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Magnetic Nanofibrous Scaffolds Accelerate the Regeneration of Muscle Tissue in Combination with Extra Magnetic Fields

The reversal of loss of the critical size of skeletal muscle is urgently required using biomaterial scaffolds to guide tissue regeneration. In this work, coaxial electrospun magnetic nanofibrous scaffolds were fabricated, with gelatin (Gel) as the shell of the fiber and polyurethane (PU) as the core...

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Autores principales: Hu, Xuechun, Liu, Wenhao, Sun, Lihong, Xu, Shilin, Wang, Tao, Meng, Jie, Wen, Tao, Liu, Qingqiao, Liu, Jian, Xu, Haiyan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9025939/
https://www.ncbi.nlm.nih.gov/pubmed/35457258
http://dx.doi.org/10.3390/ijms23084440
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author Hu, Xuechun
Liu, Wenhao
Sun, Lihong
Xu, Shilin
Wang, Tao
Meng, Jie
Wen, Tao
Liu, Qingqiao
Liu, Jian
Xu, Haiyan
author_facet Hu, Xuechun
Liu, Wenhao
Sun, Lihong
Xu, Shilin
Wang, Tao
Meng, Jie
Wen, Tao
Liu, Qingqiao
Liu, Jian
Xu, Haiyan
author_sort Hu, Xuechun
collection PubMed
description The reversal of loss of the critical size of skeletal muscle is urgently required using biomaterial scaffolds to guide tissue regeneration. In this work, coaxial electrospun magnetic nanofibrous scaffolds were fabricated, with gelatin (Gel) as the shell of the fiber and polyurethane (PU) as the core. Iron oxide nanoparticles (Mag) of 10 nm diameter were added to the shell and core layer. Myoblast cells (C2C12) were cultured on the magnetic scaffolds and exposed to the applied magnetic fields. A mouse model of skeletal muscle injury was used to evaluate the repair guided by the scaffolds under the magnetic fields. It was shown that VEGF secretion and MyoG expression for the myoblast cells grown on the magnetic scaffolds under the magnetic fields were significantly increased, while, the gene expression of Myh4 was up-regulated. Results from an in vivo study indicated that the process of skeletal muscle regeneration in the mouse muscle injury model was accelerated by using the magnetic actuated strategy, which was verified by histochemical analysis, immunofluorescence staining of CD31, electrophysiological measurement and ultrasound imaging. In conclusion, the integration of a magnetic scaffold combined with the extra magnetic fields enhanced myoblast differentiation and VEGF secretion and accelerated the defect repair of skeletal muscle in situ.
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spelling pubmed-90259392022-04-23 Magnetic Nanofibrous Scaffolds Accelerate the Regeneration of Muscle Tissue in Combination with Extra Magnetic Fields Hu, Xuechun Liu, Wenhao Sun, Lihong Xu, Shilin Wang, Tao Meng, Jie Wen, Tao Liu, Qingqiao Liu, Jian Xu, Haiyan Int J Mol Sci Article The reversal of loss of the critical size of skeletal muscle is urgently required using biomaterial scaffolds to guide tissue regeneration. In this work, coaxial electrospun magnetic nanofibrous scaffolds were fabricated, with gelatin (Gel) as the shell of the fiber and polyurethane (PU) as the core. Iron oxide nanoparticles (Mag) of 10 nm diameter were added to the shell and core layer. Myoblast cells (C2C12) were cultured on the magnetic scaffolds and exposed to the applied magnetic fields. A mouse model of skeletal muscle injury was used to evaluate the repair guided by the scaffolds under the magnetic fields. It was shown that VEGF secretion and MyoG expression for the myoblast cells grown on the magnetic scaffolds under the magnetic fields were significantly increased, while, the gene expression of Myh4 was up-regulated. Results from an in vivo study indicated that the process of skeletal muscle regeneration in the mouse muscle injury model was accelerated by using the magnetic actuated strategy, which was verified by histochemical analysis, immunofluorescence staining of CD31, electrophysiological measurement and ultrasound imaging. In conclusion, the integration of a magnetic scaffold combined with the extra magnetic fields enhanced myoblast differentiation and VEGF secretion and accelerated the defect repair of skeletal muscle in situ. MDPI 2022-04-18 /pmc/articles/PMC9025939/ /pubmed/35457258 http://dx.doi.org/10.3390/ijms23084440 Text en © 2022 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
Hu, Xuechun
Liu, Wenhao
Sun, Lihong
Xu, Shilin
Wang, Tao
Meng, Jie
Wen, Tao
Liu, Qingqiao
Liu, Jian
Xu, Haiyan
Magnetic Nanofibrous Scaffolds Accelerate the Regeneration of Muscle Tissue in Combination with Extra Magnetic Fields
title Magnetic Nanofibrous Scaffolds Accelerate the Regeneration of Muscle Tissue in Combination with Extra Magnetic Fields
title_full Magnetic Nanofibrous Scaffolds Accelerate the Regeneration of Muscle Tissue in Combination with Extra Magnetic Fields
title_fullStr Magnetic Nanofibrous Scaffolds Accelerate the Regeneration of Muscle Tissue in Combination with Extra Magnetic Fields
title_full_unstemmed Magnetic Nanofibrous Scaffolds Accelerate the Regeneration of Muscle Tissue in Combination with Extra Magnetic Fields
title_short Magnetic Nanofibrous Scaffolds Accelerate the Regeneration of Muscle Tissue in Combination with Extra Magnetic Fields
title_sort magnetic nanofibrous scaffolds accelerate the regeneration of muscle tissue in combination with extra magnetic fields
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9025939/
https://www.ncbi.nlm.nih.gov/pubmed/35457258
http://dx.doi.org/10.3390/ijms23084440
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