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Characterizing the relative orientation and dynamics of RNA A-form helices using NMR residual dipolar couplings

机译:使用NMR残留偶极偶合表征RNA A型螺旋的相对取向和动力学

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摘要

We present a protocol for determining the relative orientation and dynamics of A-form helices in 13C/15N isotopically enriched RNA samples using NMR residual dipolar couplings (RDCs). Non-terminal Watson–Crick base pairs in helical stems are experimentally identified using NOE and trans-hydrogen bond connectivity and modeled using the idealized A-form helix geometry. RDCs measured in the partially aligned RNA are used to compute order tensors describing average alignment of each helix relative to the applied magnetic field. The order tensors are translated into Euler angles defining the average relative orientation of helices and order parameters describing the amplitude and asymmetry of interhelix motions. The protocol does not require complete resonance assignments and therefore can be implemented rapidly to RNAs much larger than those for which complete high-resolution NMR structure determination is feasible. The protocol is particularly valuable for exploring adaptive changes in RNA conformation that occur in response to biologically relevant signals. Following resonance assignments, the procedure is expected to take no more than 2 weeks of acquisition and data analysis time.
机译:我们提出了一种使用NMR残留偶极偶合(RDC)确定 13 C / 15 N同位素富集的RNA样品中A型螺旋的相对取向和动力学的协议。螺旋茎中的非末端Watson-Crick碱基对使用NOE和反式氢键连接性进行实验鉴定,并使用理想的A型螺旋几何结构进行建模。在部分对齐的RNA中测量的RDC用于计算阶数张量,这些张量描述了每个螺旋相对于所施加磁场的平均对齐。将阶数张量转换为定义螺旋的平均相对方向的欧拉角,并描述描述螺旋间运动的幅度和不对称性的阶数参数。该协议不需要完整的共振分配,因此可以快速实现到比完全高分辨率NMR结构确定可行的RNA大得多的RNA。该协议对于探索响应于生物学相关信号而发生的RNA构象的适应性变化特别有价值。进行共振分配后,预计该过程将花费不超过2周的采集和数据分析时间。

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