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利用体内小脑电穿孔技术研究Joubert综合征小鼠模型中的神经元细胞增殖和分化。

Using in vivo cerebellar electroporation to study neuronal cell proliferation and differentiation in a Joubert syndrome mouse model.

作者信息

Chang Chia-Hsiang, Chen Ting-Yu, Tang Tang K

机构信息

Institute of Biomedical Sciences, Academia Sinica, Taipei, Taiwan.

Institute of Biomedical Sciences, Academia Sinica, Taipei, Taiwan.

出版信息

Methods Cell Biol. 2023;175:235-249. doi: 10.1016/bs.mcb.2022.07.021. Epub 2022 Sep 9.

Abstract

Joubert syndrome (JS) is an autosomal recessive ciliopathy that mainly affects the morphogenesis of the cerebellum and brain stem. To date, mutations in at least 39 genes have been identified in JS; all these gene-encoding proteins are involved in the biogenesis of the primary cilium and centrioles. Recent studies using the mouse model carrying deleted or mutated JS-related genes exhibited cerebellar hypoplasia with a reduction in neurogenesis; however, investigating specific neuronal behaviors during their development in vivo remains challenging. Here, we describe an in vivo cerebellar electroporation technique that can be used to deliver plasmids carrying GFP and/or shRNAs into the major cerebellar cell type, granule neurons, from their progenitor state to their maturation in a spatiotemporal-specific manner. By combining this method with cerebellar immunostaining and EdU incorporation, these approaches enable the investigation of the cell-autonomous effect of JS-related genes in granule neuron progenitors, including the pathogenesis of ectopic neurons and the defects in neuronal differentiation. This approach provides information toward understanding the multifaceted roles of JS-related genes during cerebellar development in vivo.

摘要

乔伯特综合征(JS)是一种常染色体隐性遗传性纤毛病,主要影响小脑和脑干的形态发生。迄今为止,已在JS中鉴定出至少39个基因的突变;所有这些编码基因的蛋白质都参与初级纤毛和中心粒的生物发生。最近使用携带缺失或突变的JS相关基因的小鼠模型进行的研究显示小脑发育不全,神经发生减少;然而,在体内研究特定神经元在其发育过程中的行为仍然具有挑战性。在这里,我们描述了一种体内小脑电穿孔技术,该技术可用于将携带绿色荧光蛋白(GFP)和/或短发夹RNA(shRNAs)的质粒以时空特异性方式从小脑颗粒神经元的祖细胞状态传递到其成熟状态。通过将这种方法与小脑免疫染色和5-乙炔基-2'-脱氧尿苷(EdU)掺入相结合,这些方法能够研究JS相关基因在颗粒神经元祖细胞中的细胞自主效应,包括异位神经元的发病机制和神经元分化缺陷。这种方法为理解JS相关基因在体内小脑发育过程中的多方面作用提供了信息。

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