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音猬因子信号传导水平调节小脑叶片的复杂性。

The level of sonic hedgehog signaling regulates the complexity of cerebellar foliation.

作者信息

Corrales JoMichelle D, Blaess Sandra, Mahoney Eamonn M, Joyner Alexandra L

机构信息

Howard Hughes Medical Institute and Developmental Genetics Program, Skirball Institute of Biomolecular Medicine, 540 First Avenue New York, NY 10016, USA.

出版信息

Development. 2006 May;133(9):1811-21. doi: 10.1242/dev.02351. Epub 2006 Mar 29.

Abstract

Foliation of the mouse cerebellum occurs primarily during the first 2 weeks after birth and is accompanied by tremendous proliferation of granule cell precursors (GCPs). We have previously shown that sonic hedgehog (Shh) signaling correlates spatially and temporally with fissure formation, and that Gli2 is the main activator driving Shh induced proliferation of embryonic GCPs. Here, we have tested whether the level of Shh signaling regulates the extent of cerebellar foliation. By progressively lowering signaling by removing Gli1 and Gli2 or the Shh receptor smoothened, we found the extent of foliation is gradually reduced, and that this correlates with a decrease in the duration of GCP proliferation. Importantly, the pattern of the remaining fissures in the mutants corresponds to the first fissures that form during normal development. In a complementary manner, an increase in the level and length of Shh signaling results in formation of an extra fissure in a position conserved in rat. The complexity of cerebellar foliation varies greatly between vertebrate species. Our studies have uncovered a mechanism by which the level and length of Shh signaling could be integral to determining the distinct number of fissures in each species.

摘要

小鼠小脑的叶状结构主要在出生后的前两周形成,同时伴有颗粒细胞前体(GCPs)的大量增殖。我们之前已经表明,音猬因子(Shh)信号在空间和时间上与裂隙形成相关,并且Gli2是驱动Shh诱导胚胎GCPs增殖的主要激活因子。在这里,我们测试了Shh信号水平是否调节小脑叶状结构的程度。通过去除Gli1和Gli2或Shh受体Smoothened来逐步降低信号,我们发现叶状结构的程度逐渐降低,并且这与GCP增殖持续时间的减少相关。重要的是,突变体中剩余裂隙的模式与正常发育过程中形成的第一批裂隙相对应。以互补的方式,Shh信号水平和长度的增加会导致在大鼠中保守的位置形成额外的裂隙。脊椎动物物种之间小脑叶状结构的复杂性差异很大。我们的研究揭示了一种机制,通过该机制Shh信号的水平和长度可能是决定每个物种中裂隙独特数量的不可或缺的因素。

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