Quantitative interpretation of bioenergetic data from 31P and 1H magnetic resonance spectroscopic studies of skeletal muscle: an analytical review.

Magnetic resonance quarterly Pub Date : 1994-03-01
G J Kemp, G K Radda
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Abstract

In the study of skeletal muscle bioenergetics, 31P magnetic resonance spectroscopy (MRS) allows frequent measurement of the cytosolic pH and the concentrations of phosphocreatine, inorganic phosphate, and adenosine diphosphate (ADP) during exercise and recovery, which can be supplemented by 1H MRS (or biopsy) measurements of muscle lactate content and 13C MRS (or biopsy) measurements of muscle glycogen. We review the many methods now described by which 31P MRS measurements can be made to yield quantitative estimates of adenosine triphosphate (ATP) turnover, oxidative capacity, and proton handling in skeletal muscle. In particular, we describe how to estimate the rates of glycogenolytic and aerobic ATP synthesis during exercise and oxidative ATP synthesis and proton efflux during recovery from exercise and how to assess oxidative capacity using data from steady-state exercise, work jumps, or recovery. We discuss the metabolic relationships that make these methods possible and the assumptions (e.g., about cytosolic buffer capacity and mitochondrial control mechanisms) on which they depend. We show how these methods, although sometimes based on apparently conflicting metabolic models, can be analysed in a common framework. Finally, we discuss some examples of the current and potential applications of these methods in clinical and experimental studies of skeletal muscle.

骨骼肌31P和1H磁共振光谱研究生物能量数据的定量解释:分析综述。
在骨骼肌生物能量学的研究中,31P磁共振波谱(MRS)允许在运动和恢复期间频繁测量胞质pH和磷酸肌酸、无机磷酸盐和二磷酸腺苷(ADP)的浓度,可以通过1H MRS(或活检)测量肌肉乳酸含量和13C MRS(或活检)测量肌肉糖原来补充。我们回顾了现在描述的许多方法,这些方法可以通过31P MRS测量来产生骨骼肌中三磷酸腺苷(ATP)周转,氧化能力和质子处理的定量估计。特别是,我们描述了如何估计运动过程中糖原分解和有氧ATP合成的速率,以及运动恢复过程中氧化ATP合成和质子外排的速率,以及如何使用稳态运动、工作跳跃或恢复的数据来评估氧化能力。我们讨论了使这些方法成为可能的代谢关系以及它们所依赖的假设(例如,关于细胞质缓冲能力和线粒体控制机制)。我们展示了这些方法,尽管有时基于明显冲突的代谢模型,可以在一个共同的框架中分析。最后,我们讨论了这些方法在骨骼肌临床和实验研究中目前和潜在应用的一些例子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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