amine dehydrogenase
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Author(s):  
Feifei Tong ◽  
Zongmin Qin ◽  
Hongyue Wang ◽  
Yingying Jiang ◽  
Junkuan Li ◽  
...  

Chiral amino alcohols are prevalent synthons in pharmaceuticals and synthetic bioactive compounds. The efficient synthesis of chiral amino alcohols using ammonia as the sole amino donor under mild conditions is highly desired and challenging in organic chemistry and biotechnology. Our previous work explored a panel of engineered amine dehydrogenases (AmDHs) derived from amino acid dehydrogenase (AADH), enabling the one-step synthesis of chiral amino alcohols via the asymmetric reductive amination of α-hydroxy ketones. Although the AmDH-directed asymmetric reduction is in a high stereoselective manner, the activity is yet fully excavated. Herein, an engineered AmDH derived from a leucine dehydrogenase from Sporosarcina psychrophila (SpAmDH) was recruited as the starting enzyme, and the combinatorial active-site saturation test/iterative saturation mutagenesis (CAST/ISM) strategy was applied to improve the activity. After three rounds of mutagenesis in an iterative fashion, the best variant wh84 was obtained and proved to be effective in the asymmetric reductive amination of 1-hydroxy-2-butanone with 4-fold improvements in kcat/Km and total turnover number (TTN) values compared to those of the starting enzyme, while maintaining high enantioselectivity (ee >99%) and thermostability (T5015 >53°C). In preparative-scale reaction, the conversion of 100 and 200 mM 1-hydroxy-2-butanone catalyzed by wh84 was up to 91–99%. Insights into the source of an enhanced activity were gained by the computational analysis. Our work expands the catalytic repertoire and toolbox of AmDHs.


2021 ◽  
Author(s):  
Guohua Liu ◽  
Fengwei Chang ◽  
Chengyi Wang ◽  
Qipeng Chen ◽  
Yongjin Zhang

ChemCatChem ◽  
2021 ◽  
Author(s):  
Ewald Piet Jürgen Jongkind ◽  
Aurélie Fossey ◽  
Ombeline Mayol ◽  
Anne Zaparucha ◽  
Carine Vergne-Vaxelaire ◽  
...  

ACS Catalysis ◽  
2021 ◽  
pp. 14274-14283
Author(s):  
Dong-Hao Wang ◽  
Qi Chen ◽  
Sai-Nan Yin ◽  
Xu-Wei Ding ◽  
Yu-Cong Zheng ◽  
...  

Author(s):  
Tadashi Nakai ◽  
Katsuyuki Tanizawa ◽  
Toshihide Okajima

Abstract Quinohemoprotein amine dehydrogenase (QHNDH) containing a peptidyl quinone cofactor, cysteine tryptophylquinone, is produced in the periplasm of Gram-negative bacteria through an intricate process of post-translational modification that requires at least eight genes including those encoding three nonidentical subunits and three modifying enzymes. Our heterologous expression study has revealed that the eight genes are necessary and sufficient for the QHNDH biogenesis.


2021 ◽  
Vol 26 (3) ◽  
pp. 384-391
Author(s):  
Somin Lee ◽  
Hyunwoo Jeon ◽  
Pritam Giri ◽  
Uk-Jae Lee ◽  
Hyunsang Jung ◽  
...  

2021 ◽  
Vol 407 ◽  
pp. 127065
Author(s):  
Robert D. Franklin ◽  
Joshua A. Whitley ◽  
Adam A. Caparco ◽  
Bettina R. Bommarius ◽  
Julie A. Champion ◽  
...  

2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Toshinori Oozeki ◽  
Tadashi Nakai ◽  
Kazuki Kozakai ◽  
Kazuki Okamoto ◽  
Shun’ichi Kuroda ◽  
...  

AbstractBioconversion of peptidyl amino acids into enzyme cofactors is an important post-translational modification. Here, we report a flavoprotein, essential for biosynthesis of a protein-derived quinone cofactor, cysteine tryptophylquinone, contained in a widely distributed bacterial enzyme, quinohemoprotein amine dehydrogenase. The purified flavoprotein catalyzes the single-turnover dihydroxylation of the tryptophylquinone-precursor, tryptophan, in the protein substrate containing triple intra-peptidyl crosslinks that are pre-formed by a radical S-adenosylmethionine enzyme within the ternary complex of these proteins. Crystal structure of the peptidyl tryptophan dihydroxylase reveals a large pocket that may dock the protein substrate with the bound flavin adenine dinucleotide situated close to the precursor tryptophan. Based on the enzyme-protein substrate docking model, we propose a chemical reaction mechanism of peptidyl tryptophan dihydroxylation catalyzed by the flavoprotein monooxygenase. The diversity of the tryptophylquinone-generating systems suggests convergent evolution of the peptidyl tryptophan-derived cofactors in different proteins.


2021 ◽  
Vol 323 ◽  
pp. 114991
Author(s):  
Maximilian Wessner ◽  
Bettina Bommarius ◽  
Christoph Brandenbusch ◽  
Andreas S. Bommarius

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