Muñoz V, Henry E R, Hofrichter J, Eaton W A
Laboratory of Chemical Physics, Building 5, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health, Bethesda, MD 20892-0520, USA.
Proc Natl Acad Sci U S A. 1998 May 26;95(11):5872-9. doi: 10.1073/pnas.95.11.5872.
Understanding the mechanism of protein secondary structure formation is an essential part of the protein-folding puzzle. Here, we describe a simple statistical mechanical model for the formation of a beta-hairpin, the minimal structural element of the antiparallel beta-pleated sheet. The model accurately describes the thermodynamic and kinetic behavior of a 16-residue, beta-hairpin-forming peptide, successfully explaining its two-state behavior and apparent negative activation energy for folding. The model classifies structures according to their backbone conformation, defined by 15 pairs of dihedral angles, and is further simplified by considering only the 120 structures with contiguous stretches of native pairs of backbone dihedral angles. This single sequence approximation is tested by comparison with a more complete model that includes the 2(15) possible conformations and 15 x 2(15) possible kinetic transitions. Finally, we use the model to predict the equilibrium unfolding curves and kinetics for several variants of the beta-hairpin peptide.
理解蛋白质二级结构形成的机制是蛋白质折叠难题的重要组成部分。在此,我们描述了一种用于β-发夹形成的简单统计力学模型,β-发夹是反平行β-折叠片层的最小结构元件。该模型准确描述了一个由16个残基组成的、能形成β-发夹的肽的热力学和动力学行为,成功解释了其两态行为以及折叠时明显的负活化能。该模型根据由15对二面角定义的主链构象对结构进行分类,并通过仅考虑具有连续天然主链二面角对的120种结构进一步简化。通过与一个更完整的模型进行比较来测试这种单序列近似,该完整模型包括2(15)种可能的构象和15×2(15)种可能的动力学转变。最后,我们使用该模型预测β-发夹肽的几个变体的平衡解折叠曲线和动力学。