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首页> 外文期刊>Acta physiologica Scandinavica >Metabolic factors contributing to altered Ca2+ regulation in skeletal muscle fatigue.
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Metabolic factors contributing to altered Ca2+ regulation in skeletal muscle fatigue.

机译:骨骼肌疲劳中改变钙离子调节的代谢因子。

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摘要

AIM: Skeletal muscle fatigue is characterized by a failure to maintain force production or power output during intense exercise. Many recent studies on isolated fibres have used brief repetitive tetanic contractions to mimic fatigue resulting from intensive exercise and to investigate the underlying cellular mechanisms. Such studies have shown that characteristic changes in Ca2+ regulation occur during fatiguing stimulation. This includes prolongation of the 'Ca2+-tails' which follow each period of tetanic stimulation and a progressive rise in resting [Ca2+]. More importantly, the final stage of fatigue is associated with a rapid decrease in tetanic [Ca2+]i and force. These fatigue-induced changes in sarcoplasmic reticulum (SR) Ca2+ regulation are temporally associated with alterations in the intracellular levels of phosphate metabolites and a causal relationship has often been proposed. The aim of this review is to evaluate the evidence linking changes in the levels of phosphate metabolites and altered Ca2+ regulation during fatigue. RESULTS: The following current hypotheses will be discussed: (1) the early changes in Ca2+ regulation reflect alterations in the intracellular levels of phosphate metabolites, (2) inhibition of the SR Ca2+ release mechanism (e.g. caused by ATP depletion and increased [Mg2+]) contributes to the decrease in tetanic [Ca2+]i during the final stages of fatigue and (iii) delayed entry of inorganic phosphate ions (Pi) into the SR, followed by precipitation of calcium phosphate (Ca-Pi), can explain the fatigue-induced decrease in tetanic [Ca2+]i. CONCLUSION: There is strong evidence that changes in phosphate metabolite levels contribute to early changes in SR Ca2+ regulation during fatigue and that inhibition of the SR Ca2+ release mechanism can partially explain the rapid decrease in tetanic [Ca2+]i during the final stages of fatigue. While precipitation of Ca-Pi may occur within the SR during fatigue, there is currently insufficient evidence to establish whether this contributes to the late decline in tetanic [Ca2+]i.
机译:目的:骨骼肌疲劳的特征是在剧烈运动过程中无法维持力量产生或动力输出。最近有关隔离纤维的许多研究已使用短暂的重复性强直性收缩来模仿剧烈运动引起的疲劳并研究潜在的细胞机制。这些研究表明,在疲劳刺激过程中会发生Ca2 +调节的特征性变化。这包括在强直性刺激的每个时期之后“ Ca2 +-尾巴”的延长以及静息[Ca2 +]的逐渐升高。更重要的是,疲劳的最后阶段与破伤风[Ca2 +] i和力量的迅速下降有关。肌浆网(SR)Ca2 +调节的这些疲劳诱导的变化在时间上与磷酸代谢产物的细胞内水平的变化相关,并且经常提出因果关系。这篇综述的目的是评估在疲劳期间将磷酸盐代谢物水平的变化与改变的Ca2 +调节联系起来的证据。结果:将讨论以下当前假设:(1)Ca2 +调节的早期变化反映了细胞内磷酸盐代谢产物水平的变化,(2)抑制SR Ca2 +释放机制(例如由ATP消耗和[Mg2 +]引起) )有助于在疲劳的最后阶段减少强直性[Ca2 +] i,并且(iii)无机磷酸根离子(Pi)延迟进入SR,随后磷酸钙(Ca-Pi)沉淀,可以解释疲劳诱导的破伤风[Ca2 +] i降低。结论:有强有力的证据表明,在疲劳过程中磷酸盐代谢物水平的变化有助于SR Ca2 +调节的早期变化,并且抑制SR Ca2 +释放机制可以部分解释在疲劳的最后阶段破伤风[Ca2 +] i的快速降低。尽管在疲劳期间SR内可能发生Ca-Pi沉淀,但目前尚无足够的证据来确定这是否导致强直性[Ca2 +] i的下降。

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