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Exposing Hidden High-Affinity RNA Conformational States

机译:暴露隐藏的高亲和RNA构象状态

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摘要

RNA recognition frequently results in conformational changes that optimize intermolecular binding. As a consequence, the overall binding affinity of RNA to its binding partners depends not only on the intermolecular interactions formed in the bound state but also on the energy cost associated with changing the RNA conformational distribution. Measuring these "conformational penalties" is, however, challenging because bound RNA conformations tend to have equilibrium populations in the absence of the binding partner that fall outside detection by conventional biophysical methods. In this study we employ as a model system HIV-1 TAR RNA and its interaction with the ligand argininamide (ARG), a mimic of TAR's cognate protein binding partner, the transactivator Tat. We use NMR chemical shift perturbations and relaxation dispersion in combination with Bayesian inference to develop a detailed thermodynamic model of coupled conformational change and ligand binding. Starting from a comprehensive 12-state model of the equilibrium, we estimate the energies of six distinct detectable thermodynamic states that are not accessible by currently available methods. Our approach identifies a minimum of four RNA intermediates that differ in terms of the TAR conformation and ARG occupancy. The dominant bound TAR conformation features two bound ARG ligands and has an equilibrium population in the absence of ARG that is below detection limit. Consequently, even though ARG binds to TAR with an apparent overall weak affinity (K_d~(app ≈ 0.2 mM), it binds the prefolded conformation with a K_d in the nM range. Our results show that conformational penalties can be major determinants of RNA-ligand binding affinity as well as a source of binding cooperativity, with important implications for a predictive understanding of how RNA is recognized and for RNA-targeted drug discovery.
机译:RNA识别通常会导致构象变化,从而优化分子间结合。结果,RNA与其结合伴侣的总体结合亲和力不仅取决于在结合状态下形成的分子间相互作用,还取决于与改变RNA构象分布有关的能量成本。然而,测量这些“构象罚分”是具有挑战性的,因为在没有结合伴侣的情况下,结合的RNA构象趋向于具有平衡群体,而这些结合伴侣不在常规生物物理方法的检测范围之内。在这项研究中,我们采用HIV-1 TAR RNA及其与配体精氨酸酰胺(ARG)的相互作用作为模型系统,ARG是TAR关联蛋白结合伴侣的反式激活物Tat的模仿物。我们使用NMR化学位移扰动和弛豫色散结合贝叶斯推论来建立偶联构象变化和配体结合的详细热力学模型。从平衡的全面12状态模型开始,我们估算了六个不同的可检测热力学状态的能量,而这些状态是当前可用方法无法获得的。我们的方法确定了至少四种RNA中间体,它们在TAR构象和ARG占有率方面不同。显性结合的TAR构象具有两个结合的ARG配体,并且在不存在低于检测极限的ARG的情况下具有平衡种群。因此,即使ARG以明显的整体弱亲和力(K_d〜(app≈0.2 mM)结合到TAR,它也将预先折叠的构象与nM范围内的K_d结合。我们的结果表明,构象罚分可能是RNA-的主要决定因素。配体结合亲和力以及结合合作性的来源,对于预测如何识别RNA以及预测RNA靶向药物的发现具有重要意义。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第2期|907-921|共15页
  • 作者单位

    Department of Biochemistry Duke University Medical Center Durham North Carolina 27710 United States;

    Department of Biochemistry Duke University Medical Center Durham North Carolina 27710 United States Department of Chemistry Duke University Durham North Carolina 27708 United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-18 05:17:03

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