Research Center for Computational Science, Institute for Molecular Science, Okazaki, Aichi, Japan.
Phys Chem Chem Phys. 2013 Sep 7;15(33):13852-61. doi: 10.1039/c3cp44443k. Epub 2013 Jul 10.
We investigated the transformation between the α-helix and β-hairpin structures of an 18-residue design peptide, whose sequence is INYWLAHAKAGYIVHWTA. This peptide has both α-helix and β-hairpin structures in aqueous solution. For this purpose, we proposed the helix-strand replica-exchange method. This is one of the Hamiltonian replica-exchange methods in which we exchange parameters for umbrella potentials to enhance the α-helix or β-strand structure formation. We performed an all-atom helix-strand replica-exchange molecular dynamics (MD) simulation of this peptide in explicit water solvent with five replicas. Because the suitable umbrella potential was applied, the helix-strand replica-exchange MD simulation reproduced conformations closer to experimental conformations than a temperature replica-exchange MD simulation when the same numbers of the replicas were used, while the temperature replica-exchange MD simulation does not require bias along any specific order parameter. We calculated its free-energy landscape and revealed the transformation pathways between the α-helix and β-hairpin structures and the folding pathways from an extended structure. Although the fractions of the α-helix and β-hairpin structures are less than those obtained by the experiment, the free-energy difference between the two structures is calculated to be almost zero, which agrees with the experimental results.
我们研究了一个由 18 个残基组成的设计肽的 α-螺旋和 β-发夹结构之间的转变,其序列为 INYWLAHAKAGYIVHWTA。该肽在水溶液中具有 α-螺旋和 β-发夹结构。为此,我们提出了螺旋-链复制交换方法。这是一种哈密顿复制交换方法,我们通过交换伞形势能参数来增强 α-螺旋或 β-链结构的形成。我们在含有五个副本的明水环境中对该肽进行了全原子螺旋-链复制交换分子动力学 (MD) 模拟。由于应用了合适的伞形势能,与使用相同数量副本的温度复制交换 MD 模拟相比,螺旋-链复制交换 MD 模拟复制的构象更接近实验构象,而温度复制交换 MD 模拟不需要沿任何特定的序参数施加偏压。我们计算了它的自由能景观,并揭示了 α-螺旋和 β-发夹结构之间的转变途径以及从扩展结构的折叠途径。尽管 α-螺旋和 β-发夹结构的分数低于实验获得的分数,但两种结构之间的自由能差计算为几乎为零,这与实验结果一致。