Cargando…

Selective adhesion and mineral deposition by osteoblasts on carbon nanofiber patterns

In an effort to develop better orthopedic implants, osteoblast (bone-forming cells) adhesion was determined on microscale patterns (30 μm lines) of carbon nanofibers placed on polymer substrates. Patterns of carbon nanofibers (CNFs) on a model polymer (polycarbonate urethane [PCU]) were developed us...

Descripción completa

Detalles Bibliográficos
Autores principales: Khang, Dongwoo, Sato, Michiko, Price, Rachel L, Ribbe, Alexander E, Webster, Thomas J
Formato: Texto
Lenguaje:English
Publicado: Dove Medical Press 2006
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2426764/
https://www.ncbi.nlm.nih.gov/pubmed/17722263
_version_ 1782156289639448576
author Khang, Dongwoo
Sato, Michiko
Price, Rachel L
Ribbe, Alexander E
Webster, Thomas J
author_facet Khang, Dongwoo
Sato, Michiko
Price, Rachel L
Ribbe, Alexander E
Webster, Thomas J
author_sort Khang, Dongwoo
collection PubMed
description In an effort to develop better orthopedic implants, osteoblast (bone-forming cells) adhesion was determined on microscale patterns (30 μm lines) of carbon nanofibers placed on polymer substrates. Patterns of carbon nanofibers (CNFs) on a model polymer (polycarbonate urethane [PCU]) were developed using an imprinting method that placed CNFs in selected regions. Results showed the selective adhesion and alignment of osteoblasts on CNF patterns placed on PCU. Results also showed greater attraction forces between fibronectin and CNF (compared with PCU) patterns using atomic force microscope force-displacement curves. Because fibronectin is a protein that mediates osteoblast adhesion, these results provide a mechanism of why osteoblast adhesion was directed towards CNF patterns. Lastly, this study showed that the directed osteoblast adhesion on CNF patterns translated to enhanced calcium phosphate mineral deposition along linear patterns of CNFs on PCU. Since CNFs are conductive materials, this study formulated substrates that through electrical stimulation could be used in future investigations to further promote osteoblasts to deposit anisotropic patterns of calcium-containing mineral similar to that observed in long bones.
format Text
id pubmed-2426764
institution National Center for Biotechnology Information
language English
publishDate 2006
publisher Dove Medical Press
record_format MEDLINE/PubMed
spelling pubmed-24267642008-06-20 Selective adhesion and mineral deposition by osteoblasts on carbon nanofiber patterns Khang, Dongwoo Sato, Michiko Price, Rachel L Ribbe, Alexander E Webster, Thomas J Int J Nanomedicine Original Research In an effort to develop better orthopedic implants, osteoblast (bone-forming cells) adhesion was determined on microscale patterns (30 μm lines) of carbon nanofibers placed on polymer substrates. Patterns of carbon nanofibers (CNFs) on a model polymer (polycarbonate urethane [PCU]) were developed using an imprinting method that placed CNFs in selected regions. Results showed the selective adhesion and alignment of osteoblasts on CNF patterns placed on PCU. Results also showed greater attraction forces between fibronectin and CNF (compared with PCU) patterns using atomic force microscope force-displacement curves. Because fibronectin is a protein that mediates osteoblast adhesion, these results provide a mechanism of why osteoblast adhesion was directed towards CNF patterns. Lastly, this study showed that the directed osteoblast adhesion on CNF patterns translated to enhanced calcium phosphate mineral deposition along linear patterns of CNFs on PCU. Since CNFs are conductive materials, this study formulated substrates that through electrical stimulation could be used in future investigations to further promote osteoblasts to deposit anisotropic patterns of calcium-containing mineral similar to that observed in long bones. Dove Medical Press 2006-03 /pmc/articles/PMC2426764/ /pubmed/17722263 Text en © 2006 Dove Medical Press Limited. All rights reserved
spellingShingle Original Research
Khang, Dongwoo
Sato, Michiko
Price, Rachel L
Ribbe, Alexander E
Webster, Thomas J
Selective adhesion and mineral deposition by osteoblasts on carbon nanofiber patterns
title Selective adhesion and mineral deposition by osteoblasts on carbon nanofiber patterns
title_full Selective adhesion and mineral deposition by osteoblasts on carbon nanofiber patterns
title_fullStr Selective adhesion and mineral deposition by osteoblasts on carbon nanofiber patterns
title_full_unstemmed Selective adhesion and mineral deposition by osteoblasts on carbon nanofiber patterns
title_short Selective adhesion and mineral deposition by osteoblasts on carbon nanofiber patterns
title_sort selective adhesion and mineral deposition by osteoblasts on carbon nanofiber patterns
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2426764/
https://www.ncbi.nlm.nih.gov/pubmed/17722263
work_keys_str_mv AT khangdongwoo selectiveadhesionandmineraldepositionbyosteoblastsoncarbonnanofiberpatterns
AT satomichiko selectiveadhesionandmineraldepositionbyosteoblastsoncarbonnanofiberpatterns
AT pricerachell selectiveadhesionandmineraldepositionbyosteoblastsoncarbonnanofiberpatterns
AT ribbealexandere selectiveadhesionandmineraldepositionbyosteoblastsoncarbonnanofiberpatterns
AT websterthomasj selectiveadhesionandmineraldepositionbyosteoblastsoncarbonnanofiberpatterns