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人类四链体端粒 DNA 微秒时间尺度上的构象动力学。

Conformational dynamics of the human propeller telomeric DNA quadruplex on a microsecond time scale.

机构信息

Centre for Cancer Research and Cell Biology, Queen's University of Belfast, Belfast BT9 7BL, UK.

出版信息

Nucleic Acids Res. 2013 Feb 1;41(4):2723-35. doi: 10.1093/nar/gks1331. Epub 2013 Jan 4.

Abstract

The human telomeric DNA sequence with four repeats can fold into a parallel-stranded propeller-type topology. NMR structures solved under molecular crowding experiments correlate with the crystal structures found with crystal-packing interactions that are effectively equivalent to molecular crowding. This topology has been used for rationalization of ligand design and occurs experimentally in a number of complexes with a diversity of ligands, at least in the crystalline state. Although G-quartet stems have been well characterized, the interactions of the TTA loop with the G-quartets are much less defined. To better understand the conformational variability and structural dynamics of the propeller-type topology, we performed molecular dynamics simulations in explicit solvent up to 1.5 μs. The analysis provides a detailed atomistic account of the dynamic nature of the TTA loops highlighting their interactions with the G-quartets including formation of an A:A base pair, triad, pentad and hexad. The results present a threshold in quadruplex simulations, with regards to understanding the flexible nature of the sugar-phosphate backbone in formation of unusual architecture within the topology. Furthermore, this study stresses the importance of simulation time in sampling conformational space for this topology.

摘要

人类端粒 DNA 序列的四个重复可以折叠成平行链状的螺旋桨型拓扑结构。在分子拥挤实验下解决的 NMR 结构与通过晶体堆积相互作用发现的晶体结构相关联,这些相互作用实际上相当于分子拥挤。这种拓扑结构已被用于合理化配体设计,并在许多具有多种配体的复合物中实验观察到,至少在晶体状态下如此。尽管 G-四联体茎已得到很好的表征,但 TTA 环与 G-四联体的相互作用要少得多。为了更好地理解螺旋桨型拓扑结构的构象可变性和结构动力学,我们在明溶剂中进行了长达 1.5μs 的分子动力学模拟。分析提供了对 TTA 环动态性质的详细原子描述,突出了它们与 G-四联体的相互作用,包括形成 A:A 碱基对、三联体、五联体和六联体。这些结果为四联体模拟提供了一个阈值,有助于理解在拓扑结构中形成异常结构时糖磷酸骨架的柔性性质。此外,这项研究强调了在模拟时间方面对这种拓扑结构进行构象空间采样的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6991/3575793/b95cbc70f0ef/gks1331f1p.jpg

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