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Long-lived chondroprogenitors are generated by fetal-limb Gli1+ cells and are replenished upon mosaic cell-cycle arrest in the cartilage

Qu, X.; Razmara, E.; H'ng, C. H.; Vinu, K. K.; Martelotto, L. G.; Zethoven, M.; Rossello, F. J.; Johnstone, R. W.; Amarasinghe, S. L.; Powell, D. R.; Rosello-Diez, A.

2024-07-30 developmental biology
10.1101/2024.07.29.603524 bioRxiv
Show abstract

The growth-plate cartilage of the developing long bones is a well-known system of spatially segregated stem/progenitor, transient amplifying and terminally differentiated cells. However, the regulation of the number and activity of long-lived cartilage progenitors (LLCPs) is poorly understood, despite its relevance for understanding human-height variation, the evolution of limb size and proportions and the aetiology of skeletal growth disorders. Moreover, whether their behaviour can adapt to developmental perturbations, generating robustness, has not been explored. Here, we show that Gli1+ cells are the fetal precursors of postnatal LLCPs. Moreover, while during normal growth they remain mostly dormant until postnatal stages, in response to cartilage-targeted cell-cycle arrest they increase their cartilage contribution, compensating for the perturbation. We further show that, during the response to challenge, some of the reparative Gli1+ cells originate from Pdgfra+ cells outside the cartilage anlage. Elucidating how stromal cells become Gli1+ LLCPs could shed light on developmental robustness and lead to growth-boosting therapies.

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