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CAMSAPs 从放射状胶质细胞的基底泡中组织非中心体微管网络。

CAMSAPs organize an acentrosomal microtubule network from basal varicosities in radial glial cells.

机构信息

Institut Curie, Paris Sciences et Lettres Research University, Centre national de la recherche scientifique UMR144, Paris, France.

Unité de Fœtopathologie-Université de Paris et Institut national de la santé et de la recherche médicale UMR1141, Hôpital Robert Debré, Paris, France.

出版信息

J Cell Biol. 2021 Aug 2;220(8). doi: 10.1083/jcb.202003151. Epub 2021 May 21.

Abstract

Neurons of the neocortex are generated by stem cells called radial glial cells. These polarized cells extend a short apical process toward the ventricular surface and a long basal fiber that acts as a scaffold for neuronal migration. How the microtubule cytoskeleton is organized in these cells to support long-range transport is unknown. Using subcellular live imaging within brain tissue, we show that microtubules in the apical process uniformly emanate for the pericentrosomal region, while microtubules in the basal fiber display a mixed polarity, reminiscent of the mammalian dendrite. We identify acentrosomal microtubule organizing centers localized in varicosities of the basal fiber. CAMSAP family members accumulate in these varicosities, where they control microtubule growth. Double knockdown of CAMSAP1 and 2 leads to a destabilization of the entire basal process. Finally, using live imaging of human fetal cortex, we reveal that this organization is conserved in basal radial glial cells, a related progenitor cell population associated with human brain size expansion.

摘要

新皮层的神经元由称为放射状胶质细胞的干细胞产生。这些极化细胞向脑室表面延伸一个短的顶突,以及一个长的基底纤维,作为神经元迁移的支架。这些细胞中的微管细胞骨架如何组织以支持长距离运输尚不清楚。通过脑组织内的亚细胞实时成像,我们显示顶突中的微管均匀地从中心体周围区域发出,而基底纤维中的微管则表现出混合极性,类似于哺乳动物的树突。我们鉴定出定位于基底纤维的膨体中的无中心体微管组织中心。CAMSAP 家族成员在这些膨体中积累,在那里它们控制微管的生长。CAMSAP1 和 2 的双重敲低导致整个基底过程的不稳定。最后,通过对人胎大脑皮层的实时成像,我们揭示了这种组织在基底放射状胶质细胞中是保守的,基底放射状胶质细胞是一种与人类大脑大小扩张相关的祖细胞群体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ff6/8144914/d7b7f6258417/JCB_202003151_Fig1.jpg

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