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Cytochrome C on a gold surface: investigating structural relaxations and their role in protein-surface electron transfer by molecular dynamics simulations

机译:金表面的细胞色素C:通过分子动力学模拟研究结构弛豫及其在蛋白质表面电子转移中的作用

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Proteins immobilized on inorganic surfaces are important in technological fields such as biosensors, enzymatic biofuel cells and biomolecular electronics. In these frameworks, it has been demonstrated that some proteins are able to keep their functionality, although the latter may be somewhat modified by the interaction with the surface. Cytochrome C, an heme-based electron transfer protein, has been found to be able to exchange electrons with the gold surface on which it is immobilized, but some deviations from the expected electron transfer rates were evidenced [C A. Bortolotti, et al., J. Phys. Chem. C 2007, 111, 12100-12105]. In this work we have used molecular dynamics simulations of (native and mutated) yeast cytochrome C supported on Au(111) to investigate the microscopic picture behind the experimental behavior of the molecule. In particular, we have focused on the structural re-arrangements due to the interactions with the surface. We found that, despite being secondary-structure preserving, they can profoundly affect protein-surface electronic coupling and, in turn, electron transfer rates, explaining experimental findings. The conformational flexibility of the protein in the region of the protein-surface bond is thus pivotal in determining the resulting ET functionality of the immobilized protein.
机译:固定在无机表面上的蛋白质在生物传感器,酶促生物燃料电池和生物分子电子学等技术领域非常重要。在这些框架中,已证明某些蛋白质能够保留其功能,尽管后者可能会因与表面的相互作用而有所修饰。已发现细胞色素C是一种基于血红素的电子转移蛋白,能够与固定在其上的金表面交换电子,但已证明与预期的电子转移速率存在一些偏差[CA. Bortolotti等。 ,J。Phys。化学C 2007,111,12100-12105]。在这项工作中,我们使用了在Au(111)上负载的(天然和突变的)酵母细胞色素C的分子动力学模拟,以研究分子实验行为背后的微观图片。特别是,由于与表面的相互作用,我们专注于结构的重新布置。我们发现,尽管保留了二级结构,但它们可以深刻影响蛋白质表面的电子偶联,进而影响电子转移速率,从而解释了实验结果。因此,蛋白质在蛋白质表面键的区域中的构象柔韧性对于确定所得固定化蛋白质的ET功能至关重要。

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