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Regularity Variability and Bi-Stability in the Activity of Cerebellar Purkinje Cells

机译:小脑浦肯野细胞活性的规律性变异性和双稳定性

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摘要

Recent studies have demonstrated that the membrane potential of Purkinje cells is bi-stable and that this phenomenon underlies bi-modal simple spike firing. Membrane potential alternates between a depolarized state, that is associated with spontaneous simple spike firing (up state), and a quiescent hyperpolarized state (down state). A controversy has emerged regarding the relevance of bi-stability to the awake animal, yet recordings made from behaving cat Purkinje cells have demonstrated that at least 50% of the cells exhibit bi-modal firing. The robustness of the phenomenon in vitro or in anaesthetized systems on the one hand, and the controversy regarding its expression in behaving animals on the other hand suggest that state transitions are under neuronal control. Indeed, we have recently demonstrated that synaptic inputs can induce transitions between the states and suggested that the role of granule cell input is to control the states of Purkinje cells rather than increase or decrease firing rate gradually. We have also shown that the state of a Purkinje cell does not only affect its firing but also the waveform of climbing fiber-driven complex spikes and the associated calcium influx. These findings call for a reconsideration of the role of Purkinje cells in cerebellar function. In this manuscript we review the recent findings on Purkinje cell bi-stability and add some analyses of its effect on the regularity and variability of Purkinje cell activity.
机译:最近的研究表明,浦肯野细胞的膜电位是双稳态的,这种现象是双峰简单激发的基础。膜电势在与自发简单尖峰发射相关的去极化状态(向上状态)和静态超极化状态(向下状态)之间交替变化。关于双稳定性与清醒动物的相关性已经引起争议,但是由表现为猫浦肯野猫的行为记录表明,至少有50%的细胞表现出双峰激发。一方面,这种现象在体外或麻醉系统中具有较强的鲁棒性;另一方面,关于在行为动物中表达这种现象的争议表明,状态转换处于神经元控制之下。确实,我们最近已经证明突触输入可以诱导状态之间的转换,并建议颗粒细胞输入的作用是控制浦肯野细胞的状态,而不是逐渐增加或降低发射速率。我们还表明,浦肯野细胞的状态不仅影响其发射,而且还影响攀爬的纤维驱动的复合尖峰的波形以及相关的钙涌入。这些发现要求重新考虑浦肯野细胞在小脑功能中的作用。在本手稿中,我们回顾了有关浦肯野细胞双稳定性的最新发现,并对其对浦肯野细胞活性的规律性和变异性的影响进行了一些分析。

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