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Prospecting Microbial Strains for Bioremediation and Probiotics Development for Metaorganism Research and Preservation
Published on: October 31, 2019
Enhanced 4-bromophenol removal and mineralization in bio-photodegradation system: The key role of microbial
Hefei Shi1, Jie Chen2, Xiafei Yin3
1The Jiangsu Key Laboratory of Electronic Waste and New Energy Solid Waste Resource Utilization, School of Resources and Environmental Engineering, Jiangsu University of Technology, Changzhou 213001, China; Key Laboratory of Environmental Remediation and Ecological Health, Ministry of Industry and Information Technology, School of Environmental and Biological Engineering, Nanjing University of Science and Technology, Nanjing 210094, China; WELLE Environmental Group Co., Ltd., Changzhou 213002, China.
Abstract:
Halophenols are common industrial monomers with high toxicity, posing a serious threat to the ecological environment and human health. In this study, we achieved enhanced bio-photodegradation of 4-bromophenol (4-BP, a representative halophenol) using B-doped g-C₃N₄/BiVO₄ as a photoexcited semiconductor. The Z-scheme heterojunction of B-doped g-C₃N₄/BiVO₄ endowed photogenerated electron-hole pairs with stronger redox capacity; notably, photoelectrons played a vital role in accelerating 4-BP degradation. They not only facilitated the generation of superoxide radical anions (effective active species for 4-BP photodegradation) but also served as critical electron donors for microbial debromination. In order to explore the significance of microbial interactions in 4-BP bio-photodegradation, carriers with different thicknesses were employed to construct bio-photodegradation systems. Results from these systems revealed that thicker carriers provided sufficient attachment sites for microbial enrichment, which promoted more frequent microbial interactions to accelerate 4-BP bio-photodegradation. Microbial community analysis confirmed that increased attachment sites were beneficial for the enrichment of functional species (related to 4-BP biodegradation and electron transfer), and upregulated expression of related functional genes was also observed according to Phylogenetic Investigation of Communities by Reconstruction of Unobserved States 2 (PICRUSt2) analysis. Microbial co-occurrence networks analysis indicated that positive interactions of different species were the important reasons for enhanced 4-BP bio-photodegradation. A possible mechanism of 4-BP bio-photodegradation was proposed based on the above analysis.
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