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葡萄糖氧化酶氧化还原电位的测定以及完全还原形式和半醌形式的氧反应性

Determination of glucose oxidase oxidation-reduction potentials and the oxygen reactivity of fully reduced and semiquinoid forms.

作者信息

Stankovich M T, Schopfer L M, Massey V

出版信息

J Biol Chem. 1978 Jul 25;253(14):4971-9.

PMID:27511
Abstract

The oxidation-reduction potential values for the two electron transfers to glucose oxidase were obtained at pH 5.3, where the neutral radical is the stable form, and at pH 9.3, where the anion radical is the stable form. The midpoint potentials at 25 degrees were: pH 5.3 EFl1ox + e- H+ equilibrium EFlH. Em1 = -0.063 +/- 0.011 V EFlH. + e- + H+ equilibrium EFlredH2 Em2 = -0.065 +/- 0.007 V pH 9.3 EFlox + e- EFi- Em1 = -0.200 +/- 0.010 V EFi- + e- + H+ equilibrium EFlredH- Em2 = -0.240 +/- 0.005 V All potentials were measured versus the standard hydrogen electrode (SHE). The potentials indicated that glucose oxidase radicals are stabilized by kinetic factors and not by thermodynamic energy barriers. The pK for the glucose oxidase radical was 7.28 from dead time stopped flow measurements and the extinction coefficient of the neutral semiquinone was 4140 M-1 cm-1 at 570 nm. Both radical forms reacted with oxygen in a second order fashion. The rate at 25 degrees for the neutral semiquinone was 1.4 X 10(4) M-1 s-1; that for the anion radical was 3.5 X 10(4) M-1 s-1. The rate of oxidation of the neutral radical changed by a factor of 9 for a temperature difference of 22 degrees. For the anion radical, the oxidation rate changed by a factor of 6 for a 22 degrees change in temperature. We studied the oxygen reactivity of the 2-electron reduced form of the enzyme over a wide wavelength range and failed to detect either oxygenated flavin derivatives or semiquinoid forms as intermediates. The rate of reoxidation of fully reduced glucose oxidase at pH 9.3 was dependent on ionic strength.

摘要

在pH 5.3(中性自由基为稳定形式)和pH 9.3(阴离子自由基为稳定形式)条件下,获得了向葡萄糖氧化酶进行两次电子转移的氧化还原电位值。25℃时的中点电位为:pH 5.3,EFl1ox + e- + H+ 平衡 EFlH,Em1 = -0.063 ± 0.011 V;EFlH + e- + H+ 平衡 EFlredH2,Em2 = -0.065 ± 0.007 V。pH 9.3,EFlox + e- EFi-,Em1 = -0.200 ± 0.010 V;EFi- + e- + H+ 平衡 EFlredH-,Em2 = -0.240 ± 0.005 V。所有电位均相对于标准氢电极(SHE)进行测量。这些电位表明,葡萄糖氧化酶自由基是由动力学因素而非热力学能垒稳定的。通过死时间停止流动测量得到葡萄糖氧化酶自由基的pK为7.28,中性半醌在570 nm处的消光系数为4140 M-1 cm-1。两种自由基形式均以二级反应方式与氧气反应。25℃时中性半醌的反应速率为1.4×10(4) M-1 s-1;阴离子自由基的反应速率为3.5×10(4) M-1 s-1。中性自由基的氧化速率在22℃的温度差下变化了9倍。对于阴离子自由基,氧化速率在22℃的温度变化下变化了6倍。我们在很宽的波长范围内研究了该酶的双电子还原形式的氧反应性,未检测到任何氧化黄素衍生物或半醌形式作为中间体。在pH 9.3时,完全还原的葡萄糖氧化酶再氧化的速率取决于离子强度。

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