The University of Osaka · 化学
石橋慎文教授の研究室では、銅を含む金属酵素の反応機構、特にモノオキシゲナーゼ活性を示すジカルボン酸型銅錯体の酸化反応機構を、模型錯体を用いた精密な電子分光学的・赤外分光的・ラジカル捕捉実験を組み合わせて解明しています。主な研究対象はチロシナーゼやドーパミンβ-モノオキシゲナーゼなどの生体酸化酵素の反応中間体であり、過酸化物やジカルボン酸(III)種の生成・反応性を解明しています。また、反応機構の理解を応用し、有機合成への応用や新しい酸化触媒の開発にも取り組んでいます。
Figures are computed from collected data and may differ slightly.
The molecular mechanism of the monooxygenase (phenolase) activity of type 3 copper proteins has been examined in detail both in the model systems and in the enzymatic systems. The reaction of a side-on peroxo dicopper(II) model compound ( A) and neutral phenols proceeds via a proton-coupled electron-transfer (PCET) mechanism to generate phenoxyl radical species, which collapse each other to give the corresponding C-C coupling dimer products. In this reaction, a bis(mu-oxo)dicopper(III) complex (
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Active-oxygen species generated on a copper complex play vital roles in several biological and chemical oxidation reactions. Recent attention has been focused on the reactive intermediates generated at the mononuclear copper active sites of copper monooxygenases such as dopamine β-monooxygenase (DβM), tyramine β-monooxygenase (TβM), peptidylglycine-α-hydroxylating monooxygenase (PHM), and polysaccharide monooxygenases (PMO). In a simple model system, reaction of O2 and a reduced copper(I) comple
ADVERTISEMENT RETURN TO ISSUEPREVCommunicationNEXTOxygenation of Phenols to Catechols by A (μ-η2:η2-Peroxo)dicopper(II) Complex: Mechanistic Insight into the Phenolase Activity of TyrosinaseShinobu Itoh, Hideyuki Kumei, Masayasu Taki, Shigenori Nagatomo, Teizo Kitagawa, and Shunichi FukuzumiView Author Information Department of Chemistry, Graduate School of Science Osaka City University, 3-3-138, Sugimoto Sumiyoshi-ku, Osaka, 558-8585, Japan Department of Material and Life Science Graduate Schoo
By using molecular oxygen bis(µ-oxo)dicopper(III) complexes can be produced from Cu(I) complexes with ligand L(X) (L(X)=p-substituted N-ethyl-N-[2-(2-pyridyl)ethyl]-2-phenylethylamine; X=OMe, Me, H, Cl, NO(2)) in which the benzylic position of the ligand is activated and hydroxylated by the Cu(2)O(2) core (see reaction scheme). Detailed characterization of this new C-H bond activation reaction by the bis(µ-oxo)dicopper(III) core reveals important information on the fundamental chemistry underlyi
A simple Ni(II)(TPA) complex [TPA = tris(2-pyridylmethyl)amine] has been demonstrated to act as an efficient turnover catalyst for alkane hydroxylation with m-CPBA (m-chloroperbenzoic acid), in which contribution of a NiO(+) (nickel-oxo) type active oxygen species is suggested.
Mechanistic studies on the aliphatic ligand hydroxylation in a copper complex of tridentate ligand 1a {N,N-bis[2-(2-pyridyl)ethyl]-2-phenylethylamine} by O2 have been performed in order to shed light on the structure and reactivity of the active oxygen species of our functional model for copper monooxygenases (Itoh, S.; et al. J. Am. Chem. Soc. 1995, 117, 4714). When the copper complex [CuII(1a)(ClO4)2] was treated with an equimolar amount of benzoin and triethylamine in CH2Cl2 under O2 atmosphe
The electronic effect of the thioether linkage between Tyr 272 and Cys 228 (the novel organic cofactor) of galactose oxidase has been examined by using model compounds, 2-(methylthio)-p-cresol (1H), 2-(methylthio)-4,6-dimethylphenol (2H), and 2-(methylthio)-4-methyl-6-[[bis[2-(2-pyridyl)ethyl]amino]methyl]phenol (3H), the physicochemical properties of which are compared to those of 2-[[bis[2-(2-pyridyl)ethyl]amino]methyl]-4-methylphenol (4H) and p-cresol (5H). (1)H NMR and electrochemical studie
Nickel(ii) complexes supported by a series of pyridylalkylamine ligands [tris(2-pyridylmethyl)amine (TPA; complexes and ), tris[2-(2-pyridyl)ethyl]amine (TEPA; complexes and ), 6-[N,N-bis(2-pyridylmethyl)aminomethyl]-2,4-di-tert-butylphenol ((Dtbp)Pym2H; complexes and ), 6-[N,N-bis[2-(2-pyridyl)ethyl]aminomethyl]-2,4-di-tert-butylphenol ((Dtbp)Pye2H; complexes and ), N-benzyl-bis(2-pyridylmethyl)amine ((Bz)Pym2; complex ) and N-benzyl-bis[2-(2-pyridyl)ethyl]amine ((Bz)Pye2; complex )] have been
The dinuclear copper enzyme, tyrosinase, activates O<sub>2</sub> to form a (μ-η<sup>2</sup> :η<sup>2</sup> -peroxido)dicopper(II) species, which hydroxylates phenols to catechols. However, the exact mechanism of phenolase reaction in the catalytic site of tyrosinase is still under debate. We herein report the near atomic resolution X-ray crystal structures of the active tyrosinases with substrate l-tyrosine. At their catalytic sites, CuA moved toward l-tyrosine (CuA1 → CuA2), whose phenol oxygen
Bis(mu-oxo)dinickel(III) complexes supported by a series of bis[2-(2-pyridyl)ethyl]amine ligands have been successfully generated by treating the corresponding bis(mu-hydroxo)dinickel(II) complexes or bis(mu-methoxo)dinickel(II) complex with an equimolar amount of H(2)O(2) in acetone at low temperature. The bis(mu-oxo)dinickel(III) complexes exhibit a characteristic UV-vis absorption band at approximately 410 nm and a resonance Raman band at 600-610 cm(-1) that shifted to 570-580 cm(-1) upon (18
Profound insights into the catalytic mechanism of galactose oxidase (GO) are offered by new models of the active form of the metalloenzyme. The important role of the Cu(II) center in the oxidation of benzyl alcohol to benzaldehyde by the Cu(II)-phenoxyl radical complex of ligand 1 has been revealed by comparison with the reactivity of the corresponding Zn(II)-phenoxyl radical complex; py=2-pyridyl.
ADVERTISEMENT RETURN TO ISSUEPREVCommunicationNEXTModeling of the Chemistry of Quinoprotein Methanol Dehydrogenase. Oxidation of Methanol by Calcium Complex of Coenzyme PQQ via Addition−Elimination MechanismShinobu Itoh, Hirokatsu Kawakami, and Shunichi FukuzumiView Author Information Department of Applied Chemistry, Faculty of Engineering, Osaka University 2-1 Yamada-oka, Suita, Osaka 565, Japan Cite this: J. Am. Chem. Soc. 1997, 119, 2, 439–440Publication Date (Web):January 15, 1997Publication
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