Bio-based microplastics as vectors of resistance genes under combined pressure of antibiotics and heavy metals in marine environment.

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Main Authors: Chu, Wang-Chao, Wu, Yu-Xin, Liu, Fei-Fei
Format: Artículo científico
Language:en
Published: Journal of hazardous materials 2025
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author Chu, Wang-Chao
Wu, Yu-Xin
Liu, Fei-Fei
author_facet Chu, Wang-Chao
Wu, Yu-Xin
Liu, Fei-Fei
Chu, Wang-Chao
Wu, Yu-Xin
Liu, Fei-Fei
collection PubMed - marine biology
contents Bio-based microplastics as vectors of resistance genes under combined pressure of antibiotics and heavy metals in marine environment. Chu, Wang-Chao Wu, Yu-Xin Liu, Fei-Fei Microplastics Biofilms Anti-Bacterial Agents Water Pollutants, Chemical Metals, Heavy Bacteria Drug Resistance, Bacterial Polyesters Gene Transfer, Horizontal Zinc Genes, Bacterial Polyethylene In this study, we investigated the characteristics of biofilm formation on petroleum-based polyethylene (PE) and bio-based polylactic acid (PLA) microplastics, the structure of bacterial communities, and the enrichment and transfer of related resistance genes in marine environments. We examined these factors under varying concentrations of the heavy metal zinc (Zn) and the sulfadiazine (SDZ), both individually and in combination, and analyzed the underlying mechanisms and interrelationships. The results indicated that PE surface was more conducive to bacterial colonization and biofilm stabilization. Conversely, the prolonged combined exposure to SDZ and Zn promoted the growth of PLA biofilm. Bacterial communities within the biofilms responded to external stresses through oxidative stress responses, alterations in extracellular polymeric substances, shifts in the relative abundance of specific microbial taxa, and adjustments in metabolic pathways. These adaptations positively influenced the enrichment and transfer of resistance genes. Under experimental conditions, PLA microplastics were more likely than PE to serve as carriers of resistance genes in marine environments. Zn promoted the spread of resistance genes by enhancing horizontal gene transfer (HGT) in the short term, and in the later stages, shaped microbial community composition and co-selected with SDZ, thereby influencing the distribution and dissemination of resistance genes.
format Artículo científico
id pubmed_40907314
institution PubMed
language en
publishDate 2025
publisher Journal of hazardous materials
record_format pubmed
spellingShingle Bio-based microplastics as vectors of resistance genes under combined pressure of antibiotics and heavy metals in marine environment.
Chu, Wang-Chao
Wu, Yu-Xin
Liu, Fei-Fei
Microplastics
Biofilms
Anti-Bacterial Agents
Water Pollutants, Chemical
Metals, Heavy
Bacteria
Drug Resistance, Bacterial
Polyesters
Gene Transfer, Horizontal
Zinc
Genes, Bacterial
Polyethylene
Bio-based microplastics as vectors of resistance genes under combined pressure of antibiotics and heavy metals in marine environment. Chu, Wang-Chao Wu, Yu-Xin Liu, Fei-Fei Microplastics Biofilms Anti-Bacterial Agents Water Pollutants, Chemical Metals, Heavy Bacteria Drug Resistance, Bacterial Polyesters Gene Transfer, Horizontal Zinc Genes, Bacterial Polyethylene In this study, we investigated the characteristics of biofilm formation on petroleum-based polyethylene (PE) and bio-based polylactic acid (PLA) microplastics, the structure of bacterial communities, and the enrichment and transfer of related resistance genes in marine environments. We examined these factors under varying concentrations of the heavy metal zinc (Zn) and the sulfadiazine (SDZ), both individually and in combination, and analyzed the underlying mechanisms and interrelationships. The results indicated that PE surface was more conducive to bacterial colonization and biofilm stabilization. Conversely, the prolonged combined exposure to SDZ and Zn promoted the growth of PLA biofilm. Bacterial communities within the biofilms responded to external stresses through oxidative stress responses, alterations in extracellular polymeric substances, shifts in the relative abundance of specific microbial taxa, and adjustments in metabolic pathways. These adaptations positively influenced the enrichment and transfer of resistance genes. Under experimental conditions, PLA microplastics were more likely than PE to serve as carriers of resistance genes in marine environments. Zn promoted the spread of resistance genes by enhancing horizontal gene transfer (HGT) in the short term, and in the later stages, shaped microbial community composition and co-selected with SDZ, thereby influencing the distribution and dissemination of resistance genes.
title Bio-based microplastics as vectors of resistance genes under combined pressure of antibiotics and heavy metals in marine environment.
topic Microplastics
Biofilms
Anti-Bacterial Agents
Water Pollutants, Chemical
Metals, Heavy
Bacteria
Drug Resistance, Bacterial
Polyesters
Gene Transfer, Horizontal
Zinc
Genes, Bacterial
Polyethylene
url https://pubmed.ncbi.nlm.nih.gov/40907314/