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Engineered bacterial biofloc formation enhancing phenol removal and cell tolerance
by
Zhang, Shun
, Xia, Juan
, Wu, Bing
, Bai Fengwu
, Xiao, Jia
, Li, Jiawei
, Zhao Xinqing
, Yao Ruilian
, Xiao, Yi
in
Aliphatic compounds
/ Bioremediation
/ E coli
/ Escherichia coli
/ Extracellular polymers
/ Furfural
/ Genetic engineering
/ Guaiacol
/ Harsh environments
/ Hydroxylase
/ Hydroxymethylfurfural
/ Lignin
/ Microorganisms
/ Organic chemistry
/ Phenolic compounds
/ Phenols
/ Pollutants
/ Pseudomonas putida
2020
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Engineered bacterial biofloc formation enhancing phenol removal and cell tolerance
by
Zhang, Shun
, Xia, Juan
, Wu, Bing
, Bai Fengwu
, Xiao, Jia
, Li, Jiawei
, Zhao Xinqing
, Yao Ruilian
, Xiao, Yi
in
Aliphatic compounds
/ Bioremediation
/ E coli
/ Escherichia coli
/ Extracellular polymers
/ Furfural
/ Genetic engineering
/ Guaiacol
/ Harsh environments
/ Hydroxylase
/ Hydroxymethylfurfural
/ Lignin
/ Microorganisms
/ Organic chemistry
/ Phenolic compounds
/ Phenols
/ Pollutants
/ Pseudomonas putida
2020
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Do you wish to request the book?
Engineered bacterial biofloc formation enhancing phenol removal and cell tolerance
by
Zhang, Shun
, Xia, Juan
, Wu, Bing
, Bai Fengwu
, Xiao, Jia
, Li, Jiawei
, Zhao Xinqing
, Yao Ruilian
, Xiao, Yi
in
Aliphatic compounds
/ Bioremediation
/ E coli
/ Escherichia coli
/ Extracellular polymers
/ Furfural
/ Genetic engineering
/ Guaiacol
/ Harsh environments
/ Hydroxylase
/ Hydroxymethylfurfural
/ Lignin
/ Microorganisms
/ Organic chemistry
/ Phenolic compounds
/ Phenols
/ Pollutants
/ Pseudomonas putida
2020
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Engineered bacterial biofloc formation enhancing phenol removal and cell tolerance
Journal Article
Engineered bacterial biofloc formation enhancing phenol removal and cell tolerance
2020
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Overview
A microbial floc consisting of a community of microbes embedded in extracellular polymeric substances matrix can provide microbial resistances to toxic chemicals and harsh environments. Phenol is a toxic environmental pollutant and a typical lignin-derived phenolic inhibitor. In this study, we genetically engineered Escherichia coli cells by expressions of diguanylate cyclases (DGCs) to promote proteinaceous and aliphatic biofloc formation. Compared with the planktonic E. coli cells, the biofloc-forming cells improved phenol removal rate by up to 2.2-folds, due to their substantially improved tolerance (up to 149%) to phenol and slightly enhanced cellular activity (20%) of phenol hydroxylase (PheH). The engineered bioflocs also improved E. coli tolerance to other toxic compounds such as furfural, 5-hydroxymethylfurfural, and guaiacol. Additionally, the strategy of the engineered biofloc formation was applicable to Pseudomonas putida and enhanced its tolerance to phenol. This study highlights a strategy to form engineered bioflocs for improved cell tolerance and removal of toxic compounds, enabling their universality of use in bioproduction and bioremediation.
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