Zhou Haibo, Voges Kai, Lin Zhanmin, Ju Chiheng, Schonewille Martijn
Department of Neuroscience, Erasmus MC, Rotterdam, The Netherlands.
Department of Neuroscience, Erasmus MC, Rotterdam, The Netherlands
J Neurophysiol. 2015 Apr 1;113(7):2524-36. doi: 10.1152/jn.00925.2014. Epub 2015 Feb 25.
The massive computational capacity of the cerebellar cortex is conveyed by Purkinje cells onto cerebellar and vestibular nuclei neurons through their GABAergic, inhibitory output. This implies that pauses in Purkinje cell simple spike activity are potentially instrumental in cerebellar information processing, but their occurrence and extent are still heavily debated. The cerebellar cortex, although often treated as such, is not homogeneous. Cerebellar modules with distinct anatomical connectivity and gene expression have been described, and Purkinje cells in these modules also differ in firing rate of simple and complex spikes. In this study we systematically correlate, in awake mice, the pausing in simple spike activity of Purkinje cells recorded throughout the entire cerebellum, with their location in terms of lobule, transverse zone, and zebrin-identified cerebellar module. A subset of Purkinje cells displayed long (>500-ms) pauses, but we found that their occurrence correlated with tissue damage and lower temperature. In contrast to long pauses, short pauses (<500 ms) and the shape of the interspike interval (ISI) distributions can differ between Purkinje cells of different lobules and cerebellar modules. In fact, the ISI distributions can differ both between and within populations of Purkinje cells with the same zebrin identity, and these differences are at least in part caused by differential synaptic inputs. Our results suggest that long pauses are rare but that there are differences related to shorter intersimple spike intervals between and within specific subsets of Purkinje cells, indicating a potential further segregation in the activity of cerebellar Purkinje cells.
小脑皮质的巨大计算能力通过浦肯野细胞的γ-氨基丁酸能抑制性输出传递给小脑和前庭核神经元。这意味着浦肯野细胞简单锋电位活动的暂停可能有助于小脑的信息处理,但其发生情况和程度仍存在激烈争论。小脑皮质虽然常被视为一个整体,但实际上并非均匀一致。已描述了具有不同解剖连接和基因表达的小脑模块,这些模块中的浦肯野细胞在简单和复杂锋电位的发放频率上也存在差异。在本研究中,我们在清醒小鼠中系统地将整个小脑记录的浦肯野细胞简单锋电位活动的暂停与其在小叶、横向区和zebrin识别的小脑模块中的位置相关联。一部分浦肯野细胞表现出长(>500毫秒)暂停,但我们发现它们的出现与组织损伤和低温有关。与长暂停不同,不同小叶和小脑模块的浦肯野细胞之间,短暂停(<500毫秒)和峰间间隔(ISI)分布的形状可能不同。事实上,具有相同zebrin身份的浦肯野细胞群体之间以及群体内部的ISI分布都可能不同,并且这些差异至少部分是由不同的突触输入引起的。我们的结果表明,长暂停很少见,但在特定的浦肯野细胞亚群之间以及亚群内部,与较短的简单锋电位间隔相关的差异是存在的,这表明小脑浦肯野细胞的活动可能存在进一步的分离。