Department of Life Science and Medical Bioscience, Laboratory for Molecular Brain Science, Waseda University, Tokyo, 162-8480, Japan.
Department of Biological Science, Tokyo Metropolitan University, Hachioji, Tokyo, 192-0397, Japan.
Dev Neurobiol. 2017 Oct;77(10):1175-1187. doi: 10.1002/dneu.22507. Epub 2017 Jun 12.
Cyclin-dependent kinase 5 (Cdk5) is recognized as a unique member among other Cdks due to its versatile roles in many biochemical processes in the nervous system. The proper development of neuronal dendrites is required for the formation of complex neural networks providing the physiological basis of various neuronal functions. We previously reported that sparse dendrites were observed on cultured Cdk5-null Purkinje cells and Purkinje cells in Wnt1 -mediated Cdk5 conditional knockout (KO) mice. In the present study, we generated L7 -mediated p35; p39 double KO (L7 -p35 ; p39 ) mice whose Cdk5 activity was eliminated specifically in Purkinje cells of the developing cerebellum. Consequently, these mice exhibited defective Purkinje cell migration, motor coordination deficiency and a Purkinje dendritic abnormality similar to what we have observed before, suggesting that dendritic growth of Purkinje cells was cell-autonomous in vivo. We found that mixed and overlay cultures of WT cerebellar cells rescued the dendritic deficits in Cdk5-null Purkinje cells, however, indicating that Purkinje cell dendritic development was also supported by non-cell-autonomous factors. We then again rescued these abnormalities in vitro by applying exogenous brain-derived neurotrophic factor (BDNF). Based on the results from culture experiments, we attempted to rescue the developmental defects of Purkinje cells in L7 -p35 ; p39 mice by using a TrkB agonist. We observed partial rescue of morphological defects of dendritic structures of Purkinje cells. These results suggest that Cdk5 activity is required for Purkinje cell dendritic growth in cell-autonomous and non-cell-autonomous manners. © 2017 Wiley Periodicals, Inc. Develop Neurobiol 77: 1175-1187, 2017.
周期蛋白依赖性激酶 5(Cdk5)由于其在神经系统多种生化过程中的多功能作用,被认为是其他 Cdk 中的独特成员。神经元树突的适当发育是形成复杂神经网络所必需的,为各种神经元功能提供生理基础。我们之前报道过,在培养的 Cdk5 缺失型浦肯野细胞和 Wnt1 介导的 Cdk5 条件性敲除(KO)小鼠中的浦肯野细胞中观察到稀疏的树突。在本研究中,我们生成了 L7 介导的 p35;p39 双 KO(L7-p35;p39)小鼠,其 Cdk5 活性特异性地在发育中的小脑浦肯野细胞中消除。因此,这些小鼠表现出浦肯野细胞迁移缺陷、运动协调缺陷和浦肯野树突异常,与我们之前观察到的相似,表明浦肯野细胞的树突生长在体内是细胞自主的。我们发现 WT 小脑细胞的混合和覆盖培养物挽救了 Cdk5 缺失型浦肯野细胞中的树突缺陷,然而,表明浦肯野细胞树突发育也受到非细胞自主因素的支持。然后,我们通过应用外源性脑源性神经营养因子(BDNF)再次在体外挽救这些异常。基于培养实验的结果,我们试图通过使用 TrkB 激动剂来挽救 L7-p35;p39 小鼠中浦肯野细胞的发育缺陷。我们观察到浦肯野细胞树突结构的形态缺陷有部分挽救。这些结果表明,Cdk5 活性以细胞自主和非细胞自主的方式参与浦肯野细胞树突生长。© 2017 威利父子公司,出版者,Inc. 发育神经生物学 77:1175-1187,2017。