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An investigation on the interaction modes of a single-strand DNA aptamer and RBP4 protein: a molecular dynamic simulations approach

机译:单链DNA适体与RBP4蛋白相互作用模式的研究:分子动力学模拟方法

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摘要

Type two diabetes is one of the primary health issues threatening public well-being worldwide. One of the pre-diagnosis biomarkers of this disease, retinol binding protein 4 (RBP4), has been demonstrated to be detected with a 76-mer ssDNA aptamer instead of conventional antibodies. However, there is no structural information on the RBP4 binding aptamer (RBA) and the mechanism of its binding to RBP4 still remains unexplored. The objective of the present study is to achieve a better understanding of specific binding interactions of the target protein (RBP4) and RBA, employing Molecular Dynamics simulations (MDs) to provide detailed information on fluctuations, conformational changes, critical bases and effective forces to develop regulated aptamers to be employed in designing new aptamers for many useful recognition applications. RBA was designed according to its reported base pair sequence and secondary structure. The HADDOCK on line docking program was used to predict a suitable RBP4-RBA mode of interaction to start MDs with. MDs methodology was used to analyze the final complex stability and detect interacting residues. Eventually, we conclude that single strand located bases are the key components that conduct the intercalation phenomenon with big targets rather than those involving loops and folded motifs, to encompass targets and probably inhibit their activity. Also, UV-visible, circular dichroism and fluorescence spectroscopy measurements confirmed the interactions between RBA and RBP4 and RBP4-RBA complex formation.
机译:二型糖尿病是威胁全球公众健康的主要健康问题之一。该疾病的一种预诊断生物标志物,视黄醇结合蛋白4(RBP4),已证明可使用76-mer ssDNA适体而不是常规抗体进行检测。然而,关于RBP4结合适体(RBA)尚无结构信息,其与RBP4结合的机制仍未探索。本研究的目的是通过使用分子动力学模拟(MDs)提供有关波动,构象变化,关键碱基和有效力发展的详细信息,从而更好地了解目标蛋白(RBP4)和RBA的特异性结合相互作用调节的适体,可用于为许多有用的识别应用设计新的适体。 RBA是根据其报道的碱基对序列和二级结构设计的。使用HADDOCK在线对接程序来预测合适的RBP4-RBA交互模式以启动MD。 MDs方法用于分析最终的复合物稳定性并检测相互作用的残基。最终,我们得出结论,单链定位的碱基是与大靶标而不是与涉及环和折叠基序的标靶进行插层现象的关键成分,以包围靶标并可能抑制其活性。同样,紫外可见,圆二色性和荧光光谱测量证实了RBA和RBP4与RBP4-RBA复合物形成之间的相互作用。

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  • 来源
    《Organic & biomolecular chemistry》 |2016年第34期|8141-8153|共13页
  • 作者单位

    Laboratory of Microanalysis, Institute of Biochemistry & Biophysics, University of Tehran, P.O. Box 13145-1384, Tehran, Iran;

    Razi Drug Research Center, Iran University of Medical Sciences, Tehran, Iran,Department of Medicinal Chemistry, Faculty of Pharmacy and Drug Design and Development Research Center, Tehran University of Medical Sciences, Tehran, Iran;

    Laboratory of Microanalysis, Institute of Biochemistry & Biophysics, University of Tehran, P.O. Box 13145-1384, Tehran, Iran;

    Department of Medicinal Chemistry, Faculty of Pharmacy and Drug Design and Development Research Center, Tehran University of Medical Sciences, Tehran, Iran;

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