首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Molecular characterization of gel and liquid-crystalline structures of fully hydrated POPC and POPE bilayers
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Molecular characterization of gel and liquid-crystalline structures of fully hydrated POPC and POPE bilayers

机译:完全水合的POPC和POPE双层的凝胶和液晶结构的分子表征

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Molecular dynamics simulations were used for a comprehensive study of the structural properties of monounsaturated POPC and POPE bilayers in the gel and liquid-crystalline state at a number of temperatures, ranging from 250 to 330 K. Though the chemical structures of POPC and POPE are largely similar (choline versus ethanolamine headgroup), their transformation processes from a gel to a liquid-crystalline state are contrasting. In the similarities, the lipid tails for both systems are tilted below the phase transition and become more random above the phase transition temperature. The average area per lipid and bilayer thickness were found less sensitive to phase transition changes as the unsaturated tails are able to buffer reordering of the bilayer structure, as observed from hysteresis loops in annealing simulations. For POPC, changes in the structural properties such as the lipid tail order parameter, hydrocarbon trans-gauche isomerization, lipid tail tilt-angle, and level of interdigitation identified a phase transition at about 270 K. For POPE, three temperature ranges were identified, in which the lower one (270-280 K) was associated with a pre-transition state and the higher (290-300 K) with the post-transition state. In the pre-transition state, there was a significant increase in the number of gauche arrangements formed along the lipid tails. Near the main transition (280-290 K), there was a lowering of the lipid order parameters and a disappearance of the tilted lipid arrangement. In the post-transition state, the carbon atoms along the lipid tails became less hindered as their density profiles showed uniform distributions. This study also demonstrates that atomistic simulations of current lipid force fields are capable of capturing the phase transition behavior of lipid bilayers, providing a rich set of molecular and structural information at and near the main transition state.
机译:分子动力学模拟用于在250至330 K的多个温度下对凝胶和液晶状态下的单不饱和POPC和POPE双层的结构特性进行全面研究。尽管POPC和POPE的化学结构在很大程度上相似(胆碱和乙醇胺的头基),它们从凝胶到液晶态的转化过程是相反的。类似地,两个系统的脂质尾巴都在相变以下倾斜并且在相变温度以上变得更加随机。如从退火模拟中的磁滞回线所观察到的,发现每个脂质的平均面积和双层厚度对相变变化较不敏感,因为不饱和尾部能够缓冲双层结构的重新排序。对于POPC,其结构性质的变化(如脂质尾序参数,烃反式gauche异构化,脂质尾倾角和叉指水平)确定了约270 K的相变。对于POPE,确定了三个温度范围,其中较低的(270-280 K)与过渡前状态相关,较高的(290-300 K)与过渡后状态相关。在过渡前状态,沿着脂质尾部形成的纱布排列的数量显着增加。在主要转变点(280-290 K)附近,脂质阶数参数降低,倾斜的脂质排列消失。在过渡后状态下,沿着脂质尾部的碳原子受到的阻碍较小,因为它们的密度分布显示出均匀的分布。这项研究还表明,当前脂质力场的原子模拟能够捕获脂质双层的相变行为,从而在主要过渡态及其附近提供丰富的分子和结构信息。

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