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通过组合多场氘 CHD 甲基自旋弛豫 NMR 光谱增强谱密度映射。

Enhanced spectral density mapping through combined multiple-field deuterium CHD methyl spin relaxation NMR spectroscopy.

机构信息

Department of Chemistry, Columbia University, 3000 Broadway, New York, NY 10027, United States.

Department of Biochemistry and Molecular Biophysics, Columbia University Medical Center, 650 West 168th Street, New York, NY 10032, United States.

出版信息

Methods. 2018 Apr 1;138-139:76-84. doi: 10.1016/j.ymeth.2017.12.020. Epub 2017 Dec 27.

Abstract

Quadrupolar relaxation of H (D) nuclear spins is a powerful probe of conformational dynamics in biological macromolecules. Deuterium relaxation rate constants are determined by the spectral density function for reorientation of the C-D bond vector at zero, single-quantum, and double-quantum H frequencies. In the present work, H relaxation rate constants were measured for an E. coli ribonuclease H [U-H, N] ILV-[CHD] sample using 400, 500, 800, and 900 MHz NMR spectrometers and analyzed by three approaches to determine spectral density values. First, data recorded at each static magnetic field were analyzed independently. Second, data recorded at 400 and 800 MHz were analyzed jointly and data recorded at other fields were analyzed independently. Third, data recorded at 400 and 500 MHz were interpolated to 450 MHz, and the resulting two pairs of data, corresponding to 400 MHz/800 MHz and 450 MHz/900 MHz, were analyzed jointly. The second and third approaches rely on the identity between the double quantum frequency at the lower field and the single quantum frequency at the higher field. Spectral density values for 32 of the 48 resolvable ILV methyl resonances were fit by the Lipari-Szabo model-free formalism and used to validate the three methods. The three spectral density mapping methods performed equally well in cross validation with data recorded at 700 MHz. However, the third method yielded approximately 10-15% more precise estimates of model-free parameters and consequently provides a general strategy for analysis of H spin relaxation data in biological macromolecules.

摘要

四极弛豫的 H(D)核自旋是生物大分子构象动力学的有力探针。氘弛豫率常数由 C-D 键矢在零、单量子和双量子 H 频率下的重新取向的谱密度函数决定。在本工作中,使用 400、500、800 和 900 MHz NMR 谱仪测量了大肠杆菌核糖核酸酶 H [U-H,N] ILV-[CHD] 样品的 H 弛豫率常数,并通过三种方法分析来确定谱密度值。首先,独立分析每个静磁场记录的数据。其次,联合分析在 400 和 800 MHz 记录的数据,独立分析其他场记录的数据。第三,在 400 和 500 MHz 记录的数据被插值到 450 MHz,由此产生的两对数据,对应于 400 MHz/800 MHz 和 450 MHz/900 MHz,联合分析。第二和第三种方法依赖于较低场的双量子频率和较高场的单量子频率之间的一致性。48 个可分辨的 ILV 甲基共振中的 32 个的谱密度值由 Lipari-Szabo 无模型自由格式拟合,并用于验证这三种方法。在与 700 MHz 记录的数据的交叉验证中,这三种谱密度映射方法表现同样良好。然而,第三种方法产生了大约 10-15%更精确的无模型参数估计,因此为生物大分子中 H 自旋弛豫数据的分析提供了一种通用策略。

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