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Linking synaptic plasticity and spike output at excitatory and inhibitory synapses onto cerebellar Purkinje cells

机译:将兴奋性和抑制性突触的突触可塑性和尖峰输出与小脑浦肯野细胞联系起来

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摘要

Understanding the relationship between synaptic plasticity and neuronal output is essential if we are to understand how plasticity is encoded in neural circuits. In the cerebellar cortex, motor learning is thought to be implemented by long-term depression (LTD) of excitatory parallel fiber (PF) to Purkinje cell synapses triggered by climbing fiber (CF) input. However, theories of motor learning generally neglect the contribution of plasticity of inhibitory inputs to Purkinje cells. Here we describe how CF-induced plasticity of both excitatory and inhibitory inputs is reflected in Purkinje cell spike output. We show that coactivation of the CF with PF input and interneuron input leads not only to LTD of PF synapses but also to comparable, "balanced" LTD of evoked inhibitory inputs. These two forms of plasticity have opposite effects on the spike output of Purkinje cells, with the number and timing of spikes sensitively reflecting the degree of plasticity. We used dynamic clamp to evaluate plasticity-induced changes in spike responses to sequences of excitation and feedforward inhibition of varied relative and absolute amplitude. Balanced LTD of both excitatory and inhibitory components decreased the net spike output of Purkinje cells only for inputs with small inhibitory components, whereas for inputs with a larger proportion of feedforward inhibition CF-triggered LTD resulted in an increase in the net spike output. Thus, the net effect of CF-triggered plasticity on Purkinje cell output depends on the balance of excitation and feedforward inhibition and can paradoxically increase cerebellar output, contrary to current theories of cerebellar motor learning.
机译:如果我们要了解神经回路中的可塑性编码方式,那么了解突触可塑性和神经元输出之间的关系至关重要。在小脑皮质中,运动学习被认为是通过长期压低(LTD)兴奋性平行纤维(PF)到攀爬纤维(CF)输入触发的浦肯野细胞突触来实现的。然而,运动学习的理论通常忽略了抑制性输入对浦肯野细胞的可塑性贡献。在这里,我们描述了浦肯野细胞尖峰输出如何反映CF诱导的兴奋性和抑制性输入的可塑性。我们表明,CF与PF输入和中间神经元输入的共同激活不仅导致PF突触的LTD,而且导致诱发的抑制性输入的可比的“平衡” LTD。这两种形式的可塑性对浦肯野细胞的峰值输出具有相反的影响,峰值的数量和时间敏感地反映了可塑性的程度。我们使用动态钳位来评估可塑性诱导的尖峰响应对变化的相对和绝对振幅的激发和前馈抑制序列的变化。兴奋性和抑制性成分的平衡LTD降低了Purkinje细胞的净峰值输出,仅对于抑制成分较小的输入,而对于前馈抑制比例较大的输入,CF触发的LTD导致净峰值输出增加。因此,CF触发的可塑性对浦肯野细胞输出的净效应取决于激发和前馈抑制的平衡,并且可以反常地增加小脑输出,这与当前的小脑运动学习理论相反。

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  • 作者

    Mittmann, W.; Häusser, M.;

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  • 年度 2007
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  • 原文格式 PDF
  • 正文语种 eng
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