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在进行最大收缩 4 分钟时,人体四头肌中的氧化 ATP 合成下降。

Oxidative ATP synthesis in human quadriceps declines during 4 minutes of maximal contractions.

机构信息

Muscle Physiology Laboratory, Department of Kinesiology, University of Massachusetts, Amherst, Massachusetts, 01003.

Department of Kinesiology, University of Texas, Arlington, Texas, 76019.

出版信息

J Physiol. 2020 May;598(10):1847-1863. doi: 10.1113/JP279339. Epub 2020 Apr 1.

Abstract

KEY POINTS

During maximal exercise, skeletal muscle metabolism and oxygen consumption remain elevated despite precipitous declines in power. Presently, it is unclear whether these responses are caused by an increased ATP cost of force generation (ATP ) or mitochondrial uncoupling; a process that reduces the efficiency of oxidative ATP synthesis (ATP ). To address this gap, we used 31-phosphorus magnetic resonance spectroscopy to measure changes in ATP and ATP in human quadriceps during repeated trials of maximal intensity knee extensions lasting up to 4 min. ATP remained unchanged. In contrast, ATP plateaued by ∼2 min and then declined (∼15%) over the final 2 min. The maximal capacity for ATP (V ), as well as ADP-specific rates of ATP , were also significantly diminished. Collectively, these results suggest that mitochondrial uncoupling, and not increased ATP , is responsible for altering the regulation of skeletal muscle metabolism and oxygen consumption during maximal exercise.

ABSTRACT

The relationship between skeletal muscle oxygen consumption and power output is augmented during exercise at workloads above the lactate threshold. Potential mechanisms for this response have been hypothesized, including increased ATP cost of force generation (ATP ) and mitochondrial uncoupling, a process that reduces the efficiency of oxidative ATP synthesis (ATP ). To test these hypotheses, we used phosphorus magnetic resonance spectroscopy to non-invasively measure changes in phosphate concentrations and pH in the vastus lateralis muscle of nine young adults during repeated trials of maximal, all-out dynamic knee extensions (120°s , 1 every 2 s) lasting 24, 60, 120, and 240 s. ATP was measured at each time point from the initial velocity of PCr resynthesis, and ATP was calculated as the sum of ATP synthesized by the creatine and adenylate kinase reactions, non-oxidative glycolysis, ATP and net changes in [ATP]. Power output declined in a reproducible manner for all four trials. ATP did not change over time (main effect P = 0.45). ATP plateaued from 60 to 120 s and then decreased over the final 120 s (main effect P = 0.001). The maximal capacity for oxidative ATP synthesis (V ), as well as ADP-specific rates of ATP , also decreased over time (main effect P = 0.001, both). Collectively, these results demonstrate that prolonged maximal contraction protocols impair oxidative energetics and implicate mitochondrial uncoupling as the mechanism for this response. The causes of mitochondrial uncoupling are presently unknown but may offer a potential explanation for the dissociation between skeletal muscle power output and oxygen consumption during maximal, all-out exercise protocols.

摘要

要点

在最大功率运动期间,尽管功率急剧下降,但骨骼肌代谢和耗氧量仍保持升高。目前,尚不清楚这些反应是由产生力的 ATP 成本增加(ATP )还是线粒体解偶联引起的;这一过程降低了氧化 ATP 合成的效率(ATP )。为了解决这一差距,我们使用 31 磷磁共振波谱法测量了人类股四头肌在长达 4 分钟的最大强度膝关节伸展重复试验过程中 ATP 和 ATP 的变化。ATP 保持不变。相比之下,ATP 在大约 2 分钟时达到平台,然后在最后 2 分钟下降(约 15%)。ATP 的最大容量(V )以及 ADP 特异性 ATP 合成率也显著降低。总的来说,这些结果表明,线粒体解偶联而不是增加的 ATP 是导致最大功率运动期间骨骼肌代谢和耗氧量调节改变的原因。

摘要

在超过乳酸阈的工作负荷下进行运动时,骨骼肌耗氧量与功率输出之间的关系增强。已经假设了这种反应的潜在机制,包括产生力的 ATP 成本增加(ATP )和线粒体解偶联,这一过程降低了氧化 ATP 合成的效率(ATP )。为了验证这些假设,我们使用磷磁共振波谱法无创测量了 9 名年轻人在重复进行最大、全力以赴的动态膝关节伸展(120°s ,每 2 秒 1 次)24、60、120 和 240 s 期间股外侧肌磷酸盐浓度和 pH 值的变化。在每个时间点都从 PCr 再合成的初始速度测量 ATP ,并将 ATP 计算为肌酸和腺苷激酶反应、非氧化糖酵解、ATP 和[ATP]净变化合成的 ATP 之和。在所有四项试验中,功率输出均以可重复的方式下降。ATP 随时间没有变化(主效应 P = 0.45)。从 60 到 120 秒,ATP 达到平台,然后在最后 120 秒内下降(主效应 P = 0.001)。氧化 ATP 合成的最大容量(V )以及 ADP 特异性 ATP 合成率也随时间下降(主效应 P = 0.001,两者均)。总的来说,这些结果表明,长时间的最大功率收缩方案会损害氧化能学,并表明线粒体解偶联是这种反应的机制。目前尚不清楚线粒体解偶联的原因,但可能为最大功率、全力以赴运动方案中骨骼肌功率输出与耗氧量之间的分离提供潜在解释。

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