Cargando…

Nano-graphene oxide/polyurethane nanofibers: mechanically flexible and myogenic stimulating matrix for skeletal tissue engineering

For skeletal muscle engineering, scaffolds that can stimulate myogenic differentiation of cells while possessing suitable mechanical properties (e.g. flexibility) are required. In particular, the elastic property of scaffolds is of importance which helps to resist and support the dynamic conditions...

Descripción completa

Detalles Bibliográficos
Autores principales: Jo, Seung Bin, Erdenebileg, Uyanga, Dashnyam, Khandmaa, Jin, Guang-Zhen, Cha, Jae-Ryung, El-Fiqi, Ahmed, Knowles, Jonathan C., Patel, Kapil Dev, Lee, Hae-Hyoung, Lee, Jung-Hwan, Kim, Hae-Won
Formato: Online Artículo Texto
Lenguaje:English
Publicado: SAGE Publications 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7001895/
https://www.ncbi.nlm.nih.gov/pubmed/32076499
http://dx.doi.org/10.1177/2041731419900424
_version_ 1783494305733672960
author Jo, Seung Bin
Erdenebileg, Uyanga
Dashnyam, Khandmaa
Jin, Guang-Zhen
Cha, Jae-Ryung
El-Fiqi, Ahmed
Knowles, Jonathan C.
Patel, Kapil Dev
Lee, Hae-Hyoung
Lee, Jung-Hwan
Kim, Hae-Won
author_facet Jo, Seung Bin
Erdenebileg, Uyanga
Dashnyam, Khandmaa
Jin, Guang-Zhen
Cha, Jae-Ryung
El-Fiqi, Ahmed
Knowles, Jonathan C.
Patel, Kapil Dev
Lee, Hae-Hyoung
Lee, Jung-Hwan
Kim, Hae-Won
author_sort Jo, Seung Bin
collection PubMed
description For skeletal muscle engineering, scaffolds that can stimulate myogenic differentiation of cells while possessing suitable mechanical properties (e.g. flexibility) are required. In particular, the elastic property of scaffolds is of importance which helps to resist and support the dynamic conditions of muscle tissue environment. Here, we developed highly flexible nanocomposite nanofibrous scaffolds made of polycarbonate diol and isosorbide-based polyurethane and hydrophilic nano-graphene oxide added at concentrations up to 8%. The nano-graphene oxide incorporation increased the hydrophilicity, elasticity, and stress relaxation capacity of the polyurethane-derived nanofibrous scaffolds. When cultured with C2C12 cells, the polyurethane–nano-graphene oxide nanofibers enhanced the initial adhesion and spreading of cells and further the proliferation. Furthermore, the polyurethane–nano-graphene oxide scaffolds significantly up-regulated the myogenic mRNA levels and myosin heavy chain expression. Of note, the cells on the flexible polyurethane–nano-graphene oxide nanofibrous scaffolds could be mechanically stretched to experience dynamic tensional force. Under the dynamic force condition, the cells expressed significantly higher myogenic differentiation markers at both gene and protein levels and exhibited more aligned myotubular formation. The currently developed polyurethane–nano-graphene oxide nanofibrous scaffolds, due to their nanofibrous morphology and high mechanical flexibility, along with the stimulating capacity for myogenic differentiation, are considered to be a potential matrix for future skeletal muscle engineering.
format Online
Article
Text
id pubmed-7001895
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher SAGE Publications
record_format MEDLINE/PubMed
spelling pubmed-70018952020-02-19 Nano-graphene oxide/polyurethane nanofibers: mechanically flexible and myogenic stimulating matrix for skeletal tissue engineering Jo, Seung Bin Erdenebileg, Uyanga Dashnyam, Khandmaa Jin, Guang-Zhen Cha, Jae-Ryung El-Fiqi, Ahmed Knowles, Jonathan C. Patel, Kapil Dev Lee, Hae-Hyoung Lee, Jung-Hwan Kim, Hae-Won J Tissue Eng Original Article For skeletal muscle engineering, scaffolds that can stimulate myogenic differentiation of cells while possessing suitable mechanical properties (e.g. flexibility) are required. In particular, the elastic property of scaffolds is of importance which helps to resist and support the dynamic conditions of muscle tissue environment. Here, we developed highly flexible nanocomposite nanofibrous scaffolds made of polycarbonate diol and isosorbide-based polyurethane and hydrophilic nano-graphene oxide added at concentrations up to 8%. The nano-graphene oxide incorporation increased the hydrophilicity, elasticity, and stress relaxation capacity of the polyurethane-derived nanofibrous scaffolds. When cultured with C2C12 cells, the