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首页> 外文期刊>The Journal of Physiology >Fast voltage gating of Ca2+ release in frog skeletal muscle revealed by supercharging pulses.
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Fast voltage gating of Ca2+ release in frog skeletal muscle revealed by supercharging pulses.

机译:增压脉冲揭示青蛙骨骼肌中Ca2 +释放的快速电压门控。

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1. In single frog skeletal muscle fibres, we utilized supercharging voltage clamp command pulses to boost the rate of depolarization in the transverse tubular system (T-system) such that 95 % of steady-state potential is achieved in < 2 ms (as indicated by fluorescent potentiometric dye signals detected from a global illumination region). Signals detected near the edge of muscle fibres indicate that peripheral regions of the T-system are not significantly overcompensated under these conditions. 2. We explored the impact of accelerating T-system depolarization on voltage-dependent events of excitation-contraction (E-C) coupling by measuring charge movement currents (CMCs) and Ca2+ fluorescence transients in response to both supercharging and conventional step pulses. 3. When compared with CMCs elicited by step pulses, supercharging CMCs are larger, and their kinetics more closely resemble those of gating current records reported for ionic channels. Furthermore, they decay bi-exponentially (tau fast range, 1.3-1.8 ms; tau slow range, 7.3-11.9 ms), whereas step CMCs fall with a single exponential time course (tau range, 12.5-26.7 ms). 4. Similarly, supercharging produces a distinct acceleration in Ca2+ release transients, which show little evidence of the voltage-dependent onset latencies previously encountered using step pulses. 5. The use of this novel methodology in skeletal muscle unveils a previously undetected component of charge movement, the rapid, voltage-dependent recruitment of which may provide the basis for understanding the fast gating of physiological E-C coupling.
机译:1.在单个青蛙骨骼肌纤维中,我们利用增压电压钳位指令脉冲来提高横向管状系统(T系统)中的去极化率,从而在<2 ms内达到95%的稳态电位(如所示)通过从全局照明区域检测到的荧光电位染料信号进行分析)。在肌肉纤维边缘附近检测到的信号表明,在这些条件下,T系统的外围区域没有明显的过度补偿。 2.我们通过测量响应于增压脉冲和常规步进脉冲的电荷移动电流(CMC)和Ca2 +荧光瞬变,探讨了加速T系统去极化对电压依赖的激发-收缩(E-C)耦合事件的影响。 3.与步进脉冲引起的CMC相比,增压CMC更大,其动力学更类似于离子通道报道的门控电流记录。此外,它们呈双指数衰减(τ快范围为1.3-1.8 ms;τ慢范围为7.3-11.9 ms),而步长CMC下降时具有单个指数时间过程(τ范围为12.5-26.7 ms)。 4.同样,增压在Ca2 +释放瞬变中产生明显的加速,这几乎没有证据表明先前使用阶跃脉冲遇到的电压相关的启动延迟。 5.在骨骼肌中使用这种新颖的方法揭示了电荷运动的一个以前未发现的组成部分,其快速,电压依赖的补充可能为理解生理E-C耦合的快速门控提供基础。

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