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otx2xenopus head [+] 

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Expression summary for otx2

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Experiment Species Images Stages Anatomy Assay
Vacik T et al. (2011) Assay

Paper
laevis
1 image
NF stage 20 brain, forebrain in situ hybridization
The dual regulator Sufu integrates Hedgehog and Wnt signals in the early Xenopus embryo.

Paper
laevis
1 image
NF stage 16 forebrain, midbrain in situ hybridization
The dual regulator Sufu integrates Hedgehog and Wnt signals in the early Xenopus embryo.

Paper
laevis
1 image
NF stage 16 forebrain, midbrain in situ hybridization
The dual regulator Sufu integrates Hedgehog and Wnt signals in the early Xenopus embryo.

Paper
laevis
1 image
NF stage 17 forebrain, midbrain in situ hybridization
Dicer inactivation causes heterochronic retinogenesis in Xenopus laevis.


laevis
1 image
NF stage 42 to NF stage 45 lens, lens fiber cell mass, retina, retinal inner nuclear layer, retinal outer nuclear layer immunohistochemistry
Dicer inactivation causes heterochronic retinogenesis in Xenopus laevis.

Paper
laevis
1 image
NF stage 33 and 34 to NF stage 42 ciliary marginal zone, retina, retinal neural layer in situ hybridization
Dicer inactivation causes heterochronic retinogenesis in Xenopus laevis.


laevis
1 image
NF stage 42 lens, lens fiber cell mass, retina, retinal inner nuclear layer, retinal outer nuclear layer immunohistochemistry
Elkins MB and Henry JJ (2006) Assay

Paper
laevis
1 image
NF stage 35 and 36 retina, retinal neural layer in situ hybridization
Xenopus SMOC-1 Inhibits bone morphogenetic protein signaling downstream of receptor binding and is essential for postgastrula...

Paper
laevis
1 image
NF stage 32 eye, forebrain, midbrain in situ hybridization
Dynamic in vivo binding of transcription factors to cis-regulatory modules of cer and gsc in the stepwise formation of the Sp...

Paper
laevis
1 image
NF stage 26 retina immunohistochemistry
Yang J et al. (2003) Assay

Paper
laevis
1 image
NF stage 14 midbrain in situ hybridization
Transmembrane voltage potential controls embryonic eye patterning in Xenopus laevis.

Paper
laevis
1 image
NF stage 22 eye, retina in situ hybridization
Transmembrane voltage potential controls embryonic eye patterning in Xenopus laevis.

Paper
laevis
1 image
NF stage 29 and 30 eye, retina in situ hybridization
Identification of otx2 target genes and restrictions in ectodermal competence during Xenopus cement gland formation.

Paper
laevis
1 image
NF stage 15 eye in situ hybridization
Evidence for non-axial A/P patterning in the nonneural ectoderm of Xenopus and zebrafish pregastrula embryos.

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

Paper
laevis
1 image
NF stage 13 to NF stage 18 forebrain in situ hybridization
The homeoprotein Xiro1 is required for midbrain-hindbrain boundary formation.

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

Paper
laevis
1 image
NF stage 14 forebrain in situ hybridization
Smad10 is required for formation of the frog nervous system.

Paper
laevis
1 image
NF stage 32 forebrain, midbrain in situ hybridization
Increased XRALDH2 activity has a posteriorizing effect on the central nervous system of Xenopus embryos.

Paper
laevis
1 image
NF stage 19 to NF stage 20 diencephalon in situ hybridization

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