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首页> 外文期刊>Small >Probing Membrane Viscosity and Interleaflet Friction of Supported Lipid Bilayers by Tracking Electrostatically Adsorbed, Nano-Sized Vesicles
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Probing Membrane Viscosity and Interleaflet Friction of Supported Lipid Bilayers by Tracking Electrostatically Adsorbed, Nano-Sized Vesicles

机译:通过跟踪静电吸附的纳米囊泡来探测支持的脂质双层的膜粘度和叶间摩擦。

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Particle tracking is used to measure the diffusional motion of nanosized (approximate to 100 nm), lipid vesicles that are electrostatically adsorbed onto a solid supported lipid bilayer. It is found that the motion of membrane-adhering vesicles is Brownian and depends inversely on the vesicle size, but is insensitive to the vesicle surface charge. The measured diffusivity agrees well with the Evans-Sackmann model for the diffusion of inclusions in supported, fluidic membranes. The agreement implies that the vesicle motion is coupled to that of a nanoscopic lipid cluster in the upper leaflet, which slides over the lower leaflet. The diffusivity of membrane-adhering vesicles is therefore predominantly governed by the interleaflet friction coefficient, while the diffusivity of single lipids is mainly governed by the membrane viscosity. Combined with fluorescence recovery after photobleaching analysis, the interleaflet friction coefficient and the membrane viscosity are determined by applying the Evans-Sackmann model to the measured diffusivity of membrane adhering vesicles and that of supported membrane lipids. This approach provides an alternative to existing methods for measuring the interleaflet friction coefficient and the membrane viscosity.
机译:粒子跟踪用于测量静电吸附到固体支持的脂质双层上的纳米级(约100 nm)脂质囊泡的扩散运动。发现膜粘附的囊泡的运动是布朗氏的,并且反过来取决于囊泡的大小,但是对囊泡的表面电荷不敏感。所测得的扩散率与Evans-Sackmann模型非常吻合,该模型用于分析内含物在支撑的流体膜中的扩散。该协议意味着囊泡运动与上部小叶中的纳米脂质簇的运动耦合,其在下部小叶上滑动。因此,粘附在膜上的囊泡的扩散率主要由叶间摩擦系数决定,而单个脂质的扩散率则主要由膜的粘度决定。结合光漂白分析后的荧光回收率,通过将Evans-Sackmann模型应用于膜粘附小泡的扩散率和负载的膜脂质的扩散率,确定叶间摩擦系数和膜粘度。该方法为现有的测量叶间摩擦系数和膜粘度的方法提供了一种替代方法。

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