4.6 Article

Growth Plate Borderline Chondrocytes Behave as Transient Mesenchymal Precursor Cells

期刊

JOURNAL OF BONE AND MINERAL RESEARCH
卷 34, 期 8, 页码 1387-1392

出版社

WILEY
DOI: 10.1002/jbmr.3719

关键词

DEVELOPMENTAL MODELING; GENETIC ANIMAL MODELS; GROWTH PLATE; OSTEOBLASTS; STROMAL; STEM CELLS

资金

  1. NIDCR NIH HHS [R01 DE026666, R03 DE027421, R01DE026666] Funding Source: Medline

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The growth plate provides a substantial source of mesenchymal cells in the endosteal marrow space during endochondral ossification. The current model postulates that a group of chondrocytes in the hypertrophic zone can escape from apoptosis and transform into cells that eventually become osteoblasts in an area beneath the growth plate. The growth plate is composed of cells with various morphologies; particularly at the periphery of the growth plate immediately adjacent to the perichondrium are borderline chondrocytes, which align perpendicularly to other chondrocytes. However, in vivo cell fates of these special chondrocytes have not been revealed. Here we show that borderline chondrocytes in growth plates behave as transient mesenchymal precursor cells for osteoblasts and marrow stromal cells. A single-cell RNA-seq analysis revealed subpopulations of Col2a1-creER-marked neonatal chondrocytes and their cell type-specific markers. A tamoxifen pulse to Pthrp-creER mice in the neonatal stage (before the resting zone was formed) preferentially marked borderline chondrocytes. Following the chase, these cells marched into the nascent marrow space, expanded in the metaphyseal marrow, and became Col(2.3 kb)-GFP(+) osteoblasts and Cxcl12-GFP(high) reticular stromal CAR cells. Interestingly, these borderline chondrocyte-derived marrow cells were short-lived, as they were significantly reduced during adulthood. These findings demonstrate based on in vivo lineage-tracing experiments that borderline chondrocytes in the peripheral growth plate are a particularly important route for producing osteoblasts and marrow stromal cells in growing murine endochondral bones. A special microenvironment neighboring the osteogenic perichondrium might endow these chondrocytes with an enhanced potential to differentiate into marrow mesenchymal cells. (c) 2019 American Society for Bone and Mineral Research.

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