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DNA水合壳层中集体水振动的分子动力学研究

Molecular dynamics study of collective water vibrations in a DNA hydration shell.

作者信息

Bubon Tetiana, Zdorevskyi Oleksii, Perepelytsya Sergiy

机构信息

Bogolyubov Institute for Theoretical Physics of the National Academy of Sciences of Ukraine, 14b, Metrolohichna Str., Kyiv, 03143, Ukraine.

Condensed Matter and Statistical Physics, Abdus Salam International Centre for Theoretical Physics, Strada Costiera, 11, Trieste, 34151, Italy.

出版信息

Eur Biophys J. 2023 Feb;52(1-2):69-79. doi: 10.1007/s00249-023-01638-z. Epub 2023 Mar 15.

Abstract

The structure of DNA double helix is stabilized by water molecules and metal counterions that form the ion-hydration shell around the macromolecule. Understanding the role of the ion-hydration shell in the physical mechanisms of the biological functioning of DNA requires detailed studies of its structure and dynamics at the atomistic level. In the present work, the study of collective vibrations of water molecules around the DNA double helix was performed within the framework of classical all-atom molecular dynamics methods. Calculating the vibrational density of states, the vibrations of water molecules in the low-frequency spectra ranged from [Formula: see text]30 to [Formula: see text]300 [Formula: see text] were analyzed for the case of different regions of the DNA double helix (minor groove, major groove, and phosphate groups). The analysis revealed significant differences in the collective vibrations behavior of water molecules in the DNA hydration shell, compared to the vibrations of bulk water. All low-frequency modes of the DNA ion-hydration shell are shifted by about 15-20 [Formula: see text] towards higher frequencies, which is more significant for water molecules in the minor groove region of the double helix. The interactions of water molecules with the atoms of the macromolecule induce intensity decrease of the mode of hydrogen-bond symmetrical stretching near 150 [Formula: see text], leading to the disappearance of this mode in the DNA spectra. The obtained results can provide an interpretation of the experimental data for DNA low-frequency spectra and may be important for the understanding of the processes of indirect protein-nucleic recognition.

摘要

DNA双螺旋结构由水分子和金属抗衡离子稳定,这些离子在大分子周围形成离子水化层。要了解离子水化层在DNA生物学功能物理机制中的作用,需要在原子水平上详细研究其结构和动力学。在本工作中,在经典全原子分子动力学方法框架内对DNA双螺旋周围水分子的集体振动进行了研究。通过计算振动态密度,分析了DNA双螺旋不同区域(小沟、大沟和磷酸基团)情况下低频光谱中水分子在30至300范围内的振动。分析表明,与体相水的振动相比,DNA水化层中水分子的集体振动行为存在显著差异。DNA离子水化层的所有低频模式都向高频方向移动了约15 - 20,这在双螺旋小沟区域的水分子中更为显著。水分子与大分子原子的相互作用导致150附近氢键对称拉伸模式的强度降低,从而使该模式在DNA光谱中消失。所得结果可为DNA低频光谱的实验数据提供解释,可能对理解间接蛋白质 - 核酸识别过程具有重要意义。

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