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Potassium, Na+,K+-pumps and fatigue in rat muscle.

机译:钾,Na +,K +泵和大鼠肌肉疲劳。

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During contractile activity, skeletal muscles undergo a net loss of cytoplasmic K(+) to the interstitial space. During intense exercise, plasma K(+) in human arterial blood may reach 8 mm, and interstitial K(+) 10-12 mm. This leads to depolarization, loss of excitability and contractile force. However, little is known about the effects of these physiological increases in extracellular K(+) ([K(+)](o)) on contractile endurance. Soleus muscles from 4-week-old rats were mounted on transducers for isometric contractions in Krebs-Ringer bicarbonate buffer containing 4-10 mm K(+), and endurance assessed by recording the rate of force decline during continuous stimulation at 60 Hz. Increasing [K(+)](o) from 4 to 8 or 10 mm and equilibrating the muscles for 40 or 20 min augmented the rate of force decline 2.4-fold and 7.2-fold, respectively (P < 0.001). The marked loss of endurance elicited by exposure to 8 or 10 mm K(+) was alleviated or significantly reduced by stimulating the Na(+),K(+)-pumps by intracellular Na(+) loading, the beta(2)-agonist salbutamol, adrenaline, calcitonin gene related peptide, insulin or repeated excitation. In conclusion, excitation-induced increase in [K(+)](o) is an important cause of high-frequency fatigue, and the Na(+),K(+)-pumps are essential for the maintenance of contractile force in the physiological range of [K(+)](o). Recordings of contractile force during continuous stimulation at 8-10 mm K(+) may be used to analyse the effects of agents or conditions influencing the excitability of working isolated muscles.
机译:在收缩活动期间,骨骼肌的细胞质K(+)净损失到间隙空间。在激烈的运动中,人动脉血中的血浆K(+)可能达到8 mm,间质K(+)达到10-12 mm。这导致去极化,丧失兴奋性和收缩力。但是,关于细胞外K(+)([K(+)](o))的这些生理性增加对收缩耐力的影响知之甚少。将来自4周龄大鼠的比目鱼肌安装在包含4-10 mm K(+)的克雷布斯-林格(Krebs-Ringer)碳酸氢盐缓冲液中的等距收缩换能器上,并通过记录60 Hz连续刺激过程中力下降的速率来评估耐力。将[K(+)](o)从4毫米增加到8毫米或10毫米,并使肌肉平衡40或20分钟分别增加了力下降率2.4倍和7.2倍(P <0.001)。通过暴露于细胞内Na(+),Na(+),β(2)-刺激Na(+),K(+)泵,缓解或显着降低了暴露于8或10 mm K(+)引起的耐力显着降低。激动剂沙丁胺醇,肾上腺素,降钙素基因相关肽,胰岛素或反复激发。总之,激发引起的[K(+)](o)的增加是高频疲劳的重要原因,Na(+),K(+)泵对于维持人体的收缩力至关重要。 [K(+)](o)的生理范围。在8-10 mm K(+)处连续刺激过程中的收缩力记录可用于分析影响孤立的工作肌肉的兴奋性的物质或条件的影响。

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