Delfino Giada, Bénardais Karelle, Graff Julien, Samama Brigitte, Antal Maria Cristina, Ghandour M Said, Boehm Nelly
ICube Laboratory UMR 7357, Team IMIS, Strasbourg, France.
Institut d'Histologie, Service Central de Microscopie Electronique, Faculté de Médecine, Université de Strasbourg, Strasbourg, France.
Front Cell Neurosci. 2022 Nov 24;16:1049468. doi: 10.3389/fncel.2022.1049468. eCollection 2022.
The primary cilium (PC) has emerged as an indispensable cellular antenna essential for signal transduction of important cell signaling pathways. The rapid acquisition of knowledge about PC biology has raised attention to PC as a therapeutic target in some neurological and psychiatric diseases. However, the role of PC in oligodendrocytes and its participation in myelination/remyelination remain poorly understood. Oligodendrocyte precursor cells (OPCs) give rise to oligodendrocytes during central nervous system (CNS) development. In adult, a small percentage of OPCs remains as undifferentiated cells located sparsely in the different regions of the CNS. These cells can regenerate oligodendrocytes and participate to certain extent in remyelination. This study aims characterize PC in oligodendrocyte lineage cells during post-natal development and in a mouse model of demyelination/remyelination. We show heterogeneity in the frequency of cilium presence on OPCs, depending on culture conditions and cerebral regions during development and demyelination/remyelination. , Lithium chloride (LiCl), Forskolin and Chloral Hydrate differentially affect cilium, depending on culture environment and PC length correlates with the cell differentiation state. Beside the role of PC as a keeper of cell proliferation, our results suggest its involvement in myelination/remyelination.
初级纤毛(PC)已成为重要细胞信号通路信号转导所必需的不可或缺的细胞天线。对PC生物学知识的快速获取使人们将注意力集中到PC作为某些神经和精神疾病的治疗靶点上。然而,PC在少突胶质细胞中的作用及其参与髓鞘形成/再髓鞘形成的机制仍知之甚少。少突胶质前体细胞(OPC)在中枢神经系统(CNS)发育过程中分化为少突胶质细胞。在成体中,一小部分OPC仍作为未分化细胞稀疏地分布在CNS的不同区域。这些细胞可以再生少突胶质细胞并在一定程度上参与再髓鞘形成。本研究旨在表征出生后发育阶段以及脱髓鞘/再髓鞘形成小鼠模型中少突胶质细胞谱系细胞中的PC。我们发现,在发育以及脱髓鞘/再髓鞘形成过程中,OPC上纤毛存在频率存在异质性,这取决于培养条件和脑区。氯化锂(LiCl)、福斯高林和水合氯醛对纤毛的影响各不相同,这取决于培养环境,且PC长度与细胞分化状态相关。除了PC作为细胞增殖守护者的作用外,我们的结果表明其参与了髓鞘形成/再髓鞘形成。