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Molecular dynamics study of substance P peptides partitioned in a sodium dodecylsulfate micelle.

机译:十二烷基硫酸钠胶束中分配的P物质肽的分子动力学研究。

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摘要

Two neuropeptides, substance P (SP) and SP-tyrosine-8 (SP-Y8), have been studied by molecular dynamics (MD) simulation in an explicit sodium dodecylsulfate (SDS) micelle. Initially, distance restraints derived from NMR nuclear Overhauser enhancements (NOE) were incorporated in the restrained MD (RMD) during the equilibration stage of the simulation. It was shown that when SP-Y8 was initially placed in an insertion (perpendicular) configuration, the peptide equilibrated to a surface-bound (parallel) configuration in approximately 450 ps. After equilibration, the conformation and orientation of the peptides, the solvation of both the backbone and the side chain of the residues, hydrogen bonding, and the dynamics of the peptides were analyzed from trajectories obtained from the RMD or the subsequent free MD (where the NOE restraints were removed). These analyses showed that the peptide backbones of all residues are either solvated by water or are hydrogen-bonded. This is seen to be an important factor against the insertion mode of interaction. Most of the interactions come from the hydrophobic interaction between the side chains of Lys-3, Pro-4, Phe-7, Phe-8, Leu-10, and Met-11 for SP, from Lys-3, Phe-7, Leu-10, and Met-11 in SP-Y8, and the micellar interior. Significant interactions, electrostatic and hydrogen bonding, between the N-terminal residues, Arg-Pro-Lys, and the micellar headgroups were observed. These latter interactions served to affect both the structure and, especially, the flexibility, of the N-terminus. The results from simulation of the same peptides in a water/CCl4 biphasic cell were compared with the results of the present study, and the validity of using the biphasic system as an approximation for peptide-micelle or peptide-bilayer systems is discussed.
机译:在明确的十二烷基硫酸钠(SDS)胶束中通过分子动力学(MD)模拟研究了两种神经肽P物质(SP)和SP-酪氨酸8(SP-Y8)。最初,在模拟的平衡阶段,将来自NMR核Overhauser增强(NOE)的距离约束纳入约束的MD(RMD)中。结果表明,当SP-Y8最初以插入(垂直)构型放置时,该肽在大约450 ps时平衡为表面结合(平行)构型。平衡后,根据从RMD或随后的游离MD(其中的D或D所获得的轨迹)分析了肽的构象和方向,残基的主链和侧链的溶剂化,氢键以及肽的动力学。取消了NOE限制)。这些分析表明,所有残基的肽骨架均被水溶解或氢键结合。这被认为是阻碍交互插入方式的重要因素。大多数相互作用来自SP的Lys-3,Pro-4,Phe-7,Phe-8,Leu-10和Met-11的侧链之间的疏水相互作用,来自Lys-3,Phe-7, SP-Y8中的Leu-10和Met-11,以及胶束内部。观察到N末端残基Arg-Pro-Lys和胶束头基之间的相互作用,静电和氢键。后面这些相互作用可影响N末端的结构,尤其是柔性。将在水/ CCl4双相细胞中相同肽的模拟结果与本研究的结果进行了比较,并讨论了使用双相系统作为肽胶束或肽双层系统的近似方法的有效性。

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