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用于同步电导和特定分子成像的基于生物启发蛋白通道的扫描离子电导显微镜(Bio-SICM)。

Bioinspired Protein Channel-Based Scanning Ion Conductance Microscopy (Bio-SICM) for Simultaneous Conductance and Specific Molecular Imaging.

作者信息

Macazo Florika C, White Ryan J

机构信息

Department of Chemistry and Biochemistry, University of Maryland Baltimore County , Baltimore, Maryland 21250, United States.

出版信息

J Am Chem Soc. 2016 Mar 2;138(8):2793-801. doi: 10.1021/jacs.5b13252. Epub 2016 Feb 19.

Abstract

The utility of stochastic single-molecule detection using protein nanopores has found widespread application in bioanalytical sensing as a result of the inherent signal amplification of the resistive pulse method. Integration of protein nanopores with high-resolution scanning ion conductance microscopy (SICM) extends the utility of SICM by enabling selective chemical imaging of specific target molecules, while simultaneously providing topographical information about the net ion flux through a pore under a concentration gradient. In this study, we describe the development of a bioinspired scanning ion conductance microscopy (bio-SICM) approach that couples the imaging ability of SICM with the sensitivity and chemical selectivity of protein channels to perform simultaneous pore imaging and specific molecule mapping. To establish the framework of the bio-SICM platform, we utilize the well-studied protein channel α-hemolysin (αHL) to map the presence of β-cyclodextrin (βCD) at a substrate pore opening. We demonstrate concurrent pore and specific molecule imaging by raster scanning an αHL-based probe over a glass membrane containing a single 25-μm-diameter glass pore while recording the lateral positions of the probe and channel activity via ionic current. We use the average channel current to create a conductance image and the raw current-time traces to determine spatial localization of βCD. With further optimization, we believe that the bio-SICM platform will provide a powerful analytical methodology that is generalizable, and thus offers significant utility in a myriad of bioanalytical applications.

摘要

由于电阻脉冲法固有的信号放大作用,利用蛋白质纳米孔进行随机单分子检测在生物分析传感中得到了广泛应用。将蛋白质纳米孔与高分辨率扫描离子电导显微镜(SICM)相结合,通过对特定目标分子进行选择性化学成像,扩展了SICM的应用范围,同时提供了在浓度梯度下通过孔的净离子通量的地形信息。在本研究中,我们描述了一种受生物启发的扫描离子电导显微镜(bio-SICM)方法的开发,该方法将SICM的成像能力与蛋白质通道的灵敏度和化学选择性相结合,以同时进行孔成像和特定分子映射。为了建立bio-SICM平台的框架,我们利用经过充分研究的蛋白质通道α-溶血素(αHL)来绘制底物孔开口处β-环糊精(βCD)的存在情况。我们通过在含有单个直径25μm玻璃孔的玻璃膜上光栅扫描基于αHL的探针,同时通过离子电流记录探针的横向位置和通道活性,展示了同时进行的孔和特定分子成像。我们使用平均通道电流创建电导图像,并使用原始电流-时间轨迹来确定βCD的空间定位。通过进一步优化,我们相信bio-SICM平台将提供一种强大的、可推广的分析方法,因此在众多生物分析应用中具有重要的实用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7e2d/4778544/295aacfa41ee/ja-2015-132529_0007.jpg

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