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3. A molecular atlas of the developing ectoderm defines neural, neural crest, placode, and nonneural progenitor identity in vertebrates.

4. Exploring the origins of neurodevelopmental proteasomopathies associated with cardiac malformations: are neural crest cells central to certain pathological mechanisms?

8. Contributors

9. Pax3 and Zic1 trigger the early neural crest gene regulatory network by the direct activation of multiple key neural crest specifiers

16. The Pax3 and Pax7 paralogs cooperate in neural and neural crest patterning using distinct molecular mechanisms, in Xenopus laevis embryos

17. Dazap2 is required for FGF-mediated posterior neural patterning, independent of Wnt and Cdx function

19. Hairy2-Id3 interactions play an essential role in Xenopus neural crest progenitor specification

29. PFKFB4 control of AKT signaling is essential for premigratory and migratory neural crest formation.

43. Protein Tyrosine Phosphatase 4A3 (PTP4A3) Is Required for Xenopus laevis Cranial Neural Crest Migration In Vivo.

44. Protein Tyrosine Phosphatase 4A3 (PTP4A3) Is Required for Xenopus laevis Cranial Neural Crest Migration In Vivo.

45. Xenopus, an emerging model for studying pathologies of the neural crest.

46. Signaling and transcriptional regulation in neural crest specification and migration: lessons from xenopus embryos.

47. A rapid protocol for whole-mount in situ hybridization on Xenopus embryos.

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