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Methods of NMR structure refinement: molecular dynamics simulations improve the agreement with measured NMR data of a C-terminal peptide of GCN4-p1

机译:改进NMR结构的方法:分子动力学模拟提高了与GCN4-p1 C端肽段的NMR数据的测量一致性

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The C-terminal trigger sequence is essential in the coiled-coil formation of GCN4-p1; its conformational properties are thus of importance for understanding this process at the atomic level. A solution NMR model structure of a peptide, GCN4p16–31, encompassing the GCN4-p1 trigger sequence was proposed a few years ago. Derived using a standard single-structure refinement protocol based on 172 nuclear Overhauser effect (NOE) distance restraints, 14 hydrogen-bond and 11 ϕ torsional-angle restraints, the resulting set of 20 NMR model structures exhibits regular α-helical structure. However, the set slightly violates some measured NOE bounds and does not reproduce all 15 measured 3J(HN-H)-coupling constants, indicating that different conformers of GCN4p16–31 might be present in solution. With the aim to resolve structures compatible with all NOE upper distance bounds and 3J-coupling constants, we executed several structure refinement protocols employing unrestrained and restrained molecular dynamics (MD) simulations with two force fields. We find that only configurational ensembles obtained by applying simultaneously time-averaged NOE distance and 3J-coupling constant restraining with either force field reproduce all the experimental data. Additionally, analyses of the simulated ensembles show that the conformational variability of GCN4p16–31 in solution admitted by the available set of 187 measured NMR data is larger than represented by the set of the NMR model structures. The conformations of GCN4p16–31 in solution differ in the orientation not only of the side-chains but also of the backbone. The inconsistencies between the NMR model structures and the measured NMR data are due to the neglect of averaging effects and the inclusion of hydrogen-bond and torsional-angle restraints that have little basis in the primary, i.e. measured NMR data.
机译:C端触发序列在GCN4-p1的卷曲螺旋形成中至关重要;因此,其构象性质对于在原子水平上理解该过程非常重要。几年前提出了包含GCN4-p1触发序列的肽GCN4p16–31的溶液NMR模型结构。使用基于172个核Overhauser效应(NOE)距离约束,14个氢键和11°扭转角约束的标准单结构细化方案派生,所得的20个NMR模型结构集显示规则的α-螺旋结构。但是,该集合稍微违反了一些测量的NOE界限,并且没有重现所有15个测量的 3 J(H N -H )-耦合常数。 ,表明溶液中可能存在GCN4p16–31的不同构象体。为了解析与所有NOE上限距离和 3 J耦合常数兼容的结构,我们执行了一些结构改进协议,这些协议使用具有两个力场的不受约束和受约束的分子动力学(MD)模拟。我们发现,只有通过同时应用时间平均NOE距离和 3 J耦合常数约束以及任意一个力场而获得的构造合奏,才能再现所有实验数据。此外,对模拟集合体的分析表明,可用187组测量的NMR数据所接受的溶液中GCN4p16–31的构象变异性大于NMR模型结构所代表的构象变异性。 GCN4p16–31在溶液中的构象不仅在侧链的方向上而且在主链的方向上都不同。 NMR模型结构与测得的NMR数据之间的不一致是由于对平均效应的忽略以及氢键和扭转角约束的缺乏,这些约束在主要的即测得的NMR数据中没有什么基础。

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