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Angiogenic Modification of Microfibrous Polycaprolactone by pCMV-VEGF165 Plasmid Promotes Local Vascular Growth after Implantation in Rats

Insufficient vascular growth in the area of artificial-material implantation contributes to ischemia, fibrosis, the development of bacterial infections, and tissue necrosis around the graft. The purpose of this study was to evaluate angiogenesis after implantation of polycaprolactone microfiber scaf...

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Autores principales: Klabukov, Ilya, Balyasin, Maksim, Krasilnikova, Olga, Tenchurin, Timur, Titov, Alexander, Krasheninnikov, Mikhail, Mudryak, Daniil, Sulina, Yana, Shepelev, Alexey, Chvalun, Sergei, Dyuzheva, Tatiana, Yakimova, Anna, Sosin, Dmitry, Lyundup, Alexey, Baranovskii, Denis, Shegay, Peter, Kaprin, Andrey
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9865169/
https://www.ncbi.nlm.nih.gov/pubmed/36674913
http://dx.doi.org/10.3390/ijms24021399
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author Klabukov, Ilya
Balyasin, Maksim
Krasilnikova, Olga
Tenchurin, Timur
Titov, Alexander
Krasheninnikov, Mikhail
Mudryak, Daniil
Sulina, Yana
Shepelev, Alexey
Chvalun, Sergei
Dyuzheva, Tatiana
Yakimova, Anna
Sosin, Dmitry
Lyundup, Alexey
Baranovskii, Denis
Shegay, Peter
Kaprin, Andrey
author_facet Klabukov, Ilya
Balyasin, Maksim
Krasilnikova, Olga
Tenchurin, Timur
Titov, Alexander
Krasheninnikov, Mikhail
Mudryak, Daniil
Sulina, Yana
Shepelev, Alexey
Chvalun, Sergei
Dyuzheva, Tatiana
Yakimova, Anna
Sosin, Dmitry
Lyundup, Alexey
Baranovskii, Denis
Shegay, Peter
Kaprin, Andrey
author_sort Klabukov, Ilya
collection PubMed
description Insufficient vascular growth in the area of artificial-material implantation contributes to ischemia, fibrosis, the development of bacterial infections, and tissue necrosis around the graft. The purpose of this study was to evaluate angiogenesis after implantation of polycaprolactone microfiber scaffolds modified by a pCMV-VEGF165-plasmid in rats. Influence of vascularization on scaffold degradation was also examined. We investigated flat microfibrous scaffolds obtained by electrospinning polycaprolactone with incorporation of the pCMV-VEGF-165 plasmid into the microfibers at concentrations of 0.005 ng of plasmid per 1 mg of polycaprolactone (0.005 ng/mg) (LCGroup) and 0.05 ng/mg (HCGroup). The samples were subcutaneously implanted in the interscapular area of rats. On days 7, 16, 33, 46, and 64, the scaffolds were removed, and a histological study with a morphometric evaluation of the density and diameter of the vessels and microfiber diameter was performed. The number of vessels was increased in all groups, as well as the resorption of the scaffold. On day 33, the vascular density in the HCGroup was 42% higher compared to the control group (p = 0.0344). The dose-dependent effect of the pCMV-VEGF165-plasmid was confirmed by enhanced angiogenesis in the HCGroup compared to the LCGroup on day 33 (p-value = 0.0259). We did not find a statistically significant correlation between scaffold degradation rate and vessel growth (the Pearson correlation coefficient was ρ = 0.20, p-value = 0.6134). Functionalization of polycaprolactone by incorporation of the pCMV-VEGF165 plasmid provided improved vascularization within 33 days after implantation, however, vessel growth did not seem to correlate with scaffold degradation rate.
