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抗磁性血红蛋白溶液中蛋白质和水质子的核磁共振弛豫

NMR relaxation of protein and water protons in diamagnetic hemoglobin solutions.

作者信息

Eisenstadt M

出版信息

Biochemistry. 1985 Jul 2;24(14):3407-21. doi: 10.1021/bi00335a004.

Abstract

We have measured T1 and T2 of protein and water protons in hemoglobin solutions using broad-line pulse techniques; selective excitation and detection methods enabled the intrinsic protein and water relaxation rates, as well as the spin-transfer rate between them, to be obtained at 5, 10, and 20 MHz. Water and protein T1 data were also obtained at 100 and 200 MHz for hemoglobin in H2O/D2O mixtures by using commercial Fourier-transform instruments. The T1 data conform to a simple model of two well-mixed spin systems with single intrinsic relaxation times and an average spin-transfer rate, with each phase recovering from a radio-frequency excitation with a biexponential time dependence. At low frequencies, protein T1 and T2 agree reasonably with a model of dipolar relaxation of an array of fixed protons tumbling in solution, explicitly calculating methyl and methylene relaxation and using a continuum approximation for the others. Differing values in H2O and D2O are mainly ascribed to solvent viscosity. For water-proton relaxation, T1, T2, and spin transfer were measured for H2O and HDO, which enabled a separation of inter-and intramolecular contributions to relaxation. Despite such detail, few firm conclusions could be reached about hydration water. But it seems clear that few long-lived hydration sites are needed to explain T1 and T2, and the spin-transfer value mandates fewer than five sites with a lifetime longer than 10(-8) s.

摘要

我们使用宽线脉冲技术测量了血红蛋白溶液中蛋白质和水质子的T1和T2;选择性激发和检测方法能够在5、10和20兆赫兹下获得蛋白质和水的固有弛豫率,以及它们之间的自旋转移率。通过使用商用傅里叶变换仪器,还在100和200兆赫兹下获得了血红蛋白在H2O/D2O混合物中的水和蛋白质T1数据。T1数据符合一个简单的模型,即两个充分混合的自旋系统,具有单一的固有弛豫时间和平均自旋转移率,每个相从具有双指数时间依赖性的射频激发中恢复。在低频下,蛋白质T1和T2与溶液中固定质子阵列的偶极弛豫模型相当吻合,明确计算了甲基和亚甲基弛豫,并对其他部分使用了连续近似法。H2O和D2O中的不同值主要归因于溶剂粘度。对于水质子弛豫,测量了H2O和HDO的T1、T2和自旋转移,这使得能够区分分子间和分子内对弛豫的贡献。尽管有这些细节,但关于结合水几乎无法得出确凿的结论。但似乎很明显,解释T1和T2所需的长寿命结合位点很少,而且自旋转移值要求寿命长于10^(-8)秒的位点少于五个。

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