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dctxenopus ectoderm [+] 

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Expression summary for dct

Results 1 - 21 of 21 results

Page(s): 1

Experiment Species Images Stages Anatomy Assay
Bonano M et al. (2008) Assay

Paper
laevis
1 image
NF stage 25 epidermis, melanophore, neural crest, retina, retinal pigmented epithelium in situ hybridization
Nichane M et al. (2008) Assay

Paper
tropicalis
1 image
NF stage 28 brain, eye, hindbrain, melanophore, midbrain-hindbrain boundary, [+] in situ hybridization
The Pax3 and Pax7 paralogs cooperate in neural and neural crest patterning using distinct molecular mechanisms, in Xenopus la...

Paper
laevis
1 image
NF stage 33 and 34 brain, eye, roof plate, spinal cord in situ hybridization
Regulation of melanoblast and retinal pigment epithelium development by Xenopus laevis Mitf.

Paper
laevis
1 image
NF stage 31 neural tube, retinal pigmented epithelium in situ hybridization
Hairy2-Id3 interactions play an essential role in Xenopus neural crest progenitor specification.

Paper
tropicalis
1 image
NF stage 35 and 36 eye, hindbrain, melanophore, neural crest, roof plate, [+] in situ hybridization
Nichane M et al. (2008) Assay

Xenbase Image
tropicalis
1 image
NF stage 28 brain, eye, hindbrain, melanoblast, midbrain, [+] in situ hybridization
Developmental expression and regulation of the chemokine CXCL14 in Xenopus.

Paper
laevis
1 image
NF stage 28 retina, retinal pigmented epithelium in situ hybridization
Park BY et al. (2009) Assay

Paper
laevis
1 image
NF stage 28 eye, retina in situ hybridization
Indian hedgehog signaling is required for proper formation, maintenance and migration of Xenopus neural crest.

Paper
laevis
1 image
NF stage 23 to NF stage 25 ectoderm in situ hybridization
Sox10 regulates the development of neural crest-derived melanocytes in Xenopus.

Paper
laevis
1 image
NF stage 27 to NF stage 32 epidermis, optic vesicle, trunk neural crest in situ hybridization
Sox10 regulates the development of neural crest-derived melanocytes in Xenopus.

Paper
laevis
1 image
NF stage 28 to NF stage 40 eye, melanophore in situ hybridization
Regeneration of neural crest derivatives in the Xenopus tadpole tail.

Paper
laevis
1 image
NF stage 42 melanophore in situ hybridization
Maczkowiak F et al. (2010) Assay

Paper
laevis
2 images
NF stage 28 to NF stage 33 and 34 brain, eye, melanophore, midbrain, optic vesicle, [+] in situ hybridization
Kawasaki-Nishihara A et al. (2011) Assay

Paper
laevis
3 images
NF stage 25 to NF stage 39 eye, fin, hindbrain, melanoblast, melanophore, [+] in situ hybridization
Lee PC et al. (2012) Assay

Paper
laevis
1 image
NF stage 32 eye, melanoblast, neural crest in situ hybridization
Modulation of potassium channel function confers a hyperproliferative invasive phenotype on embryonic stem cells.

Paper
tropicalis
1 image
NF stage 26 to NF stage 28 melanoblast, melanophore, neural tube, optic vesicle, pigment layer, [+] in situ hybridization
no privacy, a Xenopus tropicalis mutant, is a model of human Hermansky-Pudlak Syndrome and allows visualization of internal ...

Paper
tropicalis
1 image
NF stage 33 and 34 eye, melanophore, retinal pigmented epithelium in situ hybridization
In vivo confinement promotes collective migration of neural crest cells.

Paper
laevis
1 image
NF stage 32 melanoblast, trunk neural crest in situ hybridization
A functional approach to understanding the role of NCKX5 in Xenopus pigmentation.

Paper
laevis
2 images
NF stage 25 to NF stage 37 and 38 melanoblast, melanophore, retinal pigmented epithelium in situ hybridization
Dkk2 promotes neural crest specification by activating Wnt/β-catenin signaling in a GSK3β independent manner.

Paper
laevis
1 image
NF stage 29 and 30 melanoblast, midbrain, retina, spinal cord in situ hybridization
The tetraspanin Cd63 is required for eye morphogenesis in Xenopus.

Paper
laevis
1 image
NF stage 35 and 36 melanophore, retinal pigmented epithelium, spinal cord in situ hybridization

Page(s): 1