Response of electroactive biofilms from real wastewater to metal ion shock in bioelectrochemical systems.

Sci Total Environ

Guangzhou Key Laboratory Environmental Catalysis and Pollution Control, Guangdong Key Laboratory of Environmental Catalysis and Health Risk Control, School of Environmental Science and Engineering, Institute of Environmental Health and Pollution Control, Guangdong University of Technology, Guangzhou 510006, China. Electronic address:

Published: October 2022

AI Article Synopsis

  • The stability of electroactive biofilms (EABs) is crucial for the performance of bioelectrochemical systems (BESs), and this study focused on EABs cultivated in real beer brewery wastewater compared to those grown on synthetic substrates.
  • Current generation and other biofilm properties were found to be lower in EABs cultured with real wastewater, yet these biofilms displayed moderate resistance to heavy metal shocks.
  • The study highlighted that proteins and humic acid in loosely bound extracellular polymeric substances (LB-EPS) play an essential role in protecting EABs from toxic effects, revealing important molecular mechanisms for improving BES applications in water treatment.

Article Abstract

The electrochemical activity of bioelectrochemical systems (BESs) was proven to be dependent on the stability of electroactive biofilms (EABs), but the response of EABs based on real wastewater to external disturbances is not fully known. Herein, we used real wastewater (beer brewery wastewater) as a substrate for culturing EABs and found that current generation, biomass, redox activity and extracellular polymeric substances (EPS) content in those EABs were lower as compared to EABs cultured with synthetic wastewaters (acetate and glucose). However, the EABs from the beer brewery wastewater showed moderate anti-shock resistance capability. The proteins and humic acid in loosely bound EPS (LB-EPS) exhibited a positive linear relationship with current recovery after Ag shock, indicating the importance of LB-EPS for protecting the EABs. Fluorescence and Fourier transform infrared spectroscopy integrated with two-dimensional correlation spectroscopy verified that the spectra of the protein-like region of LB-EPS changed considerably under the interference of Ag concentration and the CO group of humic acid or proteins was mainly responsible for binding with Ag to attenuate its toxicity to the EABs. This is the first study revealing the underlying molecular mechanism of EABs cultured with real wastewater against external heavy metal shock and provides useful insights into enhancing the application of BESs in future water treatment.

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Source
http://dx.doi.org/10.1016/j.scitotenv.2022.157158DOI Listing

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