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1
Lactate per se improves the excitability of depolarized rat skeletal muscle by reducing the Cl- conductance.乳酸本身通过降低氯离子电导来提高去极化大鼠骨骼肌的兴奋性。
J Physiol. 2010 Dec 1;588(Pt 23):4785-94. doi: 10.1113/jphysiol.2010.196568. Epub 2010 Sep 27.
2
Reporting ethical matters in the Journal of Physiology: standards and advice.《生理学杂志》中的伦理问题报告:标准与建议
J Physiol. 2009 Feb 15;587(Pt 4):713-9. doi: 10.1113/jphysiol.2008.167387.
3
Skeletal muscle fatigue: cellular mechanisms.骨骼肌疲劳:细胞机制
Physiol Rev. 2008 Jan;88(1):287-332. doi: 10.1152/physrev.00015.2007.
4
Regulation of Na+-K+ homeostasis and excitability in contracting muscles: implications for fatigue.收缩肌肉中钠钾稳态与兴奋性的调节:对疲劳的影响
Appl Physiol Nutr Metab. 2007 Oct;32(5):974-84. doi: 10.1139/H07-099.
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Chloride conductance in the transverse tubular system of rat skeletal muscle fibres: importance in excitation-contraction coupling and fatigue.大鼠骨骼肌纤维横管系统中的氯离子电导:在兴奋-收缩偶联和疲劳中的重要性。
J Physiol. 2008 Feb 1;586(3):875-87. doi: 10.1113/jphysiol.2007.144667. Epub 2007 Nov 22.
6
Potassium, Na+,K+-pumps and fatigue in rat muscle.钾、钠钾泵与大鼠肌肉疲劳
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7
Effects of extracellular HCO3(-) on fatigue, pHi, and K+ efflux in rat skeletal muscles.细胞外HCO3(-)对大鼠骨骼肌疲劳、细胞内pH值及钾离子外流的影响
J Appl Physiol (1985). 2007 Aug;103(2):494-503. doi: 10.1152/japplphysiol.00049.2007. Epub 2007 Apr 19.
8
Additive protective effects of the addition of lactic acid and adrenaline on excitability and force in isolated rat skeletal muscle depressed by elevated extracellular K+.添加乳酸和肾上腺素对因细胞外钾离子浓度升高而受抑制的离体大鼠骨骼肌的兴奋性和力量具有累加保护作用。
J Physiol. 2007 Jun 1;581(Pt 2):829-39. doi: 10.1113/jphysiol.2007.129049. Epub 2007 Mar 8.
9
Change in contractile properties of human muscle in relationship to the loss of power and slowing of relaxation seen with fatigue.人体肌肉收缩特性的变化与疲劳时出现的力量丧失和放松减慢的关系。
J Physiol. 2006 Nov 1;576(Pt 3):913-22. doi: 10.1113/jphysiol.2006.116343. Epub 2006 Aug 17.
10
Low cell pH depresses peak power in rat skeletal muscle fibres at both 30 degrees C and 15 degrees C: implications for muscle fatigue.低细胞pH值会在30摄氏度和15摄氏度时降低大鼠骨骼肌纤维的峰值功率:对肌肉疲劳的影响。
J Physiol. 2006 Sep 15;575(Pt 3):887-99. doi: 10.1113/jphysiol.2006.106732. Epub 2006 Jun 29.

酸化和细胞外钾增加对分离大鼠肌肉动态收缩的影响。

Effects of acidification and increased extracellular potassium on dynamic muscle contractions in isolated rat muscles.

机构信息

Department of Sport Science, Aarhus University, Dalgas Avenue 4, DK-8000 Århus C, Denmark.

出版信息

J Physiol. 2010 Dec 15;588(Pt 24):5065-76. doi: 10.1113/jphysiol.2010.195727. Epub 2010 Oct 20.

DOI:10.1113/jphysiol.2010.195727
PMID:20962010
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3036197/
Abstract

Since accumulation of both H(+) and extracellular K(+) have been implicated in the reduction in dynamic contractile function during intense exercise, we investigated the effects of acidification and high K(+) on muscle power and the force-velocity relation in non-fatigued rat soleus muscles. Contractions were elicited by supramaximal electrical stimulation at 60 Hz. Force-velocity (FV) curves were obtained by fitting data on force and shortening velocity at different loads to the Hill equation. Acidification of the muscles by incubation with up to 24 mm lactic acid produced no significant changes in maximal power (P(max)) at 30 °C. More pronounced acidification, obtained by increasing CO(2) levels in the equilibration gas from 5% to 53%, markedly decreased P(max) and maximal isometric force (F(max)), increased the curvature of the FV relation, but left maximal shortening velocity (V(max)) unchanged. Increase of extracellular K(+) from 4 to 10 mm caused a depression of 58% in P(max) and 52% in F(max), but had no significant effect on V(max) or curvature of the FV curve. When muscles at 10 mM K(+) were acidified by 20 mm lactic acid, P(max) and F(max) recovered completely to the initial control level at 4 mm K(+). CO(2) acidification also induced significant recovery of dynamic contractions, but not entirely to control levels. These results demonstrate that in non-fatigued muscles severe acidification can be detrimental to dynamic contractile function, but in muscles depolarised by exposure to high extracellular [K(+)], approaching the [K(+)] level seen during intense fatiguing exercise, acidification can have positive protective effects on dynamic muscle function.

摘要

由于 H(+) 和细胞外 K(+) 的积累都与剧烈运动时动态收缩功能的降低有关,我们研究了酸化和高 K(+)对非疲劳大鼠比目鱼肌肌肉力量和力-速度关系的影响。通过 60 Hz 的最大电刺激引发收缩。通过将不同负荷下的力和缩短速度的数据拟合到 Hill 方程来获得力-速度 (FV) 曲线。在 30°C 时,用高达 24mm 的乳酸孵育肌肉导致最大力量 (P(max)) 没有明显变化。通过将平衡气体中的 CO(2) 水平从 5%增加到 53%,更明显的酸化显著降低了 P(max)和最大等长力 (F(max)),增加了 FV 关系的曲率,但不改变最大缩短速度 (V(max))。细胞外 K(+) 从 4 增加到 10mm 导致 P(max)降低 58%,F(max)降低 52%,但对 V(max)或 FV 曲线的曲率没有显著影响。当 10mM K(+) 下的肌肉被 20mm 乳酸酸化时,P(max)和 F(max)在 4mm K(+)时完全恢复到初始对照水平。CO(2)酸化也引起了动态收缩的显著恢复,但不完全恢复到对照水平。这些结果表明,在非疲劳肌肉中,严重的酸化可能对动态收缩功能有害,但在暴露于高细胞外 [K(+)]而使肌肉去极化的肌肉中,接近剧烈疲劳运动期间看到的 [K(+)]水平,酸化对动态肌肉功能有积极的保护作用。