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Molecular dynamics study of the recognition of ATP by nucleic acid aptamers

机译:核酸适体识别ATP的分子动力学研究

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摘要

Despite their great success in recognizing small molecules in vitro, nucleic acid aptamers are rarely used in clinical settings. This is partially due to the lack of structure-based mechanistic information. In this work, atomistic molecular dynamics simulations are used to study the static and dynamic supramolecular structures relevant to the process of the wildtype (wt) nucleic acid aptamer recognition and binding of ATP. The effects brought about by mutation of key residues in the recognition site are also explored. The simulations reveal that the aptamer displays a high degree of rigidity and is structurally very little affected by the binding of ATP. Interaction energy decomposition shows that dispersion forces from pi-stacking between ATP and the G6 and A23 nucleobases in the aptamer binding site plays a more important role in stabilizing the supramolecular complex, compared to hydrogen-bond interaction between ATP and G22. Moreover, metadynamics simulations show that during the association process, water molecules act as essential bridges connecting ATP with G22, which favors the dynamic stability of the complex. The calculations carried out on three mutated aptamer structures confirm the crucial role of the hydrogen bonds and pi-stacking interactions for the binding affinity of the ATP nucleic acid aptamer.
机译:尽管在体外识别小分子方面取得了巨大成功,但核酸适体很少用于临床环境。这部分是由于缺乏基于结构的机制信息。在这项工作中,原子分子动力学模拟用于研究与野生型(WT)核酸适体识别和ATP结合的过程相关的静态和动态超分子结构。还探讨了识别现场的关键残留物突变所带来的效果。模拟表明,适体显示高度的刚度,并且在结构上受到ATP的结合影响。相互作用能量分解表明,与ATP和G22之间的氢键相互作用相比,ATP和G6和A23核酸在Aptamer结合位点之间的PI堆叠与G6和A23核酸酶之间的分散力在稳定超分子复合物中起着更重要的作用。此外,Metadynamics模拟表明,在结合过程中,水分子作为连接ATP的基本桥与G22连接,这有利于复杂的动态稳定性。在三个突变的适体结构上进行的计算证实了氢键和PI堆叠相互作用对ATP核酸适体的结合亲和力的关键作用。

著录项

  • 来源
    《Nucleic Acids Research》 |2020年第12期|共10页
  • 作者单位

    Beijing Inst Technol Sch Chem &

    Chem Engn South St 5 Beijing 100081 Peoples R China;

    Univ Gothenburg Dept Chem &

    Mol Biol Medicinaregatan 9c S-40530 Gothenburg Sweden;

    Beijing Inst Technol Sch Chem &

    Chem Engn South St 5 Beijing 100081 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

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