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Summation of Excitatory and Inhibitory Synaptic Inputs by Motoneurons With Highly Active Dendrites

机译:具有高活性树突的元动子对兴奋性和抑制性突触输入的总结

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摘要

We investigated summation of steady excitatory and inhibitory inputs in spinal motoneurons using an in vivo preparation, the decerebrate cat, in which neuromodulatory input from the brain stem facilitated a strong persistent inward current (PIC) in dendritic regions. This dendritic PIC amplified both excitatory and inhibitory synaptic currents two-to threefold, but within different voltage ranges. Amplification of excitatory synaptic current peaked at voltage-clamp holding potentials near spike threshold (about −55 to −50 mV), whereas amplification of inhibitory current peaked at significantly more depolarized levels (about −45 to −40 mV). Thus the linear sum of excitatory and inhibitory currents tended to vary from net excitatory to net inhibitory as holding potential was depolarized. The actual summed currents, however, diverged from the predicted linear currents. At the peak of excitation, summation averaged about 15% sublinear (actual sum was less positive than the linear sum). In contrast, at the peak of inhibition, summation averaged about 18% supralinear (actual more positive than linear). Moreover, these nonlinear effects were substantially larger in cells where the variation from peak excitation to peak inhibition for linear summation was larger. When descending neuromodulatory input was eliminated by acute spinalization, PIC amplification was not observed and summation tended to be either sublinear or approximately linear, depending on input source. Overall, in cells with strong PICs, nonlinear summation of excitation and inhibition does occur, but this nonlinearity results in a more consistent relationship between membrane potential and the summed excitatory and inhibitory current.
机译:我们研究了使用体内制剂(去脑猫)在脊髓运动神经元中稳定的兴奋性和抑制性输入的总和,其中脑干的神经调节输入促进了树突状区域的强烈持续内向电流(PIC)。该树突状PIC将兴奋性和抑制性突触电流放大了两倍至三倍,但在不同的电压范围内。兴奋性突触电流的放大在接近尖峰阈值(约-55至-50 mV)的电压钳保持电位上达到峰值,而抑制电流的放大在去极化水平(约-45至-40 mV)上达到峰值。因此,随着保持电位去极化,兴奋性电流和抑制性电流的线性总和往往从净兴奋性变化到净抑制性变化。但是,实际的总电流与预测的线性电流不同。在激励的峰值处,求和平均为约15%的次线性(实际求和小于线性求和的正值)。相反,在抑制的峰值处,求和平均为超线性的约18%(实际上比线性更积极)。而且,这些非线性效应在从峰激发到峰抑制的线性求和变化较大的单元格中更大。当通过急性脊髓消除消除下降的神经调节输入时,未观察到PIC放大,并且总和趋向于是亚线性的或近似线性的,具体取决于输入源。总体而言,在具有强PIC的电池中,确实发生了激发和抑制的非线性求和,但是这种非线性导致膜电位与总的激发和抑制电流之间的关系更加一致。

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