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两亲性双层膜中C-H键重排有效相关时间的无模型估计:(1)H-(13)C固态核磁共振和分子动力学模拟

Model-free estimation of the effective correlation time for C-H bond reorientation in amphiphilic bilayers: (1)H-(13)C solid-state NMR and MD simulations.

作者信息

Ferreira Tiago Mendes, Ollila O H Samuli, Pigliapochi Roberta, Dabkowska Aleksandra P, Topgaard Daniel

机构信息

Department Chemie, Universität Paderborn, Warburger Straße 100, 33098 Paderborn, Germany.

Physical Chemistry, Lund University, P.O. Box 124, SE-221 00 Lund, Sweden.

出版信息

J Chem Phys. 2015 Jan 28;142(4):044905. doi: 10.1063/1.4906274.

Abstract

Molecular dynamics (MD) simulations give atomically detailed information on structure and dynamics in amphiphilic bilayer systems on timescales up to about 1 μs. The reorientational dynamics of the C-H bonds is conventionally verified by measurements of (13)C or (2)H nuclear magnetic resonance (NMR) longitudinal relaxation rates R1, which are more sensitive to motional processes with correlation times close to the inverse Larmor frequency, typically around 1-10 ns on standard NMR instrumentation, and are thus less sensitive to the 10-1000 ns timescale motion that can be observed in the MD simulations. We propose an experimental procedure for atomically resolved model-free estimation of the C-H bond effective reorientational correlation time τe, which includes contributions from the entire range of all-atom MD timescales and that can be calculated directly from the MD trajectories. The approach is based on measurements of (13)C R1 and R1ρ relaxation rates, as well as (1)H-(13)C dipolar couplings, and is applicable to anisotropic liquid crystalline lipid or surfactant systems using a conventional solid-state NMR spectrometer and samples with natural isotopic composition. The procedure is demonstrated on a fully hydrated lamellar phase of 1-palmitoyl-2-oleoyl-phosphatidylcholine, yielding values of τe from 0.1 ns for the methyl groups in the choline moiety and at the end of the acyl chains to 3 ns for the g1 methylene group of the glycerol backbone. MD simulations performed with a widely used united-atom force-field reproduce the τe-profile of the major part of the acyl chains but underestimate the dynamics of the glycerol backbone and adjacent molecular segments. The measurement of experimental τe-profiles can be used to study subtle effects on C-H bond reorientational motions in anisotropic liquid crystals, as well as to validate the C-H bond reorientation dynamics predicted in MD simulations of amphiphilic bilayers such as lipid membranes.

摘要

分子动力学(MD)模拟能够在长达约1微秒的时间尺度上,给出两亲性双层系统中结构和动力学的原子级详细信息。C-H键的重取向动力学通常通过测量(13)C或(2)H核磁共振(NMR)纵向弛豫率R1来验证,R1对相关时间接近拉莫尔频率倒数的运动过程更为敏感,在标准NMR仪器上,相关时间通常约为1-10纳秒,因此对MD模拟中可观察到的10-1000纳秒时间尺度的运动不太敏感。我们提出了一种实验方法,用于对C-H键有效重取向相关时间τe进行原子分辨的无模型估计,该方法涵盖了全原子MD时间尺度的整个范围的贡献,并且可以直接从MD轨迹计算得出。该方法基于对(13)C R1和R1ρ弛豫率以及(1)H-(13)C偶极耦合的测量,适用于使用传统固态NMR光谱仪和具有天然同位素组成的样品的各向异性液晶脂质或表面活性剂系统。该方法在1-棕榈酰-2-油酰基磷脂酰胆碱的完全水合层状相中得到了验证,胆碱部分和酰基链末端的甲基的τe值为0.1纳秒,甘油主链的g1亚甲基的τe值为3纳秒。使用广泛使用的联合原子力场进行的MD模拟再现了酰基链主要部分的τe分布,但低估了甘油主链和相邻分子片段的动力学。实验性τe分布的测量可用于研究各向异性液晶中对C-H键重取向运动的微妙影响,以及验证两亲性双层(如脂质膜)MD模拟中预测的C-H键重取向动力学。

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