Department of Physics, Graduate School of Science, The University of Tokyo, 7-3-1 Hongo, Tokyo, 113-0033, Japan.
J Phys Chem B. 2011 Jul 14;115(27):8806-12. doi: 10.1021/jp2008623. Epub 2011 Jun 22.
The folding process for a β-hairpin miniprotein, chignolin, was investigated by free energy landscape (FEL) calculations using the recently proposed multiscale free energy landscape calculation method (MSFEL). First, coarse-grained molecular dynamics simulations searched a broad conformational space, then multiple independent, all-atom molecular dynamics simulations with explicit solvent determined the detailed local FEL using massively distributed computing. The combination of the two models enabled efficient calculation of the free energy landscapes. The MSFEL analysis showed that chignolin has an intermediate state as well as a misfolded state. The folding process is initiated by the formation of a β-hairpin turn, followed by the formation of contacts in the hydrophobic core between Tyr2 and Trp9. Furthermore, mutation of Tyr2 shifts the population to the misfolded conformation. The results indicate that the hydrophobic core plays an important role in stabilizing the native state of chignolin.
采用最近提出的多尺度自由能景观计算方法(MSFEL),通过自由能景观(FEL)计算研究了β发夹短肽 chignolin 的折叠过程。首先,粗粒化分子动力学模拟在广泛的构象空间中进行搜索,然后使用显式溶剂的多个独立的全原子分子动力学模拟使用大规模分布式计算确定详细的局部 FEL。两种模型的结合使得自由能景观的计算效率大大提高。MSFEL 分析表明,chignolin 具有中间状态和错误折叠状态。折叠过程由β发夹转角的形成引发,随后在 Tyr2 和 Trp9 之间的疏水核中形成接触。此外,Tyr2 的突变会将种群转移到错误折叠构象。结果表明,疏水核在稳定 chignolin 的天然构象中起着重要作用。