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Structural Characterizationof Bubbles Formed in DNAMelting: A Monte Carlo Simulation Study

机译:结构表征DNA中形成的气泡熔化:蒙特卡洛模拟研究

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摘要

Bubbles in DNA are involved in many important biological processes. In this work, a coarse-grained model is used for characterizing bubbles formed in DNA melting. The model resorts only to electrostatic interactions at the Debye–Hückel level, in combination with a short-ranged attractive interaction within a base pair. In spite of also omitting atomistic details, the model is able to capture experimentally established trends in persistence length and radius of gyration. By applying it on different systems, it is possible to conclude that there is a minimum size for stable bubbles, in the interval between 12 and 20 bp, which agrees well with previously published experimental findings. Simulated scattering data distinguishes between different bubbles and detects conformational changes in the melting process. Therefore, SAXS is regarded as useful for bubble formation studies, while simulations provide a molecular understanding.
机译:DNA中的气泡涉及许多重要的生物学过程。在这项工作中,使用粗粒度模型来表征在DNA熔解中形成的气泡。该模型仅求助于Debye-Hückel一级的静电相互作用,并结合了一个碱基对内的短距离吸引相互作用。尽管也省略了原子细节,但该模型仍能够捕获持久性长度和回转半径的实验确定趋势。通过将其应用在不同的系统上,可以得出结论,稳定气泡的最小大小应在12到20 bp之间,这与以前发表的实验结果非常吻合。模拟的散射数据可区分不同的气泡,并检测熔融过程中的构象变化。因此,SAXS被认为可用于气泡形成研究,而模拟则提供了分子理解。

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