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心磷脂双层膜的分子动力学模拟

Molecular dynamics simulations of cardiolipin bilayers.

作者信息

Dahlberg Martin, Maliniak Arnold

机构信息

Division of Physical Chemistry, Arrhenius Laboratory, Stockholm University, Stockholm, Sweden.

出版信息

J Phys Chem B. 2008 Sep 18;112(37):11655-63. doi: 10.1021/jp803414g. Epub 2008 Aug 20.

Abstract

Cardiolipin is a key lipid component in the inner mitochondrial membrane, where the lipid is involved in energy production, cristae structure, and mechanisms in the apoptotic pathway. In this article we used molecular dynamics computer simulations to investigate cardiolipin and its effect on the structure of lipid bilayers. Three cardiolipin/POPC bilayers with different lipid compositions were simulated: 100, 9.2, and 0% cardiolipin. We found strong association of sodium counterions to the carbonyl groups of both lipid types, leaving in the case of 9.2% cardiolipin virtually no ions in the aqueous compartment. Although binding occurred primarily at the carbonyl position, there was a preference to bind to the carbonyl groups of cardiolipin. Ion binding and the small headgroup of cardiolipin gave a strong ordering of the hydrocarbon chains. We found significant effects in the water dipole orientation and water dipole potential which can compensate for the electrostatic repulsion that otherwise should force charged lipids apart. Several parameters relevant for the molecular structure of cardiolipin were calculated and compared with results from analyses of coarse-grained simulations and available X-ray structural data.

摘要

心磷脂是线粒体内膜中的一种关键脂质成分,该脂质参与能量产生、嵴结构以及凋亡途径中的机制。在本文中,我们使用分子动力学计算机模拟来研究心磷脂及其对脂质双层结构的影响。模拟了三种具有不同脂质组成的心磷脂/POPC双层:100%、9.2%和0%的心磷脂。我们发现钠离子反离子与两种脂质类型的羰基有很强的结合,在9.2%心磷脂的情况下,水相几乎没有离子。虽然结合主要发生在羰基位置,但更倾向于与心磷脂的羰基结合。离子结合和心磷脂的小头部基团使烃链有很强的有序排列。我们发现水偶极取向和水偶极势有显著影响,这可以补偿否则会迫使带电脂质分开的静电排斥。计算了与心磷脂分子结构相关的几个参数,并与粗粒度模拟分析结果和现有的X射线结构数据进行了比较。

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