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A Comparison of the Inhibition of Renshaw Cells during Subthreshold and Suprathreshold Conditions Using Anatomically and Physiologically Realistic Models

机译:使用解剖和生理现实模型比较阈下和阈上条件下Renshaw细胞的抑制作用

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摘要

Inhibitory synaptic inputs to Renshaw cells are concentrated on the soma and the juxtasomatic dendrites. In the present study, we investigated whether this proximal bias leads to more effective inhibition under different neuronal operating conditions. Using compartmental models based on detailed anatomical measurements of intracellularly stained Renshaw cells, we compared the inhibition produced by glycine/γ-aminobutyric acid-A (GABAA) synapses when distributed with a proximal bias to the inhibition produced when the same synapses were distributed uniformly (i.e., with no regional bias). The comparison was conducted in subthreshold and suprathreshold conditions. The latter were mimicked by voltage clamping the soma to −55 mV. The voltage clamp reduces nonlinear interactions between excitatory and inhibitory synapses. We hypothesized that for electrotonically compact cells such as Renshaw cells, the strength of the inhibition would become much less dependent on synaptic location in suprathreshold conditions. This hypothesis was not confirmed. The inhibition produced when inhibitory inputs were proximally distributed was always stronger than when the same inputs were uniformly distributed. In fact, the relative effectiveness of proximally distributed inhibitory inputs over uniformly distributed synapses was greater in suprathreshold conditions than that in subthreshold conditions. The somatic voltage clamp minimized saturation of inhibitory driving potentials. Because this effect was greatest near the soma, the current produced by more distal synapses suffered a greater loss because of saturation. Conversely, in subthreshold conditions, the effectiveness of proximal synapses was substantially reduced at high levels of background synaptic activity because of saturation. Our results suggest glycine/GABAA synapses on Renshaw cells are strategically distributed to block the powerful excitatory drive produced by recurrent collaterals from motoneurons.
机译:Renshaw细胞的抑制性突触输入集中在体细胞和近交树突上。在本研究中,我们调查了这种近端偏差是否在不同的神经元操作条件下导致更有效的抑制。使用基于对细胞内染色的Renshaw细胞进行详细解剖学测量的区室模型,我们比较了当甘氨酸/γ-氨基丁酸-A(GABAA)突触以近端偏差分布时所产生的抑制作用与同一突触均匀分布时所产生的抑制作用(即没有区域偏见)。比较是在低于阈值和高于阈值的条件下进行的。后者通过将体电压钳位到-55 mV来模拟。电压钳位可减少兴奋性和抑制性突触之间的非线性相互作用。我们假设,对于诸如Renshaw细胞之类的电子致密细胞,抑制的强度将变得不那么依赖于超阈值条件下的突触位置。该假设尚未得到证实。当抑制性输入在近端分布时产生的抑制作用总是比相同输入均匀分布时产生的抑制作用强。实际上,在阈上条件下,近端分布的抑制输入相对于均匀分布的突触的相对有效性要高于阈下条件下的相对有效性。体电压钳将抑制驱动电位的饱和降至最低。因为这种效应在躯体附近最大,所以由于饱和,更多远端突触产生的电流损失更大。相反,在阈下条件下,由于饱和,在高水平的背景突触活动下,近端突触的有效性大大降低。我们的结果表明,Renshaw细胞上的甘氨酸/ GABAA突触被战略性地分布,以阻止由运动神经元的侧支产生的强大的兴奋性驱动。

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