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Updated: Jun 4, 2026

Understanding Cerebellar Pattern Formation
Published on: November 1, 2007
Multiple developmental programs are altered by loss of Zic1 and Zic4 to cause Dandy-Walker malformation cerebellar
Marissa C Blank1, Inessa Grinberg, Emmanuel Aryee
1Department of Molecular Genetics, The University of Chicago, Chicago, IL 60637, USA.
Abstract:
Heterozygous deletions encompassing the ZIC1;ZIC4 locus have been identified in a subset of individuals with the common cerebellar birth defect Dandy-Walker malformation (DWM). Deletion of Zic1 and Zic4 in mice produces both cerebellar size and foliation defects similar to human DWM, confirming a requirement for these genes in cerebellar development and providing a model to delineate the developmental basis of this clinically important congenital malformation. Here, we show that reduced cerebellar size in Zic1 and Zic4 mutants results from decreased postnatal granule cell progenitor proliferation. Through genetic and molecular analyses, we show that Zic1 and Zic4 have Shh-dependent function promoting proliferation of granule cell progenitors. Expression of the Shh-downstream genes Ptch1, Gli1 and Mycn was downregulated in Zic1/4 mutants, although Shh production and Purkinje cell gene expression were normal. Reduction of Shh dose on the Zic1(+/-);Zic4(+/-) background also resulted in cerebellar size reductions and gene expression changes comparable with those observed in Zic1(-/-);Zic4(-/-) mice. Zic1 and Zic4 are additionally required to pattern anterior vermis foliation. Zic mutant folial patterning abnormalities correlated with disrupted cerebellar anlage gene expression and Purkinje cell topography during late embryonic stages; however, this phenotype was Shh independent. In Zic1(+/-);Zic4(+/-);Shh(+/-), we observed normal cerebellar anlage patterning and foliation. Furthermore, cerebellar patterning was normal in both Gli2-cko and Smo-cko mutant mice, where all Shh function was removed from the developing cerebellum. Thus, our data demonstrate that Zic1 and Zic4 have both Shh-dependent and -independent roles during cerebellar development and that multiple developmental disruptions underlie Zic1/4-related DWM.
Insights
Zic1 and Zic4 genes are crucial for cerebellar development, influencing both size and foliation. Their disruption leads to Dandy-Walker malformation by affecting granule cell proliferation and patterning through Shh-dependent and independent pathways.
Area of Science:
- Developmental biology
- Neuroscience
- Genetics
Background:
- Dandy-Walker malformation (DWM) is a congenital cerebellar defect.
- Heterozygous deletions of ZIC1 and ZIC4 are linked to DWM.
- Zic1 and Zic4 deletion in mice models DWM, showing cerebellar size and foliation defects.
Purpose of the Study:
- Investigate the role of Zic1 and Zic4 in cerebellar development.
- Elucidate the molecular mechanisms underlying Zic1/4-related DWM.
- Determine the involvement of Shh signaling in Zic1/4 function.
Main Methods:
- Analysis of Zic1 and Zic4 mutant mice.
- Genetic and molecular analyses of gene expression.
- Assessment of cerebellar size, foliation, and progenitor proliferation.
Main Results:
- Reduced cerebellar size in Zic1/4 mutants is due to decreased postnatal granule cell progenitor proliferation.
- Zic1 and Zic4 promote Shh-dependent granule cell proliferation.
- Zic1 and Zic4 are essential for anterior vermis foliation patterning in an Shh-independent manner.
Conclusions:
- Zic1 and Zic4 play dual roles in cerebellar development: Shh-dependent proliferation and Shh-independent patterning.
- Disruptions in these dual roles contribute to Zic1/4-related DWM.
- Understanding these mechanisms can inform therapeutic strategies for DWM.
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