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首页> 外文期刊>ACS nano >Nanoscale Electron Transport and Photodynamics Enhancement in Lipid-Depleted Bacteriorhodopsin Monomers
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Nanoscale Electron Transport and Photodynamics Enhancement in Lipid-Depleted Bacteriorhodopsin Monomers

机译:脂质贫乏的细菌视紫红质单体的纳米级电子传输和光动力学增强。

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摘要

Potential future use of bacteriorhodopsin (bR) as a solid-state electron transport (ETp) material requires the highest possible active protein concentration. To that end we prepared stable monolayers of protein-enriched bR on a conducting HOPG substrate by lipid depletion of the native bR. The ETp properties of this construct were then investigated using conducting probe atomic force microscopy at low bias, both in the ground dark state and in the M-like intermediate configuration, formed upon excitation by green light. Photoconductance modulation was observed upon green and blue light excitation, demonstrating the potential of these monolayers as optoelectronic building blocks. To correlate protein structural changes with the observed behavior, measurements were made as a function of pressure under the AFM tip, as well as humidity. The junction conductance is reversible under pressure changes up to ~300 MPa, but above this pressure the conductance drops irreversibly. ETp efficiency is enhanced significantly at >60% relative humidity, without changing the relative photoactivity significantly. These observations are ascribed to changes in protein conformation and flexibility and suggest that improved electron transport pathways can be generated through formation of a hydrogen-bonding network.
机译:细菌视紫红质(bR)作为固态电子传输(ETp)材料的未来潜在用途需要尽可能高的活性蛋白浓度。为此,我们通过脂质去除天然bR在导电HOPG底物上制备了稳定的富含蛋白质的bR单层。然后使用传导探针原子力显微镜在低偏光下研究了该构建体的ETp特性,无论是在地面暗态下还是在绿光激发下形成的M型中间构型下。在绿光和蓝光激发时观察到光电导调制,证明了这些单层作为光电构件的潜力。为了使蛋白质结构变化与观察到的行为相关联,根据AFM尖端下的压力以及湿度进行测量。在高达〜300 MPa的压力变化下,结电导率是可逆的,但在此压力以上,电导率将不可逆地下降。相对湿度> 60%时,ETp效率显着提高,而相对光活性没有明显改变。这些观察结果归因于蛋白质构象和柔韧性的变化,并且表明可以通过形成氢键网络来产生改善的电子传输途径。

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