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Hedgehog activation promotes osteogenic fates of growth plate resting zone chondrocytes through transient clonal competency
Shion Orikasa, Yuki Matsushita, Hiroaki Manabe, Michael Fogge, Zachary Lee, Koji Mizuhashi, Naoko Sakagami, Wanida Ono, Noriaki Ono
Shion Orikasa, Yuki Matsushita, Hiroaki Manabe, Michael Fogge, Zachary Lee, Koji Mizuhashi, Naoko Sakagami, Wanida Ono, Noriaki Ono
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Research Article Bone biology Stem cells

Hedgehog activation promotes osteogenic fates of growth plate resting zone chondrocytes through transient clonal competency

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Abstract

The resting zone of the postnatal growth plate is organized by slow-cycling chondrocytes expressing parathyroid hormone-related protein (PTHrP), which include a subgroup of skeletal stem cells that contribute to the formation of columnar chondrocytes. The PTHrP–Indian hedgehog feedback regulation is essential for sustaining growth plate activities; however, molecular mechanisms regulating cell fates of PTHrP+ resting chondrocytes and their eventual transformation into osteoblasts remain largely undefined. Here, in a mouse model, we specifically activated Hedgehog signaling in PTHrP+ resting chondrocytes and traced the fate of their descendants using a tamoxifen-inducible Pthrp-creER line with patched-1–floxed and tdTomato reporter alleles. Hedgehog-activated PTHrP+ chondrocytes formed large, concentric, clonally expanded cell populations within the resting zone (“patched roses”) and generated significantly wider columns of chondrocytes, resulting in hyperplasia of the growth plate. Interestingly, Hedgehog-activated PTHrP+ cell descendants migrated away from the growth plate and transformed into trabecular osteoblasts in the diaphyseal marrow space in the long term. Therefore, Hedgehog activation drives resting zone chondrocytes into transit-amplifying states as proliferating chondrocytes and eventually converts these cells into osteoblasts, unraveling a potentially novel Hedgehog-mediated mechanism that facilitates osteogenic cell fates of PTHrP+ skeletal stem cells.

Authors

Shion Orikasa, Yuki Matsushita, Hiroaki Manabe, Michael Fogge, Zachary Lee, Koji Mizuhashi, Naoko Sakagami, Wanida Ono, Noriaki Ono

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Figure 2

Hedgehog activation in PTHrP+ resting chondrocytes causes growth plate hyperplasia.

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Hedgehog activation in PTHrP+ resting chondrocytes causes growth plate h...
(A and B) H&E and Safranin O staining of Pthrp-creER Ptch1fl/+ R26RtdTomato (PTHrP-Ptch Control, A) and Pthrp-creER Ptch1fl/fl R26RtdTomato (PTHrP-Ptch cKO, B) distal femur at P36 (pulsed at P6). Scale bars: 500 μm. (C, D, H, and I) PTHrP-Ptch control (C and H) and PTHrP-Ptch-cKO (D and I) distal femur at P36 (pulsed at P6, C and D) and P56 (pulsed at P6, H and I). Red: tdTomato. Gray: DIC. Scale bars: 100 μm. (E and F) Apoptosis in PTHrP-Ptch control (E) and PTHrP-Ptch-cKO (F) hypertrophic zone at P42 (pulsed at P6). Immunostaining for caspase-3 and osteopontin (OPN). Green: caspase-3 (apoptosis). Red: tdTomato. Light blue: OPN. Gray: DIC. Scale bars: 50 μm. HZ, hypertrophic zone. (G) Quantification of Caspase-3+tdTomato+ cells among tdTomato+ hypertrophic chondrocytes. PTHrP-Ptch control (n = 4) and PTHrP-Ptch-cKO (n = 4) mice. (J) RNAscope analysis of Ptch1exon8–9 in Pthrp-creER Ptch+/+ R26RtdTomato (PTHrP-Ptch WT Control), Pthrp-creER Ptch1fl/+ R26RtdTomato (PTHrP-Ptch cHet Control), and Pthrp-creER Ptch1fl/fl R26RtdTomato (PTHrP-Ptch cKO) at P36 (pulsed at P6). Red: tdTomato. Light blue: Ptch1. Gray: DIC. Scale bars: 50 μm. (K) Quantification of Ptch1exon8–9 mRNA levels in tdTomato+ chondrocytes. The ratio of Ptch1+tdTomato+ area (μm2) to tdTomato+ (μm2) area in growth plate. n = 4 mice per each group. ***P < 0.001. Two-tailed, Mann-Whitney U test (G). One-way ANOVA followed by Tukey’s post hoc test (K). Data are presented as mean ± SD.

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