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Dipolar truncation in magic-angle spinning NMR recoupling experiments

机译:魔角旋转NMR再偶联实验中的偶极截短

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摘要

Quantitative solid-state NMR distance measurements in strongly coupled spin systems are often complicated due to the simultaneous presence of multiple noncommuting spin interactions. In the case of zeroth-order homonuclear dipolar recoupling experiments, the recoupled dipolar interaction between distant spins is attenuated by the presence of stronger couplings to nearby spins, an effect known as dipolar truncation. In this article, we quantitatively investigate the effect of dipolar truncation on the polarization-transfer efficiency of various homonuclear recoupling experiments with analytical theory, numerical simulations, and experiments. In particular, using selectively C13-labeled tripeptides, we compare the extent of dipolar truncation in model three-spin systems encountered in protein samples produced with uniform and alternating labeling. Our observations indicate that while the extent of dipolar truncation decreases in the absence of directly bonded nuclei, two-bond dipolar couplings can generate significant dipolar truncation of small, long-range couplings. Therefore, while alternating labeling alleviates the effects of dipolar truncation, and thus facilitates the application of recoupling experiments to large spin systems, it does not represent a complete solution to this outstanding problem.
机译:由于同时存在多个非交换自旋相互作用,因此在强耦合自旋系统中定量固态NMR距离测量通常很复杂。在零阶同核偶极子再耦合实验的情况下,远处自旋之间重新耦合的偶极子相互作用会由于与附近自旋的更强耦合而减弱,这种现象称为偶极子截断。在本文中,我们使用分析理论,数值模拟和实验方法,定量研究了偶极截短对各种同核再耦合实验的极化传输效率的影响。特别是,选择性地使用 C < / mtext> 13 标记的三肽在具有均匀和交替标记的蛋白质样品中遇到的模型三旋系统中偶极截短的程度。我们的观察结果表明,在不存在直接键合原子核的情况下,偶极截短的程度会降低,而两键偶极耦合可能会产生小而长距离耦合的显着偶极截短。因此,虽然交替标记减轻了偶极截短的影响,从而促进了将重耦合实验应用于大型自旋系统,但它并不代表该突出问题的完整解决方案。

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