Division of Plant Sciences, University of Dundee at the James Hutton Institute, Dundee, UK.
Leibniz Institute for Vegetable and Ornamental Crops (IGZ), Grossbeeren, Germany.
Methods Mol Biol. 2024;2795:149-158. doi: 10.1007/978-1-0716-3814-9_15.
RNA molecules play crucial roles in gene expression regulation and cellular signaling, and these functions are governed by the formation of RNA secondary and tertiary structures. These structures are highly dynamic and subject to rapid changes in response to environmental cues, temperature in particular. Thermosensitive RNA secondary structures have been harnessed by multiple organisms to survey their temperature environment and to adjust gene expression accordingly. It is thus highly desirable to observe RNA structural changes in real time over a range of temperatures. Multiple approaches have been developed to study structural dynamics, but many of these require extensive processing of the RNA, large amounts of RNA input, and/or cannot be applied under physiological conditions. Here, we describe the use of a dually fluorescently labeled RNA oligonucleotide (containing a predicted hairpin structure) to monitor subtle RNA structural dynamics in vitro by Förster resonance energy transfer (FRET) and circular dichroism (CD) spectroscopy. These approaches can be employed under physiologically relevant conditions over a range of temperatures and with RNA concentrations as low as 200 nM; they enable us to observe RNA structural dynamics in real time and to correlate these dynamics with changes in biological processes such as translation.
RNA 分子在基因表达调控和细胞信号转导中发挥着至关重要的作用,这些功能受 RNA 二级和三级结构形成的控制。这些结构高度动态,会对环境线索(尤其是温度)做出快速变化。多种生物体利用热敏感 RNA 二级结构来探测其温度环境,并相应地调整基因表达。因此,非常希望能够在一系列温度下实时观察 RNA 结构变化。已经开发了多种方法来研究结构动力学,但其中许多方法需要对 RNA 进行大量处理、大量 RNA 输入,并且/或者不能在生理条件下应用。在这里,我们描述了使用双重荧光标记的 RNA 寡核苷酸(包含预测的发夹结构)通过荧光共振能量转移(FRET)和圆二色性(CD)光谱法在体外监测细微的 RNA 结构动力学。这些方法可以在生理相关条件下、在一系列温度下以及 RNA 浓度低至 200 nM 的情况下使用;它们使我们能够实时观察 RNA 结构动力学,并将这些动力学与翻译等生物学过程的变化相关联。