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镁离子驱动的四环素结合适体的折叠和构象转换动力学:对体内核糖开关工程的启示。

Magnesium Ion-Driven Folding and Conformational Switching Kinetics of Tetracycline Binding Aptamer: Implications for in vivo Riboswitch Engineering.

机构信息

Institute for Physical and Theoretical Chemistry, Goethe University, Frankfurt/Main, Max-von-Laue Str. 9, D-60438, Germany.

Department of Biology, Technical University Darmstadt, Darmstadt, Schnittspahnstraße 10, D-64287 Darmstadt, Germany.

出版信息

J Mol Biol. 2023 Oct 15;435(20):168253. doi: 10.1016/j.jmb.2023.168253. Epub 2023 Aug 26.

Abstract

Engineering in vitro selected RNA aptamers into in vivo functional riboswitches represents a long-standing challenge in molecular biology. The highly specific aptamer domain of the riboswitch undergoes a conformational adjustment in response to ligand sensing, which in turn exerts the regulatory function. Besides essential factors like structural complexity and ligand binding kinetics, the active role of magnesium ions in stabilizing RNA tertiary structures and assisting in ligand binding can be a vital criterion. We present spectroscopic studies on the magnesium ion-driven folding of the Tetracycline binding aptamer. Using fluorescent labels, the aptamer pre-folding and subsequent ligand binding is monitored by magnesium titration experiments and time-resolved stopped-flow measurements. A minimum concentration of 0.5 mM magnesium is required to fold into a magnesium ion-stabilized binding-competent state with a preformed binding pocket. Tetracycline binding causes a pronounced conformational change that results in the establishment of the triple helix core motif, and that further propagates towards the closing stem. By a dynamic acquisition of magnesium ions, a kink motif is formed at the intersection of the triple helix and closing stem regions. This ultimately entails a stabilization of the closing stem which is discussed as a key element in the regulatory function of the Tetracycline aptamer.

摘要

将体外选择的 RNA 适体工程化成为体内功能性的核酶代表了分子生物学中的一个长期挑战。核酶的高度特异性适体结构域会根据配体感应发生构象调整,从而发挥调节功能。除了结构复杂性和配体结合动力学等基本因素外,镁离子在稳定 RNA 三级结构和辅助配体结合方面的积极作用可能是一个重要标准。我们介绍了关于四环素结合适体的镁离子驱动折叠的光谱研究。使用荧光标记,通过镁离子滴定实验和时间分辨停流测量来监测适体的预折叠和随后的配体结合。需要至少 0.5 mM 的镁离子浓度才能折叠成具有预先形成的结合口袋的镁离子稳定的结合态。四环素结合会导致明显的构象变化,从而形成三螺旋核心基序,并进一步向闭合茎延伸。通过动态获取镁离子,在三螺旋和闭合茎区域的交界处形成一个扭结基序。这最终导致闭合茎的稳定,这被认为是四环素适体调节功能的关键因素。

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