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Neural encoding of input transients investigated by intracellular injection of ramp currents in cat α-motoneurones

机译:通过细胞内注入catα-motoneurones中的斜坡电流研究输入瞬态的神经编码

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摘要

1. Input—output relations were analysed in spinal α-motoneurones during current transients reaching a steady level after a linear growth of different slopes. The motoneurone output considered in the analysis was the instantaneous frequency of the cell discharge.2. In all motoneurones firing frequency during the ramp exceeded that of the final steady level and it was related to the velocity of rise of the current. In the majority of motoneurones the instantaneous frequency grew during the ramp stimulus, as if it were dependent on current intensity as well as on its rate of rise. Only in a few cells was firing frequency constant over the first two interspike intervals during the ramp, as would be expected if this response depended solely on the rate of rise.3. Frequency—velocity (f/v) plots for different rates of rise of the injected current showed a linear relation for each interspike interval. Presence or absence of an intensity component was revealed in these plots by divergence or, respectively, overlapping of the f/v relations for the first and second intervals. Divergence was eliminated by subtraction of the estimated intensity component. The slope of the f/v relation for the first interval did not change significantly after subtraction of the intensity component and was taken as an index of the dynamic sensitivity of the motoneurones. The slope of the f/v relation varied greatly (from 47 to 330 impulses s-1. (nA ms-1)-1) in the population examined and was higher in motoneurones with a long-lasting afterhyperpolarization (a.h.p.) than in those where it was short-lasting.4. It is proposed that the ability of the motoneurones to encode both the steady level and the rate of change of input signals depends on the conductance changes responsible for the a.h.p. and their accumulation. A positive correlation was found between the size of the a.h.p. potassium current, estimated as a.h.p. peak voltage/cell input resistance, and the slope of the f/v relation for the first interval.
机译:1.分析了在不同斜率线性增长后电流瞬变达到稳定水平期间,脊柱α-运动神经元的输入-输出关系。分析中考虑的运动神经元输出是细胞放电的瞬时频率。2。在所有运动神经元中,斜坡期间的点火频率均超过了最终的稳定水平,并且与电流的上升速度有关。在大多数运动神经元中,瞬时频率在斜坡刺激期间会增加,好像它取决于电流强度及其上升速率一样。如在此响应仅取决于上升速率的情况下所预期的那样,仅在少数几个单元中,在斜坡期间的前两个尖峰间间隔内发射频率常数。注入电流的不同上升速率的频率-速度(f / v)图显示了每个尖峰间隔的线性关系。在这些图中,通过第一和第二时间间隔的f / v关系的发散或重叠来揭示强度分量的存在与否。通过减去估计的强度分量可以消除发散。减去强度分量后,第一个间隔的f / v关系的斜率没有明显变化,并被视为运动神经元的动态灵敏度指标。 f / v关系的斜率变化很大(从47到330脉冲s -1 。(nA ms -1 -1 )在接受检查的人群中,运动神经元具有持久的超极化作用(ahp),高于持续时间短的运动神经元。4。有人提出,运动神经元对输入信号的稳定水平和变化率进行编码的能力取决于引起a.h.p的电导变化。及其积累。发现a.h.p.的大小之间存在正相关。钾电流,估计为a.h.p.峰值电压/电池输入电阻,以及第一时间间隔内f / v关系的斜率。

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