Zoli Marco
School of Science and Technology, University of Camerino, I-62032 Camerino, Italy.
J Phys Condens Matter. 2017 Jun 7;29(22):225101. doi: 10.1088/1361-648X/aa6c50. Epub 2017 Apr 10.
Helical molecules change their twist number under the effect of a mechanical load. We study the twist-stretch relation for a set of short DNA molecules modeled by a mesoscopic Hamiltonian. Finite temperature path integral techniques are applied to generate a large ensemble of possible configurations for the base pairs of the sequence. The model also accounts for the bending and twisting fluctuations between adjacent base pairs along the molecules stack. Simulating a broad range of twisting conformation, we compute the helix structural parameters by averaging over the ensemble of base pairs configurations. The method selects, for any applied force, the average twist angle which minimizes the molecule's free energy. It is found that the chains generally over-twist under an applied stretching and the over-twisting is physically associated to the contraction of the average helix diameter, i.e. to the damping of the base pair fluctuations. Instead, assuming that the maximum amplitude of the bending fluctuations may decrease against the external load, the DNA molecule first over-twists for weak applied forces and then untwists above a characteristic force value. Our results are discussed in relation to available experimental information albeit for kilo-base long molecules.
螺旋分子在机械负载的作用下会改变其捻数。我们研究了一组由介观哈密顿量建模的短DNA分子的捻度-拉伸关系。应用有限温度路径积分技术来生成该序列碱基对的大量可能构型。该模型还考虑了沿分子堆叠的相邻碱基对之间的弯曲和扭转波动。通过对碱基对构型的系综进行平均,我们模拟了广泛的扭转构象,计算了螺旋结构参数。该方法针对任何施加的力选择使分子自由能最小的平均扭转角。结果发现,在施加拉伸时,链通常会过度扭转,并且过度扭转在物理上与平均螺旋直径的收缩相关,即与碱基对波动的阻尼相关。相反,假设弯曲波动的最大幅度可能会随着外部负载而减小,DNA分子在弱外力作用下首先会过度扭转,然后在超过特征力值时会解捻。尽管我们的结果是针对千碱基长的分子,但仍结合现有实验信息进行了讨论。