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测量自组装膜结构的过剩自由能。

Measuring excess free energies of self-assembled membrane structures.

机构信息

Institut für Theoretische Physik, Georg-August-Universität, 37073 Göttingen, Germany.

出版信息

Faraday Discuss. 2010;144:369-91; discussion 445-81. doi: 10.1039/b901657k.

DOI:10.1039/b901657k
PMID:20158039
Abstract

Using computer simulation of a solvent-free, coarse-grained model for amphiphilic membranes, we study the excess free energy of hourglass-shaped connections (i.e., stalks) between two apposed bilayer membranes. In order to calculate the free energy by simulation in the canonical ensemble, we reversibly transfer two apposed bilayers into a configuration with a stalk in three steps. First, we gradually replace the intermolecular interactions by an external, ordering field. The latter is chosen such that the structure of the non-interacting system in this field closely resembles the structure of the original, interacting system in the absence of the external field. The absence of structural changes along this path suggests that it is reversible; a fact which is confirmed by expanded-ensemble simulations. Second, the external, ordering field is changed as to transform the non-interacting system from the apposed bilayer structure to two-bilayers connected by a stalk. The final external field is chosen such that the structure of the non-interacting system resembles the structure of the stalk in the interacting system without a field. On the third branch of the transformation path, we reversibly replace the external, ordering field by non-bonded interactions. Using expanded-ensemble techniques, the free energy change along this reversible path can be obtained with an accuracy of 10(-3)k(B)T per molecule in the n VT-ensemble. Calculating the chemical potential, we obtain the free energy of a stalk in the grandcanonical ensemble, and employing semi-grandcanonical techniques, we calculate the change of the excess free energy upon altering the molecular architecture. This computational strategy can be applied to compute the free energy of self-assembled phases in lipid and copolymer systems, and the excess free energy of defects or interfaces.

摘要

使用无溶剂、粗粒模型对两亲性膜的计算机模拟,我们研究了两个相邻双层膜之间沙漏形连接(即柄)的过剩自由能。为了在正则系综中通过模拟计算自由能,我们将两个相邻的双层膜可逆地转化为具有柄的构型,分三步进行。首先,我们逐渐用外部有序场替代分子间相互作用。外部场的选择使得在该场中非相互作用系统的结构与原始相互作用系统在没有外部场时的结构非常相似。沿着这条路径没有结构变化表明它是可逆的;这一事实通过扩展系综模拟得到了证实。其次,改变外部有序场,将非相互作用系统从相邻双层结构转变为由柄连接的双层。选择最终的外部场,使得非相互作用系统的结构类似于无场相互作用系统中柄的结构。在转变路径的第三个分支上,我们可逆地用非键相互作用取代外部有序场。使用扩展系综技术,可以以每分子 10(-3)k(B)T 的精度在 nVT 系综中获得沿这条可逆路径的自由能变化。计算化学势,我们得到了在巨正则系综中柄的自由能,并采用半巨正则技术,我们计算了改变分子结构时过剩自由能的变化。这种计算策略可用于计算脂质和共聚物系统中自组装相的自由能以及缺陷或界面的过剩自由能。

相似文献

1
Measuring excess free energies of self-assembled membrane structures.测量自组装膜结构的过剩自由能。
Faraday Discuss. 2010;144:369-91; discussion 445-81. doi: 10.1039/b901657k.
2
Calculating the free energy of self-assembled structures by thermodynamic integration.通过热力学积分计算自组装结构的自由能。
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Transition path from two apposed membranes to a stalk obtained by a combination of particle simulations and string method.通过粒子模拟和串方法的组合获得从两个对置膜到柄的转变路径。
Phys Rev Lett. 2012 Jun 1;108(22):228103. doi: 10.1103/PhysRevLett.108.228103. Epub 2012 May 31.
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The Gaussian curvature elastic energy of intermediates in membrane fusion.膜融合中间体的高斯曲率弹性能量。
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The importance of membrane defects-lessons from simulations.膜缺陷的重要性:模拟研究的启示。
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Coarse-grained molecular dynamics study of membrane fusion: Curvature effects on free energy barriers along the stalk mechanism.膜融合的粗粒度分子动力学研究:沿茎干机制的曲率对自由能垒的影响。
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The modified stalk mechanism of lamellar/inverted phase transitions and its implications for membrane fusion.片层/反相转变的改良茎干机制及其对膜融合的影响。
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Structure and energy of fusion stalks: the role of membrane edges.融合柄的结构与能量:膜边缘的作用
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How does curvature affect the free-energy barrier of stalk formation? Small vesicles vs apposing, planar membranes.曲率如何影响茎形成的自由能势垒?小泡与面对的、平面的膜。
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