Zhang Wenbing, Chen Shi-Jie
Department of Physics and Astronomy and Department of Biochemistry, University of Missouri, Columbia, Missouri 65211.
J Chem Phys. 2003 Feb 15;118(7):3413-3420. doi: 10.1063/1.1538596.
A master equation approach is developed to find the rate-limiting steps in biopolymer folding, where the folding kinetics is described as a linear combination of basic kinetic modes determined from the eigenvalues and eigenvectors of the rate matrix. Because the passage of a rate-limiting step is intrinsically related to the folding speed, it is possible to probe and to identify the rate-limiting steps through the folding from different unfolded initial conformations. In a master equation approach, slow and fast folding speeds are directly correlated to the large and small contributions of the (rate-limiting) slow kinetic modes. Because the contributions from the slow modes can be computed from the corresponding eigenvectors, the rate-limiting steps can be identified from the eigenvectors of the slow modes. Our rate-limiting searching method has been tested for a simplified hairpin folding kinetics model, and it may provide a general transition state searching method for biopolymer folding.
我们开发了一种主方程方法来寻找生物聚合物折叠过程中的限速步骤,其中折叠动力学被描述为由速率矩阵的特征值和特征向量确定的基本动力学模式的线性组合。由于限速步骤的通过与折叠速度本质上相关,因此有可能通过从不同的未折叠初始构象进行折叠来探测和识别限速步骤。在主方程方法中,慢折叠速度和快折叠速度直接与(限速)慢动力学模式的大贡献和小贡献相关。由于慢模式的贡献可以从相应的特征向量计算得出,因此可以从慢模式的特征向量中识别限速步骤。我们的限速搜索方法已在一个简化的发夹折叠动力学模型上进行了测试,它可能为生物聚合物折叠提供一种通用的过渡态搜索方法。