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Pluripotent stem cell differentiation reveals distinct developmental pathways regulating Lung-Versus Thyroid-Lineage specification

  • Maria Serra
  • , Konstantinos Dionysios Alysandratos
  • , Finn Hawkins
  • , Katherine B. McCauley
  • , Anjali Jacob
  • , Jinyoung Choi
  • , Ignacio S. Caballero
  • , Marall Vedaie
  • , Anita A. Kurmann
  • , Laertis Ikonomou
  • , Anthony N. Hollenberg
  • , John M. Shannon
  • , Darrell N. Kotton
  • Boston University
  • Harvard University
  • Cincinnati Children's Hospital Medical Center

Research output: Contribution to journalArticlepeer-review

76 Scopus citations

Abstract

The in vitro-directed differentiation of pluripotent stem cells (PSCs) through stimulation of developmental signaling pathways can generate mature somatic cell types for basic laboratory studies or regenerative therapies. However, there has been significant uncertainty regarding a method to separately derive lung versus thyroid epithelial lineages, as these two cell types each originate from Nkx2-1+ foregut progenitors and the minimal pathways claimed to regulate their distinct lineage specification in vivo or in vitro have varied in previous reports. Here, we employ PSCs to identify the key minimal signaling pathways (Wnt+BMP versus BMP+FGF) that regulate distinct lung-versus thyroid-lineage specification, respectively, from foregut endoderm. In contrast to most previous reports, these minimal pathways appear to be evolutionarily conserved between mice and humans, and FGF signaling, although required for thyroid specification, unexpectedly appears to be dispensable for lung specification. Once specified, distinct Nkx2-1+ lung or thyroid progenitor pools can now be independently derived for functional 3D culture maturation, basic developmental studies or future regenerative therapies.

Original languageEnglish
Pages (from-to)3879-3893
Number of pages15
JournalDevelopment (Cambridge)
Volume144
Issue number21
DOIs
StatePublished - Nov 1 2017

Keywords

  • Embryo
  • Endoderm
  • Lung
  • Nkx2-1
  • Pluripotent stem cells
  • Thyroid

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