College of Life Science and Bioengineering, Beijing University of Technology, Beijing 100124, China.
J Biomol Struct Dyn. 2011 Apr;28(5):717-27. doi: 10.1080/07391102.2011.10508601.
The thermo-stability and unfolding behaviors of a small hyperthermophilic protein Sso7d as well as its single-point mutation F31A are studied by molecular dynamics simulation at temperatures of 300 K, 371 K and 500 K. Simulations at 300 K show that the F31A mutant displays a much larger flexibility than the wild type, which implies that the mutation obviously decreases the protein's stability. In the simulations at 371 K, although larger fluctuations were observed, both of these two maintain their stable conformations. High temperature simulations at 500 K suggest that the unfolding of these two proteins evolves along different pathways. For the wild-type protein, the C-terminal alpha-helix is melted at the early unfolding stage, whereas it is destroyed much later in the unfolding process of the F31A mutant. The results also show that the mutant unfolds much faster than its parent protein. The deeply buried aromatic cluster in the F31A mutant dissociates quickly relative to the wild-type protein at high temperature. Besides, it is found that the triple-stranded antiparallel β-sheet in the wild-type protein plays an important role in maintaining the stability of the entire structure.
采用分子动力学模拟方法研究了一种小型超嗜热蛋白 Sso7d 及其单点突变 F31A 在 300 K、371 K 和 500 K 温度下的热稳定性和变性行为。300 K 下的模拟表明,F31A 突变体的柔韧性比野生型大得多,这意味着突变明显降低了蛋白质的稳定性。在 371 K 的模拟中,尽管观察到更大的波动,但这两种蛋白都保持了其稳定的构象。500 K 的高温模拟表明,这两种蛋白质的变性沿不同的途径进行。对于野生型蛋白,在早期变性阶段,C 端α螺旋被融化,而在 F31A 突变体的变性过程中,它被破坏得更晚。结果还表明,突变体的变性速度比其母体蛋白快得多。在高温下,F31A 突变体中深埋的芳香族簇相对于野生型蛋白迅速解离。此外,还发现野生型蛋白中的三股反平行β-折叠在维持整个结构的稳定性方面起着重要作用。