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Substrate-Supported Phospholipid Membranes Studied by Surface Plasmon Resonance and Surface Plasmon Fluorescence Spectroscopy

机译:表面等离子体共振和表面等离子体荧光光谱研究底物支撑的磷脂膜

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摘要

Substrate-supported planar lipid bilayer membranes are attractive model cellular membranes for biotechnological applications such as biochips and sensors. However, reliable fabrication of the lipid membranes on solid surfaces still poses significant technological challenges. In this study, simultaneous surface plasmon resonance (SPR) and surface plasmon fluorescence spectroscopy (SPFS) measurements were applied to the monitoring of adsorption and subsequent reorganization of phospholipid vesicles on solid substrates. The fluorescence intensity of SPFS depends very sensitively on the distance between the gold substrate and the fluorophore because of the excitation energy transfer to gold. By utilizing this distance dependency, we could obtain information about the topography of the adsorbed membranes: Adsorbed vesicles could be clearly distinguished from planar bilayers due to the high fluorescence intensity. SPSF can also incorporate various analytical techniques to evaluate the physicochemical properties of the adsorbed membranes. As an example, we demonstrated that the lateral mobility of lipid molecules could be estimated by observing the recovery of fluorescence after photobleaching. Combined with the film thickness information obtained by SPR, SPR-SPFS proved to be a highly informative technique to monitor the lipid membrane assembly processes on solid substrates.
机译:基质支持的平面脂质双层膜是用于生物技术应用(例如生物芯片和传感器)的有吸引力的模型细胞膜。然而,在固体表面上可靠地制造脂质膜仍然提出了重大的技术挑战。在这项研究中,同时进行了表面等离子体激元共振(SPR)和表面等离子体激元荧光光谱(SPFS)测量,以监测磷脂在固体基质上的吸附和随后的重组。 SPFS的荧光强度非常敏感地取决于金底物和荧光团之间的距离,因为激发能转移到金。通过利用这种距离依赖性,我们可以获得有关吸附膜形貌的信息:由于荧光强度高,可以将吸附的囊泡与平面双层明显区分开。 SPSF还可以结合各种分析技术来评估吸附膜的物理化学性质。例如,我们证明可以通过观察光漂白后荧光的恢复来估计脂质分子的横向迁移率。结合SPR获得的膜厚信息,SPR-SPFS被证明是监测固体基质上脂质膜组装过程的高信息技术。

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