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首页> 外文期刊>American Journal of Physiology >Stretch-activated cation channels in skeletal muscle myotubes from sarcoglycan-deficient hamsters.
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Stretch-activated cation channels in skeletal muscle myotubes from sarcoglycan-deficient hamsters.

机译:来自缺乏糖聚糖的仓鼠的骨骼肌肌管中的拉伸激活阳离子通道。

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摘要

Deficiency of delta-sarcoglycan (delta-SG), a component of the dystrophin-glycoprotein complex, causes cardiomyopathy and skeletal muscle dystrophy in Bio14.6 hamsters. Using cultured myotubes prepared from skeletal muscle of normal and Bio14.6 hamsters (J2N-k strain), we investigated the possibility that the delta-SG deficiency may lead to alterations in ionic conductances, which may ultimately lead to myocyte damage. In cell-attached patches (with Ba(2+) as the charge carrier), an approximately 20-pS channel was observed in both control and Bio14.6 myotubes. This channel is also permeable to K(+) and Na(+) but not to Cl(-). Channel activity was increased by pressure-induced stretch and was reduced by GdCl(3) (>5 microM). The basal open probability of this channel was fourfold higher in Bio14.6 myotubes, with longer open and shorter closed times. This was mimicked by depolymerization of the actin cytoskeleton. In intact Bio14.6 myotubes, the unidirectional basal Ca(2+) influx was enhanced compared with control. This Ca(2+) influx was sensitive to GdCl(3), signifying that stretch-activated cation channels may have been responsible for Ca(2+) influx in Bio14.6 hamster myotubes. These results suggest a possible mechanism by which cell damage might occur in this animal model of muscular dystrophy.
机译:肌营养不良蛋白-糖蛋白复合物的组成成分δ-肌聚糖(delta-SG)缺乏会导致Bio14.6仓鼠的心肌病和骨骼肌营养不良。使用由正常和Bio14.6仓鼠(J2N-k株)的骨骼肌制备的培养的肌管,我们研究了δ-SG缺失可能导致离子电导率改变的可能性,这最终可能导致肌细胞损伤。在细胞贴片(Ba(2+)作为电荷载体)中,在对照和Bio14.6肌管中均观察到大约20-pS的通道。该通道也可渗透K(+)和Na(+),但不渗透Cl(-)。通道活动通过压力诱导的拉伸而增加,并通过GdCl(3)(> 5 microM)降低。在Bio14.6肌管中,该通道的基础打开概率高四倍,打开时间更长,关闭时间更短。这是通过肌动蛋白细胞骨架解聚来模拟的。在完整的Bio14.6肌管中,单向基底Ca(2+)流入量比对照组增加。此Ca(2+)涌入对GdCl(3)敏感,这表明拉伸激活的阳离子通道可能已导致Bio14.6仓鼠肌管中的Ca(2+)涌入。这些结果表明在这种肌肉营养不良的动物模型中可能发生细胞损伤的可能机制。

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