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Local sustained delivery of acetylsalicylic acid via hybrid stent with biodegradable nanofibers reduces adhesion of blood cells and promotes reendothelialization of the denuded artery

Incomplete endothelialization, blood cell adhesion to vascular stents, and inflammation of arteries can result in acute stent thromboses. The systemic administration of acetylsalicylic acid decreases endothelial dysfunction, potentially reducing thrombus, enhancing vasodilatation, and inhibiting the...

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Autores principales: Lee, Cheng-Hung, Lin, Yu-Huang, Chang, Shang-Hung, Tai, Chun-Der, Liu, Shih-Jung, Chu, Yen, Wang, Chao-Jan, Hsu, Ming-Yi, Chang, Hung, Chang, Gwo-Jyh, Hung, Kuo-Chun, Hsieh, Ming-Jer, Lin, Fen-Chiung, Hsieh, I-Chang, Wen, Ming-Shien, Huang, Yenlin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove Medical Press 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3888352/
https://www.ncbi.nlm.nih.gov/pubmed/24421640
http://dx.doi.org/10.2147/IJN.S51258
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author Lee, Cheng-Hung
Lin, Yu-Huang
Chang, Shang-Hung
Tai, Chun-Der
Liu, Shih-Jung
Chu, Yen
Wang, Chao-Jan
Hsu, Ming-Yi
Chang, Hung
Chang, Gwo-Jyh
Hung, Kuo-Chun
Hsieh, Ming-Jer
Lin, Fen-Chiung
Hsieh, I-Chang
Wen, Ming-Shien
Huang, Yenlin
author_facet Lee, Cheng-Hung
Lin, Yu-Huang
Chang, Shang-Hung
Tai, Chun-Der
Liu, Shih-Jung
Chu, Yen
Wang, Chao-Jan
Hsu, Ming-Yi
Chang, Hung
Chang, Gwo-Jyh
Hung, Kuo-Chun
Hsieh, Ming-Jer
Lin, Fen-Chiung
Hsieh, I-Chang
Wen, Ming-Shien
Huang, Yenlin
author_sort Lee, Cheng-Hung
collection PubMed
description Incomplete endothelialization, blood cell adhesion to vascular stents, and inflammation of arteries can result in acute stent thromboses. The systemic administration of acetylsalicylic acid decreases endothelial dysfunction, potentially reducing thrombus, enhancing vasodilatation, and inhibiting the progression of atherosclerosis; but, this is weakened by upper gastrointestinal bleeding. This study proposes a hybrid stent with biodegradable nanofibers, for the local, sustained delivery of acetylsalicylic acid to injured artery walls. Biodegradable nanofibers are prepared by first dissolving poly(D,L)-lactide-co-glycolide and acetylsalicylic acid in 1,1,1,3,3,3-hexafluoro-2-propanol. The solution is then electrospun into nanofibrous tubes, which are then mounted onto commercially available bare-metal stents. In vitro release rates of pharmaceuticals from nanofibers are characterized using an elution method, and a highperformance liquid chromatography assay. The experimental results suggest that biodegradable nanofibers release high concentrations of acetylsalicylic acid for three weeks. The in vivo efficacy of local delivery of acetylsalicylic acid in reducing platelet and monocyte adhesion, and the minimum tissue inflammatory reaction caused by the hybrid stents in treating denuded rabbit arteries, are documented. The proposed hybrid stent, with biodegradable acetylsalicylic acid-loaded nanofibers, substantially contributed to local, sustained delivery of drugs to promote re-endothelialization and reduce thrombogenicity in the injured artery. The stents may have potential applications in the local delivery of cardiovascular drugs. Furthermore, the use of hybrid stents with acetylsalicylic acid-loaded nanofibers that have high drug loadings may provide insight into the treatment of patients with high risk of acute stent thromboses.
