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首页> 外文期刊>Theoretical Chemistry Accounts >Cu, Zn Superoxide dismutase: distorted active site binds substrate without significant energetic cost
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Cu, Zn Superoxide dismutase: distorted active site binds substrate without significant energetic cost

机译:铜,锌超氧化物歧化酶:扭曲的活性位点与底物结合,而没有大量的能源消耗

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摘要

Copper, Zinc superoxide dismutase (CuZnSOD) catalyzes the dismutation of the toxic superoxide radical into molecular oxygen and hydrogen peroxide. Dismutation is achieved by reduction and re-oxidation of the active site copper ion, where the superoxide substrate binds. This enzyme is considered to be a perfect enzyme, as the catalytic rate is very high and diffusion controlled. The redox active copper ion is coordinated by four histidine residues in a distorted square planar geometry. Much has been written about the biological significance of the geometry distortion. It is sometimes considered that it should help to tune the redox potential of the copper ion in order to efficiently reduce the first superoxide molecule and oxidize the second one. In this work we present a series of high level theoretical calculations using realistic models, which demonstrate that the distorted geometry is fundamental for the catalytic efficiency of the enzyme by allowing substrate binding without extensive geometric reorganization of the copper complex, upon changing from four to five ligands. A lower limit for the reorganization energy is calculated here in 22 kcal/mol, which would slow down the reaction kinetics by more than 13 orders of magnitude, transforming a perfect enzyme into an inefficient one.
机译:铜,锌超氧化物歧化酶(CuZnSOD)催化将有毒超氧化物自由基歧化为分子氧和过氧化氢。通过还原和再氧化结合超氧化物底物的活性部位铜离子来实现歧化。该酶被认为是一种完美的酶,因为其催化速率非常高且受扩散控制。氧化还原活性铜离子由扭曲的方形平面几何形状中的四个组氨酸残基配位。关于几何畸变的生物学意义,已经有许多著作。有时认为,它应有助于调节铜离子的氧化还原电势,以便有效地还原第一个超氧化物分子并氧化第二个超氧化物分子。在这项工作中,我们使用现实模型给出了一系列高级理论计算,这些实验证明了扭曲的几何结构是酶的催化效率的基础,因为它允许底物结合而无需铜络合物进行广泛的几何重组(从4变为5)配体。此处计算的重组能量的下限为22 kcal / mol,这会使反应动力学降低13个数量级以上,从而将一种完美的酶转变为一种低效的酶。

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