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Elastic property of single double-stranded DNA molecules: Theoretical study and comparison with experiments

机译:单双链DNA分子的弹性性质:理论研究与实验比较

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This paper aims at a comprehensive understanding of the novel elastic property of double-stranded DNA (dsDNA) discovered very recently through single-molecule manipulation techniques. A general elastic model for double-stranded biopolymers is proposed, and a structural parameter called the folding angle cp is introduced to characterize their deformations. The mechanical property of long dsDNA molecules is then studied based on this model, where the base-stacking interactions between DNA adjacent nucleotide base pairs, the steric effects of base pairs, and the electrostatic interactions along DNA backbones are taken into account. Quantitative results are obtained by using a path integral method and excellent agreement between theory and the observations reported by five major experimental groups are attained. The strong intensity of the base stacking interactions ensures the structural stability of DNA, while the short-ranged nature of such interactions makes externally stimulated large structural fluctuations possible. The entropic elasticity, highly extensibility, and supercoiling property of DNA are all closely related to this account. The present work also suggests the possibility that negative torque can induce structural transitions in highly extended DNA from the right-handed B form to left-handed configurations similar to the Z-form configuration. Some formulas concerned with the application of path integral methods to polymeric systems are listed in the Appendixes. [References: 49]
机译:本文旨在全面了解最近通过单分子操作技术发现的双链DNA(dsDNA)的新型弹性。提出了双链生物聚合物的通用弹性模型,并引入了称为折叠角cp的结构参数来表征其变形。然后基于此模型研究长dsDNA分子的机械性能,其中考虑了DNA相邻核苷酸碱基对之间的碱基堆积相互作用,碱基对的空间效应以及沿DNA主链的静电相互作用。通过使用路径积分法获得定量结果,并且在理论上与五个主要实验组报告的观察结果之间达到了极好的一致性。碱基堆积相互作用的强强度确保了DNA的结构稳定性,而这种相互作用的短时性使得外部刺激的大结构波动成为可能。 DNA的熵弹性,高度可扩展性和超螺旋性质都与此原因密切相关。目前的工作还表明负扭矩可能诱导高度延伸的DNA从右旋B型向左旋构型过渡的结构转变,类似于Z型构型。附录中列出了一些与将路径积分方法应用于聚合物系统有关的公式。 [参考:49]

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