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Impaired Angiogenesis during Fracture Healing in GPCR Kinase 2 Interacting Protein-1 (GIT1) Knock Out Mice

G protein coupled receptor kinase 2 (GRK2) interacting protein-1 (GIT1), is a scaffold protein that plays an important role in angiogenesis and osteoclast activity. We have previously demonstrated that GIT1 knockout (GIT1 KO) mice have impaired angiogenesis and dysregulated osteoclast podosome forma...

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Autores principales: Yin, Guoyong, Sheu, Tzong-Jen, Menon, Prashanthi, Pang, Jinjiang, Ho, Hsin-Chiu, Shi, Shanshan, Xie, Chao, Smolock, Elaine, Yan, Chen, Zuscik, Michael J., Berk, Bradford C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3929643/
https://www.ncbi.nlm.nih.gov/pubmed/24586541
http://dx.doi.org/10.1371/journal.pone.0089127
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author Yin, Guoyong
Sheu, Tzong-Jen
Menon, Prashanthi
Pang, Jinjiang
Ho, Hsin-Chiu
Shi, Shanshan
Xie, Chao
Smolock, Elaine
Yan, Chen
Zuscik, Michael J.
Berk, Bradford C.
author_facet Yin, Guoyong
Sheu, Tzong-Jen
Menon, Prashanthi
Pang, Jinjiang
Ho, Hsin-Chiu
Shi, Shanshan
Xie, Chao
Smolock, Elaine
Yan, Chen
Zuscik, Michael J.
Berk, Bradford C.
author_sort Yin, Guoyong
collection PubMed
description G protein coupled receptor kinase 2 (GRK2) interacting protein-1 (GIT1), is a scaffold protein that plays an important role in angiogenesis and osteoclast activity. We have previously demonstrated that GIT1 knockout (GIT1 KO) mice have impaired angiogenesis and dysregulated osteoclast podosome formation leading to a reduction in the bone resorbing ability of these cells. Since both angiogenesis and osteoclast-mediated bone remodeling are involved in the fracture healing process, we hypothesized that GIT1 participates in the normal progression of repair following bone injury. In the present study, comparison of fracture healing in wild type (WT) and GIT1 KO mice revealed altered healing in mice with loss of GIT1 function. Alcian blue staining of fracture callus indicated a persistence of cartilagenous matrix in day 21 callus samples from GIT1 KO mice which was temporally correlated with increased type 2 collagen immunostaining. GIT1 KO mice also showed a decrease in chondrocyte proliferation and apoptosis at days 7 and 14, as determined by PCNA and TUNEL staining. Vascular microcomputed tomography analysis of callus samples at days 7, 14 and 21 revealed decreased blood vessel volume, number, and connection density in GIT1 KO mice compared to WT controls. Correlating with this, VEGF-A, phospho-VEGFR2 and PECAM1 (CD31) were decreased in GIT1 KO mice, indicating reduced angiogenesis with loss of GIT1. Finally, calluses from GIT1 KO mice displayed a reduced number of tartrate resistant acid phosphatase-positive osteoclasts at days 14 and 21. Collectively, these results indicate that GIT1 is an important signaling participant in fracture healing, with gene ablation leading to reduced callus vascularity and reduced osteoclast number in the healing callus.
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spelling pubmed-39296432014-02-25 Impaired Angiogenesis during Fracture Healing in GPCR Kinase 2 Interacting Protein-1 (GIT1) Knock Out Mice Yin, Guoyong Sheu, Tzong-Jen Menon, Prashanthi Pang, Jinjiang Ho, Hsin-Chiu Shi, Shanshan Xie, Chao Smolock, Elaine Yan, Chen Zuscik, Michael J. Berk, Bradford C. PLoS One Research Article G protein coupled receptor kinase 2 (GRK2) interacting protein-1 (GIT1), is a scaffold protein that plays an important role in angiogenesis and osteoclast activity. We have previously demonstrated that GIT1 knockout (GIT1 KO) mice have impaired angiogenesis and dysregulated osteoclast podosome formation leading to a reduction in the bone resorbing ability of these cells. Since both angiogenesis and osteoclast-mediated bone remodeling are involved in the fracture healing process, we hypothesized that GIT1 participates in the normal progression of repair following bone injury. In the present study, comparison of fracture healing in wild type (WT) and GIT1 KO mice revealed altered healing in mice with loss of GIT1 function. Alcian blue staining of fracture callus indicated a persistence of cartilagenous matrix in day 21 callus samples from GIT1 KO mice which was temporally correlated with increased type 2 collagen immunostaining. GIT1 KO mice also showed a decrease in chondrocyte proliferation and apoptosis at days 7 and 14, as determined by PCNA and TUNEL staining. Vascular microcomputed tomography analysis of callus samples at days 7, 14 and 21 revealed decreased blood vessel volume, number, and connection density in GIT1 KO mice compared to WT controls. Correlating with this, VEGF-A, phospho-VEGFR2 and PECAM1 (CD31) were decreased in GIT1 KO mice, indicating reduced angiogenesis with loss of GIT1. Finally, calluses from GIT1 KO mice displayed a reduced number of tartrate resistant acid phosphatase-positive osteoclasts at days 14 and 21. Collectively, these results indicate that GIT1 is an important signaling participant in fracture healing, with gene ablation leading to reduced callus vascularity and reduced osteoclast number in the healing callus. Public Library of Science 2014-02-19 /pmc/articles/PMC3929643/ /pubmed/24586541 http://dx.doi.org/10.1371/journal.pone.0089127 Text en © 2014 Yin et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Yin, Guoyong
Sheu, Tzong-Jen
Menon, Prashanthi
Pang, Jinjiang
Ho, Hsin-Chiu
Shi, Shanshan
Xie, Chao
Smolock, Elaine
Yan, Chen
Zuscik, Michael J.
Berk, Bradford C.
Impaired Angiogenesis during Fracture Healing in GPCR Kinase 2 Interacting Protein-1 (GIT1) Knock Out Mice
title Impaired Angiogenesis during Fracture Healing in GPCR Kinase 2 Interacting Protein-1 (GIT1) Knock Out Mice
title_full Impaired Angiogenesis during Fracture Healing in GPCR Kinase 2 Interacting Protein-1 (GIT1) Knock Out Mice
title_fullStr Impaired Angiogenesis during Fracture Healing in GPCR Kinase 2 Interacting Protein-1 (GIT1) Knock Out Mice
title_full_unstemmed Impaired Angiogenesis during Fracture Healing in GPCR Kinase 2 Interacting Protein-1 (GIT1) Knock Out Mice
title_short Impaired Angiogenesis during Fracture Healing in GPCR Kinase 2 Interacting Protein-1 (GIT1) Knock Out Mice
title_sort impaired angiogenesis during fracture healing in gpcr kinase 2 interacting protein-1 (git1) knock out mice
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3929643/
https://www.ncbi.nlm.nih.gov/pubmed/24586541
http://dx.doi.org/10.1371/journal.pone.0089127
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