4.8 Article

FOXC1 is required for normal cerebellar development and is a major contributor to chromosome 6p25.3 Dandy-Walker malformation

Journal

NATURE GENETICS
Volume 41, Issue 9, Pages 1037-U116

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/ng.422

Keywords

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Funding

  1. NCI NIH HHS [P30 CA014599, P30 CA014599-34S29010] Funding Source: Medline
  2. NICHD NIH HHS [P30 HD054275-01A19002, P30 HD054275] Funding Source: Medline
  3. NINDS NIH HHS [R01-NS050386, R01 NS050386, R01 NS050386-05A2, R01 NS050375-04, R01-NS050375, R01 NS050375, K08 NS048174, KO8-NS48174-01A, R01 NS050375-05, K08 NS048174-05] Funding Source: Medline

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Dandy-Walker malformation (DWM), the most common human cerebellar malformation, has only one characterized associated locus(1,2). Here we characterize a second DWM-linked locus on 6p25.3, showing that deletions or duplications encompassing FOXC1 are associated with cerebellar and posterior fossa malformations including cerebellar vermis hypoplasia (CVH), megacisterna magna (MCM) and DWM. Foxc1-null mice have embryonic abnormalities of the rhombic lip due to loss of mesenchyme-secreted signaling molecules with subsequent loss of Atoh1 expression in vermis. Foxc1 homozygous hypomorphs have CVH with medial fusion and foliation defects. Human FOXC1 heterozygous mutations are known to affect eye development, causing a spectrum of glaucoma-associated anomalies (Axenfeld-Rieger syndrome, ARS; MIM no. 601631). We report the first brain imaging data from humans with FOXC1 mutations and show that these individuals also have CVH. We conclude that alteration of FOXC1 function alone causes CVH and contributes to MCM and DWM. Our results highlight a previously unrecognized role for mesenchyme-neuroepithelium interactions in the mid-hindbrain during early embryogenesis.

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