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凝胶和组织中水质子弛豫的分子基础。

Molecular basis of water proton relaxation in gels and tissue.

作者信息

Chávez Fabian Vaca, Halle Bertil

机构信息

Department of Biophysical Chemistry, Lund University, Lund, Sweden.

出版信息

Magn Reson Med. 2006 Jul;56(1):73-81. doi: 10.1002/mrm.20912.

Abstract

An extensive set of water-1H magnetic relaxation dispersion (MRD) data are presented for aqueous agarose and gelatin gels. It is demonstrated that the EMOR model, which was developed in a companion paper to this study (see Halle, this issue), accounts for the dependence of the water-1H spin-lattice relaxation rate on resonance frequency over more than four decades and on pH. The parameter values deduced from analysis of the 1H MRD data are consistent with values derived from 2H MRD profiles from the same gels and with small-molecule reference data. This agreement indicates that the water-1H relaxation dispersion in aqueous biopolymer gels is produced directly by exchange-mediated orientational randomization of internal water molecules or labile biopolymer protons, with little or no role played by collective biopolymer vibrations or coherent spin diffusion. This ubiquitous mechanism is proposed to be the principal source of water-1H spin-lattice relaxation at low magnetic fields in all aqueous systems with rotationally immobile biopolymers, including biological tissue. The same mechanism also contributes to transverse and rotating-frame relaxation and magnetization transfer at high fields.

摘要

本文给出了一系列关于水-1H 磁弛豫色散(MRD)的广泛数据,涉及水相琼脂糖凝胶和明胶凝胶。研究表明,在本研究的一篇相关论文中(见 Halle,本期)所建立的 EMOR 模型,能够解释水-1H 自旋晶格弛豫率在超过四个数量级的共振频率范围内以及在不同 pH 值下的依赖性。通过对 1H MRD 数据进行分析推导得到的参数值,与来自相同凝胶的 2H MRD 谱图所得到的值以及小分子参考数据一致。这种一致性表明,水相生物聚合物凝胶中的水-1H 弛豫色散是由内部水分子或不稳定生物聚合物质子的交换介导取向随机化直接产生的,而集体生物聚合物振动或相干自旋扩散几乎没有起到作用。这种普遍存在的机制被认为是所有具有旋转固定生物聚合物的水相系统(包括生物组织)在低磁场下水-1H 自旋晶格弛豫的主要来源。同样的机制在高场下也对横向和旋转坐标系弛豫以及磁化转移有贡献。

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