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Published on: June 6, 2017
Dynamic evolution of microbial colonization on indoor microplastics: polymer diversity-driven co-occurrence networks
Liyuan Peng1, Na Zheng1, YunYang Li1
1Key Laboratory of Groundwater Resources and Environment of the Ministry of Education, Jilin University, Changchun 130012, China; College of New Energy and Environment, Jilin University, Changchun 130012, China.
Abstract:
Microplastics (MPs), as ubiquitous contaminants in indoor environments, pose health risks to humans through microbial colonization on their surfaces. This study systematically investigated the influence of MPs diversity (polymer type, aging, and morphological characteristics) on microbial colonization processes by simulating long-term exposure (90 days) in indoor air environments. Results demonstrate that aging significantly modulates initial microbial attachment by altering MPs surface properties (Brunauer-Emmett-Teller (BET) surface area increased by 32.5%-60.1%, carbonyl index elevated 0.78-2.12-fold), with biodegradable polylactide (PLA) promoting biofilm formation due to its degradation characteristics (C/O ratio increased by 20.3%). Genus-level co-occurrence network analysis revealed that symbiotic networks on MPs surfaces were unstable and fragile, being influenced by polymer type, colonization duration, and MPs diversity, thereby facilitating potential pathogenic bacteria transmission (e.g., Burkholderia, Stenotrophomonas). Mixed MPs exhibited enhanced adaptability with reduced modularity, where potential pathogenic bacteria became keystone nodes connecting modules. Furthermore, surface concentrations of phthalate esters (PAEs) on MPs increased significantly with exposure time (dibutyl phthalate (DBP), diethyl phthalate (DEP), etc. rose 4.1-40.2 fold). This study elucidates the synergistic "surface properties-co-occurrence network-potential pathogenic bacteria " mechanism through which indoor MPs amplify health risks, providing critical scientific basis for developing material property-based risk stratification strategies (e.g., classifying MPs mixtures as high-risk combinations).
Insights
Indoor microplastics (MPs) harbor diverse microbes, increasing health risks. This study shows MPs aging and type significantly alter surface properties, promoting pathogenic bacteria colonization and transmission, especially in mixed MP environments.
Area of Science:
- Environmental Science
- Microbiology
- Materials Science
Background:
- Microplastics (MPs) are pervasive indoor contaminants.
- Microbial colonization on MPs poses potential human health risks.
- Understanding MP diversity's impact on microbial communities is crucial.
Purpose of the Study:
- To investigate how microplastic diversity (polymer type, aging, morphology) influences microbial colonization.
- To simulate long-term (90-day) exposure in indoor air environments.
- To elucidate the mechanisms linking MPs, microbial networks, and health risks.
Main Methods:
- Simulated long-term indoor air exposure of various MPs.
- Analysis of MPs surface properties (BET surface area, carbonyl index, C/O ratio).
- Genus-level co-occurrence network analysis and phthalate ester (PAE) quantification.
Main Results:
- Aging altered MPs surface properties, enhancing microbial attachment and biofilm formation, particularly on biodegradable polylactide (PLA).
- Microbial co-occurrence networks on MPs were unstable, facilitating pathogenic bacteria (e.g., Burkholderia, Stenotrophomonas) transmission.
- Mixed MPs showed increased adaptability, with pathogens acting as keystone nodes.
- Surface PAE concentrations increased significantly with exposure time.
Conclusions:
- MPs diversity, aging, and surface properties synergistically amplify health risks through microbial colonization and pathogenic bacteria transmission.
- Unstable microbial networks on MPs create pathways for pathogen spread indoors.
- Material property-based risk stratification is needed, identifying MP mixtures as high-risk combinations.
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