polyurethane–nano-graphene oxide nanofibers enhanced the initial adhesion and spreading of cells and further the proliferation. Furthermore, the polyurethane–nano-graphene oxide scaffolds significantly up-regulated the myogenic mRNA levels and myosin heavy chain expression. Of note, the cells on the flexible polyurethane–nano-graphene oxide nanofibrous scaffolds could be mechanically stretched to experience dynamic tensional force. Under the dynamic force condition, the cells expressed significantly higher myogenic differentiation markers at both gene and protein levels and exhibited more aligned myotubular formation. The currently developed polyurethane–nano-graphene oxide nanofibrous scaffolds, due to their nanofibrous morphology and high mechanical flexibility, along with the stimulating capacity for myogenic differentiation, are considered to be a potential matrix for future skeletal muscle engineering. SAGE Publications 2020-01-23 /pmc/articles/PMC7001895/ /pubmed/32076499 http://dx.doi.org/10.1177/2041731419900424 Text en © The Author(s) 2020 http://creativecommons.org/licenses/by-nc/4.0/ This article is distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 License (http://www.creativecommons.org/licenses/by-nc/4.0/) which permits non-commercial use, reproduction and distribution of the work without further permission provided the original work is attributed as specified on the SAGE and Open Access pages(https://us.sagepub.com/en-us/nam/open-access-at-sage).
spellingShingle Original Article
Jo, Seung Bin
Erdenebileg, Uyanga
Dashnyam, Khandmaa
Jin, Guang-Zhen
Cha, Jae-Ryung
El-Fiqi, Ahmed
Knowles, Jonathan C.
Patel, Kapil Dev
Lee, Hae-Hyoung
Lee, Jung-Hwan
Kim, Hae-Won
Nano-graphene oxide/polyurethane nanofibers: mechanically flexible and myogenic stimulating matrix for skeletal tissue engineering
title Nano-graphene oxide/polyurethane nanofibers: mechanically flexible and myogenic stimulating matrix for skeletal tissue engineering
title_full Nano-graphene oxide/polyurethane nanofibers: mechanically flexible and myogenic stimulating matrix for skeletal tissue engineering
title_fullStr Nano-graphene oxide/polyurethane nanofibers: mechanically flexible and myogenic stimulating matrix for skeletal tissue engineering
title_full_unstemmed Nano-graphene oxide/polyurethane nanofibers: mechanically flexible and myogenic stimulating matrix for skeletal tissue engineering
title_short Nano-graphene oxide/polyurethane nanofibers: mechanically flexible and myogenic stimulating matrix for skeletal tissue engineering
title_sort nano-graphene oxide/polyurethane nanofibers: mechanically flexible and myogenic stimulating matrix for skeletal tissue engineering
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7001895/
https://www.ncbi.nlm.nih.gov/pubmed/32076499
http://dx.doi.org/10.1177/2041731419900424
work_keys_str_mv AT joseungbin nanographeneoxidepolyurethanenanofibersmechanicallyflexibleandmyogenicstimulatingmatrixforskeletaltissueengineering
AT erdenebileguyanga nanographeneoxidepolyurethanenanofibersmechanicallyflexibleandmyogenicstimulatingmatrixforskeletaltissueengineering
AT dashnyamkhandmaa nanographeneoxidepolyurethanenanofibersmechanicallyflexibleandmyogenicstimulatingmatrixforskeletaltissueengineering
AT jinguangzhen nanographeneoxidepolyurethanenanofibersmechanicallyflexibleandmyogenicstimulatingmatrixforskeletaltissueengineering
AT chajaeryung nanographeneoxidepolyurethanenanofibersmechanicallyflexibleandmyogenicstimulatingmatrixforskeletaltissueengineering
AT elfiqiahmed nanographeneoxidepolyurethanenanofibersmechanicallyflexibleandmyogenicstimulatingmatrixforskeletaltissueengineering
AT knowlesjonathanc nanographeneoxidepolyurethanenanofibersmechanicallyflexibleandmyogenicstimulatingmatrixforskeletaltissueengineering
AT patelkapildev nanographeneoxidepolyurethanenanofibersmechanicallyflexibleandmyogenicstimulatingmatrixforskeletaltissueengineering
AT leehaehyoung nanographeneoxidepolyurethanenanofibersmechanicallyflexibleandmyogenicstimulatingmatrixforskeletaltissueengineering
AT leejunghwan nanographeneoxidepolyurethanenanofibersmechanicallyflexibleandmyogenicstimulatingmatrixforskeletaltissueengineering
AT kimhaewon nanographeneoxidepolyurethanenanofibersmechanicallyflexibleandmyogenicstimulatingmatrixforskeletaltissueengineering