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Analysis of Osteoblast Differentiation on Polymer Thin Films Embedded with Carbon Nanotubes

Osteoblast differentiation can be modulated by variations in order of nanoscale topography. Biopolymers embedded with carbon nanotubes can cause various orders of roughness at the nanoscale and can be used to investigate the dynamics of extracellular matrix interaction with cells. In this study, cle...

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Detalles Bibliográficos
Autores principales: Lee, Jin Woo, Park, Jin-Woo, Khang, Dongwoo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4468207/
https://www.ncbi.nlm.nih.gov/pubmed/26076355
http://dx.doi.org/10.1371/journal.pone.0129856
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author Lee, Jin Woo
Park, Jin-Woo
Khang, Dongwoo
author_facet Lee, Jin Woo
Park, Jin-Woo
Khang, Dongwoo
author_sort Lee, Jin Woo
collection PubMed
description Osteoblast differentiation can be modulated by variations in order of nanoscale topography. Biopolymers embedded with carbon nanotubes can cause various orders of roughness at the nanoscale and can be used to investigate the dynamics of extracellular matrix interaction with cells. In this study, clear relationship between the response of osteoblasts to integrin receptor activation, their phenotype, and transcription of certain genes on polymer composites embedded with carbon nanotubes was demonstrated. We generated an ultrathin nanocomposite film embedded with carbon nanotubes and observed improved adhesion of pre-osteoblasts, with a subsequent increase in their proliferation. The expression of genes encoding integrin subunits α(5), α(v), β(1), and β(3) was significantly upregulated at the early of time-point when cells initially attached to the carbon nanotube/polymer composite. The advantage of ultrathin nanocomposite film for pre-osteoblasts was demonstrated by staining for the cytoskeletal protein vinculin and cell nuclei. The expression of essential transcription factors for osteoblastogenesis, such as Runx2 and Sp7 transcription factor 7 (known as osterix), was upregulated after 7 days. Consequently, the expression of genes that determine osteoblast phenotype, such as alkaline phosphatase, type I collagen, and osteocalcin, was accelerated on carbon nanotube embedded polymer matrix after 14 days. In conclusion, the ultrathin nanocomposite film generated various orders of nanoscale topography that triggered processes related to osteoblast bone formation.
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spelling pubmed-44682072015-06-25 Analysis of Osteoblast Differentiation on Polymer Thin Films Embedded with Carbon Nanotubes Lee, Jin Woo Park, Jin-Woo Khang, Dongwoo PLoS One Research Article Osteoblast differentiation can be modulated by variations in order of nanoscale topography. Biopolymers embedded with carbon nanotubes can cause various orders of roughness at the nanoscale and can be used to investigate the dynamics of extracellular matrix interaction with cells. In this study, clear relationship between the response of osteoblasts to integrin receptor activation, their phenotype, and transcription of certain genes on polymer composites embedded with carbon nanotubes was demonstrated. We generated an ultrathin nanocomposite film embedded with carbon nanotubes and observed improved adhesion of pre-osteoblasts, with a subsequent increase in their proliferation. The expression of genes encoding integrin subunits α(5), α(v), β(1), and β(3) was significantly upregulated at the early of time-point when cells initially attached to the carbon nanotube/polymer composite. The advantage of ultrathin nanocomposite film for pre-osteoblasts was demonstrated by staining for the cytoskeletal protein vinculin and cell nuclei. The expression of essential transcription factors for osteoblastogenesis, such as Runx2 and Sp7 transcription factor 7 (known as osterix), was upregulated after 7 days. Consequently, the expression of genes that determine osteoblast phenotype, such as alkaline phosphatase, type I collagen, and osteocalcin, was accelerated on carbon nanotube embedded polymer matrix after 14 days. In conclusion, the ultrathin nanocomposite film generated various orders of nanoscale topography that triggered processes related to osteoblast bone formation. Public Library of Science 2015-06-15 /pmc/articles/PMC4468207/ /pubmed/26076355 http://dx.doi.org/10.1371/journal.pone.0129856 Text en © 2015 Lee et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Lee, Jin Woo
Park, Jin-Woo
Khang, Dongwoo
Analysis of Osteoblast Differentiation on Polymer Thin Films Embedded with Carbon Nanotubes
title Analysis of Osteoblast Differentiation on Polymer Thin Films Embedded with Carbon Nanotubes
title_full Analysis of Osteoblast Differentiation on Polymer Thin Films Embedded with Carbon Nanotubes
title_fullStr Analysis of Osteoblast Differentiation on Polymer Thin Films Embedded with Carbon Nanotubes
title_full_unstemmed Analysis of Osteoblast Differentiation on Polymer Thin Films Embedded with Carbon Nanotubes
title_short Analysis of Osteoblast Differentiation on Polymer Thin Films Embedded with Carbon Nanotubes
title_sort analysis of osteoblast differentiation on polymer thin films embedded with carbon nanotubes
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4468207/
https://www.ncbi.nlm.nih.gov/pubmed/26076355
http://dx.doi.org/10.1371/journal.pone.0129856
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