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MicroRNA-133a impairs perfusion recovery after hindlimb ischemia in diabetic mice

Objective: Peripheral arterial disease (PAD) patients with diabetes mellitus suffer from impaired neovascularization after ischemia which results in poorer outcomes. MicroRNA (miR)-133a is excessively expressed in endothelial cells under diabetic conditions. Here, we test whether diabetes-induced mi...

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Autores principales: Chen, Lingdan, Liu, Chunli, Sun, Dejun, Wang, Tao, Zhao, Li, Chen, Wenli, Yuan, Mingjie, Wang, Jian, Lu, Wenju
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Portland Press Ltd. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6028757/
https://www.ncbi.nlm.nih.gov/pubmed/29789398
http://dx.doi.org/10.1042/BSR20180346
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author Chen, Lingdan
Liu, Chunli
Sun, Dejun
Wang, Tao
Zhao, Li
Chen, Wenli
Yuan, Mingjie
Wang, Jian
Lu, Wenju
author_facet Chen, Lingdan
Liu, Chunli
Sun, Dejun
Wang, Tao
Zhao, Li
Chen, Wenli
Yuan, Mingjie
Wang, Jian
Lu, Wenju
author_sort Chen, Lingdan
collection PubMed
description Objective: Peripheral arterial disease (PAD) patients with diabetes mellitus suffer from impaired neovascularization after ischemia which results in poorer outcomes. MicroRNA (miR)-133a is excessively expressed in endothelial cells under diabetic conditions. Here, we test whether diabetes-induced miR-133a up-regulation is involved in the impaired capability of neovascularization in experimental PAD models. Methods and results: MiR-133a level was measured by quantitative RT-PCR and showed a higher expression level in the ischemic muscle from diabetic mice when compared with nondiabetic mice. Knockdown of miR-133a using antagomir improved perfusion recovery and angiogenesis in experimental PAD model with diabetes day 21 after HLI. On the other hand, overexpression of miR-133a impaired perfusion recovery. Ischemic muscle was harvested day 7 after experimental PAD for biochemical test, miR-133a antagonism resulted in reduced malondialdehyde, and it increased GTP cyclohydrolase 1 (GCH1), and cyclic guanine monophosphate (cGMP) levels. In cultured endothelial cells, miR-133a antagonism resulted in reduced reactive oxygen species level, and it increased tube formation, nitric oxide (NO), and cGMP level. Moreover, miR-133a antagonism-induced angiogenesis was abolished by GCH1 inhibitor. In contrary, miR-133a overexpression impairs angiogenesis and it reduces GCH1, NO, and cGMP levels in nondiabetic models. Conclusion: Diabetes mellitus-induced miR-133a up-regulation impairs angiogenesis in PAD by reducing NO synthesis in endothelial cells. MiR-133a antagonism improves postischemic angiogenesis.
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spelling pubmed-60287572018-07-17 MicroRNA-133a impairs perfusion recovery after hindlimb ischemia in diabetic mice Chen, Lingdan Liu, Chunli Sun, Dejun Wang, Tao Zhao, Li Chen, Wenli Yuan, Mingjie Wang, Jian Lu, Wenju Biosci Rep Research Articles Objective: Peripheral arterial disease (PAD) patients with diabetes mellitus suffer from impaired neovascularization after ischemia which results in poorer outcomes. MicroRNA (miR)-133a is excessively expressed in endothelial cells under diabetic conditions. Here, we test whether diabetes-induced miR-133a up-regulation is involved in the impaired capability of neovascularization in experimental PAD models. Methods and results: MiR-133a level was measured by quantitative RT-PCR and showed a higher expression level in the ischemic muscle from diabetic mice when compared with nondiabetic mice. Knockdown of miR-133a using antagomir improved perfusion recovery and angiogenesis in experimental PAD model with diabetes day 21 after HLI. On the other hand, overexpression of miR-133a impaired perfusion recovery. Ischemic muscle was harvested day 7 after experimental PAD for biochemical test, miR-133a antagonism resulted in reduced malondialdehyde, and it increased GTP cyclohydrolase 1 (GCH1), and cyclic guanine monophosphate (cGMP) levels. In cultured endothelial cells, miR-133a antagonism resulted in reduced reactive oxygen species level, and it increased tube formation, nitric oxide (NO), and cGMP level. Moreover, miR-133a antagonism-induced angiogenesis was abolished by GCH1 inhibitor. In contrary, miR-133a overexpression impairs angiogenesis and it reduces GCH1, NO, and cGMP levels in nondiabetic models. Conclusion: Diabetes mellitus-induced miR-133a up-regulation impairs angiogenesis in PAD by reducing NO synthesis in endothelial cells. MiR-133a antagonism improves postischemic angiogenesis. Portland Press Ltd. 2018-07-03 /pmc/articles/PMC6028757/ /pubmed/29789398 http://dx.doi.org/10.1042/BSR20180346 Text en © 2018 The Author(s). http://creativecommons.org/licenses/by/4.0/This is an open access article published by Portland Press Limited on behalf of the Biochemical Society and distributed under the Creative Commons Attribution License 4.0 (CC BY) (http://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Articles
Chen, Lingdan
Liu, Chunli
Sun, Dejun
Wang, Tao
Zhao, Li
Chen, Wenli
Yuan, Mingjie
Wang, Jian
Lu, Wenju
MicroRNA-133a impairs perfusion recovery after hindlimb ischemia in diabetic mice
title MicroRNA-133a impairs perfusion recovery after hindlimb ischemia in diabetic mice
title_full MicroRNA-133a impairs perfusion recovery after hindlimb ischemia in diabetic mice
title_fullStr MicroRNA-133a impairs perfusion recovery after hindlimb ischemia in diabetic mice
title_full_unstemmed MicroRNA-133a impairs perfusion recovery after hindlimb ischemia in diabetic mice
title_short MicroRNA-133a impairs perfusion recovery after hindlimb ischemia in diabetic mice
title_sort microrna-133a impairs perfusion recovery after hindlimb ischemia in diabetic mice
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6028757/
https://www.ncbi.nlm.nih.gov/pubmed/29789398
http://dx.doi.org/10.1042/BSR20180346
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