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Published on: May 10, 2013
Investigating potential auxiliary anaerobic digestion activity of phage under polyvinyl chloride microplastic stress
Bei Zang1, Hang Zhou1, Yubin Zhao1
1Key Lab of Environmental Engineering, School of Environmental and Municipal Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, China.
Abstract:
Polyvinyl chloride (PVC) microplastics present in sewage were trapped in sludge, thereby hindering anaerobic digestion performance of waste active sludge (WAS). Phages regulate virocell metabolism by encoding auxiliary metabolic genes (AMGs) related to energy acquisition and material degradation, supporting hosts survive in harsh environments and play a crucial role in biogeochemical cycles. This study investigated the potential effects of phages on the recovery of WAS anaerobic digestion under PVC stress. We observed a significant alteration in the phage community induced by PVC microplastics. Phages encoded AMGs related to anaerobic digestion and cell growth probably alleviate PVC microplastics inhibition on WAS anaerobic digestion, and 54.2 % of hydrolysis-related GHs and 40.8 % of acidification-related AMGs were actively transcribed in the PVC-exposed group. Additionally, the degradation of chitin and peptidoglycan during hydrolysis and the conversion of glucose to pyruvate during acidification were more susceptible to phages. Prediction of phage-host relationship indicated that the phyla Pseudomonadota were predominantly targeted hosts by hydrolysis-related and acidification-related phages, and PVC toxicity had minimal impact on phage-host interaction. Our findings highlight the importance of phages in anaerobic digestion and provide a novel strategy for using phages in the functional recovery of microplastic-exposed sludge.
Insights
Phages can help waste active sludge (WAS) anaerobic digestion recover from inhibition caused by polyvinyl chloride (PVC) microplastics. Phages encode genes that aid in sludge digestion and growth, mitigating PVC
Area of Science:
- Environmental microbiology
- Biotechnology
- Wastewater treatment
Background:
- Polyvinyl chloride (PVC) microplastics in sewage inhibit waste active sludge (WAS) anaerobic digestion.
- Phages possess auxiliary metabolic genes (AMGs) crucial for host survival and biogeochemical cycling.
Purpose of the Study:
- To investigate the impact of phages on WAS anaerobic digestion performance under PVC stress.
- To understand the role of phage AMGs in mitigating PVC microplastic inhibition.
Main Methods:
- Analyzing phage community structure alterations induced by PVC microplastics.
- Quantifying the transcription of phage-encoded AMGs related to hydrolysis and acidification.
- Predicting phage-host interactions using bioinformatics.
Main Results:
- PVC microplastics significantly altered the phage community in WAS.
- Phages with AMGs for anaerobic digestion and growth were upregulated, alleviating PVC inhibition.
- Hydrolysis of chitin/peptidoglycan and glucose to pyruvate conversion were phage-susceptible processes.
- Pseudomonadota were the primary hosts for hydrolysis- and acidification-related phages, with minimal impact from PVC.
Conclusions:
- Phages play a vital role in maintaining WAS anaerobic digestion under microplastic stress.
- Phage AMGs are key to functional recovery of sludge exposed to microplastics.
- Phage-based strategies offer a novel approach for treating microplastic-contaminated sludge.
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