Department of Bioengineering, University of California, Los Angeles, 5121 Engineering V, 420 Westwood Plaza, Los Angeles, CA 90095, USA.
Biomed Microdevices. 2012 Feb;14(1):187-91. doi: 10.1007/s10544-011-9596-5.
Reconstitution of ion channels and transmembrane proteins in planar lipid bilayer membranes allow for their scientific study in highly controlled environments. Recent work with lipid bilayers formed from mechanically joined monolayers has shown their potential for wider technological application, including automation and parallelization. However, bilayer areas are highly sensitive to variations in mechanical position and the bilayers themselves cannot withstand significant perfusion of adjacent solutions. Toward this end, here we describe use of an aperture that masks the monolayer contact area, enabling formation of highly consistent bilayer areas and significantly reducing their variation with changes in relative position of the monolayers. Further, use of the aperture enables flow of solution adjacent to the bilayer without rupture or significant change in bilayer area. The device design is scalable and compatible with SBS standard instrumentation and automation technology, potentially enabling its use for rapid, parallel automated measurements of ion channels for large scale scientific studies and pharmaceutical screening.
在平面脂质双层膜中重建离子通道和跨膜蛋白,可以在高度可控的环境中对其进行科学研究。最近,使用机械连接的单层形成的脂质双层的研究表明,它们具有更广泛的技术应用潜力,包括自动化和并行化。然而,双层区域对机械位置的变化非常敏感,而且双层本身不能承受相邻溶液的大量灌注。为此,我们在这里描述了使用一个遮罩单层接触区域的孔,以形成高度一致的双层区域,并显著降低它们随单层相对位置变化的变化。此外,该孔的使用允许溶液在不破裂或显著改变双层区域的情况下在双层附近流动。该装置设计具有可扩展性,与 SBS 标准仪器和自动化技术兼容,可能使其能够用于快速、平行的自动化离子通道测量,用于大规模科学研究和药物筛选。