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小鼠胚胎小脑皮质的精细分隔簇状排列及其在出生后向条纹状结构的重排。

Clustered fine compartmentalization of the mouse embryonic cerebellar cortex and its rearrangement into the postnatal striped configuration.

机构信息

Department of Systems Neurophysiology, Graduate School of Medical and Dental Sciences, Tokyo Medical and Dental University, 1-5-45 Yushima, Tokyo 113-8519, Japan.

出版信息

J Neurosci. 2012 Nov 7;32(45):15688-703. doi: 10.1523/JNEUROSCI.1710-12.2012.

Abstract

Compartmentalization is essential for a brain area to be involved in different functions through topographic afferent and efferent connections that reflect this organization. The adult cerebellar cortex is compartmentalized into longitudinal stripes, in which Purkinje cells (PCs) have compartment-specific molecular expression profiles. How these compartments form during development is generally not understood. To investigate this process, we focused on the late developmental stages of the cerebellar compartmentalization that occur from embryonic day 17.5 (E17.5), when embryonic compartmentalization is evidently observed, to postnatal day 6 (P6), when adult-type compartmentalization begins to be established. The transformation between these compartmentalization patterns was analyzed by mapping expression patterns of several key molecular markers in serial cerebellar sections in the mouse. A complete set of 54 clustered PC subsets, which had different expression profiles of FoxP2, PLCβ4, EphA4, Pcdh10, and a reporter molecule of the 1NM13 transgenic mouse strain, were distinguished in three-dimensional space in the E17.5 cerebellum. Following individual PC subsets during development indicated that these subsets were rearranged from a clustered and multilayered configuration to a flattened, single-layered and striped configuration by means of transverse slide, longitudinal split, or transverse twist spatial transformations during development. The Purkinje cell-free spaces that exist between clusters at E17.5 become granule cell raphes that separate striped compartments at P6. The results indicate that the ∼50 PC clusters of the embryonic cerebellum will ultimately become the longitudinal compartments of the adult cerebellum after undergoing various peri- and postnatal transformations that alter their relative spatial relationships.

摘要

分区对于大脑区域通过反映这种组织的拓扑传入和传出连接参与不同功能至关重要。成年小脑皮质被分区为纵条纹,其中浦肯野细胞 (PC) 具有分区特异性的分子表达谱。这些分区在发育过程中是如何形成的,一般还不清楚。为了研究这个过程,我们专注于小脑分区的晚期发育阶段,该阶段发生在胚胎第 17.5 天 (E17.5),此时胚胎分区明显可见,到出生后第 6 天 (P6),开始建立成人型分区。通过在小鼠的一系列小脑切片中绘制几个关键分子标记物的表达模式,分析了这些分区模式之间的转换。在 E17.5 小脑的三维空间中区分了 54 个簇状 PC 亚群的完整集合,这些亚群具有 FoxP2、PLCβ4、EphA4、Pcdh10 和 1NM13 转基因小鼠品系的报告分子的不同表达谱。在发育过程中跟踪单个 PC 亚群表明,这些亚群通过横向滑动、纵向分裂或横向扭曲的空间转换,从聚类和多层结构重新排列为扁平、单层和条纹结构。E17.5 时存在于簇之间的浦肯野细胞游离空间成为颗粒细胞中缝,将条纹分区分开。结果表明,胚胎小脑的约 50 个 PC 簇在经历改变其相对空间关系的各种围产期和产后转化后,最终将成为成年小脑的纵列分区。

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