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1.
Development ; 144(2): 221-234, 2017 01 15.
Artigo em Inglês | MEDLINE | ID: mdl-28096214

RESUMO

Fractures heal predominantly through the process of endochondral ossification. The classic model of endochondral ossification holds that chondrocytes mature to hypertrophy, undergo apoptosis and new bone forms by invading osteoprogenitors. However, recent data demonstrate that chondrocytes transdifferentiate to osteoblasts in the growth plate and during regeneration, yet the mechanism(s) regulating this process remain unknown. Here, we show a spatially-dependent phenotypic overlap between hypertrophic chondrocytes and osteoblasts at the chondro-osseous border in the fracture callus, in a region we define as the transition zone (TZ). Hypertrophic chondrocytes in the TZ activate expression of the pluripotency factors [Sox2, Oct4 (Pou5f1), Nanog], and conditional knock-out of Sox2 during fracture healing results in reduction of the fracture callus and a delay in conversion of cartilage to bone. The signal(s) triggering expression of the pluripotency genes are unknown, but we demonstrate that endothelial cell conditioned medium upregulates these genes in ex vivo fracture cultures, supporting histological evidence that transdifferentiation occurs adjacent to the vasculature. Elucidating the cellular and molecular mechanisms underlying fracture repair is important for understanding why some fractures fail to heal and for developing novel therapeutic interventions.


Assuntos
Transdiferenciação Celular/genética , Condrócitos/fisiologia , Neovascularização Fisiológica/fisiologia , Osteoblastos/fisiologia , Osteogênese/fisiologia , Células-Tronco Pluripotentes/fisiologia , Animais , Osso e Ossos/citologia , Osso e Ossos/fisiologia , Calo Ósseo/crescimento & desenvolvimento , Calo Ósseo/metabolismo , Cartilagem/citologia , Cartilagem/fisiologia , Células Cultivadas , Condrócitos/citologia , Condrogênese/fisiologia , Consolidação da Fratura/genética , Consolidação da Fratura/fisiologia , Células Endoteliais da Veia Umbilical Humana , Humanos , Masculino , Camundongos , Camundongos Endogâmicos C57BL , Camundongos Knockout , Neovascularização Fisiológica/genética , Osteoblastos/citologia , Regulação para Cima/genética
2.
J Bone Miner Res ; 29(5): 1269-82, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-24259230

RESUMO

Although bone has great capacity for repair, there are a number of clinical situations (fracture non-unions, spinal fusions, revision arthroplasty, segmental defects) in which auto- or allografts attempt to augment bone regeneration by promoting osteogenesis. Critical failures associated with current grafting therapies include osteonecrosis and limited integration between graft and host tissue. We speculated that the underlying problem with current bone grafting techniques is that they promote bone regeneration through direct osteogenesis. Here we hypothesized that using cartilage to promote endochondral bone regeneration would leverage normal developmental and repair sequences to produce a well-vascularized regenerate that integrates with the host tissue. In this study, we use a translational murine model of a segmental tibia defect to test the clinical utility of bone regeneration from a cartilage graft. We further test the mechanism by which cartilage promotes bone regeneration using in vivo lineage tracing and in vitro culture experiments. Our data show that cartilage grafts support regeneration of a vascularized and integrated bone tissue in vivo, and subsequently propose a translational tissue engineering platform using chondrogenesis of mesenchymal stem cells (MSCs). Interestingly, lineage tracing experiments show the regenerate was graft derived, suggesting transformation of the chondrocytes into bone. In vitro culture data show that cartilage explants mineralize with the addition of bone morphogenetic protein (BMP) or by exposure to human vascular endothelial cell (HUVEC)-conditioned medium, indicating that endothelial cells directly promote ossification. This study provides preclinical data for endochondral bone repair that has potential to significantly improve patient outcomes in a variety of musculoskeletal diseases and injuries. Further, in contrast to the dogmatic view that hypertrophic chondrocytes undergo apoptosis before bone formation, our data suggest cartilage can transform into bone by activating the pluripotent transcription factor Oct4A. Together these data represent a paradigm shift describing the mechanism of endochondral bone repair and open the door for novel regenerative strategies based on improved biology.


Assuntos
Regeneração Óssea , Cartilagem/lesões , Células-Tronco/metabolismo , Tíbia/lesões , Tíbia/metabolismo , Animais , Cartilagem/crescimento & desenvolvimento , Cartilagem/transplante , Humanos , Masculino , Camundongos , Células-Tronco/citologia , Tíbia/patologia , Engenharia Tecidual/métodos
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