首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Atomic force microscopy imaging and electrical recording of lipid bilayers supported over microfabricated silicon chip nanopores: Lab-on-a-chip system for lipid membranes and ion channels
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Atomic force microscopy imaging and electrical recording of lipid bilayers supported over microfabricated silicon chip nanopores: Lab-on-a-chip system for lipid membranes and ion channels

机译:原子力显微镜成像和电记录在微细加工的硅芯片纳米孔上的脂质双层:脂质膜和离子通道的芯片实验室系统

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We describe a silicon chip-based supported bilayer system to detect the presence of ion channels and their electrical conductance in lipid bilayers. Nanopores were produced in microfabricated silicon membranes by electron beam lithography as well as by using a finely focused ion beam. Thermal oxide was used to shrink pore sizes, if necessary, and to create an insulating surface. The chips with well-defined pores were easily mounted on a double-chamber plastic cell recording system, allowing for controlling the buffer conditions both above and below the window. The double-chamber system allowed using an atomic force microscopy (AFM) tip as one electrode and inserting a platinum wire as the second electrode under the membrane window, to measure electrical current across lipid bilayers that are suspended over the pores. Atomic force imaging, stiffness measurement, and electrical capacitance measurement show the feasibility of supporting lipid bilayers over defined nanopores: a key requirement to use any such technique for structure-function study of ion channels. Online addition of gramicidin, an ion-channel-forming peptide, resulted in electrical current flow across the bilayer, and the I-V curve that was measured using the conducting AFM tip indicates the presence of many conducting gramicidin ion channels.
机译:我们描述了一种基于硅芯片的支持双层系统,以检测离子通道的存在及其在脂质双层中的电导率。通过电子束光刻以及使用精细聚焦的离子束,可在微细加工的硅膜中产生纳米孔。如果需要,可使用热氧化物缩小孔径,并形成绝缘表面。具有明确孔的芯片可轻松安装在双室塑料细胞记录系统上,从而可以控制窗口上方和下方的缓冲条件。双室系统允许使用原子力显微镜(AFM)尖端作为一个电极,并在膜窗口下方插入铂丝作为第二个电极,以测量跨过悬浮在孔上的脂质双层的电流。原子力成像,刚度测量和电容测量显示了在定义的纳米孔上支持脂质双层的可行性:使用任何此类技术进行离子通道结构功能研究的关键要求。在线添加短杆菌肽(一种形成离子通道的肽)导致电流流过双层,使用导电AFM探针测得的I-V曲线表明存在许多短杆菌肽离子通道。

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