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spelling pubmed-98651692023-01-22 Angiogenic Modification of Microfibrous Polycaprolactone by pCMV-VEGF165 Plasmid Promotes Local Vascular Growth after Implantation in Rats Klabukov, Ilya Balyasin, Maksim Krasilnikova, Olga Tenchurin, Timur Titov, Alexander Krasheninnikov, Mikhail Mudryak, Daniil Sulina, Yana Shepelev, Alexey Chvalun, Sergei Dyuzheva, Tatiana Yakimova, Anna Sosin, Dmitry Lyundup, Alexey Baranovskii, Denis Shegay, Peter Kaprin, Andrey Int J Mol Sci Article Insufficient vascular growth in the area of artificial-material implantation contributes to ischemia, fibrosis, the development of bacterial infections, and tissue necrosis around the graft. The purpose of this study was to evaluate angiogenesis after implantation of polycaprolactone microfiber scaffolds modified by a pCMV-VEGF165-plasmid in rats. Influence of vascularization on scaffold degradation was also examined. We investigated flat microfibrous scaffolds obtained by electrospinning polycaprolactone with incorporation of the pCMV-VEGF-165 plasmid into the microfibers at concentrations of 0.005 ng of plasmid per 1 mg of polycaprolactone (0.005 ng/mg) (LCGroup) and 0.05 ng/mg (HCGroup). The samples were subcutaneously implanted in the interscapular area of rats. On days 7, 16, 33, 46, and 64, the scaffolds were removed, and a histological study with a morphometric evaluation of the density and diameter of the vessels and microfiber diameter was performed. The number of vessels was increased in all groups, as well as the resorption of the scaffold. On day 33, the vascular density in the HCGroup was 42% higher compared to the control group (p = 0.0344). The dose-dependent effect of the pCMV-VEGF165-plasmid was confirmed by enhanced angiogenesis in the HCGroup compared to the LCGroup on day 33 (p-value = 0.0259). We did not find a statistically significant correlation between scaffold degradation rate and vessel growth (the Pearson correlation coefficient was ρ = 0.20, p-value = 0.6134). Functionalization of polycaprolactone by incorporation of the pCMV-VEGF165 plasmid provided improved vascularization within 33 days after implantation, however, vessel growth did not seem to correlate with scaffold degradation rate. MDPI 2023-01-11 /pmc/articles/PMC9865169/ /pubmed/36674913 http://dx.doi.org/10.3390/ijms24021399 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Klabukov, Ilya
Balyasin, Maksim
Krasilnikova, Olga
Tenchurin, Timur
Titov, Alexander
Krasheninnikov, Mikhail
Mudryak, Daniil
Sulina, Yana
Shepelev, Alexey
Chvalun, Sergei
Dyuzheva, Tatiana
Yakimova, Anna
Sosin, Dmitry
Lyundup, Alexey
Baranovskii, Denis
Shegay, Peter
Kaprin, Andrey
Angiogenic Modification of Microfibrous Polycaprolactone by pCMV-VEGF165 Plasmid Promotes Local Vascular Growth after Implantation in Rats
title Angiogenic Modification of Microfibrous Polycaprolactone by pCMV-VEGF165 Plasmid Promotes Local Vascular Growth after Implantation in Rats
title_full Angiogenic Modification of Microfibrous Polycaprolactone by pCMV-VEGF165 Plasmid Promotes Local Vascular Growth after Implantation in Rats
title_fullStr Angiogenic Modification of Microfibrous Polycaprolactone by pCMV-VEGF165 Plasmid Promotes Local Vascular Growth after Implantation in Rats
title_full_unstemmed Angiogenic Modification of Microfibrous Polycaprolactone by pCMV-VEGF165 Plasmid Promotes Local Vascular Growth after Implantation in Rats
title_short Angiogenic Modification of Microfibrous Polycaprolactone by pCMV-VEGF165 Plasmid Promotes Local Vascular Growth after Implantation in Rats
title_sort angiogenic modification of microfibrous polycaprolactone by pcmv-vegf165 plasmid promotes local vascular growth after implantation in rats
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9865169/
https://www.ncbi.nlm.nih.gov/pubmed/36674913
http://dx.doi.org/10.3390/ijms24021399
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