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hoxd1xenopus neuroectoderm [+] 

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Expression summary for hoxd1

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Experiment Species Images Stages Anatomy Assay
AxelDB

CNRS UMR 8080
laevis
1 image
NF stage 29 and 30 roof plate, spinal cord in situ hybridization
Smith TNeu039b14 Assay

Smith Lab
tropicalis
1 image
NF stage 35 and 36 roof plate, spinal cord in situ hybridization
In der Rieden PM et al. (2009) Assay

Paper
laevis
1 image
NF stage 13 hindbrain, neural plate in situ hybridization


Paper
laevis
1 image
NF stage 14 to NF stage 18 chordal neural plate, neural tube in situ hybridization
Regulation of the Xenopus labial homeodomain genes, HoxA1 and HoxD1: activation by retinoids and peptide growth factors.

Paper
laevis
1 image
NF stage 16 chordal neural plate, spinal cord in situ hybridization
Retinoid signalling is required for information transfer from mesoderm to neuroectoderm during gastrulation.

Paper
laevis
1 image
NF stage 13 neuroectoderm in situ hybridization
XMeis3 is necessary for mesodermal Hox gene expression and function.

Paper
laevis
1 image
NF stage 13 neuroectoderm in situ hybridization
Janssens S et al. (2010) Assay

Paper
laevis
1 image
NF stage 17 chordal neural plate in situ hybridization
Wacker SA et al. (2004) Assay

Paper
laevis
2 images
NF stage 10.5 to NF stage 26 neuroectoderm, spinal cord in situ hybridization
Regulation of the Xenopus labial homeodomain genes, HoxA1 and HoxD1: activation by retinoids and peptide growth factors.

Paper
laevis
1 image
NF stage 12.5 neuroectoderm in situ hybridization
Hox collinearity - a new perspective.

Paper
laevis
1 image
NF stage 10.5 to NF stage 11.5 neuroectoderm in situ hybridization
The Meis3 protein and retinoid signaling interact to pattern the Xenopus hindbrain.

Paper
laevis
1 image
NF stage 11.5 neuroectoderm in situ hybridization
Collinear Hox-Hox interactions are involved in patterning the vertebrate anteroposterior (A-P) axis.

Paper
laevis
1 image
NF stage 28 spinal cord in situ hybridization

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