Related Experiment Video
Updated: Sep 11, 2025

Quantification of Plasmid-Mediated Antibiotic Resistance in an Experimental Evolution Approach
Published on: December 14, 2019
Reshaping the antibiotic resistance genes in plastisphere upon deposition in sediment-water interface: Dynamic
Yufang Chen1, Shiqi Liu1, Tian Ouyang1
1State Key Laboratory of Water Cycle and Water Security, Hohai University, Nanjing 210098, China; College of Environment, Hohai University, Nanjing 210098, China.
Abstract:
Microplastics (MPs) could provide unique niches for microbiota and aggravate their gravity, leading to vertical travel from waters to sediments. Although the plastisphere functions as hotspots for antibiotic resistance genes (ARGs) enrichment, the dynamic evolution and mechanisms of ARGs remain poorly understood when MPs deposited at sediment-water interface (SWI). Herein, this study investigated the dynamic response and reshaping mechanism of ARGs in plastisphere across SWI. It reveals that in deep waters, the ARGs abundance in biodegradable polylactic acid (PLA) plastisphere was higher than non-biodegradable polyethylene terephthalate (PET). However, when plastisphere deposited at SWI from deep waters, the ARGs abundance in PET plastisphere was increased by 45.71-65.10 %, while that decreased by 52.15-53.25 % in PLA. The plastisphere across SWI possessed higher species richness and diversity, more complex interactions, and more key species regulating ARGs compared to deep waters. During sedimentation, the horizontal gene transfer potential was enhanced in PET plastisphere but inhibited PLA. In addition, the function response related to oxidative stress response, cell membrane permeability, and energy metabolism may be underlying mechanisms in regulating ARGs propagation during the travel of plastisphere across SWI. This study highlights the critical roles of SWI in regulating the ARGs propagation in the traveling plastisphere.
Insights
Microplastics (MPs) create unique habitats for microbes, influencing antibiotic resistance genes (ARGs). The sediment-water interface (SWI) significantly alters ARG abundance and transfer in MP-associated microbial communities.
Area of Science:
- Environmental Microbiology
- Environmental Chemistry
- Ecotoxicology
Background:
- Microplastics (MPs) create unique microbial habitats, known as the plastisphere, which can enrich antibiotic resistance genes (ARGs).
- The behavior and evolution of ARGs within the plastisphere during MP transport, especially at the sediment-water interface (SWI), are not well understood.
Purpose of the Study:
- To investigate the dynamic changes and underlying mechanisms of ARGs in plastisphere communities as MPs move across the SWI.
- To compare the ARG dynamics in biodegradable polylactic acid (PLA) and non-biodegradable polyethylene terephthalate (PET) plastispheres.
Main Methods:
- Comparative analysis of ARG abundance and diversity in PLA and PET plastispheres in deep water and at the SWI.
- Assessment of microbial community structure, interactions, and horizontal gene transfer potential.
- Investigation of functional responses, including oxidative stress and metabolic pathways.
Main Results:
- In deep water, PLA plastispheres showed higher ARG abundance than PET.
- At the SWI, PET plastispheres exhibited a significant increase in ARGs (45.71-65.10%), while PLA plastispheres showed a decrease (52.15-53.25%).
- Plastispheres at the SWI had higher species richness, diversity, and more complex microbial interactions, with distinct impacts on horizontal gene transfer for PET and PLA.
Conclusions:
- The SWI plays a critical role in regulating ARG propagation within traveling plastispheres.
- Mechanisms such as oxidative stress response, cell membrane permeability, and energy metabolism are involved in controlling ARG proliferation.
- MP type (biodegradable vs. non-biodegradable) significantly influences ARG dynamics during sedimentation.
Related Concept Videos
Development of Antibiotic Resistance
Antibiotic Selection
Genomic DNA in Prokaryotes
Genomic Diversity in Bacteria
Although bacterial genomes are much...
Plasmids
Conjugation
Transformation

