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FOXO1 Deletion Reverses the Effect of Diabetic-Induced Impaired Fracture Healing

Type 1 diabetes impairs fracture healing. We tested the hypothesis that diabetes affects chondrocytes to impair fracture healing through a mechanism that involves the transcription factor FOXO1. Type 1 diabetes was induced by streptozotocin in mice with FOXO1 deletion in chondrocytes (Col2α1Cre(+).F...

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Autores principales: Alharbi, Mohammed A., Zhang, Citong, Lu, Chanyi, Milovanova, Tatyana N., Yi, Leah, Ryu, Je Dong, Jiao, Hongli, Dong, Guangyu, O’Connor, J. Patrick, Graves, Dana T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Diabetes Association 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6245226/
https://www.ncbi.nlm.nih.gov/pubmed/30279162
http://dx.doi.org/10.2337/db18-0340
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author Alharbi, Mohammed A.
Zhang, Citong
Lu, Chanyi
Milovanova, Tatyana N.
Yi, Leah
Ryu, Je Dong
Jiao, Hongli
Dong, Guangyu
O’Connor, J. Patrick
Graves, Dana T.
author_facet Alharbi, Mohammed A.
Zhang, Citong
Lu, Chanyi
Milovanova, Tatyana N.
Yi, Leah
Ryu, Je Dong
Jiao, Hongli
Dong, Guangyu
O’Connor, J. Patrick
Graves, Dana T.
author_sort Alharbi, Mohammed A.
collection PubMed
description Type 1 diabetes impairs fracture healing. We tested the hypothesis that diabetes affects chondrocytes to impair fracture healing through a mechanism that involves the transcription factor FOXO1. Type 1 diabetes was induced by streptozotocin in mice with FOXO1 deletion in chondrocytes (Col2α1Cre(+).FOXO1(L/L)) or littermate controls (Col2α1Cre(−).FOXO1(L/L)) and closed femoral fractures induced. Diabetic mice had 77% less cartilage and 30% less bone than normoglycemics evaluated histologically and by micro-computed tomography. Both were reversed with lineage-specific FOXO1 ablation. Diabetic mice had a threefold increase in osteoclasts and a two- to threefold increase in RANKL mRNA or RANKL-expressing chondrocytes compared with normoglycemics. Both parameters were rescued by FOXO1 ablation in chondrocytes. Conditions present in diabetes, high glucose (HG), and increased advanced glycation end products (AGEs) stimulated FOXO1 association with the RANKL promoter in vitro, and overexpression of FOXO1 increased RANKL promoter activity in luciferase reporter assays. HG and AGE stimulated FOXO1 nuclear localization, which was reversed by insulin and inhibitors of TLR4, histone deacetylase, nitric oxide, and reactive oxygen species. The results indicate that chondrocytes play a prominent role in diabetes-impaired fracture healing and that high levels of glucose, AGEs, and tumor necrosis factor-α, which are elevated by diabetes, alter RANKL expression in chondrocytes via FOXO1.
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spelling pubmed-62452262019-12-01 FOXO1 Deletion Reverses the Effect of Diabetic-Induced Impaired Fracture Healing Alharbi, Mohammed A. Zhang, Citong Lu, Chanyi Milovanova, Tatyana N. Yi, Leah Ryu, Je Dong Jiao, Hongli Dong, Guangyu O’Connor, J. Patrick Graves, Dana T. Diabetes Complications Type 1 diabetes impairs fracture healing. We tested the hypothesis that diabetes affects chondrocytes to impair fracture healing through a mechanism that involves the transcription factor FOXO1. Type 1 diabetes was induced by streptozotocin in mice with FOXO1 deletion in chondrocytes (Col2α1Cre(+).FOXO1(L/L)) or littermate controls (Col2α1Cre(−).FOXO1(L/L)) and closed femoral fractures induced. Diabetic mice had 77% less cartilage and 30% less bone than normoglycemics evaluated histologically and by micro-computed tomography. Both were reversed with lineage-specific FOXO1 ablation. Diabetic mice had a threefold increase in osteoclasts and a two- to threefold increase in RANKL mRNA or RANKL-expressing chondrocytes compared with normoglycemics. Both parameters were rescued by FOXO1 ablation in chondrocytes. Conditions present in diabetes, high glucose (HG), and increased advanced glycation end products (AGEs) stimulated FOXO1 association with the RANKL promoter in vitro, and overexpression of FOXO1 increased RANKL promoter activity in luciferase reporter assays. HG and AGE stimulated FOXO1 nuclear localization, which was reversed by insulin and inhibitors of TLR4, histone deacetylase, nitric oxide, and reactive oxygen species. The results indicate that chondrocytes play a prominent role in diabetes-impaired fracture healing and that high levels of glucose, AGEs, and tumor necrosis factor-α, which are elevated by diabetes, alter RANKL expression in chondrocytes via FOXO1. American Diabetes Association 2018-12 2018-10-02 /pmc/articles/PMC6245226/ /pubmed/30279162 http://dx.doi.org/10.2337/db18-0340 Text en © 2018 by the American Diabetes Association. http://www.diabetesjournals.org/content/licenseReaders may use this article as long as the work is properly cited, the use is educational and not for profit, and the work is not altered. More information is available at http://www.diabetesjournals.org/content/license.
spellingShingle Complications
Alharbi, Mohammed A.
Zhang, Citong
Lu, Chanyi
Milovanova, Tatyana N.
Yi, Leah
Ryu, Je Dong
Jiao, Hongli
Dong, Guangyu
O’Connor, J. Patrick
Graves, Dana T.
FOXO1 Deletion Reverses the Effect of Diabetic-Induced Impaired Fracture Healing
title FOXO1 Deletion Reverses the Effect of Diabetic-Induced Impaired Fracture Healing
title_full FOXO1 Deletion Reverses the Effect of Diabetic-Induced Impaired Fracture Healing
title_fullStr FOXO1 Deletion Reverses the Effect of Diabetic-Induced Impaired Fracture Healing
title_full_unstemmed FOXO1 Deletion Reverses the Effect of Diabetic-Induced Impaired Fracture Healing
title_short FOXO1 Deletion Reverses the Effect of Diabetic-Induced Impaired Fracture Healing
title_sort foxo1 deletion reverses the effect of diabetic-induced impaired fracture healing
topic Complications
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6245226/
https://www.ncbi.nlm.nih.gov/pubmed/30279162
http://dx.doi.org/10.2337/db18-0340
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