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Nanoscale Electric Characteristics and Oriented Assembly of Halobacterium salinarum Membrane Revealed by Electric Force Microscopy

机译:电动显微镜揭示的盐盐细菌膜的纳米级电学特性和定向组装

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摘要

Purple membranes (PM) of the bacteria Halobacterium salinarum are a unique natural membrane where bacteriorhodopsin (BR) can convert photon energy and pump protons. Elucidating the electronic properties of biomembranes is critical for revealing biological mechanisms and developing new devices. We report here the electric properties of PMs studied by using multi-functional electric force microscopy (EFM) at the nanoscale. The topography, surface potential, and dielectric capacity of PMs were imaged and quantitatively measured in parallel. Two orientations of PMs were identified by EFM because of its high resolution in differentiating electrical characteristics. The extracellular (EC) sides were more negative than the cytoplasmic (CP) side by 8 mV. The direction of potential difference may facilitate movement of protons across the membrane and thus play important roles in proton pumping. Unlike the side-dependent surface potentials observed in PM, the EFM capacitive response was independent of the side and was measured to be at a dC/dz value of ~5.25 nF/m. Furthermore, by modification of PM with de novo peptides based on peptide-protein interaction, directional oriented PM assembly on silicon substrate was obtained for technical devices. This work develops a new method for studying membrane nanoelectronics and exploring the bioelectric application at the nanoscale.
机译:盐盐细菌的紫色膜(PM)是独特的天然膜,细菌视紫红质(BR)可以转换光子能量并泵送质子。阐明生物膜的电子特性对于揭示生物学机制和开发新设备至关重要。我们在这里报告通过使用多功能电动显微镜(EFM)在纳米尺度上研究的PM的电性能。对PM的形貌,表面电势和介电容量进行成像并并行进行定量测量。由于EFM具有区分电特性的高分辨率,因此EFM可以识别出PM的两个方向。细胞外(EC)侧比细胞质(CP)侧更负8 mV。电位差的方向可以促进质子跨膜的移动,从而在质子泵送中起重要作用。与在PM中观察到的取决于侧面的表面电势不同,EFM电容响应独立于侧面,并且测量的dC / dz值为〜5.25 nF / m。此外,通过基于肽-蛋白质相互作用用新肽对PM进行修饰,获得了在硅基板上定向定向的PM组装技术设备。这项工作开发了一种新的方法来研究膜纳米电子学,并探索在纳米尺度上的生物电应用。

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