Department of Chemistry, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA.
Lab Chip. 2017 Aug 22;17(17):2951-2959. doi: 10.1039/c7lc00601b.
The characterization of integral membrane proteins presents numerous analytical challenges on account of their poor activity under non-native conditions, limited solubility in aqueous solutions, and low expression in most cell culture systems. Nanodiscs are synthetic model membrane constructs that offer many advantages for studying membrane protein function by offering a native-like phospholipid bilayer environment. The successful incorporation of membrane proteins within Nanodiscs requires experimental optimization of conditions. Standard protocols for Nanodisc formation can require large amounts of time and input material, limiting the facile screening of formation conditions. Capitalizing on the miniaturization and efficient mass transport inherent to microfluidics, we have developed a microfluidic platform for efficient Nanodisc assembly and purification, and demonstrated the ability to incorporate functional membrane proteins into the resulting Nanodiscs. In addition to working with reduced sample volumes, this platform simplifies membrane protein incorporation from a multi-stage protocol requiring several hours or days into a single platform that outputs purified Nanodiscs in less than one hour. To demonstrate the utility of this platform, we incorporated Cytochrome P450 into Nanodiscs of variable size and lipid composition, and present spectroscopic evidence for the functional active site of the membrane protein. This platform is a promising new tool for membrane protein biology and biochemistry that enables tremendous versatility for optimizing the incorporation of membrane proteins using microfluidic gradients to screen across diverse formation conditions.
整联蛋白的特性分析极具挑战性,这是因为它们在非天然条件下活性较差、在水溶液中溶解度有限,且在大多数细胞培养系统中的表达水平较低。纳米盘是一种人工合成的模型膜结构,它为研究膜蛋白功能提供了许多优势,因为它提供了类似天然的磷脂双层环境。要成功地将膜蛋白整合到纳米盘中,需要对条件进行实验优化。纳米盘形成的标准方案可能需要大量的时间和输入材料,从而限制了形成条件的简便筛选。利用微流控技术固有的小型化和高效传质特性,我们开发了一种用于高效纳米盘组装和纯化的微流控平台,并证明了将功能性膜蛋白整合到所得纳米盘中的能力。除了使用减少的样品量外,该平台还简化了膜蛋白的整合,从需要数小时或数天的多步方案转变为在不到 1 小时内输出纯化纳米盘的单一平台。为了证明该平台的实用性,我们将细胞色素 P450 整合到具有不同大小和脂质组成的纳米盘中,并提供了膜蛋白功能活性位点的光谱证据。该平台是膜蛋白生物学和生物化学的一种很有前途的新工具,它通过使用微流控梯度来优化膜蛋白的整合,从而在不同的形成条件下进行筛选,具有极大的多功能性。