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Enhanced Cerebral but Not Peripheral Angiogenesis in the Goto-Kakizaki Model of Type 2 Diabetes Involves VEGF and Peroxynitrite Signaling

We previously reported enhanced cerebrovascular remodeling and arteriogenesis in experimental type 2 diabetes. This study tested the hypotheses that 1) cerebral but not peripheral angiogenesis is increased in a spatial manner and 2) peroxynitrite orchestrates vascular endothelial growth factor (VEGF...

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Autores principales: Prakash, Roshini, Somanath, Payaningal R., El-Remessy, Azza B., Kelly-Cobbs, Aisha, Stern, Javier E., Dore-Duffy, Paula, Johnson, Maribeth, Fagan, Susan C., Ergul, Adviye
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Diabetes Association 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3357273/
https://www.ncbi.nlm.nih.gov/pubmed/22403298
http://dx.doi.org/10.2337/db11-1528
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author Prakash, Roshini
Somanath, Payaningal R.
El-Remessy, Azza B.
Kelly-Cobbs, Aisha
Stern, Javier E.
Dore-Duffy, Paula
Johnson, Maribeth
Fagan, Susan C.
Ergul, Adviye
author_facet Prakash, Roshini
Somanath, Payaningal R.
El-Remessy, Azza B.
Kelly-Cobbs, Aisha
Stern, Javier E.
Dore-Duffy, Paula
Johnson, Maribeth
Fagan, Susan C.
Ergul, Adviye
author_sort Prakash, Roshini
collection PubMed
description We previously reported enhanced cerebrovascular remodeling and arteriogenesis in experimental type 2 diabetes. This study tested the hypotheses that 1) cerebral but not peripheral angiogenesis is increased in a spatial manner and 2) peroxynitrite orchestrates vascular endothelial growth factor (VEGF)-mediated brain angiogenesis in diabetes. Stereology of brain, eye, and skeletal muscle microvasculature was evaluated in control and diabetic rats using three-dimensional images. Migration and tube formation properties of brain microvascular endothelial cells (BMECs) were analyzed as markers of angiogenesis. Vascular density, volume, and surface area were progressively increased from rostral to caudal sections in both the cerebral cortex and striatum in diabetic rats. Unperfused new vessels were more prominent and the pericyte–to–endothelial cell ratio was decreased in diabetes. Vascularization was greater in the retina but lower in the peripheral circulation. VEGF and nitrotyrosine levels were higher in cerebral microvessels of diabetic animals. Migratory and tube formation properties were enhanced in BMECs from diabetic rats, which also expressed high levels of basal VEGF, nitrotyrosine, and membrane-type (MT1) matrix metalloprotease (MMP). VEGF-neutralizing antibody and inhibitors of peroxynitrite, src kinase, or MMP blocked the migration. Diabetes increases and spatially regulates cerebral neovascularization. Increased VEGF-dependent angiogenic function in BMECs is mediated by peroxynitrite and involves c-src and MT1-MMP activation.
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spelling pubmed-33572732013-06-01 Enhanced Cerebral but Not Peripheral Angiogenesis in the Goto-Kakizaki Model of Type 2 Diabetes Involves VEGF and Peroxynitrite Signaling Prakash, Roshini Somanath, Payaningal R. El-Remessy, Azza B. Kelly-Cobbs, Aisha Stern, Javier E. Dore-Duffy, Paula Johnson, Maribeth Fagan, Susan C. Ergul, Adviye Diabetes Pathophysiology We previously reported enhanced cerebrovascular remodeling and arteriogenesis in experimental type 2 diabetes. This study tested the hypotheses that 1) cerebral but not peripheral angiogenesis is increased in a spatial manner and 2) peroxynitrite orchestrates vascular endothelial growth factor (VEGF)-mediated brain angiogenesis in diabetes. Stereology of brain, eye, and skeletal muscle microvasculature was evaluated in control and diabetic rats using three-dimensional images. Migration and tube formation properties of brain microvascular endothelial cells (BMECs) were analyzed as markers of angiogenesis. Vascular density, volume, and surface area were progressively increased from rostral to caudal sections in both the cerebral cortex and striatum in diabetic rats. Unperfused new vessels were more prominent and the pericyte–to–endothelial cell ratio was decreased in diabetes. Vascularization was greater in the retina but lower in the peripheral circulation. VEGF and nitrotyrosine levels were higher in cerebral microvessels of diabetic animals. Migratory and tube formation properties were enhanced in BMECs from diabetic rats, which also expressed high levels of basal VEGF, nitrotyrosine, and membrane-type (MT1) matrix metalloprotease (MMP). VEGF-neutralizing antibody and inhibitors of peroxynitrite, src kinase, or MMP blocked the migration. Diabetes increases and spatially regulates cerebral neovascularization. Increased VEGF-dependent angiogenic function in BMECs is mediated by peroxynitrite and involves c-src and MT1-MMP activation. American Diabetes Association 2012-06 2012-05-12 /pmc/articles/PMC3357273/ /pubmed/22403298 http://dx.doi.org/10.2337/db11-1528 Text en © 2012 by the American Diabetes Association. Readers 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. See http://creativecommons.org/licenses/by-nc-nd/3.0/ for details.
spellingShingle Pathophysiology
Prakash, Roshini
Somanath, Payaningal R.
El-Remessy, Azza B.
Kelly-Cobbs, Aisha
Stern, Javier E.
Dore-Duffy, Paula
Johnson, Maribeth
Fagan, Susan C.
Ergul, Adviye
Enhanced Cerebral but Not Peripheral Angiogenesis in the Goto-Kakizaki Model of Type 2 Diabetes Involves VEGF and Peroxynitrite Signaling
title Enhanced Cerebral but Not Peripheral Angiogenesis in the Goto-Kakizaki Model of Type 2 Diabetes Involves VEGF and Peroxynitrite Signaling
title_full Enhanced Cerebral but Not Peripheral Angiogenesis in the Goto-Kakizaki Model of Type 2 Diabetes Involves VEGF and Peroxynitrite Signaling
title_fullStr Enhanced Cerebral but Not Peripheral Angiogenesis in the Goto-Kakizaki Model of Type 2 Diabetes Involves VEGF and Peroxynitrite Signaling
title_full_unstemmed Enhanced Cerebral but Not Peripheral Angiogenesis in the Goto-Kakizaki Model of Type 2 Diabetes Involves VEGF and Peroxynitrite Signaling
title_short Enhanced Cerebral but Not Peripheral Angiogenesis in the Goto-Kakizaki Model of Type 2 Diabetes Involves VEGF and Peroxynitrite Signaling
title_sort enhanced cerebral but not peripheral angiogenesis in the goto-kakizaki model of type 2 diabetes involves vegf and peroxynitrite signaling
topic Pathophysiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3357273/
https://www.ncbi.nlm.nih.gov/pubmed/22403298
http://dx.doi.org/10.2337/db11-1528
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