Trantírek Lukás, Caha Erik, Kaderávek Pavel, Fiala Radovan
Faculty of Biological Sciences, University of South Bohemia and Biology Centre, Czech Academy of Sciences, Branisovska 31, CZ-37005 Ceske Budejovice, Czech Republic.
J Biomol Struct Dyn. 2007 Dec;25(3):243-52. doi: 10.1080/07391102.2007.10507173.
Intramolecular dynamics of a 14-mer RNA hairpin including GCAA tetraloop was investigated by (13)C NMR relaxation. R(1) and R(1rho) relaxation rates were measured for all protonated base carbons as well as for C1' carbons of ribose sugars at several magnetic field strengths. The data has been interpreted in the framework of modelfree analysis [G. Lipari and A. Szabo. J Am Chem Soc 104, 4546-4559 (1982); G. Lipari and A. Szabo. J Am Chem Soc 104, 4559-4570 (1982)] characterizing the internal dynamics of the molecule by order parameters and correlation times for fast motions on picosecond to nanosecond time scale and by contributions of the chemical exchange. The fast dynamics reveals a rather rigid stem and a significantly more flexible loop. The cytosine and the last adenine bases in the loop as well as all the loop sugars exhibit a significant contribution of conformational equilibrium on microsecond to millisecond time scale. The high R(1rho) values detected on both base and sugar moieties of the loop indicate coordinated motions in this region. A semiquantitative analysis of the conformational equilibrium suggests the exchange rates on the order of 10(4) s(-1). The results are in general agreement with dynamics studies of GAAA loops by NMR relaxation and fluorescent spectroscopy and support the data on the GCAA loop dynamics obtained by MD simulations.
通过(13)C NMR弛豫研究了包含GCAA四环的14聚体RNA发夹的分子内动力学。在几个磁场强度下,测量了所有质子化碱基碳以及核糖C1'碳的R(1)和R(1rho)弛豫率。数据已在无模型分析框架内进行解释[G. 利帕里和A. 萨博。《美国化学会志》104, 4546 - 4559 (1982); G. 利帕里和A. 萨博。《美国化学会志》104, 4559 - 4570 (1982)],该分析通过皮秒到纳秒时间尺度上快速运动的序参数和相关时间以及化学交换贡献来表征分子的内部动力学。快速动力学揭示了一个相当刚性的茎和一个明显更灵活的环。环中的胞嘧啶和最后一个腺嘌呤碱基以及所有环糖在微秒到毫秒时间尺度上表现出构象平衡的显著贡献。在环的碱基和糖部分检测到的高R(1rho)值表明该区域存在协同运动。对构象平衡的半定量分析表明交换率约为10(4) s(-1)。结果总体上与通过NMR弛豫和荧光光谱对GAAA环的动力学研究一致,并支持通过MD模拟获得的关于GCAA环动力学的数据。