Vogel Alexander, Tan Kui-Thong, Waldmann Herbert, Feller Scott E, Brown Michael F, Huster Daniel
Junior Research Group Structural Biology of Membrane Proteins, Institute of Biotechnology, Martin Luther University Halle-Wittenberg, Halle, Germany.
Biophys J. 2007 Oct 15;93(8):2697-712. doi: 10.1529/biophysj.107.104562. Epub 2007 Jun 8.
Human posttranslationally modified N-ras oncogenes are known to be implicated in numerous human cancers. Here, we applied a combination of experimental and computational techniques to determine structural and dynamical details of the lipid chain modifications of an N-ras heptapeptide in 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC) membranes. Experimentally, 2H NMR spectroscopy was used to study oriented membranes that incorporated ras heptapeptides with two covalently attached perdeuterated hexadecyl chains. Atomistic molecular dynamics simulations of the same system were carried out over 100 ns including 60 DMPC and 4 ras molecules. Several structural and dynamical experimental parameters could be directly compared to the simulation. Experimental and simulated 2H NMR order parameters for the methylene groups of the ras lipid chains exhibited a systematic difference attributable to the absence of collective motions in the simulation and to geometrical effects. In contrast, experimental 2H NMR spin-lattice relaxation rates for Zeeman order were well reproduced in the simulation. The lack of slower collective motions in the simulation did not appreciably influence the relaxation rates at a Larmor frequency of 115.1 MHz. The experimental angular dependence of the 2H NMR relaxation rates with respect to the external magnetic field was also relatively well simulated. These relaxation rates showed a weak angular dependence, suggesting that the lipid modifications of ras are very flexible and highly mobile in agreement with the low order parameters. To quantify these results, the angular dependence of the 2H relaxation rates was calculated by an analytical model considering both molecular and collective motions. Peptide dynamics in the membrane could be modeled by an anisotropic diffusion tensor with principal values of Dparallel=2.1x10(9) s(-1) and Dperpendicular=4.5x10(5) s(-1). A viscoelastic fitting parameter describing the membrane elasticity, viscosity, and temperature was found to be relatively similar for the ras peptide and the DMPC host matrix. Large motional amplitudes and relatively short correlation times facilitate mixing and dispersal with the lipid bilayer matrix, with implications for the role of the full-length ras protein in signal transduction and oncogenesis.
已知人类翻译后修饰的N-ras癌基因与多种人类癌症有关。在此,我们应用实验和计算技术相结合的方法,来确定1,2-二肉豆蔻酰-sn-甘油-3-磷酸胆碱(DMPC)膜中N-ras七肽脂质链修饰的结构和动力学细节。在实验方面,2H NMR光谱用于研究掺入了带有两条共价连接的全氘代十六烷基链的ras七肽的定向膜。对同一系统进行了100 ns以上的原子分子动力学模拟,包括60个DMPC分子和4个ras分子。几个结构和动力学实验参数可直接与模拟结果进行比较。ras脂质链亚甲基的实验和模拟2H NMR序参数显示出系统差异,这归因于模拟中缺乏集体运动以及几何效应。相比之下,模拟很好地再现了塞曼序的实验2H NMR自旋晶格弛豫率。模拟中缺乏较慢的集体运动在115.1 MHz的拉莫尔频率下并未明显影响弛豫率。2H NMR弛豫率相对于外部磁场的实验角度依赖性也得到了较好的模拟。这些弛豫率显示出较弱的角度依赖性,表明ras的脂质修饰非常灵活且高度可移动,这与低序参数一致。为了量化这些结果,通过考虑分子运动和集体运动的解析模型计算了2H弛豫率的角度依赖性。膜中的肽动力学可以用一个各向异性扩散张量来建模,其主值为D平行 = 2.1×10(9) s(-1) 和D垂直 = 4.5×10(5) s(-1)。发现描述膜弹性、粘度和温度的粘弹性拟合参数对于ras肽和DMPC主体基质相对相似。大的运动幅度和相对较短的相关时间有利于与脂质双层基质混合和分散,这对全长ras蛋白在信号转导和肿瘤发生中的作用具有重要意义。