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十种五肽Ace-WLXLL在环己烷/水和磷脂/水界面分配的计算机模拟。

Computer simulation of partitioning of ten pentapeptides Ace-WLXLL at the cyclohexane/water and phospholipid/water interfaces.

作者信息

Aliste Marcela P, Tieleman D Peter

机构信息

Department of Biological Sciences, University of Calgary, 2500 University Dr, NW, Calgary, Alberta T2N 1N4, Canada.

出版信息

BMC Biochem. 2005 Dec 20;6:30. doi: 10.1186/1471-2091-6-30.

Abstract

BACKGROUND

Peptide-membrane interactions play a key role in the binding, partitioning and folding of membrane proteins, the activity of antimicrobial and fusion peptides, and a number of other processes. To gain a better understanding of the thermodynamics of such interactions, White and Wimley created an interfacial hydrophobicity scale based of the transfer free energy from water to octanol or lipid bilayers of a series of synthetic peptapeptides (Ace-WLXLL, with X being any of the twenty natural amino acids) (White and Wimley (1996) Nat. Struct. Biol. 3, 842-848). In this study, we performed molecular dynamics simulations of a representative set of ten of these peptides (X = D, K, R, N, A, T, S, I, F and W) in two membrane mimetic interfaces: water-cyclohexane (10 ns) and a fully solvated dioleoylphosphatidylcholine (DOPC) bilayer (50 ns) using both constant pressure and constant area ensembles. We focus on partitioning of the ten peptides at the cyclohexane/water and lipid/water interfaces.

RESULTS

The peptides rapidly equilibrate (< 2 ns) and partition at the cyclohexane/water interface. The X3 guest residue assumes average orientations that depend on the nature of the side chain. At the DOPC/water interface, dynamics is much slower and convergence is difficult to achieve on a 50 ns timescale. Nonetheless, all peptides partition to the lipid/water interface with distributions with widths of 1-2 nm. The peptides assume a broad range of side chain and backbone orientations and have only a small effect on the area of the unit cell. On average, hydrophobic guest residues partition deeper into the hydrophobic core than hydrophilic residues. In some cases the peptides penetrate sufficiently deep to somewhat affect the distribution of the C=C double bond in DOPC. The relative distribution of the X3 guest residue compared to W1 and L5 is similar in the water/cyclohexane and water/lipid simulations. Snapshots show mostly extended backbone conformations in both environments. There is little difference between simulations at a constant area of 0.66 nm2 and simulations at constant pressure that approximately yield the same average area of 0.66 nm2.

CONCLUSION

These peptides were designed to assume extended conformations, which is confirmed by the simulations. The distribution of the X3 side chain depends on its nature, and can be determined from molecular dynamics simulations. The time scale of peptide motion at a phospholipids-water interface is too long to directly calculate the experimentally measured hydrophobicity scale to test and improve the simulation parameters. This should be possible at the water/cyclohexane interface and likely will become feasible in the future for the phospholipids/water case.

摘要

背景

肽与膜的相互作用在膜蛋白的结合、分配和折叠、抗菌肽和融合肽的活性以及许多其他过程中起着关键作用。为了更好地理解此类相互作用的热力学,怀特和温姆利基于一系列合成肽(Ace-WLXLL,其中X为二十种天然氨基酸中的任何一种)从水到辛醇或脂质双层的转移自由能创建了一个界面疏水性标度(怀特和温姆利,《自然结构生物学》,1996年,第3卷,第842 - 848页)。在本研究中,我们使用恒压和恒面积系综,对其中十种代表性肽(X = D、K、R、N、A、T、S、I、F和W)在两个模拟膜界面进行了分子动力学模拟:水 - 环己烷界面(10纳秒)和完全溶剂化的二油酰磷脂酰胆碱(DOPC)双层界面(50纳秒)。我们重点研究了这十种肽在环己烷/水和脂质/水界面的分配情况。

结果

这些肽在环己烷/水界面迅速达到平衡(< 2纳秒)并进行分配。X3客体残基呈现出取决于侧链性质的平均取向。在DOPC/水界面,动力学要慢得多,在50纳秒的时间尺度上难以实现收敛。尽管如此,所有肽都分配到脂质/水界面,分布宽度为1 - 2纳米。这些肽呈现出广泛的侧链和主链取向,并且对晶胞面积的影响很小。平均而言,疏水性客体残基比亲水性残基更深地分配到疏水核心中。在某些情况下,肽穿透得足够深,对DOPC中碳 - 碳双键的分布产生了一定影响。在水/环己烷和水/脂质模拟中,X3客体残基与W1和L5相比的相对分布相似。快照显示在两种环境中主链大多呈伸展构象。在0.66纳米²的恒定面积模拟和近似产生相同平均面积0.66纳米²的恒压模拟之间几乎没有差异。

结论

这些肽被设计为呈现伸展构象,模拟结果证实了这一点。X3侧链的分布取决于其性质,并且可以通过分子动力学模拟确定。肽在磷脂 - 水界面的运动时间尺度太长,无法直接计算实验测量的疏水性标度来测试和改进模拟参数。在水/环己烷界面应该可以做到这一点,并且在未来对于磷脂/水的情况可能也会变得可行。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3ad4/1351180/3394de029847/1471-2091-6-30-1.jpg

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