Department of Physics, Chalmers University of Technology, Gothenburg, SE-412 96, Sweden.
Department of Pharmacy, Uppsala University, Uppsala, SE-751 23, Sweden.
Angew Chem Int Ed Engl. 2021 Jan 25;60(4):2069-2073. doi: 10.1002/anie.202011931. Epub 2020 Nov 23.
There is an urgent demand for analytic approaches that enable precise and representative quantification of the transport of biologically active compounds across cellular membranes. In this study, we established a new means to monitor membrane permeation kinetics, using total internal reflection fluorescence microscopy confined to a ≈500 nm thick mesoporous silica substrate, positioned underneath a planar supported cell membrane mimic. This way, we demonstrate spatiotemporally resolved membrane permeation kinetics of a small-molecule model drug, felodipine, while simultaneously controlling the integrity of, and monitoring the drug binding to, the cell membrane mimic. By contrasting the permeation behaviour of pure felodipine with felodipine coupled to the permeability enhancer caprylate (C8), we provide evidence for C8-facilitated transport across lipid membranes, thus validating the potential for this approach to successfully quantify carrier system-induced changes to cellular membrane permeation.
目前迫切需要分析方法来精确和有代表性地定量测定生物活性化合物跨细胞膜的转运。在这项研究中,我们建立了一种新的方法来监测膜渗透动力学,使用全内反射荧光显微镜限制在 ≈500nm 厚的介孔二氧化硅基底上,该基底位于平面支撑的细胞膜类似物下方。通过这种方式,我们演示了小分子模型药物非洛地平的时空分辨膜渗透动力学,同时控制细胞膜类似物的完整性并监测其与药物的结合。通过将纯非洛地平的渗透行为与与渗透增强剂辛酸酯(C8)偶联的非洛地平进行对比,我们为 C8 促进穿过脂质膜的转运提供了证据,从而验证了这种方法成功量化载体系统引起的细胞膜渗透变化的潜力。