Pan Feng, Roland Christopher, Sagui Celeste
Center for High Performance Simulations (CHiPS) and Department of Physics, North Carolina State University, Raleigh, NC 27695-8202, USA.
Center for High Performance Simulations (CHiPS) and Department of Physics, North Carolina State University, Raleigh, NC 27695-8202, USA
Nucleic Acids Res. 2014 Dec 16;42(22):13981-96. doi: 10.1093/nar/gku1107. Epub 2014 Nov 26.
The ion atmosphere around nucleic acids is an integral part of their solvated structure. However, detailed aspects of the ionic distribution are difficult to probe experimentally, and comparative studies for different structures of the same sequence are almost non-existent. Here, we have used large-scale molecular dynamics simulations to perform a comparative study of the ion distribution around (5'-CGCGCGCGCGCG-3')2 dodecamers in solution in B-DNA, A-RNA, Z-DNA and Z-RNA forms. The CG sequence is very sensitive to ionic strength and it allows the comparison with the rare but important left-handed forms. The ions investigated include Na(+), K(+) and Mg(2 +), with various concentrations of their chloride salts. Our results quantitatively describe the characteristics of the ionic distributions for different structures at varying ionic strengths, tracing these differences to nucleic acid structure and ion type. Several binding pockets with rather long ion residence times are described, both for the monovalent ions and for the hexahydrated Mg(H2O)6 ion. The conformations of these binding pockets include direct binding through desolvated ion bridges in the GpC steps in B-DNA and A-RNA; direct binding to backbone oxygens; binding of Mg(H2O)6 to distant phosphates, resulting in acute bending of A-RNA; tight 'ion traps' in Z-RNA between C-O2 and the C-O2' atoms in GpC steps; and others.
核酸周围的离子氛围是其溶剂化结构的一个组成部分。然而,离子分布的详细情况很难通过实验进行探究,并且对于相同序列的不同结构的比较研究几乎不存在。在这里,我们使用大规模分子动力学模拟对溶液中(5'-CGCGCGCGCGCG-3')2十二聚体在B-DNA、A-RNA、Z-DNA和Z-RNA形式下的离子分布进行了比较研究。CG序列对离子强度非常敏感,并且它允许与罕见但重要的左手形式进行比较。所研究的离子包括Na(+)、K(+)和Mg(2 +),以及它们不同浓度的氯化物盐。我们的结果定量地描述了在不同离子强度下不同结构的离子分布特征,并将这些差异追溯到核酸结构和离子类型。描述了几个具有相当长离子停留时间的结合口袋,包括单价离子和六水合Mg(H2O)6离子的结合口袋。这些结合口袋的构象包括通过B-DNA和A-RNA中GpC步骤中去溶剂化离子桥的直接结合;与主链氧原子的直接结合;Mg(H2O)6与远处磷酸盐的结合,导致A-RNA的急剧弯曲;Z-RNA中GpC步骤中C-O2和C-O2'原子之间的紧密“离子陷阱”;等等。