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Modeling of proton spin relaxation in muscle tissue using nuclear magnetic resonance spin grouping and exchange analysis.

机译:使用核磁共振自旋分组和交换分析对肌肉组织中质子自旋弛豫进行建模。

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摘要

NMR spin relaxation experiments performed on healthy mouse muscle tissue at 40 MHz and 293 K are reported. The spin-lattice relaxation experiments were performed using different combinations of selective and nonselective radio frequency pulses. Relaxation experiments in the rotating frame at H1 = 10, 5 and 1 G are also reported. The experimental results were analyzed using the spin-grouping method, which yields the sizes of the resolved magnetization components as well as their T2's and T1's (or T1p's) for the nonexponential relaxation functions. These results were analyzed further for the exchange between different spin groups. It has been found that to explain all of these experimental data it was necessary to use a four-compartment model of the muscle tissue that consists of a lipid spin group, a "solid-like" spin group (mainly proteins), a "bulk water" spin group and a "bound water" spin group. The chemical exchange rate between "bulk" and "bound" water was found to be 29 +/- 9s-1 at room temperature. The exchange rate between the bound water and the solid moderator was estimated to be approximately 500 s-1.
机译:据报道在健康的小鼠肌肉组织上以40 MHz和293 K进行的NMR自旋弛豫实验。使用选择性和非选择性射频脉冲的不同组合进行自旋晶格弛豫实验。还报道了在H1 = 10、5和1 G的旋转框架中的弛豫实验。使用自旋分组方法分析了实验结果,该方法得出了解析的磁化分量的大小以及非指数弛豫函数的T2和T1(或T1p)。对于不同自旋基团之间的交换,将进一步分析这些结果。已经发现,要解释所有这些实验数据,有必要使用由脂质旋转基团,“固体样”旋转基团(主要是蛋白质),“本体”组成的四室肌肉组织模型。水”旋转组和“绑定水”旋转组。在室温下,“散装”和“结合”水之间的化学交换速率为29 +/- 9s-1。结合水与固体调节剂之间的交换速率估计约为500 s-1。

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