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小脑皮质中卢加罗细胞的分区输入-输出组织

Compartmentalized Input-Output Organization of Lugaro Cells in the Cerebellar Cortex.

作者信息

Miyazaki Taisuke, Yamasaki Miwako, Tanaka Kenji F, Watanabe Masahiko

机构信息

Department of Anatomy, Faculty of Medicine, Hokkaido University, Sapporo 060-8638, Japan; Department of Functioning and Disability, Faculty of Health Sciences, Hokkaido University, Sapporo 060-8638, Japan.

Department of Anatomy, Faculty of Medicine, Hokkaido University, Sapporo 060-8638, Japan.

出版信息

Neuroscience. 2021 May 10;462:89-105. doi: 10.1016/j.neuroscience.2020.05.026. Epub 2020 May 26.

Abstract

Purkinje cells (PCs) are principal cerebellar neurons, and several classes of interneurons modulate their activity. Lugaro cells (LCs) are one such inhibitory interneuron with distinctive cytology and location, but still most enigmatic among cerebellar neurons. Here we serendipitously produced a novel transgenic mouse line, where a half of Yellow Cameleon (YC)(+) cells in the cerebellar cortex were judged to be LCs, and YC(+) LCs were estimated to constitute one-third of the total LC populations. Neurochemically, two-thirds of YC(+) LCs were dually GABAergic/glycinergic, with the rest being GABAergic. Beneath the PC layer, they extended a sheet of somatodendritic meshwork interconnected with neighboring LCs by adherens junctions, and received various inputs from climbing fibers, mossy fibers, granule cell axons, recurrent PC axons, Golgi cell axons, LC axons, and serotonergic fibers. Intriguingly, somatodendritic elements of individual LCs preferentially extended within a given cerebellar compartment defined by aldolase C expression. In turn, YC(+) LCs projected a dense lattice of ascending and transverse axons to the molecular layer, and innervated molecular layer interneurons (basket and stellate cells) and Golgi cells, but not PCs. Of note, ascending axons profusely innervated individual targets within a cerebellar compartment, while transverse axons ran across several compartments and innervated targets sparsely. This unique circuit configuration highlights that LCs integrate various excitatory, inhibitory, and modulatory inputs coming to the belonging cerebellar compartment and that, as an interneuron-selective interneuron, LCs can effectively disinhibit cerebellar cortical activities in a compartment-dependent manner through inhibition of inhibitory interneurons selectively targeting PCs and granule cells.

摘要

浦肯野细胞(PCs)是小脑的主要神经元,有几类中间神经元调节其活动。卢加罗细胞(LCs)就是这样一种抑制性中间神经元,具有独特的细胞学特征和位置,但仍是小脑神经元中最神秘的。在这里,我们意外地培育出一种新型转基因小鼠品系,其中小脑皮质中一半的黄色变色龙(YC)(+)细胞被判定为LCs,并且估计YC(+)LCs占LCs总数的三分之一。从神经化学角度来看,三分之二的YC(+)LCs是双重γ-氨基丁酸能/甘氨酸能的,其余的是γ-氨基丁酸能的。在PC层下方,它们延伸出一片体树突网状结构,通过黏附连接与相邻的LCs相互连接,并接收来自攀缘纤维、苔藓纤维、颗粒细胞轴突、PCs的返回轴突、高尔基细胞轴突、LCs轴突和5-羟色胺能纤维的各种输入。有趣的是,单个LCs的体树突成分优先在由醛缩酶C表达定义的特定小脑区室内延伸。相应地,YC(+)LCs向分子层投射出密集的上升和横向轴突晶格,并支配分子层中间神经元(篮状细胞和星状细胞)和高尔基细胞,但不支配PCs。值得注意的是,上升轴突大量支配小脑区室内的单个靶标,而横向轴突穿过几个区室并稀疏地支配靶标。这种独特的电路配置突出表明,LCs整合了进入所属小脑区室的各种兴奋性、抑制性和调节性输入,并且作为一种中间神经元选择性中间神经元,LCs可以通过抑制选择性靶向PCs和颗粒细胞的抑制性中间神经元,以区室依赖的方式有效地解除对小脑皮质活动的抑制。

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