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扩散核磁共振波谱法。

Diffusion NMR spectroscopy.

作者信息

Nicolay K, Braun K P, Graaf R A, Dijkhuizen R M, Kruiskamp M J

机构信息

Department of Experimental In Vivo NMR, Image Sciences Institute, University Medical Center Utrecht, Utrecht, The Netherlands.

出版信息

NMR Biomed. 2001 Apr;14(2):94-111. doi: 10.1002/nbm.686.

Abstract

MR offers unique tools for measuring molecular diffusion. This review focuses on the use of diffusion-weighted MR spectroscopy (DW-MRS) to non-invasively quantitate the translational displacement of endogenous metabolites in intact mammalian tissues. Most of the metabolites that are observed by in vivo MRS are predominantly located in the intracellular compartment. DW-MRS is of fundamental interest because it enables one to probe the in situ status of the intracellular space from the diffusion characteristics of the metabolites, while at the same time providing information on the intrinsic diffusion properties of the metabolites themselves. Alternative techniques require the introduction of exogenous probe molecules, which involves invasive procedures, and are also unable to measure molecular diffusion in and throughout intact tissues. The length scale of the process(es) probed by MR is in the micrometer range which is of the same order as the dimensions of many intracellular entities. DW-MRS has been used to estimate the dimensions of the cellular elements that restrict intracellular metabolite diffusion in muscle and nerve tissue. In addition, it has been shown that DW-MRS can provide novel information on the cellular response to pathophysiological changes in relation to a range of disorders, including ischemia and excitotoxicity of the brain and cancer.

摘要

磁共振成像(MR)提供了测量分子扩散的独特工具。本综述聚焦于扩散加权磁共振波谱(DW-MRS)在完整哺乳动物组织中对内源性代谢物平移位移进行无创定量分析的应用。体内磁共振波谱观察到的大多数代谢物主要位于细胞内区室。DW-MRS具有重要的基础研究价值,因为它能使人们从代谢物的扩散特性探究细胞内空间的原位状态,同时提供代谢物自身固有扩散特性的信息。其他技术需要引入外源性探针分子,这涉及侵入性操作,而且也无法测量完整组织内及整个组织中的分子扩散。磁共振成像探测的过程的长度尺度在微米范围内,这与许多细胞内实体的尺寸处于同一量级。DW-MRS已被用于估计限制肌肉和神经组织中细胞内代谢物扩散的细胞成分的尺寸。此外,研究表明DW-MRS能够提供有关细胞对一系列疾病(包括脑缺血、兴奋毒性和癌症)病理生理变化反应的新信息。

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