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小脑星状细胞中快速输入瞬变对放电率和放电时间的可靠控制。

Reliable control of spike rate and spike timing by rapid input transients in cerebellar stellate cells.

作者信息

Suter K J, Jaeger D

机构信息

Department of Biology, Emory University, 1510 Clifton Road, Atlanta, GA 30322, USA.

出版信息

Neuroscience. 2004;124(2):305-17. doi: 10.1016/j.neuroscience.2003.11.015.

Abstract

Granule cell activity in cerebellar cortex directly excites Purkinje cells via parallel fibers, but it also inhibits Purkinje cells via cerebellar cortical interneurons. This contribution of inhibitory interneurons to cerebellar cortical processing remains poorly understood. In the present study we examined the response properties of stellate cells in vitro to input patterns that may result from granule cell activity in vivo. We constructed input waveforms that represented the sum of inputs from all individual synapses and applied these waveforms to the soma of stellate cells during whole cell recordings in acute brain slices. The stimulus waveforms contained fluctuations in a broad range of frequencies and were applied at different amplitudes. To determine the contribution of synaptic shunting to stellate cell spike responses we applied the same input waveforms either as a simulated synaptic conductance using dynamic clamping or as a direct current injection stimulus. Only the dynamic clamp stimulus has the shunting properties of real synapses, i.e. leads to different-sized synaptic current as a function of membrane potential. We found that stellate cells spike with millisecond precision in response to fast temporal fluctuations in the total synaptic input. Transient increases in excitatory input frequency led to pronounced stellate cell spike responses, indicating that this pathway may be very responsive to even small assemblies of co-activated granule cells. This was observed regardless of whether the input waveform was applied as a conductance with dynamic clamping, or as a direct current injection. Thus the shunting properties of a conductance input did not play a major role in determining the control of precisely timed spiking. In contrast, a more tonic increase in excitatory conductance did not lead to a sustained spike response as obtained with prolonged positive current injection. However, even with tonic current injection the precision of spiking was lost, as previously observed. Overall, the synaptic response function of stellate cells suggests that this cell type may pick out transients in granule cell activity, and may generate precisely timed inhibition of Purkinje cells during behavior.

摘要

小脑皮质中的颗粒细胞活动通过平行纤维直接兴奋浦肯野细胞,但它也通过小脑皮质中间神经元抑制浦肯野细胞。抑制性中间神经元对小脑皮质处理的这一作用仍知之甚少。在本研究中,我们在体外研究了星状细胞对体内颗粒细胞活动可能产生的输入模式的反应特性。我们构建了代表所有单个突触输入总和的输入波形,并在急性脑片的全细胞记录过程中将这些波形施加到星状细胞的胞体上。刺激波形包含广泛频率范围内的波动,并以不同幅度施加。为了确定突触分流对星状细胞动作电位反应的作用,我们使用动态钳制将相同的输入波形作为模拟突触电导应用,或作为直流注入刺激应用。只有动态钳制刺激具有真实突触的分流特性,即根据膜电位产生不同大小的突触电流。我们发现,星状细胞对总突触输入中的快速时间波动以毫秒级精度产生动作电位。兴奋性输入频率的短暂增加导致明显的星状细胞动作电位反应,表明该通路可能对即使是少量共同激活的颗粒细胞组件也非常敏感。无论输入波形是作为动态钳制的电导应用,还是作为直流注入应用,均观察到这一现象。因此,电导输入的分流特性在确定精确计时动作电位的控制方面并未发挥主要作用。相比之下,兴奋性电导的更持续性增加并未像长时间正电流注入那样导致持续的动作电位反应。然而,如先前观察到的那样,即使是持续电流注入,动作电位的精度也会丧失。总体而言,星状细胞的突触反应功能表明,这种细胞类型可能挑选出颗粒细胞活动中的瞬变信号,并可能在行为过程中对浦肯野细胞产生精确计时的抑制。

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