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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Calcium-activated SK channels influence voltage-gated ion channels to determine the precision of firing in globus pallidus neurons.
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Calcium-activated SK channels influence voltage-gated ion channels to determine the precision of firing in globus pallidus neurons.

机译:钙激活的SK通道会影响电压门控离子通道,从而确定苍白球神经元的放电精度。

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摘要

Globus pallidus (GP) neurons fire rhythmically in the absence of synaptic input, suggesting that they may encode their inputs as changes in the phase of their rhythmic firing. Action potential afterhyperpolarization (AHP) enhances precision of firing by ensuring that the ion channels recover from inactivation by the same amount on each cycle. Voltage-clamp experiments in slices showed that the longest component of the GP neuron's AHP is blocked by apamin, a selective antagonist of calcium-activated SK channels. Application of 100 nm apamin also disrupted the precision of firing in perforated-patch and cell-attached recordings. SK channel blockade caused a small depolarization in spike threshold and made it more variable, but there was no reduction in the maximal rate of rise during an action potential. Thus, the firing irregularity was not caused solely by a reduction in voltage-gated Na(+) channel availability. Subthreshold voltage ramps triggered a large outward current that was sensitive to the initial holding potential and had properties similar to the A-type K(+) current in GP neurons. In numerical simulations, the availability of both Na(+) and A-type K(+) channels during autonomous firing were reduced when SK channels were removed, and a nearly equal reduction in Na(+) and K(+) subthreshold-activated ion channel availability produced a large decrease in the neuron's slope conductance near threshold. This change made the neuron more sensitive to intrinsically generated noise. In vivo, this change would also enhance the sensitivity of GP neurons to small synaptic inputs.
机译:苍白球(GP)神经元在没有突触输入的情况下有节奏地触发,这表明它们可以将其输入编码为有节奏的触发阶段的变化。超极化后的动作电位(AHP)通过确保每个循环中的离子通道从灭活中恢复的量相同,从而提高了发射精度。切片中的电压钳实验表明,GP神经元的AHP的最长成分被阿帕明(一种钙激活的SK通道的选择性拮抗剂)阻断。 100 nm apapamin的应用也打断了穿孔补丁和细胞附着记录中的发射精度。 SK通道阻滞导致尖峰阈值出现较小的去极化,并使它更具可变性,但在动作电位期间最大上升速率没有降低。因此,发射不规则并非仅由电压门控Na(+)通道可用性的降低引起。亚阈值电压斜坡触发了一个大的向外电流,该电流对初始保持电位敏感,并且具有类似于GP神经元中A型K(+)电流的特性。在数值模拟中,当移除SK通道时,自动点火期间Na(+)和A型K(+)通道的可用性均降低,并且亚阈值激活的Na(+)和K(+)的降低几乎相等离子通道的可用性使神经元的斜率电导大大降低,接近阈值。这种变化使神经元对内在产生的噪声更加敏感。在体内,这种变化还将增强GP神经元对小的突触输入的敏感性。

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