Literature DB >> 28412469

Earliest phases of chondrogenesis are dependent upon angiogenesis during ectopic bone formation in mice.

Beth Bragdon1, Stephanie Lam2, Sherif Aly2, Alexandra Femia2, Abigail Clark2, Amira Hussein2, Elise F Morgan3, Louis C Gerstenfeld2.   

Abstract

Endochondral ossification is the process where cartilage forms prior to ossification and in which new bone forms during both fracture healing and ectopic bone formation. Transitioning to ossification is a highly coordinated process between hypertrophic chondrocytes, vascular endothelial cells, osteoblasts and osteoclasts. A critical biological process that is central to the interactions of these various cell types is angiogenesis. Although it is well established that angiogenesis is crucial for fracture repair, less is known pertaining to the role of angiogenesis in ectopic bone formation. Furthermore, fracture repair models are complicated by extensive trauma, subsequent inflammatory responses and concurrent repair processes in multiple tissues. In order to more definitively characterize the relationship between angiogenesis and postnatal endochondral ossification, a model of ectopic bone formation was used. Human demineralized bone matrix (DBM) was implanted in immune-deficient mice (rag null (B6.129S7-Rag1tm1/MOM/J)) to induce ectopic bone. Inhibition of angiogenesis with either a small molecule (TNP-470) or a targeted biological (Vascular Endothelial Growth Factor Receptor type 2 [VEGFR2] blocking antibody) prevented ectopic bone formation by 83% and 77%, respectively. Most striking was that the progression of chondrogenesis was halted during very early phases of chondrocyte differentiation between condensation and prehypertrophy (TNP-470) or the proliferative phase (VEGFR2 blockade) prior to hypertrophy, while osteoclast recruitment and resorption were almost completely inhibited. Our results demonstrate angiogenesis plays a developmental role in endochondral bone formation at a much earlier phase of chondrogenesis than suggested by prior findings.
Copyright © 2017 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Angiogenesis; Cartilage biology; Chondrocytes; Developmental modeling; Endochondral ossification

Mesh:

Substances:

Year:  2017        PMID: 28412469      PMCID: PMC5500242          DOI: 10.1016/j.bone.2017.04.002

Source DB:  PubMed          Journal:  Bone        ISSN: 1873-2763            Impact factor:   4.398


  48 in total

1.  Temporal and spatial vascularization patterns of unions and nonunions: role of vascular endothelial growth factor and bone morphogenetic proteins.

Authors:  P Garcia; A Pieruschka; M Klein; A Tami; T Histing; J H Holstein; C Scheuer; T Pohlemann; M D Menger
Journal:  J Bone Joint Surg Am       Date:  2012-01-04       Impact factor: 5.284

2.  The anti-angiogenic agent fumagillin covalently binds and inhibits the methionine aminopeptidase, MetAP-2.

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Journal:  Proc Natl Acad Sci U S A       Date:  1997-06-10       Impact factor: 11.205

3.  Vascular tissues are a primary source of BMP2 expression during bone formation induced by distraction osteogenesis.

Authors:  Hidenori Matsubara; Daniel E Hogan; Elise F Morgan; Douglas P Mortlock; Thomas A Einhorn; Louis C Gerstenfeld
Journal:  Bone       Date:  2012-02-25       Impact factor: 4.398

4.  Bmpr1a and Bmpr1b have overlapping functions and are essential for chondrogenesis in vivo.

Authors:  Byeong S Yoon; Dmitry A Ovchinnikov; Isaac Yoshii; Yuji Mishina; Richard R Behringer; Karen M Lyons
Journal:  Proc Natl Acad Sci U S A       Date:  2005-03-21       Impact factor: 11.205

5.  PTH/PTHrP receptor in early development and Indian hedgehog-regulated bone growth.

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Journal:  Science       Date:  1996-08-02       Impact factor: 47.728

6.  Selective inhibition of endothelial cell proliferation by fumagillin is not due to differential expression of methionine aminopeptidases.

Authors:  J Wang; P Lou; J Henkin
Journal:  J Cell Biochem       Date:  2000-04       Impact factor: 4.429

7.  Angiogenesis is required for stress fracture healing in rats.

Authors:  Ryan E Tomlinson; Jennifer A McKenzie; Anne H Schmieder; Gregory R Wohl; Gregory M Lanza; Matthew J Silva
Journal:  Bone       Date:  2012-10-05       Impact factor: 4.398

8.  A role for planar cell polarity signaling in angiogenesis.

Authors:  Pasquale Cirone; Shengda Lin; Hilary L Griesbach; Yi Zhang; Diane C Slusarski; Craig M Crews
Journal:  Angiogenesis       Date:  2008-09-17       Impact factor: 9.596

