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Formation of lipid bilayer membrane in a poly(dimethylsiloxane) microchip integrated with a stacked polycarbonate membrane support and an on-site nanoinjector

机译:在与堆叠的聚碳酸酯膜支架和现场纳米注射器集成的聚二甲基硅氧烷微芯片中形成脂质双层膜

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摘要

This paper describes a new and facile approach for the formation of pore-spanning bilayer lipid membranes (BLMs) within a poly(dimethylsiloxane) (PDMS) microfluidic device. Commercially, readily available polycarbonate (PC) membranes are employed for the support of BLMs. PC sheets with 5 μm, 2 μm, and 0.4 μm pore diameters, respectively, are thermally bonded into a multilayer-stack, reducing the pore density of 0.4 μm-pore PC by a factor of 200. The BLMs on this support are considerably stable (a mean lifetime: 17 h). This multilayer-stack PC (MSPC) membrane is integrated into the PDMS chip by an epoxy bonding method developed to secure durable bonding under the use of organic solvents. The microchip has a special channel for guiding a micropipette in the proximity of the MSPC support. With this on-site injection technique, tens to hundreds of nanoliters of solutions can be directly dispensed to the support. Incorporating gramicidin ion channels into BLMs on the MSPC support has confirmed the formation of single BLMs, which is based on the observation from current signals of 20 pS conductance that is typical to single channel opening. Based on the bilayer capacitance (1.4 pF), about 15% of through pores across the MSPC membrane are estimated to be covered with BLMs.
机译:本文介绍了一种在聚二甲基硅氧烷(PDMS)微流体装置中形成跨孔双层脂质膜(BLM)的新方法。商业上,容易获得的聚碳酸酯(PC)膜用于支撑BLM。分别将孔径分别为5μm,2μm和0.4μm的PC板热粘合到多层堆叠中,从而将0.4μμm孔PC的孔密度降低了200倍。此支撑板上的BLM非常稳定(平均寿命:17 h)。这种多层堆叠式PC(MSPC)膜通过开发的环氧粘合方法集成到PDMS芯片中,以确保在使用有机溶剂的情况下实现持久的粘合。微芯片具有特殊的通道,用于在MSPC支架附近引导微量移液器。通过这种现场注射技术,可以将数十至数百纳升的溶液直接分配到载体上。将短杆菌肽离子通道整合到MSPC支持物上的BLM中,已经证实了单个BLM的形成,这是基于从20 pS电导的电流信号中观察到的,这是单通道打开的典型现象。根据双层电容(1.4 pF),估计MSPC膜上约有15%的通孔被BLM覆盖。

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