Piezobiocatalysis

Ultrasound-Driven Enzymatic Oxyfunctionalization of C-H Bonds

Journal Article (2020)
Author(s)

Jaeho Yoon (Korea Advanced Institute of Science and Technology)

Jinhyun Kim (Korea Advanced Institute of Science and Technology)

Florian Tieves (TU Delft - BT/Biocatalysis)

W. Zhang (TU Delft - BT/Biocatalysis)

Miguel Alcalde (C/)

F. Hollmann (TU Delft - BT/Biocatalysis)

Chan Beum Park (Korea Advanced Institute of Science and Technology)

Research Group
BT/Biocatalysis
Copyright
© 2020 Jaeho Yoon, Jinhyun Kim, F. Tieves, W. Zhang, Miguel Alcalde, F. Hollmann, Chan Beum Park
DOI related publication
https://doi.org/10.1021/acscatal.0c00188
More Info
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Publication Year
2020
Language
English
Copyright
© 2020 Jaeho Yoon, Jinhyun Kim, F. Tieves, W. Zhang, Miguel Alcalde, F. Hollmann, Chan Beum Park
Research Group
BT/Biocatalysis
Issue number
9
Volume number
10
Pages (from-to)
5236-5242
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Abstract

Peroxygenases have long inspired the selective oxyfunctionalization of various aliphatic and aromatic compounds, because of their broad substrate spectrum and simplicity of catalytic mechanism. This study provides a proof-of-concept of piezobiocatalysis by demonstrating peroxygenase-catalyzed oxyfunctionalization reactions fueled by piezocatalytically generated H2O2. Bismuth oxychloride (BiOCl) generated H2O2 in situ via an oxygen reduction reaction under ultrasonic wave conditions. Through the simple combination of water, ultrasound, recombinant, evolved unspecific peroxygenase from Agrocybe aegerita (rAaeUPO), and BiOCl, the piezobiocatalytic platform accelerated selective hydroxylation of ethylbenzene to enantiopure (R)-1-phenylethanol [total turnover number of rAaeUPO (TTNrAaeUPO), 2002; turnover frequency, 77.7 min-1 >99% enantiomeric excess (ee)]. The BiOCl-rAaeUPO couple also catalyzed other representative substrates (e.g., propylbenzene, 1-chloro-4-ethylbenzene, cyclohexane, and cis-β-methylstyrene) with high turnover frequency and selectivity. We alleviated the oxidative stress of piezocatalytically generated OH- on rAaeUPO by spatial separation of rAaeUPO and BiOCl, which resulted in greatly enhanced TTNrAaeUPO of >3900 and the notable prolongation of reaction time. Overall, the BiOCl-rAaeUPO couple serves as a mechanical-to-chemical energy conversion platform for driving peroxygenase-catalyzed reactions under ultrasonic conditions.

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