Schauss Jakob, Kundu Achintya, Fingerhut Benjamin P, Elsaesser Thomas
Max-Born-Institut für Nichtlineare Optik und Kurzzeitspektroskopie, Berlin 12489, Germany.
J Phys Chem B. 2021 Jan 28;125(3):740-747. doi: 10.1021/acs.jpcb.0c08966. Epub 2020 Dec 7.
Ions interacting with hydrated RNA play a central role in defining its secondary and tertiary structure. While spatial arrangements of ions, water molecules, and phosphate groups have been inferred from X-ray studies, the role of electrostatic and other noncovalent interactions in stabilizing compact folded RNA structures is not fully understood at the molecular level. Here, we demonstrate that contact ion pairs of magnesium (Mg) and phosphate groups embedded in local water shells stabilize the tertiary equilibrium structure of transfer RNA (tRNA). Employing dialyzed tRNA from yeast and tRNA from , we follow the population of Mg sites close to phosphate groups of the ribose-phosphodiester backbone step by step, combining linear and nonlinear infrared spectroscopy of phosphate vibrations with molecular dynamics simulations and ab initio vibrational frequency calculations. The formation of up to six Mg/phosphate contact pairs per tRNA and local field-induced reorientations of water molecules balance the phosphate-phosphate repulsion in nonhelical parts of tRNA, thus stabilizing the folded structure electrostatically. Such geometries display limited sub-picosecond fluctuations in the arrangement of water molecules and ion residence times longer than 1 μs. At higher Mg excess, the number of contact ion pairs per tRNA saturates around 6 and weakly interacting ions prevail. Our results suggest a predominance of contact ion pairs over long-range coupling of the ion atmosphere and the biomolecule in defining and stabilizing the tertiary structure of tRNA.
与水合RNA相互作用的离子在确定其二级和三级结构中起着核心作用。虽然通过X射线研究推断出了离子、水分子和磷酸基团的空间排列,但在分子水平上,静电和其他非共价相互作用在稳定紧密折叠的RNA结构中的作用尚未完全理解。在这里,我们证明嵌入局部水壳中的镁(Mg)和磷酸基团的接触离子对稳定了转运RNA(tRNA)的三级平衡结构。利用来自酵母的透析tRNA和来自[具体来源未给出]的tRNA,我们逐步追踪靠近核糖 - 磷酸二酯主链磷酸基团的Mg位点数量,将磷酸振动的线性和非线性红外光谱与分子动力学模拟以及从头算振动频率计算相结合。每个tRNA形成多达六个Mg/磷酸接触对以及局部场诱导的水分子重新定向平衡了tRNA非螺旋部分中的磷酸 - 磷酸排斥力,从而通过静电作用稳定了折叠结构。这种几何结构在水分子排列中显示出有限的亚皮秒级波动,并且离子停留时间超过1微秒。在更高的Mg过量情况下,每个tRNA的接触离子对数量在6左右达到饱和,并且弱相互作用的离子占主导。我们的结果表明,在定义和稳定tRNA的三级结构方面,接触离子对比离子氛与生物分子的长程耦合更为重要。