首页> 外文期刊>The Journal of Physiology >Changes in mechanosensitive channel gating following mechanical stimulation in skeletal muscle myotubes from the mdx mouse.
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Changes in mechanosensitive channel gating following mechanical stimulation in skeletal muscle myotubes from the mdx mouse.

机译:机械刺激从mdx小鼠骨骼肌肌管后机械敏感通道门控的变化。

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We studied the effects of membrane stretch and voltage on the gating of single mechanosensitive (MS) channels in myotubes from dystrophin-deficient mdx mice. In earlier studies of MS channels in mdx myotubes, we found a novel class of stretch-inactivated channels. In the present experiments, we used a gentle suction protocol to determine whether seal formation damaged the membrane and altered MS channel gating, since dystrophin-deficiency is known to be associated with an increased susceptibility to mechanically induced damage. In some recordings from mdx myotubes, MS channel open probability gradually increased to levels approaching unity following seal formation. In these recordings, channels remained open for the duration of the recording. In other recordings, MS channel open probability remained low after seal formation and applying weak suction evoked conventional stretch-activated gating. Applying strong suction or very positive voltages, however, caused some channels to enter a high open probability gating mode. The shift to a high open probability gating mode coincided with the appearance of stretch-inactivated gating. These findings suggested that mechanical stimulation altered the mechanical properties of the patch causing some MS channels to enter a novel gating mode. In support of this idea, stretch-activated and stretch-inactivated channels were not detected in the same membrane patch and channel inactivation occurred at lower pressures than activation (P(1/2,) = -13 and -26.5 mmHg, respectively). Other experiments showed that stretch-inactivated gating was not due to a simple loss of MS channel activity from a non-random process such as vesiculation or bleb formation: channel inactivation by suction was readily reversible, stable over tens of minutes, and followed the predictions of the binomial theorem for independent, randomly gating channels. In addition, the voltage-dependent gating of stretch-inactivated channels was similar to that of stretch-activated channels. The results show that MS channels in dystrophin-deficient muscle exist in two distinct gating modes and that mechanical stimuli cause an irreversible conversion between modes. We discuss possible mechanisms for the changes in MS channel gating in relation to the known cytoskeletal abnormalities of mdx muscle and its possible implications for the pathogenesis of Duchenne dystrophy.
机译:我们研究了膜拉伸和电压对肌营养不良蛋白缺陷型mdx小鼠肌管中单个机械敏感(MS)通道门控的影响。在mdx肌管中MS通道的早期研究中,我们发现了一类新型的拉伸失活通道。在本实验中,由于已知肌营养不良蛋白缺乏与机械诱发损伤的敏感性增加有关,因此我们使用了柔和的抽吸方案来确定密封形成是否损坏了膜并改变了MS通道门控。在mdx肌管的一些记录中,MS通道打开的可能性在密封形成后逐渐增加到接近统一的水平。在这些记录中,通道在记录期间保持打开状态。在其他记录中,在形成密封并施加弱吸力后,传统的拉伸激活门控系统MS通道打开的可能性仍然较低。但是,施加强吸力或非常正的电压会导致某些通道进入高打开概率门控模式。向高开放概率门控模式的转变与拉伸失活门控的出现相吻合。这些发现表明,机械刺激改变了贴片的机械性能,导致某些MS通道进入新型门控模式。支持该想法的是,在同一膜片中未检测到拉伸激活和拉伸灭活的通道,并且通道灭活发生在比激活低的压力下(分别为P(1/2)= -13和-26.5 mmHg)。其他实验表明,拉伸失活的门控不是由于非随机过程(例如,形成囊泡或形成气泡)导致的MS通道活性的简单损失:吸力使通道失活易于逆转,在数十分钟内保持稳定,并遵循了预测独立,随机门控通道的二项式定理。此外,拉伸失活通道的电压依赖性门控与拉伸活化通道的电压相关。结果表明,肌营养不良蛋白缺陷型肌肉中的MS通道以两种不同的门控模式存在,并且机械刺激导致模式之间不可逆的转换。我们讨论了与已知的mdx肌肉细胞骨架异常有关的MS通道门控变化的可能机制及其对杜兴营养不良症发病机制的可能影响。

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