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在 MAS 下高磁场中通过交错 C 元素实现化学位移各向异性的重新耦联。

Scaled recoupling of chemical shift anisotropies at high magnetic fields under MAS with interspersed C-elements.

机构信息

Department of Chemistry, Columbia University, New York, New York 10027, USA.

出版信息

J Chem Phys. 2020 Sep 14;153(10):104201. doi: 10.1063/5.0020682.

Abstract

The power of chemical shift anisotropy (CSA) measurements for probing structure and dynamics of molecules has been long recognized. NMR pulse sequences that allow measurement of CSA values in an indirect dimension of a protein correlation spectrum have been employed for aliphatic groups, but for practical reasons, carbonyl functional groups have been little studied, despite the fact that carbonyls are expected to give particularly varied and informative CSA values. Specifically, the wide spectral widths of carbonyl tensors make their measurements difficult with typically attainable spectrometer settings. We present here an extended family of experiments that enable the recovery of static CSA lineshapes in an indirect dimension of magic angle spinning (MAS) solid-state NMR experiments, except for various real valued scaling factors. The experiment is suitable for uniformly labeled material, at moderate MAS rates (10 kHz-30 kHz) and at higher magnetic fields (ν > 600 MHz). Specifically, the experiments are based on pulse sequence elements from a previous commonly used pulse sequence for CSA measurement, recoupling of chemical shift anisotropy (ROCSA), while modification of scaling factors is achieved by interspersing different blocks of C-elements of the same Cn cycle. Using experimental conditions similar to the parent ROCSA sequence, a CSA scaling factor between 0 and 0.272 can be obtained, thus allowing a useful practical range of possibilities in experimental conditions for measurement of larger CSA values. Using these blocks, it is also possible to make a constant-time CSA recoupling sequence. The effectiveness of this approach, fROCSA, is shown on model compounds 1-C-Gly, U-C,N-l-His, and microcrystalline U-C,N-Ubiquitin.

摘要

化学位移各向异性(CSA)测量在探测分子结构和动力学方面的作用已得到长期认可。已经开发出可在蛋白质相关谱的间接维度中测量 CSA 值的 NMR 脉冲序列,这些脉冲序列可用于脂肪族基团,但由于实际原因,尽管羰基有望提供特别多样且信息量丰富的 CSA 值,但羰基官能团的研究却很少。具体来说,羰基张量的宽光谱宽度使得它们的测量在通常可达到的光谱仪设置下变得困难。我们在这里提出了一组扩展的实验,这些实验可在魔角旋转(MAS)固态 NMR 实验的间接维度中恢复静态 CSA 线形状,除了各种实值比例因子外。该实验适用于具有中等 MAS 速率(10 kHz-30 kHz)和较高磁场(ν>600 MHz)的均匀标记材料。具体来说,该实验基于先前用于 CSA 测量的常用脉冲序列(ROCSA)中的脉冲序列元素,通过化学位移各向异性再偶联(ROCSA)来恢复 CSA 线形状,同时通过交错相同 Cn 循环的不同 C 元素块来实现比例因子的修改。使用与原始 ROCSA 序列相似的实验条件,可以获得 0 到 0.272 之间的 CSA 比例因子,从而在更大 CSA 值的实验条件下提供了有用的实际可能性范围。使用这些块,也可以制作恒时 CSA 再偶联序列。该方法(fROCSA)在模型化合物 1-C-Gly、U-C,N-l-His 和微晶 U-C,N-Ubiquitin 上的有效性得到了证明。

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