Literature DB >> 9917628

The role of osteochondral progenitor cells in fracture repair.

J U Yoo1, B Johnstone.   

Abstract

The repair of a fracture necessarily entails synthesis of osseous tissue requiring the transformation of undifferentiated osteochondral progenitor cells to mature osteoblasts and chondrocytes. Owen and Friedenstein proposed that there are stem cells for all mesenchymal tissues, resident in bone marrow throughout life, that have a lineage comparable to that described for hematopoiesis. Subsequent with this initial study, marrow derived and periosteal derived progenitor cells have been shown to produce bone and cartilage in numerous in vivo and in vitro studies. The differentiation process appears to depend heavily on the influences of numerous cytokines, especially the transforming growth factor beta superfamily. Initial cartilage formation from progenitor cells is important in any secondary fracture repair. In the in vitro study of chondrogenesis, the marrow derived progenitor cells were shown to differentiate into their terminal phenotype, the hypertrophic chondrocyte, as indicated by the detection of Type X collagen messenger ribonucleic acid and protein. A concomitant elevation in the alkaline phosphatase level suggests that these cells are ready to mineralize. Despite the importance of these cells in fracture repair, the characterization of these cells and the mechanism of their differentiation have only begun to be explored.

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Year:  1998        PMID: 9917628     DOI: 10.1097/00003086-199810001-00009

Source DB:  PubMed          Journal:  Clin Orthop Relat Res        ISSN: 0009-921X            Impact factor:   4.176


  20 in total

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Authors:  Nikitas Sykaras; Anthony M Iacopino; Robert G Triplett; Victoria A Marker
Journal:  Clin Oral Investig       Date:  2004-07-29       Impact factor: 3.573

3.  [Osteoblasts : cellular and molecular regulatory mechanisms in fracture healing].

Authors:  A Hofmann; S G Mattyasovszky; C Brüning; U Ritz; I Mehling; A Meurer; P M Rommens
Journal:  Orthopade       Date:  2009-11       Impact factor: 1.087

4.  Bone healing in an aged murine fracture model is characterized by sustained callus inflammation and decreased cell proliferation.

Authors:  John H Hebb; Jason W Ashley; Lee McDaniel; Luke A Lopas; John Tobias; Kurt D Hankenson; Jaimo Ahn
Journal:  J Orthop Res       Date:  2017-10-09       Impact factor: 3.494

5.  Inhibition of beta-catenin signaling by Pb leads to incomplete fracture healing.

Authors:  Eric E Beier; Tzong-Jen Sheu; Taylor Buckley; Kiminori Yukata; Regis O'Keefe; Michael J Zuscik; J Edward Puzas
Journal:  J Orthop Res       Date:  2014-07-21       Impact factor: 3.494

6.  Local transplantation of osteogenic pre-differentiated autologous adipose-derived mesenchymal stem cells may accelerate non-union fracture healing with limited pro-metastatic potency.

Authors:  Duanyang Han; Na Han; Peixun Zhang; Baoguo Jiang
Journal:  Int J Clin Exp Med       Date:  2015-01-15

7.  Ethyl-3,4-dihydroxybenzoate with a dual function of induction of osteogenic differentiation and inhibition of osteoclast differentiation for bone tissue engineering.

Authors:  Byeong-Ju Kwon; Mi Hee Lee; Min-Ah Koo; Jae-Jin Han; Jong-Chul Park
Journal:  Tissue Eng Part A       Date:  2014-06-23       Impact factor: 3.845

8.  Play and players in bone fracture healing match.

Authors:  Lorenzo Marzona; Bernardo Pavolini
Journal:  Clin Cases Miner Bone Metab       Date:  2009-05

9.  Accelerated bone repair after plasma laser corticotomies.

Authors:  Philipp Leucht; Kentson Lam; Jae-Beom Kim; Mark A Mackanos; Dmitrii M Simanovskii; Michael T Longaker; Christopher H Contag; H Alan Schwettman; Jill A Helms
Journal:  Ann Surg       Date:  2007-07       Impact factor: 12.969

Review 10.  Stem cell- and scaffold-based tissue engineering approaches to osteochondral regenerative medicine.

Authors:  Sarah Sundelacruz; David L Kaplan
Journal:  Semin Cell Dev Biol       Date:  2009-08       Impact factor: 7.727

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