PUBLICATION

Cerebellar development in the absence of Gbx function in zebrafish

Authors
Su, C.Y., Kemp, H.A., and Moens, C.B.
ID
ZDB-PUB-131203-3
Date
2014
Source
Developmental Biology   386(1): 181-90 (Journal)
Registered Authors
Kemp, Hilary, Moens, Cecilia
Keywords
zebrafish, Gbx, cerebellum
MeSH Terms
  • Alleles
  • Animals
  • Animals, Genetically Modified
  • Body Patterning
  • Cell Differentiation
  • Cerebellum/embryology*
  • Cerebellum/metabolism
  • Epistasis, Genetic
  • Fibroblast Growth Factors/metabolism
  • Gene Expression Regulation, Developmental*
  • Genotype
  • Homeodomain Proteins/genetics
  • Homeodomain Proteins/physiology*
  • Mice
  • Morphogenesis
  • Mutation
  • Neurons/metabolism
  • Otx Transcription Factors/metabolism
  • Phenotype
  • Signal Transduction
  • Zebrafish/embryology*
  • Zebrafish/genetics
  • Zebrafish Proteins/genetics
  • Zebrafish Proteins/metabolism
  • Zebrafish Proteins/physiology*
(all 25)
PubMed
24183937 Full text @ Dev. Biol.
Abstract

The midbrain–hindbrain boundary (MHB) is a well-known organizing center during vertebrate brain development. The MHB forms at the expression boundary of Otx2 and Gbx2, mutually repressive homeodomain transcription factors expressed in the midbrain/forebrain and anterior hindbrain, respectively. The genetic hierarchy of gene expression at the MHB is complex, involving multiple positive and negative feedback loops that result in the establishment of non-overlapping domains of Wnt1 and Fgf8 on either side of the boundary and the consequent specification of the cerebellum. The cerebellum derives from the dorsal part of the anterior-most hindbrain segment, rhombomere 1 (r1), which undergoes a distinctive morphogenesis to give rise to the cerebellar primordium within which the various cerebellar neuron types are specified. Previous studies in the mouse have shown that Gbx2 is essential for cerebellar development. Using zebrafish mutants we show here that in the zebrafish gbx1 and gbx2 are required redundantly for morphogenesis of the cerebellar primordium and subsequent cerebellar differentiation, but that this requirement is alleviated by knocking down Otx. Expression of fgf8, wnt1 and the entire MHB genetic program is progressively lost in gbx1-;gbx2- double mutants but is rescued by Otx knock-down. This rescue of the MHB genetic program depends on rescued Fgf signaling, however the rescue of cerebellar primordium morphogenesis is independent of both Gbx and Fgf. Based on our findings we propose a revised model for the role of Gbx in cerebellar development.

Genes / Markers
Marker Marker Type Name
atoh1aGENEatonal bHLH transcription factor 1a
egr2bGENEearly growth response 2b
en1bGENEengrailed homeobox 1b
en2bGENEengrailed homeobox 2b
fgf8aGENEfibroblast growth factor 8a
fgfr1aGENEfibroblast growth factor receptor 1a
gbx1GENEgastrulation brain homeobox 1
gbx2GENEgastrulation brain homeobox 2
il17rdGENEinterleukin 17 receptor D
otx2aGENEorthodenticle homeobox 2a
1 - 10 of 13
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Figures
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Expression
Phenotype
Mutations / Transgenics
Allele Construct Type Affected Genomic Region
fh253
    Point Mutation
    fh271
      Point Mutation
      jh1TgTransgenic Insertion
        pd1TgTransgenic Insertion
          vu19TgTransgenic Insertion
            1 - 5 of 5
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            Human Disease / Model
            No data available
            Sequence Targeting Reagents
            Target Reagent Reagent Type
            fgf8aMO1-fgf8aMRPHLNO
            otx2aMO1-otx2aMRPHLNO
            otx2bMO1-otx2bMRPHLNO
            1 - 3 of 3
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            Fish
            Antibodies
            Name Type Antigen Genes Isotypes Host Organism
            Ab1-slc17a7polyclonalRabbit
            1 - 1 of 1
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            Orthology
            No data available
            Engineered Foreign Genes
            Marker Marker Type Name
            DsRed2EFGDsRed2
            EGFPEFGEGFP
            1 - 2 of 2
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            Mapping