首页> 外文期刊>The Journal of Physiology >Variable amplification of synaptic input to cat spinal motoneurones by dendritic persistent inward current.
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Variable amplification of synaptic input to cat spinal motoneurones by dendritic persistent inward current.

机译:通过树突状持续内向电流对猫脊髓运动神经元的突触输入进行可变放大。

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摘要

Electrophysiological and computational evidence indicate that the excitatory current from the synapses on the somato-dendritic membrane is not large enough to drive the motoneurones to the firing frequencies actually attained under normal motor activity. It has been proposed that this paradox could be explained if the voltage-dependent persistent inward currents (PICs) present in the dendrites of motoneurones served to amplify synaptic excitation. We report here that dendritic PICs cause a large amplification of synaptic excitation, and that this amplification is enhanced when the background firing by current injection is increased. Moreover the frequency reduction by synaptic inhibition is greatly enhanced at higher firing frequencies, when the current through the recording electrode has activated the dendritic PICs, as is the case when the current-to-frequency slope suddenly becomes steeper. We also demonstrate that synaptic inhibition is several times more effective in reducing the firing caused by synaptic excitation than firing evoked by current injection through the recording microelectrode. That would be explained if motoneuronal discharge by synaptic excitation--but not by current injection in the soma--is always supported by dendritic PICs. We conclude that dendritic PICs contribute dynamically to the transformation of synaptic input into a motoneuronal frequency code.
机译:电生理和计算证据表明,来自体树突状细胞膜上突触的兴奋电流不足以将运动神经元驱动至正常运动活动下实际达到的激发频率。已经提出,如果存在于运动神经元的树突中的电压依赖性持续内向电流(PIC)用于放大突触兴奋,则可以解释这种悖论。我们在这里报告,树突状PIC引起突触兴奋的大放大,并且当通过电流注入增加背景发射时,这种放大会增强。此外,当通过记录电极的电流已经激活了树枝状PIC时,通过突触抑制的频率降低在更高的触发频率下得到了极大的增强,就像电流-频率斜率突然变陡的情况一样。我们还证明,与通过记录微电极注入电流引起的放电相比,抑制突触激发引起的放电要有效几倍。如果通过突触激发而不是通过在体细胞中注入电流来使泌尿生殖系神经放电总是得到树突性PIC的支持,这将得到解释。我们得出的结论是,树突状PIC动态地将突触输入转化为动词性神经频率码。

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