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Rotational and translational water diffusion in the hemoglobin hydration shell: dielectric and proton nuclear relaxation measurements.

机译:血红蛋白水化壳中旋转和平移水的扩散:电介质和质子核弛豫测量。

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摘要

The dynamic properties of water in the hydration shell of hemoglobin have been studied by means of dielectric permittivity measurements and nuclear magnetic resonance spectroscopy. The temperature behavior of the complex permittivity of hemoglobin solutions has been measured at 3.02, 3.98, 8.59, and 10.80 GHz. At a temperature of 298 K the average rotational correlation time tau of water within a hydration shell of 0.5-nm thickness is determined from the activation parameters to be 68 +/- 10 ps, which is 8-fold the corresponding value of bulk water. Solvent proton magnetic relaxation induced by electron-nuclear dipole interaction between hemoglobin bound nitroxide spin labels and water protons is used to determine the translational diffusion coefficient D(T) of the hydration water. The temperature dependent relaxation behavior for Lamor frequencies between 3 and 90 MHz yields an average value D(298K) = (5 +/- 2) x 10(-10)m2 s-1, which is about one-fifth of the corresponding value of bulk water. The decrease of the water mobility in the hydration shell compared to the bulk is mainly due to an enhanced activation enthalpy.
机译:通过介电常数测量和核磁共振波谱研究了血红蛋白水化壳中水的动态特性。血红蛋白溶液的复介电常数的温度行为已在3.02、3.98、8.59和10.80 GHz处测量。在298 K的温度下,根据激活参数将水在0.5 nm厚度的水化壳内的平均旋转相关时间tau确定为68 +/- 10 ps,这是散装水的相应值的8倍。由血红蛋白结合的一氧化氮自旋标记和水质子之间的电子-核偶极相互作用引起的溶剂质子磁弛豫用于确定水合水的平移扩散系数D(T)。劳模频率在3到90 MHz之间的温度相关弛豫行为得出平均值D(298K)=(5 +/- 2)x 10(-10)m2 s-1,约为相应值的五分之一大量的水。与主体相比,水合壳中水迁移率的下降主要是由于活化焓增加所致。

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