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量子点增强基于菌紫质的电极。

Quantum dot enhancement of bacteriorhodopsin-based electrodes.

机构信息

Department of Mechanical Engineering-Engineering Mechanics, Multi-Scale Technologies Institute, Michigan Technological University, Houghton, MI 49931, USA.

出版信息

Biosens Bioelectron. 2010 Feb 15;25(6):1493-7. doi: 10.1016/j.bios.2009.11.005. Epub 2009 Nov 11.

Abstract

Nanoscale sensing arrays utilizing the unique properties of the optical protein bacteriorhodopsin and colloidal semiconductor quantum dots are being developed for toxin detection applications. This paper describes an innovative method to activate bacteriorhodopsin-based electrodes with the optical output of quantum dots, producing an enhanced electrical response from the protein. Results show that the photonic emission of CdSe/ZnS quantum dots is absorbed by the bacteriorhodopsin retinal and initiates the proton pumping sequence, resulting in an electrical output from a bacteriorhodopsin-based electrode. It is also shown that activated quantum dots in sub-10nm proximity to bacteriorhodopsin further amplify the photovoltaic response of the protein by approximately 23%, compared to without attached quantum dots, suggesting direct energy transfer mechanisms beyond photonic emission alone. The ability of quantum dots to activate nanoscale regions on bacteriorhodopsin-based electrodes could allow sub-micron sensing arrays to be created due to the ability to activate site-specific regions on the array.

摘要

利用光学蛋白细菌视紫红质和胶体半导体量子点的独特性质的纳米级传感阵列正在被开发用于毒素检测应用。本文描述了一种创新的方法,利用量子点的光学输出来激活基于细菌视紫红质的电极,从而产生来自蛋白质的增强电响应。结果表明,CdSe/ZnS 量子点的光子发射被细菌视紫红质的视黄醛吸收,并引发质子泵浦序列,从而从基于细菌视紫红质的电极产生电输出。还表明,与没有附着的量子点相比,与细菌视紫红质的亚 10nm 近距离处的激活量子点通过大约 23%的方式进一步放大了蛋白质的光伏响应,这表明除了光子发射之外还有直接的能量转移机制。由于能够激活阵列上的特定位置,量子点激活基于细菌视紫红质的电极上的纳米级区域的能力可以允许创建亚微米级的传感阵列。

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