Department of Physics and PCTP, Pohang University of Science and Technology, Pohang 790-784, South Korea.
J Chem Phys. 2012 Jan 28;136(4):045101. doi: 10.1063/1.3673439.
Biopolymer looping is a dynamic process that occurs ubiquitously in cells for gene regulation, protein folding, etc. In cellular environments, biopolymers are often subject to tensions which are either static or temporally fluctuating far away from equilibrium. We study the dynamics of semiflexible polymer looping in the presence of such tensions by using Brownian dynamics simulation combined with an analytical theory. We show a minute tension dramatically changes the looping time, especially for long chains. Considering a dichotomically flipping noise as a simple example of the nonequilibrium tension, we find the phenomenon of resonant activation, where the looping time can be the minimum at an optimal flipping time. We discuss our results in connection with recent experiments.
生物聚合物环化是一种普遍存在于细胞中用于基因调控、蛋白质折叠等的动态过程。在细胞环境中,生物聚合物经常受到张力的影响,这些张力要么是静态的,要么是远离平衡的时间波动。我们通过使用布朗动力学模拟结合分析理论来研究存在这种张力时半刚性聚合物环化的动力学。我们表明,微小的张力会显著改变环化时间,特别是对于长链。考虑到二分翻转噪声作为非平衡张力的一个简单例子,我们发现了共振激活的现象,其中在最佳翻转时间时,环化时间可以达到最小值。我们将我们的结果与最近的实验联系起来进行讨论。