Department of Chemistry , Massachusetts Institute of Technology , 170 Albany Street , Cambridge , Massachusetts 02139 , United States.
J Phys Chem B. 2018 Mar 22;122(11):2900-2911. doi: 10.1021/acs.jpcb.8b00310. Epub 2018 Mar 13.
Internuclear distances measured using NMR provide crucial constraints of three-dimensional structures but are often restricted to about 5 Å due to the weakness of nuclear-spin dipolar couplings. For studying macromolecular assemblies in biology and materials science, distance constraints beyond 1 nm will be extremely valuable. Here we present an extensive and quantitative analysis of the feasibility of F spin exchange NMR for precise and robust measurements of interatomic distances up to 1.6 nm at a magnetic field of 14.1 T, under 20-40 kHz magic-angle spinning (MAS). The measured distances are comparable to those achievable from paramagnetic relaxation enhancement but have higher precision, which is better than ±1 Å for short distances and ±2 Å for long distances. For F spins with the same isotropic chemical shift but different anisotropic chemical shifts, intermediate MAS frequencies of 15-25 kHz without H irradiation accelerate spin exchange. For spectrally resolved F-F spin exchange, H-F dipolar recoupling significantly speeds up F-F spin exchange. On the basis of data from five fluorinated synthetic, pharmaceutical, and biological compounds, we obtained two general curves for spin exchange between CF groups and between CF and CF groups. These curves allow F-F distances to be extracted from the measured spin exchange rates after taking into account F chemical shifts. These results demonstrate the robustness of F spin exchange NMR for distance measurements in a wide range of biological and chemical systems.
使用 NMR 测量核间距为研究生物和材料科学中的大分子组装体提供了至关重要的三维结构约束,但由于核自旋偶极耦合的强度较弱,通常限制在约 5 Å 以内。对于研究生物和材料科学中的大分子组装体,超过 1nm 的距离约束将是非常有价值的。在这里,我们对 F 自旋交换 NMR 在磁场为 14.1T、20-40 kHz 魔角旋转(MAS)下进行精确和稳健的原子间距离测量的可行性进行了广泛而定量的分析,其距离测量范围可达 1.6nm。所测量的距离与通过顺磁弛豫增强可实现的距离相当,但具有更高的精度,对于短距离精度优于±1Å,对于长距离精度优于±2Å。对于具有相同各向同性化学位移但各向异性化学位移不同的 F 自旋,在没有 H 照射的情况下,15-25 kHz 的中间 MAS 频率会加速自旋交换。对于光谱分辨的 F-F 自旋交换,H-F 偶极重聚显著加快了 F-F 自旋交换。基于五个氟化合成物、药物和生物化合物的数据,我们获得了 CF 基团之间和 CF 和 CF 基团之间自旋交换的两条通用曲线。在考虑 F 化学位移后,这些曲线允许从测量的自旋交换速率中提取 F-F 距离。这些结果证明了 F 自旋交换 NMR 在广泛的生物和化学体系中进行距离测量的稳健性。