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A radical switch in clonality reveals a stem cell niche in the epiphyseal growth plate

  • Phillip T. Newton
  • , Lei Li
  • , Baoyi Zhou
  • , Christoph Schweingruber
  • , Maria Hovorakova
  • , Meng Xie
  • , Xiaoyan Sun
  • , Lakshmi Sandhow
  • , Artem V. Artemov
  • , Evgeny Ivashkin
  • , Simon Suter
  • , Vyacheslav Dyachuk
  • , Maha El Shahawy
  • , Amel Gritli-Linde
  • , Thibault Bouderlique
  • , Julian Petersen
  • , Annelie Mollbrink
  • , Joakim Lundeberg
  • , Grigori Enikolopov
  • , Hong Qian
  • Kaj Fried, Maria Kasper, Eva Hedlund, Igor Adameyko, Lars Sävendahl, Andrei S. Chagin
  • Karolinska Institutet
  • Czech Academy of Sciences
  • Sechenov First Moscow State Medical University
  • National Scientific Center of Marine Biology, Far Eastern Branch, Russian Academy of Sciences
  • University of Gothenburg
  • Medical University of Vienna
  • KTH Royal Institute of Technology

Research output: Contribution to journalArticlepeer-review

190 Scopus citations

Abstract

Longitudinal bone growth in children is sustained by growth plates, narrow discs of cartilage that provide a continuous supply of chondrocytes for endochondral ossification1. However, it remains unknown how this supply is maintained throughout childhood growth. Chondroprogenitors in the resting zone are thought to be gradually consumed as they supply cells for longitudinal growth1,2, but this model has never been proved. Here, using clonal genetic tracing with multicolour reporters and functional perturbations, we demonstrate that longitudinal growth during the fetal and neonatal periods involves depletion of chondroprogenitors, whereas later in life, coinciding with the formation of the secondary ossification centre, chondroprogenitors acquire the capacity for self-renewal, resulting in the formation of large, stable monoclonal columns of chondrocytes. Simultaneously, chondroprogenitors begin to express stem cell markers and undergo symmetric cell division. Regulation of the pool of self-renewing progenitors involves the hedgehog and mammalian target of rapamycin complex 1 (mTORC1) signalling pathways. Our findings indicate that a stem cell niche develops postnatally in the epiphyseal growth plate, which provides a continuous supply of chondrocytes over a prolonged period.

Original languageEnglish
Pages (from-to)234-238
Number of pages5
JournalNature
Volume567
Issue number7747
DOIs
StatePublished - Mar 14 2019

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