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Ubiquitous Electron Transport in Non-Electron Transfer Proteins

机译:非电子转移蛋白中的遍在电子传输

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摘要

Many proteins that have no known role in electron transfer processes are excellent electronic conductors. This surprising characteristic is not generally evident in bulk aggregates or crystals, or in isolated, solvated peptides, because the outer hydrophilic shell of the protein presents a barrier to charge injection. Ligands that penetrate this barrier make excellent electrical contacts, yielding conductivities on the order of a S/m. The Fermi Energy of metal electrodes is aligned with the energy of internal electronic states of the protein, as evidenced by resonant transmission peaks at about 0.3V on the Normal Hydrogen Electrode scale. This energy is about 0.7 V less than the oxidation potential of aromatic amino acids, indicating a large reduction in electrostatic reorganization energy losses in the interior of the proteins. Consistent with a possible biological role for this conductance, there is a strong dependence on protein conformation. Thus, direct measurement of conductance is a powerful new way to read out protein conformation in real time, opening the way to new types of single molecule sensors and sequencing devices.
机译:在电子转移过程中没有已知作用的许多蛋白质都是出色的电子导体。这种令人惊讶的特性通常在块状聚集体或晶体或分离的溶剂化肽中并不明显,因为蛋白质的亲水性外壳对电荷注入具有阻碍作用。穿透该势垒的配体形成良好的电接触,产生的电导率约为S / m。金属电极的费米能量与蛋白质内部电子态的能量对齐,这是正常氢电极刻度上约0.3V的共振透射峰所证明的。该能量比芳香族氨基酸的氧化电位低约0.7 V,表明蛋白质内部的静电重组能量损失大大降低。与这种电导的可能生物学作用一致,强烈依赖于蛋白质构象。因此,直接测量电导率是一种强大的新方法,可以实时读出蛋白质构象,为新型单分子传感器和测序设备开辟了道路。

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