Lange Adam, Gattin Zrinka, Van Melckebeke Hélène, Wasmer Christian, Soragni Alice, van Gunsteren Wilfred F, Meier Beat H
Physical Chemistry, ETH Zürich, Wolfgang-Pauli-Strasse 10, Zürich, Switzerland.
Chembiochem. 2009 Jul 6;10(10):1657-65. doi: 10.1002/cbic.200900019.
The three-dimensional structure of amyloid fibrils of the prion-forming part of the HET-s protein [HET-s(218-289)], as determined by solid-state NMR, contains rigid and remarkably well-ordered parts, as witnessed by the narrow solid-state NMR line widths for this system. On the other hand, high-resolution magic-angle-spinning (HRMAS) NMR results have shown that HET-s(218-289) amyloid fibrils contain highly flexible parts as well. Here, we further explore this unexpected behaviour using solid-state NMR and molecular dynamics (MD). The NMR data provide new information on order and dynamics in the rigid and flexible parts of HET-s(218-289), respectively. The MD study addresses whether or not small multimers, in an amyloid conformation, are stable on the 10 ns timescale of the MD run and provides insight into the dynamic parameters on the nanosecond timescale. The atom-positional, root-mean-squared fluctuations (RMSFs) and order parameters S(2) obtained are in agreement with the NMR data. A flexible loop and the N terminus exhibit dynamics on the ps-ns timescale, whereas the hydrophobic core of HET-s(218-289) is rigid. The high degree of order in the core region of HET-s(218-289) amyloids, as observed in the MD simulations, is in agreement with the narrow, solid-state, NMR lines. Finally, we employed MD to predict the behaviour of the salt-bridge network in HET-s(218-289), which cannot be obtained easily by experiment. Simulations at different temperatures indicated that the network is highly dynamic and that it contributes to the thermostability of the HET-s(218-289) amyloids.
通过固态核磁共振确定的HET-s蛋白朊病毒形成部分[HET-s(218 - 289)]淀粉样纤维的三维结构包含刚性且排列非常有序的部分,该系统狭窄的固态核磁共振线宽证明了这一点。另一方面,高分辨率魔角旋转(HRMAS)核磁共振结果表明,HET-s(218 - 289)淀粉样纤维也包含高度灵活的部分。在这里,我们使用固态核磁共振和分子动力学(MD)进一步探索这种意外行为。核磁共振数据分别提供了关于HET-s(218 - 289)刚性和灵活部分的有序性和动力学的新信息。分子动力学研究探讨了处于淀粉样构象的小多聚体在分子动力学运行的10纳秒时间尺度上是否稳定,并深入了解了纳秒时间尺度上的动力学参数。获得的原子位置均方根波动(RMSFs)和序参数S(2)与核磁共振数据一致。一个灵活的环和N端在皮秒到纳秒时间尺度上表现出动力学,而HET-s(218 - 289)的疏水核心是刚性的。在分子动力学模拟中观察到的HET-s(218 - 289)淀粉样蛋白核心区域的高度有序性与狭窄的固态核磁共振谱线一致。最后,我们使用分子动力学来预测HET-s(218 - 289)中盐桥网络的行为,这很难通过实验轻易获得。不同温度下的模拟表明,该网络具有高度动态性,并且有助于HET-s(218 - 289)淀粉样蛋白的热稳定性。