristine MPs coexisting with antibiotics at the transcription level, helping in the accurate assessment of the potential risks of MPs to the environment.
Insights
Aged microplastics (aMPs) bind more antibiotics than pristine MPs, inhibiting bacterial growth and altering gene expression. This research clarifies the molecular risks of aged microplastics and antibiotic coexposure in aquatic environments.
Area of Science:
- Environmental Science
- Microbiology
- Toxicology
Background:
- Microplastics (MPs) undergo environmental aging, altering their properties and interactions with coexisting pollutants like antibiotics.
- The combined toxicity of aged MPs (aMPs) and antibiotics on bacteria at the molecular level remains poorly understood, posing ecological risks.
Purpose of the Study:
- To investigate the altered properties of aMPs and their interaction with ciprofloxacin (CIP).
- To determine the molecular responses of *E. coli* to pristine MPs, aMPs, and CIP, individually and simultaneously.
Main Methods:
- Non-thermal plasma technology was employed to simulate natural aging processes of MPs.
- The study analyzed changes in aMP properties, CIP binding, and gene expression in *E. coli* using transcriptomic analysis.
Main Results:
- aMPs exhibited significantly higher binding affinity for CIP compared to pristine MPs, particularly in freshwater.
- Exposure to aMPs alone inhibited *E. coli* growth, while pristine MPs had no effect.
- Coexposure to aMPs and CIP induced the most significant differential gene expression in *E. coli*, leading to cell membrane damage, oxidative stress, and impaired DNA replication.
Conclusions:
- Aged microplastics pose greater risks than pristine MPs when interacting with antibiotics.
- The study elucidates the molecular mechanisms underlying the joint toxicity of aMPs and antibiotics, highlighting risks to bacterial populations and ecosystem health.
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