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Viscosity Landscape of Phase-Separated Lipid Membrane Estimated from Fluid Velocity Field

机译:流体速度场估计的相分离脂质膜的粘度景观

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摘要

In cell membranes, the functional constituents such as peptides, proteins, and polysaccharides diffuse in a sea of lipids as single molecules and molecular aggregates. Thus, the fluidity of the heterogeneous multicomponent membrane is important for understanding the roles of the membrane in cell functionality. Recently, Henle and Levine described the hydrodynamics of molecular diffusion in a spherical membrane. A tangential point force at the north pole induces a pair of vortices whose centers lie on a line perpendicular to the point force and are symmetrical with respect to the point force. The position of the vortex center depends on ηm/Rηw, where R is the radius of the spherical membrane, and ηm and ηw are the viscosities of the membrane and the surrounding medium, respectively. Based on this theoretical prediction, we applied a point force to a phase-separated spherical vesicle composed of 1,2-dipalmitoyl-sn-glycero-3-phosphocholine/1,2-dioleoyl-sn-glycero-3-phosphocholine/cholesterol by means of a microinjection technique. The pathlines were visualized by trajectories of microdomains. We determined the position of the vortex center and estimated the membrane viscosity using the dependence of the position of the vortex center on ηm/Rηw. The obtained apparent membrane viscosities for various compositions are mapped on the phase diagram. The membrane viscosity is almost constant in the range of 0 < ϕLo ≤ 0.5 (ϕLo: area fraction of the liquid ordered phase), whereas that in the range of 0.5 ≤ ϕLo < 1.0 exponentially increases with increase of ϕLo. The obtained viscosity landscape provides a basic understanding of the fluidity of heterogeneous multicomponent membranes.
机译:在细胞膜中,诸如肽,蛋白质和多糖的功能成分在脂质海洋中弥漫,作为单分子和分子聚集体。因此,非均相多组分膜的流动性对于了解膜在细胞功能中的作用是重要的。最近,Henle和Levine描述了球形膜中的分子扩散的流体动力学。北极的切向力诱导一对涡流,其中心位于垂直于点力的线上,并且相对于点力对称。涡流中心的位置取决于ηm/rηw,其中R是球形膜的半径,ηm和ηw分别是膜和周围介质的粘度。基于该理论预测,我们将点力施加到由1,2-Dipalmitoyl-sn-甘油-3-普酞啉/ 1,2-dioleyodl-sn-甘油-3-磷光啉/胆固醇组成的相分离的球形囊泡微注射技术的方法。通过微米瘤的轨迹可视化路线。我们确定了涡旋中心的位置,并使用涡旋中心位置对ηm/ rmw的依赖性估计膜粘度。所获得的各种组合物的表观膜粘度映射在相图上。膜粘度在0 <φLO≤0.5(液体有序相的φLO:面积分数)的范围内几乎是恒定的,而随着φLO的增加,0.5≤φLO<1.0的指数增加。所获得的粘度景观提供了对异质多组分膜的流动性的基本理解。

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