Choi Ho Sup, Huh June, Jo Won Ho
Hyperstructured Organic Materials Research Center, School of Material Science and Engineering, Seoul National University, Seoul 151-742, Korea.
Biophys J. 2003 Sep;85(3):1492-502. doi: 10.1016/S0006-3495(03)74582-2.
We have compared force-induced unfolding with traditional unfolding methods using apomyoglobin as a model protein. Using molecular dynamics simulation, we have investigated the structural stability as a function of the degree of mechanical perturbation. Both anisotropic perturbation by stretching two terminal atoms and isotropic perturbation by increasing the radius of gyration of the protein show the same key event of force-induced unfolding. Our primary results show that the native structure of apomyoglobin becomes destabilized against the mechanical perturbation as soon as the interhelical packing between the G and H helices is broken, suggesting that our simulation results share a common feature with the experimental observation that the interhelical contact is more important for the folding of apomyoglobin than the stability of individual helices. This finding is further confirmed by simulating both helix destabilizing and interhelical packing destabilizing mutants.
我们以脱辅基肌红蛋白作为模型蛋白,将力诱导去折叠与传统去折叠方法进行了比较。通过分子动力学模拟,我们研究了结构稳定性与机械扰动程度之间的函数关系。通过拉伸两个末端原子进行的各向异性扰动以及通过增加蛋白质回转半径进行的各向同性扰动,都显示出了力诱导去折叠的相同关键事件。我们的主要结果表明,一旦G螺旋和H螺旋之间的螺旋间堆积被破坏,脱辅基肌红蛋白的天然结构就会因机械扰动而变得不稳定,这表明我们的模拟结果与实验观察结果具有共同特征,即螺旋间接触对于脱辅基肌红蛋白的折叠比单个螺旋的稳定性更为重要。通过模拟螺旋不稳定和螺旋间堆积不稳定的突变体,这一发现得到了进一步证实。