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Preferential Binding of Urea to Single-Stranded DNA Structures: A Molecular Dynamics Study

机译:尿素与单链DNA结构的优先结合:分子动力学研究。

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摘要

In nature, a wide range of biological processes such as transcription termination and intermolecular binding depend on the formation of specific DNA secondary and tertiary structures. These structures can be both stabilized or destabilized by different cosolutes coexisting with nucleic acids in the cellular environment. In our molecular dynamics simulation study, we investigate the binding of urea at different concentrations to short 7-nucleotide single-stranded DNA structures in aqueous solution. The local concentration of urea around a native DNA hairpin in comparison to an unfolded DNA conformation is analyzed by a preferential binding model in light of the Kirkwood-Buff theory. All our findings indicate a pronounced accumulation of urea around DNA that is driven by a combination of electrostatic and dispersion interactions and accomplished by a significant replacement of hydrating water molecules. The outcomes of our study can be regarded as a first step into a deeper mechanistic understanding toward cosolute-induced effects on nucleotide structures in general.
机译:实际上,广泛的生物学过程,例如转录终止和分子间结合,取决于特定DNA二级和三级结构的形成。这些结构可以通过在细胞环境中与核酸共存的不同溶质而稳定或不稳定。在我们的分子动力学模拟研究中,我们研究了不同浓度的尿素与水溶液中短7核苷酸单链DNA结构的结合。与未折叠的DNA构象相比,根据Kirkwood-Buff理论,通过优先结合模型分析了天然DNA发夹周围尿素的局部浓度。我们所有的发现表明,尿素在DNA周围有明显的积累,这是由静电和分散相互作用共同驱动的,并且可以通过大量替换水合水分子来实现。一般而言,我们的研究结果可以被视为迈向对共价诱导的核苷酸结构影响进行更深入的机械理解的第一步。

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