Cooperative binding of bivalent ligands yields new insights into the guanidine-II riboswitch.

IF 4 Q1 GENETICS & HEREDITY
NAR Genomics and Bioinformatics Pub Date : 2024-09-25 eCollection Date: 2024-09-01 DOI:10.1093/nargab/lqae132
Jakob Steuer, Malte Sinn, Franziska Eble, Sina Rütschlin, Thomas Böttcher, Jörg S Hartig, Christine Peter
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引用次数: 0

Abstract

Riboswitches are involved in regulating the gene expression in bacteria. They are located within the untranslated regions of bacterial messenger RNA and function as switches by adjusting their shape, depending on the presence or absence of specific ligands. To decipher the fundamental aspects of bacterial gene control, it is therefore important to understand the mechanisms that underlie these conformational switches. To this end, a combination of an experimental binding study, molecular simulations and machine learning has been employed to obtain insights into the conformational changes and structural dynamics of the guanidine-II riboswitch. By exploiting the design of a bivalent ligand, we were able to study ligand binding in the aptamer dimer at the molecular level. Spontaneous ligand-binding events, which are usually difficult to simulate, were observed and the contributing factors are described. These findings were further confirmed by in vivo experiments, where the cooperative binding effects of the bivalent ligands resulted in increased binding affinity compared to the native guanidinium ligand. Beyond ligand binding itself, the simulations revealed a novel, ligand-dependent base-stacking interaction outside of the binding pocket that stabilizes the riboswitch.

二价配体的合作结合为胍-II 核糖开关提供了新的视角。
核糖开关参与调节细菌的基因表达。它们位于细菌信使 RNA 的非翻译区,根据特定配体的存在或不存在,通过调整其形状发挥开关功能。因此,要破译细菌基因控制的基本原理,就必须了解这些构象转换的基本机制。为此,我们结合实验结合研究、分子模拟和机器学习,深入了解了胍-II 核糖开关的构象变化和结构动态。通过利用二价配体的设计,我们能够在分子水平上研究配体在适配体二聚体中的结合。我们观察到了通常难以模拟的自发配体结合事件,并描述了其中的促成因素。体内实验进一步证实了这些发现,与原生胍配体相比,二价配体的协同结合效应增加了结合亲和力。除了配体结合本身之外,模拟还揭示了结合口袋之外一种新的、依赖于配体的碱基堆叠相互作用,这种相互作用稳定了核糖开关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
8.00
自引率
2.20%
发文量
95
审稿时长
15 weeks
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