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Miscibility of Ternary Mixtures of Phospholipids and Cholesterol in Monolayers, and Application to Bilayer Systems

机译:磷脂和胆固醇三元混合物在单层中的混溶性及其在双层体系中的应用

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摘要

We investigate miscibility transitions of two different ternary lipid mixtures, DOPC/DPPC/Chol and POPC/PSM/Chol. In vesicles, both of these mixtures of an unsaturated lipid, a saturated lipid, and cholesterol form micron-scale domains of immiscible liquid phases for only a limited range of compositions. In contrast, in monolayers, both of these mixtures produce two distinct regions of immiscible liquid phases that span all compositions studied, the α-region at low cholesterol and the β-region at high cholesterol. In other words, we find only limited overlap in miscibility phase behavior of monolayers and bilayers for the lipids studied. For vesicles at 25°C, the miscibility phase boundary spans portions of both the monolayer α-region and β-region. Within the monolayer β-region, domains persist to high pressures, yet within the α-region, miscibility phase transition pressures always fall below 15 mN/m, far below the bilayer equivalent pressure of 32 mN/m. Approximately equivalent phase behavior is observed for monolayers of DOPC/DPPC/Chol and for monolayers of POPC/PSM/Chol. As expected, pressure-area isotherms of our ternary lipid mixtures yield smaller molecular area and compressibility for monolayers containing more saturated acyl chains and cholesterol. All monolayer experiments were conducted under argon. We show that exposure of unsaturated lipids to air causes monolayer surface pressures to decrease rapidly and miscibility transition pressures to increase rapidly.
机译:我们调查两种不同的三元脂质混合物,DOPC / DPPC / Chol和POPC / PSM / Chol的混溶性转变。在囊泡中,对于有限范围的组合物,不饱和脂质,饱和脂质和胆固醇的这两种混合物均形成不混溶液相的微米级结构域。相比之下,在单层中,这两种混合物均会产生两个截然不同的互不相溶的液相区域,这些区域涵盖所有研究的成分,即低胆固醇的α区和高胆固醇的β区。换句话说,对于所研究的脂质,我们发现在单层和双层的混溶相行为中只有有限的重叠。对于25°C的囊泡,溶混相边界跨越了单层α-区域和β-区域的一部分。在单层β区域内,区域持续存在高压,而在α区域内,混溶相变压力始终低于15 mN / m,远低于32 mN / m的双层当量压力。对于DOPC / DPPC / Chol的单层和POPC / PSM / Chol的单层,观察到近似相等的相行为。不出所料,三元脂质混合物的等压等温线可产生较小的分子面积,并且对于包含更多饱和酰基链和胆固醇的单分子层而言,具有可压缩性。所有单层实验均在氩气下进行。我们表明,不饱和脂质暴露于空气会导致单层表面压力迅速降低,而溶混转变压力则迅速增加。

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