首页> 外文期刊>The Journal of Physiology >Na+ currents are required for efficient excitation-contraction coupling in rabbit ventricular myocytes: a possible contribution of neuronal Na+ channels.
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Na+ currents are required for efficient excitation-contraction coupling in rabbit ventricular myocytes: a possible contribution of neuronal Na+ channels.

机译:Na +电流是兔心室肌细胞中有效的激发-收缩偶联所必需的:神经元Na +通道的可能贡献。

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Ca2+ transients were activated in rabbit ventricular cells by a sequence of action potential shaped voltage clamps. After activating a series of control transients, Na+ currents (INa) were inactivated with a ramp from -80 to -40 mV (1.5 s) prior to the action potential clamp. The transients were detected with the calcium indicator Fluo-4 and an epifluorescence system. With zero Na+ in the pipette INa inactivation produced a decline in the SR Ca2+ release flux (measured as the maximum rate of rise of the transient) of 27 +/- 4% (n = 9, P < 0.001) and a peak amplitude reduction of 10 +/- 3% (n = 9, P < 0.05). With 5 mm Na+ in the pipette the reduction in release flux was greater (34 +/- 4%, n = 4, P < 0.05). The ramp effectively inactivates INa without changing ICa, and there was no significant change in the transmembrane Ca2+ flux after the inactivation of INa. We next evoked action potentials under current clamp. TTX at 100 nm, which selectively blocks neuronal isoforms of Na+ channels, produced a decline in SR Ca2+ release flux of 35 +/- 3% (n = 6, P < 0.001) and transient amplitude of 12 +/- 2% (n = 6, P < 0.05). This effect was similar to the effect of INa inactivation on release flux. We conclude that a TTX-sensitive INa is essential for efficient triggering of SR Ca2+ release. We propose that neuronal Na+ channels residing within couplons activate sufficient reverse Na+-Ca2+ exchanger (NCX) to prime the junctional cleft with Ca2+. The results can be explained if non-linearities in excitation-contraction coupling mechanisms modify the coupling fidelity of ICa, which is known to be low at positive potentials.
机译:Ca2 +瞬变通过一系列动作电位形电压钳在兔心室细胞中激活。激活一系列控制瞬变后,在动作电位钳之前,以+80至-40 mV(1.5 s)的斜率使Na +电流(INa)失活。用钙指示剂Fluo-4和落射荧光系统检测瞬态。当移液器中的Na +为零时,失活使SR Ca2 +释放通量下降(以瞬态的最大上升速率衡量)为27 +/- 4%(n = 9,P <0.001),并且振幅降低为10 +/- 3%(n = 9,P <0.05)。在移液器中使用5 mm Na +时,释放通量的降低更大(34 +/- 4%,n = 4,P <0.05)。斜坡有效地使INa失活而不改变ICa,并且在INa失活后跨膜Ca2 +通量没有显着变化。接下来,我们在电流钳位下诱发动作电位。在100 nm处的TTX可选择性阻断Na +通道的神经元亚型,导致SR Ca2 +释放通量下降35 +/- 3%(n = 6,P <0.001),瞬态振幅下降12 +/- 2%(n = 6,P <0.05)。该作用类似于INa失活对释放通量的作用。我们得出结论,对TTX敏感的INa对于有效触发SR Ca2 +释放至关重要。我们建议驻留在couplons中的神经元Na +通道激活足够的反向Na + -Ca2 +交换剂(NCX)以引发Ca2 +的连接裂。如果激励-收缩耦合机制中的非线性因素改变了ICa的耦合保真度(已知在正电位较低),则可以解释该结果。

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