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Determinants of microbial colonization on microplastics through wastewater treatment processes: The role of polymer
Jin-Kyung Hong1, Tae Kwon Lee1, Ilho Kim2
1Department of Environmental and Energy Engineering, Yonsei University, Wonju 26493, Republic of Korea.
Abstract:
This study examines the microbial colonization characteristics of microplastics (MPs) in wastewater treatment plants (WWTPs), focusing on polymer types (High-Density Polyethylene (HDPE) and Polyethylene Terephthalate (PET)) and various stages of wastewater treatments. Through individual and sequential deployment approaches, the research aimed to identify the determinants of bacterial colonization on MPs, whether they were introduced at each stage of treatment individually or in sequence from primary to tertiary stages. The study revealed that the stage of wastewater treatment profoundly influenced bacterial colonization on the polymer types MPs, with bacterial attachment being largely niche-specific. HDPE showed increased sensitivity to wastewater composition, leading to selective biofilm formation. For instance, in HDPE, Firmicutes accounted for 25.1 ± 0.04 % during primary treatment, while Alphaproteobacteria increased significantly in the tertiary treatment to 19.8 ± 0.1 %. Conversely, PET exhibited a stochastic pattern of bacterial colonization due to differences in surface hydrophilicity. Additionally, in sequential deployments, a notable shift towards stochastic bacterial attachment on MPs, particularly with HDPE was observed. The Shannon diversity values for MP biofilms were consistently higher than those for wastewater across all stages, with PET showing an increase in diversity in sequential deployments (Shannon diversity: 5.01 ± 0.03 for tertiary stage). These findings highlight the critical role of MPs as carriers of diverse bacteria, emphasizing the necessity for strategies to mitigate their impact in WWTPs. This study presents a significant advancement in our understanding of the interactions between MPs and microbial populations in WWTP environments.
Insights
Microplastics (MPs) in wastewater treatment plants (WWTPs) host diverse bacteria, with colonization depending on polymer type and treatment stage. High-Density Polyethylene (HDPE) and Polyethylene Terephthalate (PET) show distinct bacterial attachment patterns, influencing microbial communities.
Area of Science:
- Environmental Microbiology
- Polymer Science
- Wastewater Engineering
Background:
- Microplastics (MPs) are prevalent environmental contaminants.
- Wastewater treatment plants (WWTPs) are significant reservoirs for MPs.
- Understanding microbial colonization on MPs in WWTPs is crucial for assessing ecological risks.
Purpose of the Study:
- To investigate the microbial colonization characteristics of High-Density Polyethylene (HDPE) and Polyethylene Terephthalate (PET) microplastics.
- To determine the influence of different wastewater treatment stages (primary, tertiary) on bacterial attachment to MPs.
- To compare bacterial colonization patterns under individual and sequential deployment strategies.
Main Methods:
- Deployment of HDPE and PET microplastics in individual and sequential approaches across WWTP stages.
- Analysis of bacterial community composition on microplastics using molecular techniques.
- Quantification of bacterial diversity using Shannon diversity index.
Main Results:
- Wastewater treatment stage significantly impacts bacterial colonization on MPs, demonstrating niche-specific attachment.
- HDPE exhibited selective biofilm formation influenced by wastewater composition, with shifts in dominant phyla (e.g., Firmicutes, Alphaproteobacteria).
- PET showed stochastic colonization patterns, and sequential deployments led to increased bacterial diversity on PET, especially in later stages.
Conclusions:
- Microplastics act as significant vectors for diverse bacteria within WWTPs.
- Polymer type (HDPE vs. PET) and treatment stage critically determine microbial colonization patterns.
- Findings underscore the need for strategies to mitigate the impact of microplastic-associated bacteria in wastewater treatment systems.

