Department of Chemical and Biological Engineering, and Program in Applied and Computational Mathematics, Princeton University, Princeton, NJ 08544, USA.
Proc Natl Acad Sci U S A. 2010 Aug 3;107(31):13597-602. doi: 10.1073/pnas.1003293107. Epub 2010 Jul 19.
We employ the diffusion map approach as a nonlinear dimensionality reduction technique to extract a dynamically relevant, low-dimensional description of n-alkane chains in the ideal-gas phase and in aqueous solution. In the case of C8 we find the dynamics to be governed by torsional motions. For C16 and C24 we extract three global order parameters with which we characterize the fundamental dynamics, and determine that the low free-energy pathway of globular collapse proceeds by a "kink and slide" mechanism, whereby a bend near the end of the linear chain migrates toward the middle to form a hairpin and, ultimately, a coiled helix. The low-dimensional representation is subtly perturbed in the solvated phase relative to the ideal gas, and its geometric structure is conserved between C16 and C24. The methodology is directly extensible to biomolecular self-assembly processes, such as protein folding.
我们采用扩散映射方法作为一种非线性降维技术,从理论气体相和水溶液中提取 n-烷链的动态相关的低维描述。对于 C8,我们发现动力学由扭转运动控制。对于 C16 和 C24,我们提取了三个全局序参量,用它们来描述基本动力学,并确定了球形崩塌的低自由能途径通过“扭结和滑动”机制进行,其中线性链末端附近的弯曲向中间迁移形成发夹,最终形成螺旋卷曲。相对于理想气体,溶剂化相中的低维表示受到微妙的干扰,其几何结构在 C16 和 C24 之间保持不变。该方法可以直接扩展到生物分子自组装过程,如蛋白质折叠。