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Updated: May 6, 2026

Concurrent Quantification of Cellular and Extracellular Components of Biofilms
Published on: December 10, 2013
Comprehensive assessment of chlorination disinfection on microplastic-associated biofilms
Hien Thi Nguyen1, Woodan Choi2, Seongpil Jeong2
1Center for Water Cycle Research, Korea Institute of Science and Technology, Seoul 02792, Republic of Korea; Faculty of Environment and Labour Safety, Ton Duc Thang University, Ho Chi Minh City, Vietnam.
Abstract:
Chlorination on microplastic (MP) biofilms was comprehensively investigated with respect to disinfection efficiency, morphology, and core microbiome. The experiments were performed under various conditions: i) MP particles; polypropylene (PP) and polystyrene (PS), ii) MP biofilms; Escherichia coli for single-species and river water microorganisms for multiple-species, iii) different chlorine concentrations, and iv) different chlorine exposure periods. As a result, chlorination effectively inactivated the MP biofilm microorganisms. The disinfection efficiency increased with increasing the free chlorination concentration and exposure periods for both single- and multiple-species MP biofilms. The multiple-species MP biofilms were inactivated 1.3-6.0 times less than single-species MP biofilms. In addition, the PP-MP biofilms were more vulnerable to chlorination than the PS-MP biofilms. Morphology analysis verified that chlorination detached most MP biofilms, while a small part still remained. Interestingly, chlorination strongly changed the biofilm microbiome on MPs; the relative abundance of some microbes increased after the chlorination, suggesting they could be regarded as chlorine-resistant bacteria. Some potential pathogens were also remained on the MP particles after the chlorination. Notably, chlorination was effective in inactivating the MP biofilms. Further research should be performed to evaluate the impacts of residual MP biofilms on the environment.
Insights
Chlorination effectively inactivates microplastic (MP) biofilms, with efficiency depending on chlorine levels and exposure time. Different plastic types and biofilm compositions affect disinfection outcomes.
Area of Science:
- Environmental Science
- Microbiology
- Water Treatment
Background:
- Microplastic (MP) biofilms pose environmental risks.
- Understanding disinfection efficacy on MP biofilms is crucial for water safety.
Purpose of the Study:
- To investigate chlorination's impact on MP biofilm disinfection.
- To assess effects on biofilm morphology and microbial communities.
- To compare disinfection across different MP types and biofilm compositions.
Main Methods:
- Experiments used polypropylene (PP) and polystyrene (PS) MPs.
- Biofilms were formed by single-species (Escherichia coli) and multi-species (river water) microorganisms.
- Chlorine concentrations and exposure times were varied.
- Disinfection efficiency, biofilm morphology, and microbiome changes were analyzed.
Main Results:
- Chlorination effectively inactivated MP biofilm microorganisms.
- Higher chlorine concentrations and longer exposure increased disinfection efficiency.
- Multi-species biofilms were 1.3-6.0 times less inactivated than single-species biofilms.
- PP-MP biofilms were more susceptible to chlorination than PS-MP biofilms.
- Chlorination altered biofilm structure and microbiome, revealing potential chlorine-resistant bacteria and remaining pathogens.
Conclusions:
- Chlorination is a viable method for inactivating MP biofilms.
- Disinfection effectiveness varies with MP material and biofilm complexity.
- Further research is needed on residual MP biofilm impacts.
Related Concept Videos
Biofilms
Microbial Bioremediation of Pesticides
Microbial Bioremediation of Plastics

