Laboratoire de Physique Théorique, Université de Toulouse, CNRS, 31062, Toulouse, France.
Phys Rev Lett. 2007 Aug 24;99(8):088103. doi: 10.1103/PhysRevLett.99.088103.
A statistical model of homopolymer DNA, coupling internal base-pair states (unbroken or broken) and external thermal chain fluctuations, is exactly solved using transfer kernel techniques. The dependence on temperature and DNA length of the fraction of denaturation bubbles and their correlation length is deduced. The thermal denaturation transition emerges naturally when the chain fluctuations are integrated out and is driven by the difference in bending (entropy dominated) free energy between broken and unbroken segments. Conformational properties of DNA, such as persistence length and mean-square-radius, are also explicitly calculated, leading, e.g., to a coherent explanation for the experimentally observed thermal viscosity transition.
使用转移核技术精确求解了包含内部碱基对状态(完整或断裂)和外部热链涨落的聚合物 DNA 的统计模型。推导了变性泡分数及其相关长度对温度和 DNA 长度的依赖性。当链涨落被积分出来时,热变性跃迁自然出现,由断裂和未断裂片段之间的弯曲(熵主导)自由能差驱动。还明确计算了 DNA 的构象特性,如持久性长度和均方根半径,例如,为实验观察到的热粘度跃迁提供了一致的解释。