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Characterization of planar biomimetic lipid films composed of phosphatidylethanolamines and phosphatidylglycerols from Escherichia coli

机译:由大肠杆菌的磷脂酰乙醇胺和磷脂酰甘油组成的平面仿生脂膜的表征

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摘要

We have characterized planar lipid films composed of phosphatidylethanolamines (PE) and phosphatidylglycerols (PG) from E. coli bacteria. The nature of the interactions and miscibility of PE and PG components within mixed lipid films was evaluated based on surface pressure measurements and Brewster angle microscopy imaging at the air-water interface. We have found that PE and PG components show tendency to form separated domains at surface pressures relevant for biological membranes. Further, we have directly compared mechanisms of formation of supported lipid bilayers either on mica or Au(111) by spreading of small unilamellar vesicles. The bilayer formation was monitored by in situ atomic force microscopy imaging. The pathways of the vesicles spreading on each substrate are substantially different and the buildup of the bilayer on Au(111) occurs through complex multistep mechanism. The morphology and nanomechanical properties of the resulting PE/PG bilayers were thoroughly compared. We have found that the interactions between lipids and supporting substrate significantly affect molecular organization within the films since the bilayer on Au(111) is uniform in terms of the topography, while the same lipid composition on mica results in formation of distinct gel and liquid disordered domains. Different molecular organization affects also nanomechanical properties of lipid films. The latter were expressed in terms of Young's moduli and bending stiffness. (C) 2017 Elsevier B.V. All rights reserved.
机译:我们具有由大肠杆菌细菌的磷脂酰乙醇胺(PE)和磷脂酰甘油(PG)组成的平面脂质膜。基于在空气 - 水界面处的表面压力测量和布鲁斯特角显微镜成像评估了混合脂膜内的PE和PG组分的相互作用和混溶性的性质。我们发现PE和PG组分显示出在与生物膜相关的表面压力下形成分离结构域的趋势。此外,通过扩散小单薄囊泡,我们直接比较了在云母或Au(111)上形成了支持的脂质双层的机制。通过原位原子力显微镜显微镜进行监测双层形成。在每个衬底上扩散的囊泡的途径基本上不同,并且通过复杂的多步机制发生了Au(111)上的双层的累积。彻底比较了所得PE / PG双层的形态和纳米力学性质。我们发现脂质和支撑衬底之间的相互作用显着影响薄膜内的分子组织,因为Au(111)的双层在地形方面是均匀的,而在云母上的相同脂质组合物导致形成不同的凝胶和液体无序的形成域名。不同的分子组织也影响脂质膜的纳米机械性能。后者以杨氏模和弯曲僵硬表示。 (c)2017 Elsevier B.v.保留所有权利。

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