Literature DB >> 7576594

The effects of glibenclamide on tetanic force and intracellular calcium in normal and fatigued mouse skeletal muscle.

S Duty1, D G Allen.   

Abstract

In this study the effects of ATP-sensitive K+ channel modulators were studied in intact single fibres dissected from mouse skeletal muscle. Indo-1 was used to measure [Ca2+]i simultaneously with force during normal and fatiguing stimulation. In control fibres, opening of ATP-sensitive K+ channels with BRL 38227 produced a small reduction in tetanic force and [Ca2+]i. In contrast, glibenclamide, a selective blocker of the ATP-sensitive K+ channel, slightly increased tetanic force and [Ca2+]i in these fibres and also increased Ca2+ sensitivity. Glibenclamide produced a more marked increase in tetanic force and [Ca2+]i during the later stages of fatiguing stimulation, although this effect was observed in only 50% of fibres examined. We conclude from this study that glibenclamide produces a partial reversal of the later stages of fatigue in a subpopulation of muscle fibres. Opening of ATP-sensitive K+ channels may therefore contribute to the decline in tetanic force and [Ca2+]i characteristic of skeletal muscle fatigue.

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Year:  1995        PMID: 7576594     DOI: 10.1113/expphysiol.1995.sp003865

Source DB:  PubMed          Journal:  Exp Physiol        ISSN: 0958-0670            Impact factor:   2.969


  11 in total

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7.  Effect of low cytoplasmic [ATP] on excitation-contraction coupling in fast-twitch muscle fibres of the rat.

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10.  Changes in myoplasmic Ca2+ during fatigue differ between FDB fibers, between glibenclamide-exposed and Kir6.2-/- fibers and are further modulated by verapamil.

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Journal:  Physiol Rep       Date:  2015-03
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