论文标题

相位场模型的实验验证,以预测多组分膜中脂质结构域的粗化动力学

Experimental validation of a phase-field model to predict coarsening dynamics of lipid domains in multicomponent membranes

论文作者

Zhiliakov, Alexander, Wang, Yifei, Quaini, Annalisa, Olshanskii, Maxim, Majd, Sheereen

论文摘要

膜相分离是一种机制,生物膜通常用来局部浓缩特定的脂质物种,以组织多种膜过程。相位分离也已被探索为设计具有异质和空间组织表面的脂质体的工具。这些“斑点”的脂质体是用于交付目的的有前途的平台,但是它们通过实验的设计和优化可能是昂贵且耗时的。我们基于表面Cahn-Hilliard相位模型开发了一种计算有效的方法,以补充斑纹脂质体设计中的实验研究。该方法依靠热力学考虑来为数值模拟设置初始状态。我们表明,我们的计算方法不仅提供了定性图片,还提供有关膜组织动态的准确定量信息。特别是,在筏面积分数,随着时间的推移,总筏周长和两种不同的膜组成的筏的总数(DOPC:DPPC:2:1摩尔比为20%CHOL和DOPC:DPPC:3:1摩尔比为20%Chol的2:1摩尔比:2:1摩尔比),计算和实验结果非常吻合。因此,通过实验告知的计算相位模型具有很大的潜力,可以帮助设计具有空间组织表面的脂质体,从而包含设计过程所需的成本和时间。

Membrane phase-separation is a mechanism that biological membranes often use to locally concentrate specific lipid species in order to organize diverse membrane processes. Phase separation has also been explored as a tool for the design of liposomes with heterogeneous and spatially organized surfaces. These "patchy" liposomes are promising platforms for delivery purposes, however their design and optimization through experimentation can be expensive and time-consuming. We developed a computationally efficient method based on the surface Cahn-Hilliard phase-field model to complement experimental investigations in the design of patchy liposomes. The method relies on thermodynamic considerations to set the initial state for numerical simulations. We show that our computational approach delivers not only qualitative pictures, but also accurate quantitative information about the dynamics of the membrane organization. In particular, the computational and experimental results are in excellent agreement in terms of raft area fraction, total raft perimeter over time and total number of rafts over time for two different membrane compositions (DOPC:DPPC with a 2:1 molar ratio with 20% Chol and DOPC:DPPC with a 3:1 molar ratio with 20% Chol). Thus, the computational phase-field model informed by experiments has a considerable potential to assist in the design of liposomes with spatially organized surfaces, thereby containing the cost and time required by the design process.

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