首页> 外文期刊>Neuroreport >Increases in K+ conductance and Ca2+ influx under high glucose with suppressed Na+/K+-pump activity in rat myelinated nerve fibers.
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Increases in K+ conductance and Ca2+ influx under high glucose with suppressed Na+/K+-pump activity in rat myelinated nerve fibers.

机译:在高葡萄糖条件下,大鼠有髓神经纤维中的Na + / K +泵活性受到抑制,K +电导和Ca2 +内流增加。

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摘要

To test the combined effect of high glucose and decreased Na+/K+-pump activity, a condition which closely mimics the diabetic state, on nerve ionic currents, changes in action potential and membrane current induced by high glucose in the presence of ouabain were investigated using voltage clamp analysis in rat single myelinated nerve fibers. In the presence of 0.1 mM ouabain, 30 mM glucose caused a progressive increase in the delayed K+ current as well as persistent decreases in action potential and Na+ current, suggesting that Na+/K+ pump plays an important role in preventing the increase in the K+ current. The latter increase was suppressed by a blocker of Ca2+-activated K+ channels. Two types of voltage-dependent Ca2+ channel blockers (L and N-type) as well as a Na+/Ca2+-exchange blocker diminished the ouabain-induced increase in K+ conductance. These results suggest that high glucose with suppressed Na+/K+ pump activity might induce an increase of Ca2+ influx through either Ca2+ channels or reverse Na+/Ca2+-exchange, possibly leading to the elevation of Ca2+-activated voltage-dependent K+ channels. Both a decrease in inward Na+ current and an increase in K+ conductance may result in decreased nerve conduction. In addition, a possible increase of axoplasmic Ca2+ concentration may lead to axonal degeneration. These results provide a clue for understanding the pathophysiologic mechanism of diabetic neuropathy.
机译:为了测试高葡萄糖和降低的Na + / K +泵活性的联合作用,研究了在哇巴因存在下紧密模拟糖尿病状态对神经离子电流,高葡萄糖诱导的动作电位和膜电流的变化的条件。大鼠单有髓神经纤维的电压钳分析。在存在0.1 mM哇巴因的情况下,30 mM葡萄糖会导致延迟K +电流的逐渐增加,以及动作电位和Na +电流的持续降低,这表明Na + / K +泵在阻止K +电流增加中起着重要作用。 。后者的增加被Ca2 +激活的K +通道的阻滞剂抑制。两种类型的电压依赖性Ca2 +通道阻滞剂(L型和N型)以及Na + / Ca2 +交换阻滞剂减少了哇巴因诱导的K +电导增加。这些结果表明,具有抑制的Na + / K +泵浦活性的高葡萄糖可能诱导通过Ca2 +通道或反向Na + / Ca2 +交换的Ca2 +内流增加,可能导致Ca2 +激活的电压依赖性K +通道的升高。内向Na +电流的减少和K +电导的增加都可能导致神经传导减少。另外,轴质Ca 2+浓度可能增加可能导致轴突变性。这些结果为理解糖尿病性神经病的病理生理机制提供了线索。

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