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通过特定离子缔合对A-DNA稳定性的深入了解:在六氨合钴(III)存在下,d[ACCCGCGGGT]2的分子动力学模拟中观察到自发的B-DNA到A-DNA转变。

Insight into the stabilization of A-DNA by specific ion association: spontaneous B-DNA to A-DNA transitions observed in molecular dynamics simulations of d[ACCCGCGGGT]2 in the presence of hexaamminecobalt(III).

作者信息

Cheatham T E, Kollman P A

机构信息

Division of Computer Research and Technology, National Institutes of Health, Bethesda, MD 20892-5626, USA.

出版信息

Structure. 1997 Oct 15;5(10):1297-311. doi: 10.1016/s0969-2126(97)00282-7.

Abstract

BACKGROUND

Duplex DNA is more than a simple information carrier. The sequence-dependent structure and its inherent deformability, in concert with the subtle modulating effects of the environment, play a crucial role in the regulation and packaging of DNA. Recent advances in force field and simulation methodologies allow molecular dynamics simulations to now represent the specific effects of the environment. An understanding of the environmental dependence of DNA structure gives insight into how histones are able to package DNA, how various proteins are able to bind and modulate nucleic acid structure and will ultimately aid the design of molecules to package DNA for more effective gene therapy.

RESULTS

Molecular dynamics simulations of d[ACCCGCGGGT]2 in solution in the presence of hexaamminecobalt(III) [Co(NH3)6(3+)] show stabilization of A-DNA and spontaneous B-DNA to A-DNA transitions, which is consistent with experimental results from NMR and Raman spectroscopic and X-ray crystallographic studies. In the absence of Co(NH3)6(3+), A-DNA to B-DNA transitions are observed instead. In addition to their interaction with the guanines in the major groove, Co(NH3)6(3+) ions bridge opposing strands in the bend across the major groove, probably stabilizing A-DNA.

CONCLUSIONS

The simulation methods and force fields have advanced to a sufficient level that some representation of the environment can be seen in nanosecond length molecular dynamics simulations. These simulations suggest that, in addition to the general explanation of A-DNA stabilization by dehydration, hydration and ion association in the major groove stabilize A-DNA.

摘要

背景

双链DNA不仅仅是一个简单的信息载体。其序列依赖性结构及其固有的可变形性,与环境的微妙调节作用协同,在DNA的调控和包装中起着关键作用。力场和模拟方法的最新进展使分子动力学模拟现在能够呈现环境的特定影响。了解DNA结构对环境的依赖性有助于深入了解组蛋白如何包装DNA、各种蛋白质如何结合并调节核酸结构,并最终有助于设计用于包装DNA以实现更有效基因治疗的分子。

结果

在六氨合钴(III)[Co(NH₃)₆(³⁺)]存在下,对溶液中的d[ACCCGCGGGT]₂进行分子动力学模拟,结果显示A-DNA得到稳定,且自发发生B-DNA到A-DNA的转变,这与核磁共振、拉曼光谱和X射线晶体学研究的实验结果一致。在不存在Co(NH₃)₆(³⁺)的情况下,观察到的是A-DNA到B-DNA的转变。除了与大沟中的鸟嘌呤相互作用外,Co(NH₃)₆(³⁺)离子在横跨大沟的弯曲处桥接相对的链,可能使A-DNA稳定。

结论

模拟方法和力场已经发展到足够的水平,以至于在纳秒级的分子动力学模拟中可以看到环境的一些表现。这些模拟表明,除了通过脱水、水合作用以及大沟中的离子缔合对A-DNA稳定化的一般解释外,水合作用也能稳定A-DNA。

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