Enzymatic control of dioxygen binding and functionalization of the flavin cofactor.
basic_science · Level V
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- Record sourced from PubMed, PMID 29686059.
- Also identified by DOI 10.1073/pnas.1801189115 and PMC identifier 5949001.
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Abstract
The reactions of enzymes and cofactors with gaseous molecules such as dioxygen (O<sub>2</sub>) are challenging to study and remain among the most contentious subjects in biochemistry. To date, it is largely enigmatic how enzymes control and fine-tune their reactions with O<sub>2</sub>, as exemplified by the ubiquitous flavin-dependent enzymes that commonly facilitate redox chemistry such as the oxygenation of organic substrates. Here we employ O<sub>2</sub>-pressurized X-ray crystallography and quantum mechanical calculations to reveal how the precise positioning of O<sub>2</sub> within a flavoenzyme's active site enables the regiospecific formation of a covalent flavin-oxygen adduct and oxygenating species (i.e., the flavin-N5-oxide) by mimicking a critical transition state. This study unambiguously demonstrates how enzymes may control the O<sub>2</sub> functionalization of an organic cofactor as prerequisite for oxidative catalysis. Our work thus illustrates how O<sub>2</sub> reactivity can be harnessed in an enzymatic environment and provides crucial knowledge for future rational design of O<sub>2</sub>-reactive enzymes.
Medical subject headings
- Bacterial Proteins
- Coenzymes
- Dinitrocresols
- Mixed Function Oxygenases
- Molecular Docking Simulation
- Oxygen