9.  Effect of nonsteroidal antiinflammatory drugs on fracture healing: a laboratory study in rats.

Authors:  R D Altman; L L Latta; R Keer; K Renfree; F J Hornicek; K Banovac
Journal:  J Orthop Trauma       Date:  1995       Impact factor: 2.512

10.  Planar cell polarity genes frizzled4 and frizzled6 exert patterning influence on arterial vessel morphogenesis.

Authors:  Rene Markovič; Julien Peltan; Marko Gosak; Denis Horvat; Borut Žalik; Benjamin Seguy; Remi Chauvel; Gregoire Malandain; Thierry Couffinhal; Cécile Duplàa; Marko Marhl; Etienne Roux
Journal:  PLoS One       Date:  2017-03-02       Impact factor: 3.240

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  12 in total

1.  Effects of Bone Morphogenetic Protein-2 on Neovascularization During Large Bone Defect Regeneration.

Authors:  Hope B Pearson; Devon E Mason; Christopher D Kegelman; Liming Zhao; James H Dawahare; Melissa A Kacena; Joel D Boerckel
Journal:  Tissue Eng Part A       Date:  2019-06-14       Impact factor: 3.845

2.  Teriparatide Treatment Improves Bone Defect Healing Via Anabolic Effects on New Bone Formation and Non-Anabolic Effects on Inhibition of Mast Cells in a Murine Cranial Window Model.

Authors:  Longze Zhang; Tao Wang; Martin Chang; Claire Kaiser; Jason D Kim; Tianyu Wu; Xiaoyi Cao; Xinping Zhang; Edward M Schwarz
Journal:  J Bone Miner Res       Date:  2017-07-19       Impact factor: 6.741

3.  Chondrocytes Promote Vascularization in Fracture Healing Through a FOXO1-Dependent Mechanism.

Authors:  Citong Zhang; Daniel Feinberg; Mohammed Alharbi; Zhenjiang Ding; Chanyi Lu; J Patrick O'Connor; Dana T Graves
Journal:  J Bone Miner Res       Date:  2018-11-20       Impact factor: 6.741

4.  VEGFA From Early Osteoblast Lineage Cells (Osterix+) Is Required in Mice for Fracture Healing.

Authors:  Evan G Buettmann; Jennifer A McKenzie; Nicole Migotsky; David Aw Sykes; Pei Hu; Susumu Yoneda; Matthew J Silva
Journal:  J Bone Miner Res       Date:  2019-08-01       Impact factor: 6.741

5.  Post natal expression of Prx1 labels appendicular restricted progenitor cell populations of multiple tissues.

Authors:  Beth C Bragdon; Andrew Bennie; Amanda Molinelli; Yu Liu; Louis C Gerstenfeld
Journal:  J Cell Physiol       Date:  2022-03-26       Impact factor: 6.513

6.  Ischaemia, healing and outcomes in proximal humeral fractures.

Authors:  Simon M Lambert
Journal:  EFORT Open Rev       Date:  2018-05-21

7.  An in vivo Comparison Study Between Strontium Nanoparticles and rhBMP2.

Authors:  Giulia Montagna; Francesco Cristofaro; Lorenzo Fassina; Giovanna Bruni; Lucia Cucca; Alejandro Kochen; Paola Divieti Pajevic; Beth Bragdon; Livia Visai; Louis Gerstenfeld
Journal:  Front Bioeng Biotechnol       Date:  2020-06-16

8.  Bioinformatics Analysis of the Molecular Mechanism of Late-Stage Heterotopic Ossification.

Authors:  Qiang Zhang; Yan Zhang; Meijun Yan; Kai Zhu; Dong Zhou; Jun Tan
Journal:  Biomed Res Int       Date:  2020-04-11       Impact factor: 3.411

Review 9.  Subchondral bone microenvironment in osteoarthritis and pain.

Authors:  Yan Hu; Xiao Chen; Sicheng Wang; Yingying Jing; Jiacan Su
Journal:  Bone Res       Date:  2021-03-17       Impact factor: 13.567

10.  Articular cartilage regeneration by activated skeletal stem cells.

Authors:  Matthew P Murphy; Lauren S Koepke; Michael T Lopez; Xinming Tong; Thomas H Ambrosi; Gunsagar S Gulati; Owen Marecic; Yuting Wang; Ryan C Ransom; Malachia Y Hoover; Holly Steininger; Liming Zhao; Marcin P Walkiewicz; Natalina Quarto; Benjamin Levi; Derrick C Wan; Irving L Weissman; Stuart B Goodman; Fan Yang; Michael T Longaker; Charles K F Chan
Journal:  Nat Med       Date:  2020-08-17       Impact factor: 53.440

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