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Orientation-Controlled Electrocatalytic Efficiency of an Adsorbed Oxygen-Tolerant Hydrogenase

机译:吸附氧耐受性氢酶的方向控制电催化效率

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摘要

Protein immobilization on electrodes is a key concept in exploiting enzymatic processes for bioelectronic devices. For optimum performance, an in-depth understanding of the enzyme-surface interactions is required. Here, we introduce an integral approach of experimental and theoretical methods that provides detailed insights into the adsorption of an oxygen-tolerant [NiFe] hydrogenase on a biocompatible gold electrode. Using atomic force microscopy, ellipsometry, surface-enhanced IR spectroscopy, and protein film voltammetry, we explore enzyme coverage, integrity, and activity, thereby probing both structure and catalytic H2 conversion of the enzyme. Electrocatalytic efficiencies can be correlated with the mode of protein adsorption on the electrode as estimated theoretically by molecular dynamics simulations. Our results reveal that pre-activation at low potentials results in increased current densities, which can be rationalized in terms of a potential-induced re-orientation of the immobilized enzyme.
机译:将蛋白质固定在电极上是利用生物电子设备的酶促过程的关键概念。为了获得最佳性能,需要深入了解酶与表面的相互作用。在这里,我们介绍了一种实验和理论方法的整体方法,该方法提供了对生物相容性金电极上耐氧[NiFe]氢化酶的吸附的详细见解。使用原子力显微镜,椭圆偏振光,表面增强红外光谱和蛋白质膜伏安法,我们探索了酶的覆盖率,完整性和活性,从而探查了酶的结构和催化H2转化。电催化效率可以与蛋白质在电极上的吸附模式相关联,如通过分子动力学模拟理论估算的那样。我们的结果表明,低电位下的预激活会导致电流密度增加,这可以根据电位诱导的固定化酶重新定向进行合理化处理。

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