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Structural insights into a flavin-dependent dehalogenase HadA explain catalysis and substrate inhibition via quadruple pi-stacking
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Metadata
Document Title
Structural insights into a flavin-dependent dehalogenase HadA explain catalysis and substrate inhibition via quadruple pi-stacking
Author
Pimviriyakul P, Jaruwat A, Chitnumsub P, Chaiyen P
Name from Authors Collection
Affiliations
Kasetsart University; National Science & Technology Development Agency - Thailand; National Center Genetic Engineering & Biotechnology (BIOTEC); Vidyasirimedhi Institute of Science & Technology
Type
Article
Source Title
JOURNAL OF BIOLOGICAL CHEMISTRY
Year
2021
Volume
297
Issue
2
Page
-
Open Access
gold, Green Published
Publisher
ELSEVIER
DOI
10.1016/j.jbc.2021.100952
Format
Abstract
HadA is a flavin-dependent monooxygenase catalyzing hydroxylation plus dehalogenation/denitration, which is useful for biodetoxification and biodetection. In this study, the X-ray structure of wild-type HadA (HadA(WT)) co-complexed with reduced FAD (FADH(-)) and 4-nitrophenol (4NP) (HadA(WT)-FADH(-)-4NP) was solved at 2.3-angstrom resolution, providing the first full package (with flavin and substrate bound) structure of a monooxygenase of this type. Residues Arg101, Gln158, Arg161, Thr193, Asp254, Arg233, and Arg439 constitute a flavin-binding pocket, whereas the 4NP-binding pocket contains the aromatic side chain of Phe206, which provides pi-pi stacking and also is a part of the hydrophobic pocket formed by Phe155, Phe286, Thr449, and Leu457. Based on site-directed mutagenesis and stopped-flow experiments, Thr193, Asp254, and His290 are important for C4a-hydroperoxyflavin formation with His290, also serving as a catalytic base for hydroxylation. We also identified a novel structural motif of quadruple p-stacking (pi-pi-pi-pi) provided by two 4NP and two Phe441 from two subunits. This motif promotes 4NP binding in a nonproductive dead-end complex, which prevents C4a-hydroperoxy-FAD formation when HadA is premixed with aromatic substrates. We also solved the structure of the HadA(Phe441Val)-FADH(-)-4NP complex at 2.3-angstrom resolution. Although 4NP can still bind to this variant, the quadruple pi-stacking motif was disrupted. All HadA(Phe441) variants lack substrate inhibition behavior, confirming that quadruple pi-stacking is a main cause of dead-end complex formation. Moreover, the activities of these HadA(Phe441) variants were improved by 20%, suggesting that insights gained from the flavin-dependent monooxygenases illustrated here should be useful for future improvement of HadA's biocatalytic applications.
Industrial Classification
Knowledge Taxonomy Level 1
Knowledge Taxonomy Level 2
Funding Sponsor
Thailand Research Fund [MRG6280185]; National Center for Genetic Engineering and Biotechnology (BIOTEC) platform [P16-52034]; National Science and Technology Development Agency (NSTDA) through NSTDA Technology Development Group [P20-50077]; Global Partnership from PMU-B, Royal Academy of Engineering; Vidyasirimedhi Institute of Science and Technology (VISTEC)
License
CC BY
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Authors
Publication Source
WOS