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Updated: Jan 13, 2026

A Rapid and Specific Microplate Assay for the Determination of Intra- and Extracellular Ascorbate in Cultured Cells
Published on: April 11, 2014
Aminación de enlaces C-H habilitada por ascorbato catalizada por mioglobina reconstituida con un porfirina de hierro
Chihiro Sonoda1, Takashi Hayashi1
1Department of Applied Chemistry, Graduate School of Engineering, The University of Osaka, Suita, Osaka 565-0871, Japan.
Abstract:
Nitrogen-containing organic molecules are essential structural motifs in bioactive compounds, pharmaceuticals and functional materials. Direct C-H amination via nitrene transfer provides an efficient and atom-economical route for C-N bond formation. However, most hemoprotein-based catalysts require strong reductants such as dithionite to generate the metal-nitrene intermediate. Here, we report myoglobin reconstituted with an iron complex (FePor(CF₃)₂) bearing two trifluoromethyl groups at the pyrrole β-positions of the porphyrin framework. This arrangement promotes intramolecular benzylic C-H bond amination under mild conditions using sodium l-ascorbate as the sole reductant. The FePor(CF₃)₂ cofactor exhibits a positively shifted Fe(III)/Fe(II) redox potential that allows efficient reduction to occur in the protein scaffold and suppresses noncatalytic substrate reduction, leading to improved chemoselectivity for secondary C-H bond amination. The H64A mutant of myoglobin reconstituted with FePor(CF₃)₂ achieved a turnover number (TON) of 133 for tertiary benzylic C-H amination. Kinetic studies revealed that the reaction rate is inversely correlated with the C-H bond dissociation energy, with a smaller negative slope in the bond dissociation energies (BDEs) plot compared to a synthetic cofactor with a negative redox potential. This suggests that there is a mechanistic shift in the rate-determining step from hydrogen atom transfer to nitrene formation. These findings highlight the potential of cofactor redox tuning to control reactivity and selectivity in artificial heme enzymes for abiological C-H bond functionalization.
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