ArticleNature ecology & evolution2024
Shared features of blastula and neural crest stem cells evolved at the base of vertebrates.
Article in Nature ecology & evolution, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed.
- Fgf evolution in vertebrates: insights from cyclostomes.BMC genomics · 2026Article
- Neural crest gene regulatory networks as drivers of development, diversification and disease.Nature reviews. Molecular cell biology · 2026Review
- Dynamic and non-uniform expression of key transcription factors provides insights into the emergence of neural crest cells at the neural plate border.Development (Cambridge, England) · 2026Article
- Wdr5 and Myc cooperate to regulate formation of neural crest stem cells.Development (Cambridge, England) · 2026Article
- Foxi2 and Sox3 are master transcription regulators that control ectoderm germ layer specification in Xenopus.PLoS biology · 2025Article
- Nf2/FGFR1/AKT axis directs cranial neural crest-derived skull morphogenesis via collagen synthesis and trafficking.JCI insight · 2025Article
- Krüppel-like factors play essential roles in regulating pluripotency and the formation of neural crest stem cells.Development (Cambridge, England) · 2025Article
- Making sense of vertebrate senses from a neural crest and cranial placode evo-devo perspective.Trends in neurosciences · 2025Review
- Article
- SoxB1 transcription factors are essential for initiating and maintaining neural plate border gene expression.Development (Cambridge, England) · 2024Article
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Abstract
The neural crest is a vertebrate-specific stem cell population that helped drive the origin and evolution of vertebrates. A distinguishing feature of these cells is their multi-germ layer potential, which has parallels to another stem cell population-pluripotent stem cells of the vertebrate blastula. Here, we investigate the evolutionary origins of neural crest potential by comparing neural crest and pluripotency gene regulatory networks of a jawed vertebrate, Xenopus, and a jawless vertebrate, lamprey. We reveal an ancient evolutionary origin of shared regulatory factors in these gene regulatory networks that dates to the last common ancestor of extant vertebrates. Focusing on the key pluripotency factor pou5, we show that a lamprey pou5 orthologue is expressed in animal pole cells but is absent from neural crest. Both lamprey and Xenopus pou5 promote neural crest formation, suggesting that pou5 activity was lost from the neural crest of jawless vertebrates or acquired along the jawed vertebrate stem. Finally, we provide evidence that pou5 acquired novel, neural crest-enhancing activity after evolving from an ancestral pou3-like clade. This work provides evidence that both the neural crest and blastula pluripotency networks arose at the base of the vertebrates and that this may be linked to functional evolution of pou5.
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