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本文引用的文献

1
Fluctuations, exchange processes, and water diffusion in aqueous protein systems: A study of bovine serum albumin by diverse NMR techniques.水相蛋白体系中的波动、交换过程和水扩散:用多种 NMR 技术研究牛血清白蛋白。
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2
pH-induced structural transitions of bovine serum albumin. Histidine pKa values and unfolding of the N-terminus during the N to F transition.牛血清白蛋白的pH诱导结构转变。N到F转变过程中组氨酸的pKa值及N端的去折叠
Eur J Biochem. 1993 Mar 15;212(3):811-7. doi: 10.1111/j.1432-1033.1993.tb17722.x.
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A unified view of relaxation in protein solutions and tissue, including hydration and magnetization transfer.蛋白质溶液和组织中弛豫的统一观点,包括水合作用和磁化转移。
Magn Reson Med. 1993 Jan;29(1):77-83. doi: 10.1002/mrm.1910290114.
4
Realistic simulations of native-protein dynamics in solution and beyond.溶液及其他环境中天然蛋白质动力学的真实模拟。
Annu Rev Biophys Biomol Struct. 1993;22:353-80. doi: 10.1146/annurev.bb.22.060193.002033.
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NMR studies of protein hydration.蛋白质水合作用的核磁共振研究。
Prog Biophys Mol Biol. 1994;61(1):61-79.
6
A molecular theory of relaxation and magnetization transfer: application to cross-linked BSA, a model for tissue.弛豫与磁化转移的分子理论:应用于交联牛血清白蛋白,一种组织模型。
Magn Reson Med. 1993 Dec;30(6):685-95. doi: 10.1002/mrm.1910300606.
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Dynamic properties of bound water studied through macroscopic water relaxations in concentrated protein solutions.
Biochim Biophys Acta. 1994 Sep 21;1208(1):81-8. doi: 10.1016/0167-4838(94)90162-7.
8
Buried waters and internal cavities in monomeric proteins.单体蛋白中的埋藏水和内部空腔。
Protein Sci. 1994 Aug;3(8):1224-35. doi: 10.1002/pro.5560030808.
9
Magnetization transfer, cross-relaxation, and chemical exchange in rotationally immobilized protein gels.旋转固定化蛋白质凝胶中的磁化转移、交叉弛豫和化学交换。
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10
Hydration of proteins. A comparison of experimental residence times of water molecules solvating the bovine pancreatic trypsin inhibitor with theoretical model calculations.蛋白质的水合作用。溶剂化牛胰蛋白酶抑制剂的水分子的实验停留时间与理论模型计算的比较。
J Mol Biol. 1993 Jun 20;231(4):1040-8. doi: 10.1006/jmbi.1993.1350.

固定化蛋白质中水分子动力学的新观点。

A new view of water dynamics in immobilized proteins.

作者信息

Halle B, Denisov V P

机构信息

Chemical Center, Lund University, Sweden.

出版信息

Biophys J. 1995 Jul;69(1):242-9. doi: 10.1016/S0006-3495(95)79895-2.

DOI:10.1016/S0006-3495(95)79895-2
PMID:7669901
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1236241/
Abstract

The inflection frequency of the deuteron magnetic relaxation dispersion from water in rotationally immobilized protein samples has recently been found to be essentially independent of temperature and protein structure. This remarkable invariance has been interpreted in terms of a universal residence time of 1 microseconds for protein-associated water molecules. We demonstrate here that this interpretation is an artifact of the conventional perturbation theory of spin relaxation, which is not valid for rotationally immobile proteins. Using a newly developed non-perturbative, stochastic theory of spin relaxation, we identify the apparent correlation time of 1 microseconds with the inverse of the nuclear quadrupole frequency, thus explaining its invariance. The observed dispersion profiles are consistent with a broad distribution of residence times, spanning the microseconds range. Furthermore, we argue that the deuteron dispersion is due to buried water molecules rather than to the traditional surface hydration previously invoked, and that the contribution from rapidly exchanging protein hydrogens cannot be neglected. The conclusions of the present work are also relevant to proton relaxation in immobilized protein samples and to magnetic resonance imaging of soft tissue.

摘要

最近发现,在旋转固定的蛋白质样品中,来自水的氘核磁弛豫色散的拐点频率基本上与温度和蛋白质结构无关。这种显著的不变性已根据与蛋白质相关的水分子1微秒的普遍停留时间来解释。我们在此证明,这种解释是自旋弛豫传统微扰理论的人为产物,该理论对旋转固定的蛋白质无效。使用新开发的自旋弛豫非微扰随机理论,我们将1微秒的表观相关时间与核四极频率的倒数联系起来,从而解释了其不变性。观察到的色散曲线与跨越微秒范围的广泛停留时间分布一致。此外,我们认为氘核色散是由于埋藏的水分子,而不是先前提出的传统表面水化,并且快速交换的蛋白质氢的贡献不可忽略。本工作的结论也与固定蛋白质样品中的质子弛豫以及软组织的磁共振成像有关。