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使用图案化光栅结构创建对气泡不敏感的脂质双层平台。

Using a patterned grating structure to create lipid bilayer platforms insensitive to air bubbles.

作者信息

Han Chung-Ta, Chao Ling

机构信息

National Taiwan University, Department of Chemical Engineering, Taipei, Taiwan.

出版信息

Lab Chip. 2015 Jan 7;15(1):86-93. doi: 10.1039/c4lc00928b.

Abstract

Supported lipid bilayers (SLBs) have been used for various biosensing applications. The bilayer structure enables embedded lipid membrane species to maintain their native orientation, and the two-dimensional fluidity is crucial for numerous biomolecular interactions to occur. The platform integrated with a microfluidic device for reagent transport and exchange has great potential to be applied with surface analytical tools. However, SLBs can easily be destroyed by air bubbles during assay reagent transport and exchange. Here, we created a patterned obstacle grating structured surface in a microfluidic channel to protect SLBs from being destroyed by air bubbles. Unlike all of the previous approaches using chemical modification or adding protection layers to strengthen lipid bilayers, the uniqueness of this approach is that it uses the patterned obstacles to physically trap water above the bilayers to prevent the air-water interface from directly coming into contact with and peeling the bilayers. We showed that our platform with certain grating geometry criteria can provide promising protection to SLBs from air bubbles. The required obstacle distance was found to decrease when we increased the air-bubble movement speed. In addition, the interaction assay results from streptavidin and biotinylated lipids in the confined SLBs suggested that receptors at the SLBs retained the interaction ability after air-bubble treatment. The results showed that the developed SLB platform can preserve both high membrane fluidity and high accessibility to the outside environment, which have never been simultaneously achieved before. Incorporating the built platforms with some surface analytical tools could open the bottleneck of building highly robust in vitro cell-membrane-related bioassays.

摘要

支撑脂质双层(SLBs)已被用于各种生物传感应用。双层结构使嵌入的脂质膜物种能够保持其天然取向,并且二维流动性对于众多生物分子相互作用的发生至关重要。与用于试剂运输和交换的微流控装置集成的平台具有与表面分析工具一起应用的巨大潜力。然而,在测定试剂运输和交换过程中,SLBs很容易被气泡破坏。在这里,我们在微流控通道中创建了一种图案化的障碍物光栅结构表面,以保护SLBs不被气泡破坏。与以往所有使用化学修饰或添加保护层来强化脂质双层的方法不同,这种方法的独特之处在于它使用图案化的障碍物在双层上方物理捕获水,以防止空气 - 水界面直接接触并剥离双层。我们表明,具有特定光栅几何标准的我们的平台可以为SLBs提供有前景的气泡保护。当我们提高气泡移动速度时,发现所需的障碍物距离会减小。此外,在受限的SLBs中链霉亲和素与生物素化脂质的相互作用测定结果表明,气泡处理后SLBs上的受体保留了相互作用能力。结果表明,所开发的SLB平台可以同时保持高膜流动性和对外部环境的高可及性,这是以前从未同时实现过的。将构建的平台与一些表面分析工具相结合,可以打开构建高度稳健的体外细胞膜相关生物测定的瓶颈。

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