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Published on: February 13, 2016
Salinity-Driven Microbial Community Engineering for Safer Ultrafiltration Water Reuse
Hao Cui1, An Ding1,2, Weijie Ma1
1State Key Laboratory of Urban Water Resource and Environment (SKLUWRE), School of Environment, Harbin Institute of Technology, 73 Huanghe Road, Nangang District, 150090Harbin, P. R. China.
High-salinity backwash in ultrafiltration enhances water reuse by reducing microbial contamination and preventing pathogen invasion. This microbiome engineering approach improves water biostability and biosafety.
Area of Science:
- Environmental Science
- Microbiology
- Water Treatment Engineering
Background:
- Ultrafiltration is crucial for water reclamation but faces challenges with microbial regrowth and pathogen invasion.
- These issues compromise water biostability and biosafety in reclaimed water.
Purpose of the Study:
- To develop an ecological strategy using backwash as a microbiome engineering tool.
- To simultaneously address microbial regrowth and pathogen invasion in ultrafiltration systems.
Main Methods:
- Implementing high-salinity backwash (100 mM NaCl) during ultrafiltration.
- Analyzing microbial sources in permeate and pathogen inactivation in the biocake layer.
- Investigating microbiome composition and metabolic pathways using microbial ecology techniques.
Main Results:
- High-salinity backwash reduced permeate total cell counts by over 50%.
- Assimilable organic carbon removal increased by 32%, limiting microbial regrowth.
- Pathogen leakage was prevented, with 86.9% reduced pathogen accumulation due to accelerated inactivation.
- NaCl reshaped the biocake microbiome, enhancing cooperative functions and antimicrobial metabolite secretion.
Conclusions:
- High-salinity backwash effectively transforms ultrafiltration backwash into a microbiome engineering tool.
- This approach enhances both biostability and biosafety in ultrafiltration-based water reuse systems.
- Ecological engineering strategies offer a promising solution for secure water reclamation.
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