Structural Insights into the Substrate Promiscuity of a Laboratory-Evolved Peroxygenase
Author(s) -
M. Ramirez-Escudero,
Patricia MolinaEspeja,
Patricia Gómez de Santos,
Martin Hofrichter,
J. SanzAparicio,
Miguel Alcalde
Publication year - 2018
Publication title -
acs chemical biology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.899
H-Index - 111
eISSN - 1554-8937
pISSN - 1554-8929
DOI - 10.1021/acschembio.8b00500
Subject(s) - context (archaeology) , substrate (aquarium) , mutagenesis , chemistry , heme , yeast , stereochemistry , biochemistry , biology , enzyme , mutation , gene , paleontology , ecology
Because of their minimal requirements, substrate promiscuity and product selectivity, fungal peroxygenases are now considered to be the jewel in the crown of C-H oxyfunctionalization biocatalysts. In this work, the crystal structure of the first laboratory-evolved peroxygenase expressed by yeast was determined at a resolution of 1.5 Å. Notable differences were detected between the evolved and native peroxygenase from Agrocybe aegerita, including the presence of a full N-terminus and a broader heme access channel due to the mutations that accumulated through directed evolution. Further mutagenesis and soaking experiments with a palette of peroxygenative and peroxidative substrates suggested dynamic trafficking through the heme channel as the main driving force for the exceptional substrate promiscuity of peroxygenase. Accordingly, this study provides the first structural evidence at an atomic level regarding the mode of substrate binding for this versatile biocatalyst, which is discussed within a biological and chemical context.
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