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Multipotent neural stem cells originating from neuroepithelium exist outside the mouse central nervous system

  • Dong Han
  • , Wan Xu
  • , Hyun Woo Jeong
  • , Hongryeol Park
  • , Kathrin Weyer
  • , Yaroslav Tsytsyura
  • , Martin Stehling
  • , Guangming Wu
  • , Guocheng Lan
  • , Kee Pyo Kim
  • , Henrik Renner
  • , Dong Wook Han
  • , Yicong Chen
  • , Daniela Gerovska
  • , Marcos J. Araúzo-Bravo
  • , Jürgen Klingauf
  • , Jens Christian Schwamborn
  • , Ralf H. Adams
  • , Pentao Liu
  • , Hans R. Schöler
  • Max Planck Institute for Molecular Biomedicine
  • The University of Hong Kong
  • University of Luxembourg
  • University of Münster
  • Guangzhou Medical College
  • Guangzhou Laboratory
  • NUOXINTE Biotechnology
  • Instituto de Investigación Sanitaria Biodonostia
  • Ikerbasque Basque Foundation for Science
  • Cells in Motion (CiM) Interfaculty Center
  • Center for Translational Stem Cell Biology

Research output: Contribution to journalArticlepeer-review

9 Scopus citations

Abstract

Conventional understanding dictates that mammalian neural stem cells (NSCs) exist only in the central nervous system. Here, we report that peripheral NSCs (pNSCs) exist outside the central nervous system and can be isolated from mouse embryonic limb, postnatal lung, tail, dorsal root ganglia and adult lung tissues. Derived pNSCs are distinct from neural crest stem cells, express multiple NSC-specific markers and exhibit cell morphology, self-renewing and differentiation capacity, genome-wide transcriptional profile and epigenetic features similar to control brain NSCs. pNSCs are composed of Sox1+ cells originating from neuroepithelial cells. pNSCs in situ have similar molecular features to NSCs in the brain. Furthermore, many pNSCs that migrate out of the neural tube can differentiate into mature neurons and limited glial cells during embryonic and postnatal development. Our discovery of pNSCs provides previously unidentified insight into the mammalian nervous system development and presents an alternative potential strategy for neural regenerative therapy.

Original languageEnglish
Article number2445
Pages (from-to)605-618
Number of pages14
JournalNature Cell Biology
Volume27
Issue number4
DOIs
StatePublished - Apr 2025

Bibliographical note

Publisher Copyright:
© The Author(s) 2025.

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