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Demonstration of asymmetric electron conduction in pseudosymmetrical photosynthetic reaction centre proteins in an electrical circuit

机译:电路中伪对称光合作用反应中心蛋白中不对称电子传导的证明

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摘要

Photosynthetic reaction centres show promise for biomolecular electronics as nanoscale solar-powered batteries and molecular diodes that are amenable to atomic-level re-engineering. In this work the mechanism of electron conduction across the highly tractable Rhodobacter sphaeroides reaction centre is characterized by conductive atomic force microscopy. We find, using engineered proteins of known structure, that only one of the two cofactor wires connecting the positive and negative termini of this reaction centre is capable of conducting unidirectional current under a suitably oriented bias, irrespective of the magnitude of the bias or the applied force at the tunnelling junction. This behaviour, strong functional asymmetry in a largely symmetrical protein–cofactor matrix, recapitulates the strong functional asymmetry characteristic of natural photochemical charge separation, but it is surprising given that the stimulus for electron flow is simply an externally applied bias. Reasons for the electrical resistance displayed by the so-called B-wire of cofactors are explored.
机译:光合作用反应中心显示出对生物分子电子的希望,因为纳米级太阳能电池和分子二极管可以进行原子级的重新设计。在这项工作中,通过导电原子力显微镜表征了跨越高度易处理的球形球形红细菌反应中心的电子传导机理。我们发现,使用已知结构的工程蛋白,连接该反应中心正负末端的两条辅助因子导线中只有一根能够在适当定向的偏压下传导单向电流,而与偏压的大小或施加的电流无关。力作用于隧道结。这种行为在很大程度上对称的蛋白质-辅因子基质中具有很强的功能不对称性,概括了自然光化学电荷分离的强大功能不对称性,但是令人惊讶的是,电子流的刺激只是外部施加的偏见。探究了所谓的辅因子B线所显示的电阻的原因。

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