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Activation of Intrinsic and Synaptic Currents in Leech Heart Interneurons by Realistic Waveforms

机译:逼真的波形激活水Lee心中神经元内在和突触电流。

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摘要

Leech heart interneurons were voltage-clamped with realistic waveforms to investigate the currents underlying the oscillation in the cells. By estimating the leak current parameters in regions in which there was little contamination by voltage-gated currents, it was possible to measure the Ca2+ current, the persistent Na+ current, IP, and the hyperpolarization-activated inward current,Ih.The experiments verified a prediction of a computer model of HN cells that the shape of the typical waveform was such that the low-threshold Ca2+ currents were partially inactivated during a slow up-ramp to a plateau potential. A step within the same range of the membrane potential as the realistic waveform produced >4 times as much Ca2+ current. In two-cell voltage-clamp experiments, the step produced 20 times more graded inhibition than the normal presynaptic waveform. When the presynaptic heart interneuron oscillated with spikes, the graded inhibition was larger. The difference may arise from integration of a slowly decaying component of the spike-mediated inhibition.The persistent Na+ current had a very low threshold. During the most hyperpolarized phase of the waveform,IP deactivated to 50% of its maximum conductance. A substantial part of IP, therefore, was effectively contributing to the leak current in the HN cells.The h-current increased for waveforms that had longer periods, whereas increasing the h-current in the model reduced the period. The h-current thus provides negative feedback to perturbations that alter the period of the oscillation.
机译:用真实的波形将水ch心脏中间神经元电压钳制,以研究细胞振荡背后的电流。通过估计电压门控电流几乎没有污染的区域中的泄漏电流参数,可以测量Ca 2 + 电流,持久性Na + 电流,IP和超极化激活的内向电流Ih。实验验证了HN细胞计算机模型的预测,即典型波形的形状使得低阈值Ca 2 + 电流在缓慢上升到平台电位期间被部分灭活。在与真实波形相同的膜电位范围内的台阶产生的Ca 2 + 电流> 4倍。在两节电压钳实验中,该步骤产生的抑制比正常突触前波形高20倍。当突触前心脏神经元出现尖峰振荡时,分级抑制作用更大。差异可能是由于尖峰介导的抑制作用的缓慢衰减成分的积分而引起的。持续的Na + 电流阈值非常低。在波形的最超极化阶段,IP失活到其最大电导的50%。因此,IP的很大一部分有效地促进了HN电池中的泄漏电流。对于具有较长周期的波形,h电流会增加,而在模型中增加h电流会减少周期。因此,h电流为扰动提供了负反馈,从而改变了振荡周期。

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