Mocci Francesca, Saba Giuseppe
Dipartimento di Scienze Chimiche, Università' di Cagliari, Cittadella Universitaria di Monserrato, Cagliari, Italy.
Biopolymers. 2003 Apr;68(4):471-85. doi: 10.1002/bip.10334.
Molecular dynamics simulations have been employed to probe the sequence-specific binding of sodium ions to the minor groove of B-DNA of three A. T-rich oligomers having identical compositions but different orders of the base pairs: C(AT)(4)G, CA(4)T(4)G, and CT(4)A(4)G. Recent experimental investigations, either in crystals or in solution, have shown that monovalent cations bind to DNA in a sequence-specific mode, preferentially in the narrow minor groove regions of uninterrupted sequences of four or more adenines (A-tracts), replacing a water molecule of the ordered hydration structure, the hydration spine. Following this evidence, it has been hypothesized that in A-tracts these events may be responsible for structural peculiarities such as a narrow minor groove and a curvature of the helix axis. The present simulations confirm a sequence specificity of the binding of sodium ions: Na(+) intrusions in the first layer of hydration of the minor groove, with long residence times, up to approximately 3 ns, are observed only in the minor groove of A-tracts but not in the alternating sequence. The effects of these intrusions on the structure of DNA depend on the ion coordination: when the ion replaces a water molecule of the spine, the minor groove becomes narrower. Ion intrusions may also disrupt the hydration spine modifying the oligomer structure to a large extent. However, in no case intrusions were observed to locally bend the axis toward the minor groove. The simulations also show that ions may reside for long time periods in the second layer of hydration, particularly in the wider regions of the groove, often leading to an opening of the groove.
分子动力学模拟已被用于探究钠离子与三种富含A.T的寡聚物的B-DNA小沟的序列特异性结合,这三种寡聚物具有相同的组成,但碱基对顺序不同:C(AT)(4)G、CA(4)T(4)G和CT(4)A(4)G。最近在晶体或溶液中的实验研究表明,单价阳离子以序列特异性模式与DNA结合,优先在四个或更多腺嘌呤(A序列)的不间断序列的狭窄小沟区域,取代有序水合结构(水合脊)中的一个水分子。根据这一证据,有人推测在A序列中,这些事件可能是导致诸如狭窄小沟和螺旋轴弯曲等结构特殊性的原因。目前的模拟证实了钠离子结合的序列特异性:仅在A序列的小沟中观察到钠离子侵入小沟的第一层水合层,且停留时间长,可达约3纳秒,而在交替序列中则未观察到。这些侵入对DNA结构的影响取决于离子配位:当离子取代水合脊中的一个水分子时,小沟会变窄。离子侵入还可能破坏水合脊,在很大程度上改变寡聚物结构。然而,在任何情况下都未观察到侵入会使轴局部向小沟弯曲。模拟还表明,离子可能在第二层水合层中长时间停留,特别是在小沟较宽的区域,这通常会导致小沟开口。