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spelling pubmed-38883522014-01-13 Local sustained delivery of acetylsalicylic acid via hybrid stent with biodegradable nanofibers reduces adhesion of blood cells and promotes reendothelialization of the denuded artery Lee, Cheng-Hung Lin, Yu-Huang Chang, Shang-Hung Tai, Chun-Der Liu, Shih-Jung Chu, Yen Wang, Chao-Jan Hsu, Ming-Yi Chang, Hung Chang, Gwo-Jyh Hung, Kuo-Chun Hsieh, Ming-Jer Lin, Fen-Chiung Hsieh, I-Chang Wen, Ming-Shien Huang, Yenlin Int J Nanomedicine Original Research Incomplete endothelialization, blood cell adhesion to vascular stents, and inflammation of arteries can result in acute stent thromboses. The systemic administration of acetylsalicylic acid decreases endothelial dysfunction, potentially reducing thrombus, enhancing vasodilatation, and inhibiting the progression of atherosclerosis; but, this is weakened by upper gastrointestinal bleeding. This study proposes a hybrid stent with biodegradable nanofibers, for the local, sustained delivery of acetylsalicylic acid to injured artery walls. Biodegradable nanofibers are prepared by first dissolving poly(D,L)-lactide-co-glycolide and acetylsalicylic acid in 1,1,1,3,3,3-hexafluoro-2-propanol. The solution is then electrospun into nanofibrous tubes, which are then mounted onto commercially available bare-metal stents. In vitro release rates of pharmaceuticals from nanofibers are characterized using an elution method, and a highperformance liquid chromatography assay. The experimental results suggest that biodegradable nanofibers release high concentrations of acetylsalicylic acid for three weeks. The in vivo efficacy of local delivery of acetylsalicylic acid in reducing platelet and monocyte adhesion, and the minimum tissue inflammatory reaction caused by the hybrid stents in treating denuded rabbit arteries, are documented. The proposed hybrid stent, with biodegradable acetylsalicylic acid-loaded nanofibers, substantially contributed to local, sustained delivery of drugs to promote re-endothelialization and reduce thrombogenicity in the injured artery. The stents may have potential applications in the local delivery of cardiovascular drugs. Furthermore, the use of hybrid stents with acetylsalicylic acid-loaded nanofibers that have high drug loadings may provide insight into the treatment of patients with high risk of acute stent thromboses. Dove Medical Press 2014-01-06 /pmc/articles/PMC3888352/ /pubmed/24421640 http://dx.doi.org/10.2147/IJN.S51258 Text en © 2014 Lee et al. This work is published by Dove Medical Press Limited, and licensed under Creative Commons Attribution – Non Commercial (unported, v3.0) License The full terms of the License are available at http://creativecommons.org/licenses/by-nc/3.0/. Non-commercial uses of the work are permitted without any further permission from Dove Medical Press Limited, provided the work is properly attributed.
spellingShingle Original Research
Lee, Cheng-Hung
Lin, Yu-Huang
Chang, Shang-Hung
Tai, Chun-Der
Liu, Shih-Jung
Chu, Yen
Wang, Chao-Jan
Hsu, Ming-Yi
Chang, Hung
Chang, Gwo-Jyh
Hung, Kuo-Chun
Hsieh, Ming-Jer
Lin, Fen-Chiung
Hsieh, I-Chang
Wen, Ming-Shien
Huang, Yenlin
Local sustained delivery of acetylsalicylic acid via hybrid stent with biodegradable nanofibers reduces adhesion of blood cells and promotes reendothelialization of the denuded artery
title Local sustained delivery of acetylsalicylic acid via hybrid stent with biodegradable nanofibers reduces adhesion of blood cells and promotes reendothelialization of the denuded artery
title_full Local sustained delivery of acetylsalicylic acid via hybrid stent with biodegradable nanofibers reduces adhesion of blood cells and promotes reendothelialization of the denuded artery
title_fullStr Local sustained delivery of acetylsalicylic acid via hybrid stent with biodegradable nanofibers reduces adhesion of blood cells and promotes reendothelialization of the denuded artery
title_full_unstemmed Local sustained delivery of acetylsalicylic acid via hybrid stent with biodegradable nanofibers reduces adhesion of blood cells and promotes reendothelialization of the denuded artery
title_short Local sustained delivery of acetylsalicylic acid via hybrid stent with biodegradable nanofibers reduces adhesion of blood cells and promotes reendothelialization of the denuded artery
title_sort local sustained delivery of acetylsalicylic acid via hybrid stent with biodegradable nanofibers reduces adhesion of blood cells and promotes reendothelialization of the denuded artery
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3888352/
https://www.ncbi.nlm.nih.gov/pubmed/24421640
http://dx.doi.org/10.2147/IJN.S51258
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