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Climbing Fiber Signaling and Cerebellar Gain Control

机译:攀登光纤信号和小脑增益控制

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摘要

The physiology of climbing fiber signals in cerebellar Purkinje cells has been studied since the early days of electrophysiology. Both the climbing fiber-evoked complex spike and the role of climbing fiber activity in the induction of long-term depression (LTD) at parallel fiber-Purkinje cell synapses have become hallmark features of cerebellar physiology. However, the key role of climbing fiber signaling in cerebellar motor learning has been challenged by recent reports of forms of synaptic and non-synaptic plasticity in the cerebellar cortex that do not involve climbing fiber activity, but might well play a role in cerebellar learning. Moreover, cerebellar LTD does not seem to strictly require climbing fiber activity. These observations make it necessary to re-evaluate the role of climbing fiber signaling in cerebellar function. Here, we argue that climbing fiber signaling is about adjusting relative probabilities for the induction of LTD and long-term potentiation (LTP) at parallel fiber synapses. Complex spike-associated, dendritic calcium transients control postsynaptic LTD and LTP induction. High calcium transients, provided by complex spike activity, do not only favor postsynaptic LTD induction, but simultaneously trigger retrograde cannabinoid signaling, which blocks the induction of presynaptic LTP. Plasticity of the climbing fiber input itself provides additional means to fine-tune complex spike associated calcium signaling and thus to adjust the gain of heterosynaptic climbing fiber control. In addition to dendritic calcium transients, climbing fiber activity leads to the release of the neuropeptide corticotropin-releasing factor (CRF), which facilitates LTD induction at both parallel fiber and climbing fiber synapses.
机译:自从电生理学的早期以来,就已经研究了小脑浦肯野细胞中攀登纤维信号的生理学。平行纤维-Purkinje细胞突触引起的攀登纤维诱发的复杂尖峰和攀登纤维活性在诱导长期抑郁(LTD)中的作用均已成为小脑生理的标志性特征。然而,最近的报道表明小脑皮层中的突触和非突触可塑性形式不涉及攀爬纤维的活动,但可能在小脑学习中发挥作用,因此攀登纤维信号在小脑运动学习中的关键作用受到了挑战。而且,小脑LTD似乎并不严格要求攀爬纤维活动。这些观察结果使得有必要重新评估攀爬纤维信号在小脑功能中的作用。在这里,我们认为攀爬纤维信号传递是关于在平行纤维突触处调整LTD的诱导和长期增强(LTP)的相对概率。复杂的穗相关的树突状钙瞬变控制突触后LTD和LTP诱导。复杂的突波活性提供的高钙瞬变不仅有利于突触后LTD的诱导,而且同时触发逆行的大麻素信号传导,这会阻止突触前LTP的诱导。攀爬纤维输入本身的可塑性为微调复杂的尖峰相关钙信号提供了额外的手段,从而调节了异突触攀爬纤维控制的增益。除树突状钙瞬变外,攀爬纤维的活性还导致神经肽促肾上腺皮质激素释放因子(CRF)的释放,这有助于在平行纤维和攀爬纤维突触处的LTD诱导。

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