Journal:Acta Cryst D:S2059798319009574

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A single mutant Y128F turns itself an oxidase to a monooxygenase, whereby (𝘚)-mandelate is oxidized all the way to benzoate. Biochemical experiments were performed to conclude this finding: 1) In isotope labeling analysis, <sup>18</sup>O-benzoate was detected, where the oxygen origin is proven from <sup>18</sup>O<sub>2</sub> rather than H<sub>2</sub><sup>18</sup>O<sub>2</sub> confirming that free H<sub>2</sub>O<sub>2</sub> is not the effective oxidant. 2) The level of H<sub>2</sub>O<sub>2</sub> in the reactions with Y128 is inversely proportional to that with WT, indicating that the peroxide is a substrate in a well-organized manner with α-ketoacid, FMNred and active-site residues for the oxidative decarboxylation reaction to take place. 3) The structural complexes further reveal that reorientation of α-ketoacid from the 𝘱𝘳𝘰-S to a 𝘱𝘳𝘰-R configuration in Y128F makes FMNred or C4α-peroxide a nucleophile with a better attacking trajectory (for example, PDB [[6a19]]). As a result, the para-phenolic oxygen of Y128 in Hmo is determined to be a pivotal factor controlling the 2- or 4-electron oxidation reaction carried out by Hmo or Y128F, respectively.
A single mutant Y128F turns itself an oxidase to a monooxygenase, whereby (𝘚)-mandelate is oxidized all the way to benzoate. Biochemical experiments were performed to conclude this finding: 1) In isotope labeling analysis, <sup>18</sup>O-benzoate was detected, where the oxygen origin is proven from <sup>18</sup>O<sub>2</sub> rather than H<sub>2</sub><sup>18</sup>O<sub>2</sub> confirming that free H<sub>2</sub>O<sub>2</sub> is not the effective oxidant. 2) The level of H<sub>2</sub>O<sub>2</sub> in the reactions with Y128 is inversely proportional to that with WT, indicating that the peroxide is a substrate in a well-organized manner with α-ketoacid, FMNred and active-site residues for the oxidative decarboxylation reaction to take place. 3) The structural complexes further reveal that reorientation of α-ketoacid from the 𝘱𝘳𝘰-S to a 𝘱𝘳𝘰-R configuration in Y128F makes FMNred or C4α-peroxide a nucleophile with a better attacking trajectory (for example, PDB [[6a19]]). As a result, the para-phenolic oxygen of Y128 in Hmo is determined to be a pivotal factor controlling the 2- or 4-electron oxidation reaction carried out by Hmo or Y128F, respectively.
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*<scene name='82/821049/Cv/2'>Superposition of ternary complexes of wild type Hmo versus the Y128F mutant</scene> with a low average root-mean-square deviation (rmsd) of 0.064, where Hmo and Y128F are colored cyan and green, respectively.
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*<scene name='82/821049/Cv/3'>Superposition of ternary complexes of wild type Hmo versus the Y128F mutant</scene> with a low average root-mean-square deviation (rmsd) of 0.064, where Hmo and Y128F are colored cyan and green, respectively.
<b>References</b><br>
<b>References</b><br>

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