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gbx2.2xenopus ectoderm [+] 

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Expression summary for gbx2.2

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Experiment Species Images Stages Anatomy Assay
The posteriorizing gene Gbx2 is a direct target of Wnt signalling and the earliest factor in neural crest induction.

Paper
xenopus
1 image
NF stage 12 to NF stage 16 epidermis, neural crest, neuroectoderm in situ hybridization
The posteriorizing gene Gbx2 is a direct target of Wnt signalling and the earliest factor in neural crest induction.

Paper
xenopus
1 image
NF stage 12 to NF stage 13 neuroectoderm in situ hybridization
The posteriorizing gene Gbx2 is a direct target of Wnt signalling and the earliest factor in neural crest induction.

Paper
xenopus
1 image
NF stage 11 to NF stage 11.5 neuroectoderm in situ hybridization
Early patterning of the prospective midbrain-hindbrain boundary by the HES-related gene XHR1 in Xenopus embryos.

Paper
xenopus
1 image
NF stage 11 ectoderm in situ hybridization
The posteriorizing gene Gbx2 is a direct target of Wnt signalling and the earliest factor in neural crest induction.

Paper
laevis
1 image
NF stage 12 neuroectoderm in situ hybridization
The posteriorizing gene Gbx2 is a direct target of Wnt signalling and the earliest factor in neural crest induction.

Xenbase Image
xenopus
1 image
NF stage 16 epidermis, neural crest in situ hybridization
von Bubnoff A et al. (1996) Assay

Paper
laevis
5 images
NF stage 11 to NF stage 31 cement gland, chordal neural plate, cranial neural crest, ectoderm, epidermis, [+] in situ hybridization
The homeoprotein Xiro1 is required for midbrain-hindbrain boundary formation.

Paper
laevis
1 image
NF stage 12 to NF stage 17 hindbrain, midbrain, midbrain-hindbrain boundary, neural plate, posterior placodal area in situ hybridization
The homeoprotein Xiro1 is required for midbrain-hindbrain boundary formation.

Paper
laevis
1 image
NF stage 17 midbrain-hindbrain boundary in situ hybridization
The homeoprotein Xiro1 is required for midbrain-hindbrain boundary formation.

Paper
laevis
1 image
NF stage 17 midbrain-hindbrain boundary in situ hybridization
The homeoprotein Xiro1 is required for midbrain-hindbrain boundary formation.

Paper
laevis
1 image
NF stage 14 midbrain-hindbrain boundary in situ hybridization
The homeoprotein Xiro1 is required for midbrain-hindbrain boundary formation.

Paper
laevis
1 image
NF stage 14 midbrain-hindbrain boundary, posterior placodal area in situ hybridization
Mutual repression between Gbx2 and Otx2 in sensory placodes reveals a general mechanism for ectodermal patterning.

Paper
laevis
1 image
NF stage 12 to NF stage 13 ectoderm in situ hybridization
The germ cell nuclear factor is required for retinoic acid signaling during Xenopus development.

Paper
laevis
1 image
NF stage 17 pre-chordal neural plate in situ hybridization
Sp8 regulates inner ear development.

Paper
tropicalis
1 image
NF stage 18 anterior placodal area, neural plate border, otic placode in situ hybridization
Genome-wide identification of Wnt/β-catenin transcriptional targets during Xenopus gastrulation.

Paper
laevis
1 image
NF stage 12.5 to NF stage 21 ectoderm, neural plate, neural plate border in situ hybridization
Apolipoprotein C-I mediates Wnt/Ctnnb1 signaling during neural border formation and is required for neural crest development.

Paper
tropicalis
2 images
NF stage 15 to NF stage 16 cranial neural crest, non-neural ectoderm in situ hybridization
Osada Taira anterior neuroectoderm (ANE) pCS105 cDNA library

Unigene laevis cDNA library

laevis NF stage 12.5 ectoderm cDNA Library

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