首页> 美国卫生研究院文献>The Journal of Physiology >Influence of stretch-evoked synaptic potentials on firing probability of cat spinal motoneurones.
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Influence of stretch-evoked synaptic potentials on firing probability of cat spinal motoneurones.

机译:拉伸诱发的突触电位对猫脊髓运动神经元放电概率的影响。

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摘要

Shapes of post-synaptic potentials (p.s.p.s) in cat motoneurones were compared with the time course of correlated changes in firing probability during repetitive firing. Excitatory and inhibitory post-synaptic potentials (e.p.s.p.s. and i.p.s.p.s) were evoked by brief triangular stretches of the triceps surae-plantaris muscles. Depolarizing current was injected through the recording micro-electrode to evoke repetitive firing and the post-stimulus time histogram of motoneurone spikes was obtained. E.p.s.p.s (n = 80) of different sizes (30-1040 microV) and rise times (1.1-8.2 ms) were investigated in fifty-nine motoneurones. The majority of the e.p.s.p.s were recorded in triceps surae-plantaris motoneurones with high levels of synaptic noise (estimated peak-to-peak fluctuations of 1.5-3.5 mV). This noise was generated by keeping the triceps surae-plantaris muscles stretched to a near maximal degree. The remaining e.p.s.p.s were recorded in motoneurones to other hind-limb muscles with a low level of synaptic noise. The height of the primary peak of the correlogram with respect to base-line firing rate increased in proportion to both amplitude and rising slope of the e.p.s.p.s. Using normalization procedures or using e.p.s.p.s of constant amplitude but different slopes and vice versa, the relative peak height increased with e.p.s.p. peak derivative with a slope of around 6/mV per millisecond and with e.p.s.p peak amplitude with a slope of about 1/mV. The shape of the correlogram (peak and trough) seemed well described by a linear combination of the shape of the e.p.s.p. derivative and that of the e.p.s.p. itself. The relative e.p.s.p. contribution (e.p.s.p.:e.p.s.p. derivative ratio) varied with e.p.s.p. amplitude and noise level, being largest (mostly 0.25-1.0) for small e.p.s.p.s (100-300 microV) in high levels of synaptic noise and smaller (0-0.25) for larger e.p.s.p.s and for e.p.s.p.s in a low noise background. In conformity with the above finding, a leaky integration of the correlograms gave time courses that in most cases closely resembled the shape of the e.p.s.p.s. The time constant of the leaky circuit (= inverse value of e.p.s.p.:e.p.s.p. derivative ratio) varied with e.p.s.p. amplitude and noise level in the same manner as obtained by direct fitting of e.p.s.p. and e.p.s.p. derivative shape to correlogram shape. Stretch-evoked i.p.s.p.s (n = 10) of small amplitude (90-360 microV as measured close to firing level) were investigated in pre-tibial flexor motoneurones with low levels of synaptic noise. These i.p.s.p.s generated correlogram troughs closely resembling, albeit somewhat wider than, the shape of the i.p.s.p. derivatives.(ABSTRACT TRUNCATED AT 400 WORDS)
机译:将猫运动神经元中突触后电位(p.s.p.s)的形状与重复射击期间射击概率相关变化的时间过程进行了比较。短暂的三角形肱三头肌-足肌引起的兴奋性和抑制性突触后电位(e.p.s.p.s.和i.p.s.p.s)。通过记录微电极注入去极化电流以引起重复发射,并获得运动神经元刺突的刺激后时间直方图。在59个运动神经元中研究了不同大小(30-1040 microV)的E.p.s.p.s(n = 80)和上升时间(1.1-8.2 ms)。大部分e.p.s.p.s记录在具有高水平突触噪声(估计的峰峰值波动为1.5-3.5 mV)的肱三头肌-肌运动神经元中。这种噪音是通过使肱三头肌plant足肌伸展至接近最大程度而产生的。其余的e.p.s.p.s被记录在运动神经元中突触噪声较低的其他后肢肌肉中。相对于基线发射速率,相关图的主峰的高度与e.p.s.p.s的幅度和上升斜率成比例地增加。使用归一化程序或使用振幅恒定但斜率不同的e.p.s.p.s,反之亦然,相对峰高随e.p.s.p.峰值导数的斜率约为每毫秒6 / mV,e.p.s.p峰值振幅的斜率约为1 / mV。 e.p.s.p形状的线性组合似乎很好地描述了相关图的形状(峰值和谷值)。衍生产品和e.p.s.p.本身。相对e.p.s.p.贡献(e.p.s.p.:e.p.s.p。派生比率)随e.p.s.p.振幅和噪声水平,在高水平突触噪声中对于小e.p.s.p.s(100-300 microV)最大(最大0.25-1.0),对于较大e.p.s.p.s和在低噪声背景中的e.p.s.p.s较小(0-0.25)。根据上述发现,相关图的泄漏积分给出的时间过程在大多数情况下与e.p.s.p.s的形状非常相似。泄漏电路的时间常数(= e.p.s.p.:e.p.s.p。导数比的倒数)随e.p.s.p.变化。幅度和噪声水平与直接拟合e.p.s.p.和e.p.s.p.微分形状到相关图形状。在胫骨前屈肌运动神经元具有低水平的突触噪声的情况下,研究了小幅度的拉伸诱发的腹腔内刺激(n = 10)(90-360 microV,接近击发水平)。这些i.p.s.p.s产生的相关波谷非常相似,尽管比i.p.s.p.的形状稍宽。衍生词(摘要截断了400个单词)

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