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Laterally Mobile, Functionalized Self-Assembled Monolayers at the Fluorous-Aqueous Interface in a Plug-Based Microfluidic System: Characterization and Testing with Membrane Protein Crystallization

机译:在基于插头的微流控系统中的氟-水界面处的横向移动,功能化的自组装单层膜:膜蛋白结晶的表征和测试

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摘要

This paper describes a method to generate functionalizable, mobile self-assembled monolayers (SAMs) in plug-based microfluidics. Control of interfaces is advancing studies of biological interfaces, heterogeneous reactions, and nanotechnology. SAMs have been useful for such studies, but they are not laterally mobile. Lipid-based methods, though mobile, are not easily amenable to setting up the hundreds of experiments necessary for crystallization screening. Here we demonstrate a method, complementary to current SAM and lipid methods, for rapidly generating mobile, functionalized SAMs. This method relies on plugs, droplets surrounded by a fluorous carrier fluid, to rapidly explore chemical space. Specifically, we implemented his-tag binding chemistry to design a new fluorinated amphiphile, RfNTA, using an improved one-step synthesis of RfOEG under Mitsunobu conditions. RfNTA introduces specific binding of protein at the fluorous−aqueous interface, which concentrates and orients proteins at the interface, even in the presence of other surfactants. We then applied this approach to the crystallization of a his-tagged membrane protein, Reaction Center from Rhodobacter sphaeroides, performed 2400 crystallization trials, and showed that this approach can increase the range of crystal-producing conditions, the success rate at a given condition, the rate of nucleation, and the quality of the crystal formed.
机译:本文介绍了一种在基于塞子的微流控技术中生成功能性,可移动的自组装单分子层(SAM)的方法。接口的控制正在促进对生物接口,异质反应和纳米技术的研究。 SAM对于此类研究很有用,但它们不能横向移动。基于脂质的方法虽然可以移动,但不容易建立结晶筛选所需的数百个实验。在这里,我们演示了一种与当前SAM和脂质方法互补的方法,用于快速生成移动的,功能化的SAM。该方法依靠堵塞物,被氟载流体包围的液滴来快速探索化学空间。具体而言,我们在Mitsunobu条件下使用改进的一步合成RfOEG,实施了他的标签结合化学,以设计新的氟化两亲物RfNTA。 RfNTA在氟-水界面处引入蛋白质的特异性结合,即使在存在其他表面活性剂的情况下,RfNTA也会在界面处浓缩和定向蛋白质。然后,我们将这种方法应用于带有组氨酸标签的膜蛋白,即球形红球菌反应中心的结晶,进行了2400次结晶试验,结果表明,该方法可以增加晶体产生条件的范围,在给定条件下的成功率,成核速率和所形成晶体的质量。

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