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Characterization of a Bifunctional O- and N-Glucosyltransferase from Vitis vinifera in Glucosylating Phenolic Compounds and 3,4-dichloroaniline in Pichia pastoris and Arabidopsis thaliana

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Figshare2016-01-18 更新2026-04-29 收录
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https://figshare.com/articles/dataset/Characterization_of_a_Bifunctional_O_and_N_Glucosyltransferase_from_Vitis_vinifera_in_Glucosylating_Phenolic_Compounds_and_3_4_dichloroaniline_in_Pichia_pastoris_and_Arabidopsis_thaliana_/850414
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2,4,5-Trichlorophenol, 2,6-dimethylphenol, 3-methylcatechol, phenol, hydroquinone, catechol, and 3,4-dichloroaniline are present in the environment and are risky to humans and animals because of their wide applications in many industries. In this study, a putative uridine diphosphate glucose-dependent glycosyltransferase from Vitis vinifera (VvUGT72B1) displayed high O-glucosyltransferase or N-glucosyltransferase activity toward all these xenbiotics and was able to enhance the resistance of P. pastoris to them. Compared with wild-type Arabidopsis plants, VvUGT72B1-transgenic Arabidopsis plants showed higher resistance to all the xenobiotics except for phenol and exhibited higher removal efficiencies against all xenobiotics. Glucosides of 3-methylcatechol, 2,6-dimethylphenol, phenol, and 3,4-dichloroaniline were exported to the surrounding media by Arabidopsis plants while transgenic Arabidopsis plants exported more glucosides than wild-type Arabidopsis plants. Our findings have the potential to provide a broader spectrum remediation strategy for the phytoremoval and degradation of phenolic compounds and 3,4-dichloroaniline than previous works.
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2016-01-18
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