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Symmetry-based dipolar recoupling by optimal control: Band-selective experiments for assignment of solid-state NMR spectra of proteins

机译:通过最佳控制实现基于对称的偶极耦合:蛋白质固态NMR光谱分配的能带选择实验

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摘要

We present design of novel low-power homonuclear dipolar recoupling experiments for magic-angle-spinning solid-state NMR studies of proteins. The pulse sequences are developed by combining principles of symmetry-based dipolar recoupling and optimal control-based pulse sequence design. The scaffold of the pulse sequences is formed by known CN-type recoupling sequences, while the intrinsic sequence elements are designed using optimal control. This procedure allows for the development of high-performance pulse sequences demanding significantly weaker rf fields than previous symmetry-based pulse sequences while compensating for rf inhomogeneity and providing excitation over relevant ranges of chemical shifts for biological applications. The new recoupling experiments, referred to as optimal control CN (~(oc)CN), are demonstrated numerically and experimentally by two-dimensional (2D) ~(13)C-~(13)C and three-dimensional (3D) ~(15)N-~(13)C-~(13)C chemical shift correlation experiments on uniformly ~(13)C, ~(15)N-labeled ubiquitin. Exploiting the double-quantum, band-selective dipolar recoupling properties of the ~(oc)CN experiments, we demonstrate significant sensitivity enhancement for 2D and 3D correlation spectra showing exclusively one- or two-bond correlations.
机译:我们目前的新型低功率同核偶极耦合实验的设计,用于蛋白质的魔角旋转固态NMR研究。脉冲序列是通过结合基于对称性的偶极重新耦合原理和基于最优控制的脉冲序列设计而开发的。脉冲序列的支架由已知的CN型再耦合序列形成,而固有序列元素是使用最佳控制设计的。该程序允许开发高性能脉冲序列,与以前的基于对称性的脉冲序列相比,它们需要的射频场要弱得多,同时可以补偿射频不均匀性,并在生物学应用的化学位移的相关范围内提供激发。通过二维(2D)〜(13)C-〜(13)C和三维(3D)〜数值和实验证明了新的耦合实验,称为最优控制CN(〜(oc)CN)。 (15)N-〜(13)C-〜(13)C化学位移相关实验在〜(13)C,〜(15)N标记的泛素上进行。利用〜(oc)CN实验的双量子,带选择偶极子再耦合特性,我们证明了2D和3D相关光谱的灵敏度显着提高,显示了仅一键或两键相关。

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