Chondrocytes Transdifferentiate into Osteoblasts in Endochondral Bone during Development, Postnatal Growth and Fracture Healing in Mice

被引:416
作者
Zhou, Xin [1 ]
von der Mark, Klaus [2 ]
Henry, Stephen [1 ]
Norton, William [3 ]
Adams, Henry [1 ]
de Crombrugghe, Benoit [1 ]
机构
[1] Univ Texas MD Anderson Canc Ctr, Dept Genet, Houston, TX 77030 USA
[2] Univ Erlangen Nurnberg, Nikolaus Fiebiger Ctr Mol Med, Dept Expt Med 1, Erlangen, Germany
[3] Univ Texas MD Anderson Canc Ctr, Dept Vet Med & Surg, Houston, TX 77030 USA
关键词
HYPERTROPHIC CHONDROCYTES; FLUORESCENT PROTEIN; EXPRESSION; DIFFERENTIATION; CARTILAGE; APOPTOSIS; CATENIN; OSSIFICATION; PROGENITORS; OSTEOCYTES;
D O I
10.1371/journal.pgen.1004820
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
One of the crucial steps in endochondral bone formation is the replacement of a cartilage matrix produced by chondrocytes with bone trabeculae made by osteoblasts. However, the precise sources of osteoblasts responsible for trabecular bone formation have not been fully defined. To investigate whether cells derived from hypertrophic chondrocytes contribute to the osteoblast pool in trabecular bones, we genetically labeled either hypertrophic chondrocytes by Col10a1-Cre or chondrocytes by tamoxifen-induced Agc1-CreERT2 using EGFP, LacZ or Tomato expression. Both Cre drivers were specifically active in chondrocytic cells and not in perichondrium, in periosteum or in any of the osteoblast lineage cells. These in vivo experiments allowed us to follow the fate of cells labeled in Col10a1-Cre or Agc1-CreERT2 -expressing chondrocytes. After the labeling of chondrocytes, both during prenatal development and after birth, abundant labeled non-chondrocytic cells were present in the primary spongiosa. These cells were distributed throughout trabeculae surfaces and later were present in the endosteum, and embedded within the bone matrix. Co-expression studies using osteoblast markers indicated that a proportion of the non-chondrocytic cells derived from chondrocytes labeled by Col10a1-Cre or by Agc1-CreERT2 were functional osteoblasts. Hence, our results show that both chondrocytes prior to initial ossification and growth plate chondrocytes before or after birth have the capacity to undergo transdifferentiation to become osteoblasts. The osteoblasts derived from Col10a1-expressing hypertrophic chondrocytes represent about sixty percent of all mature osteoblasts in endochondral bones of one month old mice. A similar process of chondrocyte to osteoblast transdifferentiation was involved during bone fracture healing in adult mice. Thus, in addition to cells in the periosteum chondrocytes represent a major source of osteoblasts contributing to endochondral bone formation in vivo.
引用
收藏
页数:20
相关论文
共 50 条
[21]   Fibroblast Growth Factor Expression During Skeletal Fracture Healing in Mice [J].
Schmid, Gregory J. ;
Kobayashi, Chikashi ;
Sandell, Linda J. ;
Ornitz, David M. .
DEVELOPMENTAL DYNAMICS, 2009, 238 (03) :766-774
[22]   Effects of obesity on the healing of bone fracture in mice [J].
Gao, Feng ;
Lv, Tian-Run ;
Zhou, Jin-Chun ;
Qin, Xiao-Dong .
JOURNAL OF ORTHOPAEDIC SURGERY AND RESEARCH, 2018, 13
[23]   Inhibition of ß-catenin signaling in chondrocytes induces delayed fracture healing in mice [J].
Huang, Yang ;
Zhang, Xiaoling ;
Du, Kewei ;
Yang, Fei ;
Shi, Yu ;
Huang, Jingang ;
Tang, Tingting ;
Chen, Di ;
Dai, Kerong .
JOURNAL OF ORTHOPAEDIC RESEARCH, 2012, 30 (02) :304-310
[24]   Irradiated Human Chondrocytes Expressing Bone Morphogenetic Protein 2 Promote Healing of Osteoporotic Bone Fracture in Rats [J].
Yi, Youngsuk ;
Choi, Kyoung Baek ;
Lim, Chae-Lyul ;
Hyun, Jong-Pil ;
Lee, Hyeon-Youl ;
Lee, Kun Bok ;
Yun, Lillian ;
Ayverdi, Asli ;
Hwang, Sally ;
Yip, Vivian ;
Noh, Moon Jong ;
Lee, Kwan Hee .
TISSUE ENGINEERING PART A, 2009, 15 (10) :2853-2863
[25]   Distinct functionalities of bone morphogenetic protein antagonists during fracture healing in mice [J].
Dean, Daniel B. ;
Watson, John T. ;
Jin, Wu ;
Peters, Charlie ;
Enders, J. T. ;
Chen, Andrew ;
Moed, Berton R. ;
Zhang, Zijun .
JOURNAL OF ANATOMY, 2010, 216 (05) :625-630
[26]   Runx1 dose-dependently regulates endochondral ossification during skeletal development and fracture healing [J].
Soung, Do Y. ;
Talebian, Laleh ;
Matheny, Christina J. ;
Guzzo, Rosa ;
Speck, Maren E. ;
Lieberman, Jay R. ;
Speck, Nancy A. ;
Drissi, Hicham .
JOURNAL OF BONE AND MINERAL RESEARCH, 2012, 27 (07) :1585-1597
[27]   Downregulation of Krüppel-like factor 15 expression delays endochondral bone ossification during fracture healing [J].
Tachibana, Shotaro ;
Hayashi, Shinya ;
Ikuta, Kemmei ;
Anjiki, Kensuke ;
Onoi, Yuma ;
Suda, Yoshihito ;
Wada, Kensuke ;
Maeda, Takuma ;
Saito, Akira ;
Tsubosaka, Masanori ;
Kamenaga, Tomoyuki ;
Kuroda, Yuichi ;
Nakano, Naoki ;
Matsumoto, Tomoyuki ;
Hosooka, Tetsuya ;
Ogawa, Wataru ;
Kuroda, Ryosuke .
BONE, 2025, 190
[28]   Role of Bone Morphogenetic Proteins and Their Antagonists during Fracture Healing [J].
Chang, Xin ;
Lu, Yun ;
Shibata, Yasuaki ;
Tsukazaki, Tomoo ;
Yamaguchi, Akira .
JOURNAL OF HARD TISSUE BIOLOGY, 2012, 21 (02) :203-212
[29]   Disruption of glucocorticoid signaling in chondrocytes delays metaphyseal fracture healing but does not affect normal cartilage and bone development [J].
Tu, Jinwen ;
Henneicke, Holger ;
Zhang, Yaqing ;
Stoner, Shihani ;
Cheng, Tegan L. ;
Schindeler, Aaron ;
Chen, Di ;
Tuckermann, Jan ;
Cooper, Mark S. ;
Seibel, Markus J. ;
Zhou, Hong .
BONE, 2014, 69 :12-22
[30]   The role of histone deacetylase 4 during chondrocyte hypertrophy and endochondral bone development [J].
Chen, Z. ;
Zhang, Z. ;
Guo, L. ;
Wei, X. ;
Zhang, Y. ;
Wang, X. ;
Wei, L. .
BONE & JOINT RESEARCH, 2020, 9 (02) :82-89