首页> 美国卫生研究院文献>The Journal of Neuroscience >Dynamic Nonlinear Feedback Regulation of Slow Pacemaking by A-Type Potassium Current in Ventral Tegmental Area Neurons
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Dynamic Nonlinear Feedback Regulation of Slow Pacemaking by A-Type Potassium Current in Ventral Tegmental Area Neurons

机译:A型钾电流在腹侧被盖区神经元中缓慢起搏的动态非线性反馈调节

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摘要

We analyzed ionic currents that regulate pacemaking in dopaminergic neurons of the mouse ventral tegmental area by comparing voltage trajectories during spontaneous firing with ramp-evoked currents in voltage clamp. Most recordings were made in brain slice, with key experiments repeated using acutely dissociated neurons, which gave identical results. During spontaneous firing, net ionic current flowing between spikes was calculated from the time derivative of voltage multiplied by cell capacitance, signal-averaged over many firing cycles to enhance resolution. Net inward interspike current had a distinctive nonmonotonic shape, reaching a minimum (generally <1 pA) between −60 and −55 mV. Under voltage clamp, ramps over subthreshold voltages elicited a time- and voltage-dependent outward current that peaked near −55 mV. This current was undetectable with 5 mV/s ramps and increased steeply with depolarization rate over the range (10–50 mV/s) typical of natural pacemaking. Ramp-evoked subthreshold current was resistant to α-dendrotoxin, paxilline, apamin, and tetraethylammonium but sensitive to 4-aminopyridine and 0.5 mm Ba2+, consistent with A-type potassium current (IA). Same-cell comparison of currents elicited by various ramp speeds with natural spontaneous depolarization showed how the steep dependence of IA on depolarization rate results in small net inward currents during pacemaking. These results reveal a mechanism in which subthreshold IA is near zero at steady state, but is engaged at depolarization rates >10 mV/s to act as a powerful, supralinear feedback element. This feedback mechanism explains how net ionic current can be constrained to <1–2 pA but reliably inward, thus enabling slow, regular firing.
机译:我们通过比较自发放电期间的电压轨迹与电压钳中的斜坡诱发电流来调节调节小鼠腹侧被盖区多巴胺能神经元起搏的离子电流。大多数记录是在脑切片中进行的,并使用急性离解的神经元重复了关键实验,从而得出了相同的结果。在自发点火期间,尖峰之间流过的净离子电流是由电压的时间导数乘以电池​​电容得出的,这些信号在许多次点火周期内均值以提高分辨率。净内向尖峰电流具有独特的非单调形状,在-60至-55 mV之间达到最小值(通常<1 pA)。在电压钳位条件下,亚阈值电压之上的斜坡引起了与时间和电压有关的向外电流,该电流在-55 mV附近达到峰值。该电流在5 mV / s的斜坡上无法检测到,并且在自然起搏的典型范围(10–50 mV / s)内,随着去极化速率的增加而急剧增加。斜坡诱发的亚阈值电流对α-树突毒素,paxilline,apapamin和四乙铵具有抗性,但对4-氨基吡啶和0.5 mm Ba 2 + 敏感,与A型钾电流(IA)一致。自然加速自发去极化时各种斜坡速度引起的电流的单电池比较表明,IA对去极化率的强烈依赖性如何在起搏过程中产生较小的净内向电流。这些结果揭示了一种机制,其中亚阈值IA在稳定状态下接近零,但以> 10 mV / s的去极化速率参与,以充当强大的超线性反馈元件。这种反馈机制说明了如何将净离子电流限制在<1-2 pA,但可靠地向内,从而实现缓慢,规则的发射。

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