首页> 外文期刊>Neuroscience Letters: An International Multidisciplinary Journal Devoted to the Rapid Publication of Basic Research in the Brain Sciences >Exploring a critical parameter of timing in the mouse cerebellar microcircuitry: the parallel fiber diameter.
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Exploring a critical parameter of timing in the mouse cerebellar microcircuitry: the parallel fiber diameter.

机译:探索小鼠小脑微电路中时序的关键参数:平行纤维直径。

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Since the conduction velocity of the parallel fibers is a critical parameter for a theory of timing in the cerebellar cortex, we set out to quantify the diameter of these axons on an ultrastructural level. The overall mean of the fiber diameter was 0.18 microm. Our results confirm that the parallel fibers of the upper molecular layer are significantly thinner than those of the lower layers. Nevertheless, the difference of about 0.02 microm determined by this study is surprisingly small. In addition, the distribution of the fiber diameters of the upper layers differed slightly, but significantly from a normal distribution, partly on account of a positive skew and a positive kurtosis excess. In summary, the results show that there are fewer differences between the parallel fibers of different levels of the molecular layer than previously assumed and that these differences do not contradict a theory of timing in the cerebellar cortex.
机译:由于平行纤维的传导速度是小脑皮质时序理论的关键参数,因此我们着手在超微结构水平上量化这些轴突的直径。纤维直径的总平均值为0.18微米。我们的结果证实,上分子层的平行纤维比下层的平行纤维显着细。然而,这项研究确定的约0.02微米的差异令人惊讶地很小。此外,上层纤维直径的分布略有不同,但与正态分布明显不同,部分原因是正偏斜和峰度正偏。总之,结果表明,分子层不同水平的平行纤维之间的差异比以前假定的要少,并且这些差异与小脑皮层中的时序理论并不矛盾。

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