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Solid-state electron transport via cytochrome c depends on electronic coupling to electrodes and across the protein

机译:经由细胞色素c的固态电子传输取决于与电极和跨蛋白质的电子偶联

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摘要

Electronic coupling to electrodes, Γ, as well as that across the examined molecules, H, is critical for solid-state electron transport (ETp) across proteins. Assessing the importance of each of these couplings helps to understand the mechanism of electron flow across molecules. We provide here experimental evidence for the importance of both couplings for solid-state ETp across the electron-mediating protein cytochrome c (CytC), measured in a monolayer configuration. Currents via CytC are temperature-independent between 30 and ∼130 K, consistent with tunneling by superexchange, and thermally activated at higher temperatures, ascribed to steady-state hopping. Covalent protein–electrode binding significantly increases Γ, as currents across CytC mutants, bound covalently to the electrode via a cysteine thiolate, are higher than those through electrostatically adsorbed CytC. Covalent binding also reduces the thermal activation energy, Ea, of the ETp by more than a factor of two. The importance of H was examined by using a series of seven CytC mutants with cysteine residues at different surface positions, yielding distinct electrode–protein(–heme) orientations and separation distances. We find that, in general, mutants with electrode-proximal heme have lower Ea values (from high-temperature data) and higher conductance at low temperatures (in the temperature-independent regime) than those with a distal heme. We conclude that ETp across these mutants depends on the distance between the heme group and the top or bottom electrode, rather than on the total separation distance between electrodes (protein width).
机译:电子耦合到电极Γ以及跨被检查分子的电子H对跨蛋白质的固态电子传输(ETp)至关重要。评估每种偶联的重要性有助于理解电子跨分子流动的机理。我们在此提供实验证据,证明以单层构型测量的跨电子介导蛋白细胞色素c(CytC)的固态ETp的两种偶联的重要性。通过CytC的电流在30到130 K之间与温度无关,这与通过超交换进行的隧穿一致,并且在较高的温度下被热激活,这归因于稳态跳跃。共价蛋白-电极结合显着增加了Γ,因为通过CytC突变体的电流通过半胱氨酸硫醇盐与电极共价结合,比通过静电吸附的CytC的电流高。共价结合还将ETp的热活化能Ea降低了两倍以上。通过使用一系列七个在不同表面具有半胱氨酸残基的CytC突变体检测H的重要性,这些突变体产生不同的电极-蛋白质(-血红素)方向和分离距离。我们发现,一般而言,与近端血红素相比,具有近端血红素的突变体具有更低的Ea值(根据高温数据)和在低温下(与温度无关的状态)具有更高的电导率。我们得出的结论是,跨这些突变体的ETp取决于血红素基团与顶部或底部电极之间的距离,而不是取决于电极之间的总分离距离(蛋白质宽度)。

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