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Gene/CloneSpeciesStageAnatomy ItemExperimenter
sox10xenopus preplacodal ectoderm [+] 

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Expression summary for sox10

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Experiment Species Images Stages Anatomy Assay
Rogers CD et al. (2009) Assay

Paper
laevis
1 image
NF stage 23 otic placode in situ hybridization
O'Donnell M et al. (2006) Assay

Paper
laevis
1 image
NF stage 25 to NF stage 35 and 36 otic placode, otic vesicle in situ hybridization
Light W et al. (2005) Assay

Paper
xenopus
1 image
NF stage 27 otic vesicle in situ hybridization
Light W et al. (2005) Assay

Paper
laevis
1 image
NF stage 27 otic vesicle in situ hybridization
Nichane M et al. (2008) Assay

Paper
xenopus
1 image
NF stage 28 otic vesicle in situ hybridization
Nichane M et al. (2008) Assay

Paper
laevis
1 image
NF stage 28 otic vesicle in situ hybridization
Nichane M et al. (2008) Assay

Paper
xenopus
3 images
NF stage 28 otic vesicle in situ hybridization
Nichane M et al. (2008) Assay

Paper
laevis
2 images
NF stage 28 otic vesicle in situ hybridization
Harland Lab Assay

Harland Lab
tropicalis
3 images
NF stage 25 to NF stage 28 otic placode, otic vesicle in situ hybridization


Paper
laevis
1 image
NF stage 22 to NF stage 32 otic vesicle, profundal placode, trigeminal ganglion, trigeminal nerve in situ hybridization
SoxE factors function equivalently during neural crest and inner ear development and their activity is regulated by SUMOylation.

Paper
laevis
2 images
NF stage 22 to NF stage 44 otic placode, otic vesicle in situ hybridization
The protooncogene c-myc is an essential regulator of neural crest formation in xenopus.

Paper
xenopus
1 image
NF stage 13 to NF stage 21 auditory apparatus in situ hybridization
The protooncogene c-myc is an essential regulator of neural crest formation in xenopus.

Paper
xenopus
1 image
NF stage 28 trigeminal ganglion in situ hybridization
Hairy2 functions through both DNA-binding and non DNA-binding mechanisms at the neural plate border in Xenopus.

Paper
laevis
1 image
NF stage 28 otic vesicle in situ hybridization
Hairy2-Id3 interactions play an essential role in Xenopus neural crest progenitor specification.

Paper
laevis
1 image
NF stage 28 otic vesicle in situ hybridization
Hairy2-Id3 interactions play an essential role in Xenopus neural crest progenitor specification.

Paper
laevis
1 image
NF stage 28 otic vesicle in situ hybridization
Sox10 regulates the development of neural crest-derived melanocytes in Xenopus.

Paper
laevis
1 image
NF stage 22 to NF stage 35 and 36 otic placode, otic vesicle in situ hybridization
To proliferate or to die: role of Id3 in cell cycle progression and survival of neural crest progenitors.

Paper
laevis
1 image
NF stage 31 trigeminal nerve in situ hybridization
40LoVe and Samba Are Involved in Xenopus Neural Development and Functionally Distinct from hnRNP AB.

Paper
laevis
1 image
NF stage 28 otic vesicle in situ hybridization
The F-box protein Cdc4/Fbxw7 is a novel regulator of neural crest development in Xenopus laevis.

Paper
laevis
1 image
NF stage 26 to NF stage 33 and 34 otic vesicle in situ hybridization
Wylie LA et al. (2015) Assay

Paper
laevis
1 image
NF stage 12 to NF stage 19 anterior placodal area in situ hybridization
Devotta A et al. (2016) Assay

Paper
laevis
1 image
NF stage 24 to NF stage 26 otic vesicle in situ hybridization
Hatch VL et al. (2016) Assay

Paper
laevis
1 image
NF stage 28 otic vesicle in situ hybridization
Adams DS et al. (2016) Assay

Paper
laevis
1 image
NF stage 28 otic vesicle in situ hybridization
Characterization of Pax3 and Sox10 transgenic Xenopus laevis embryos as tools to study neural crest development.

Paper
laevis
1 image
NF stage 25 to NF stage 29 and 30 otic vesicle in situ hybridization
PFKFB4 control of AKT signaling is essential for premigratory and migratory neural crest formation.

Paper
laevis
2 images
NF stage 24 otic placode in situ hybridization
Bae CJ et al. (2015) Assay

Paper
laevis
1 image
NF stage 25 otic vesicle in situ hybridization

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