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Label-Free Quantification of Small Molecule Binding to Membrane Proteins on Single Cells by Tracking Nanometer-Scale Cellular Membrane Deformation

机译:通过跟踪纳米级细胞膜变形将小分子与膜蛋白结合在单个细胞上的无标签定量。

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摘要

Measuring molecular binding to membrane proteins is critical for understanding cellular functions, validating biomarkers and screening drugs. Despite the importance, developing such a capability has been a difficult challenge, especially for small molecule binding to membrane proteins in their native cellular environment. Here we show that the binding of both large and small molecules to membrane proteins can be quantified on single cells by trapping single cells with a microfluidic device, and detecting binding-induced cellular membrane deformation on nanometer-scale with label-free optical imaging. We develop a thermodynamic model to describe the binding-induced membrane deformation, validate the model by examining the dependence of membrane deformation on cell stiffness, membrane protein expression level and binding affinity, and study four major types of membrane proteins, including glycoproteins, ion channels, G-protein coupled and tyrosine kinase receptors. The single cell detection capability reveals the importance of local membrane environment on molecular binding, and variability in the binding kinetics of different cell lines, and heterogeneity of different cells within the same cell line.
机译:测量与膜蛋白的分子结合对于理解细胞功能,验证生物标志物和筛选药物至关重要。尽管很重要,但开发这种能力仍然是一个艰巨的挑战,特别是对于小分子与天然细胞环境中的膜蛋白结合而言。在这里,我们显示可以通过使用微流控设备捕获单个细胞,并使用无标记的光学成像在纳米级检测结合诱导的细胞膜变形,从而在单个细胞上量化大分子和小分子与膜蛋白的结合。我们开发了一个热力学模型来描述结合诱导的膜变形,通过检查膜变形对细胞硬度,膜蛋白表达水平和结合亲和力的依赖性来验证模型,并研究四种主要类型的膜蛋白,包括糖蛋白,离子通道,G蛋白偶联和酪氨酸激酶受体。单细胞检测能力揭示了局部膜环境对分子结合的重要性,不同细胞系结合动力学的变异性以及同一细胞系中不同细胞的异质性。

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