Growth and Functionality of Cells Cultured on Conducting and Semi-Conducting Surfaces Modified with Self-Assembled Monolayers (SAMs)

Bioengineering of dermal and epidermal cells on surface modified substrates is an active area of research. The cytotoxicity, maintenance of cell phenotype and long-term functionality of human dermal fibroblast (HDF) cells on conducting indium tin oxide (ITO) and semi-conducting, silicon (Si) and gal...

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Main Authors: Rajendra K. Aithal, Amber T. Doss, Deepak P. Kumaraswamy, David K. Mills, Debasish Kuila
Format: Article
Language:English
Published: MDPI AG 2016-02-01
Series:Coatings
Subjects:
ITO
Online Access:http://www.mdpi.com/2079-6412/6/1/9
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spelling doaj-c3fcd19441c643949a3025fb94a8e0c52020-11-24T22:50:17ZengMDPI AGCoatings2079-64122016-02-0161910.3390/coatings6010009coatings6010009Growth and Functionality of Cells Cultured on Conducting and Semi-Conducting Surfaces Modified with Self-Assembled Monolayers (SAMs)Rajendra K. Aithal0Amber T. Doss1Deepak P. Kumaraswamy2David K. Mills3Debasish Kuila4Institute of Micromanufacturing, Louisiana Tech University, Ruston, LA 71272, USASchool of Biological Sciences, Louisiana Tech University, Ruston, LA 71272, USAInstitute of Micromanufacturing, Louisiana Tech University, Ruston, LA 71272, USASchool of Biological Sciences, Louisiana Tech University, Ruston, LA 71272, USAInstitute of Micromanufacturing, Louisiana Tech University, Ruston, LA 71272, USABioengineering of dermal and epidermal cells on surface modified substrates is an active area of research. The cytotoxicity, maintenance of cell phenotype and long-term functionality of human dermal fibroblast (HDF) cells on conducting indium tin oxide (ITO) and semi-conducting, silicon (Si) and gallium arsenide (GaAs), surfaces modified with self-assembled monolayers (SAMs) containing amino (–NH2) and methyl (–CH3) end groups have been investigated. Contact angle measurements and infrared spectroscopic studies show that the monolayers are conformal and preserve their functional end groups. Morphological analyses indicate that HDFs grow well on all substrates except GaAs, exhibiting their normal spindle-shaped morphology and exhibit no visible signs of stress or cytoplasmic vacuolation. Cell viability analyses indicate little cell death after one week in culture on all substrates except GaAs, where cells died within 6 h. Cells on all surfaces proliferate except on GaAs and GaAs-ODT. Cell growth is observed to be greater on SAM modified ITO and Si-substrates. Preservation of cellular phenotype assessed through type I collagen immunostaining and positive staining of HDF cells were observed on all modified surfaces except that on GaAs. These results suggest that conducting and semi-conducting SAM-modified surfaces support HDF growth and functionality and represent a promising area of bioengineering research.http://www.mdpi.com/2079-6412/6/1/9human dermal fibroblastsself-assembled monolayeramino groupproliferationGaAsITOconducting surface
collection DOAJ
language English
format Article
sources DOAJ
author Rajendra K. Aithal
Amber T. Doss
Deepak P. Kumaraswamy
David K. Mills
Debasish Kuila
spellingShingle Rajendra K. Aithal
Amber T. Doss
Deepak P. Kumaraswamy
David K. Mills
Debasish Kuila
Growth and Functionality of Cells Cultured on Conducting and Semi-Conducting Surfaces Modified with Self-Assembled Monolayers (SAMs)
Coatings
human dermal fibroblasts
self-assembled monolayer
amino group
proliferation
GaAs
ITO
conducting surface
author_facet Rajendra K. Aithal
Amber T. Doss
Deepak P. Kumaraswamy
David K. Mills
Debasish Kuila
author_sort Rajendra K. Aithal
title Growth and Functionality of Cells Cultured on Conducting and Semi-Conducting Surfaces Modified with Self-Assembled Monolayers (SAMs)
title_short Growth and Functionality of Cells Cultured on Conducting and Semi-Conducting Surfaces Modified with Self-Assembled Monolayers (SAMs)
title_full Growth and Functionality of Cells Cultured on Conducting and Semi-Conducting Surfaces Modified with Self-Assembled Monolayers (SAMs)
title_fullStr Growth and Functionality of Cells Cultured on Conducting and Semi-Conducting Surfaces Modified with Self-Assembled Monolayers (SAMs)
title_full_unstemmed Growth and Functionality of Cells Cultured on Conducting and Semi-Conducting Surfaces Modified with Self-Assembled Monolayers (SAMs)
title_sort growth and functionality of cells cultured on conducting and semi-conducting surfaces modified with self-assembled monolayers (sams)
publisher MDPI AG
series Coatings
issn 2079-6412
publishDate 2016-02-01
description Bioengineering of dermal and epidermal cells on surface modified substrates is an active area of research. The cytotoxicity, maintenance of cell phenotype and long-term functionality of human dermal fibroblast (HDF) cells on conducting indium tin oxide (ITO) and semi-conducting, silicon (Si) and gallium arsenide (GaAs), surfaces modified with self-assembled monolayers (SAMs) containing amino (–NH2) and methyl (–CH3) end groups have been investigated. Contact angle measurements and infrared spectroscopic studies show that the monolayers are conformal and preserve their functional end groups. Morphological analyses indicate that HDFs grow well on all substrates except GaAs, exhibiting their normal spindle-shaped morphology and exhibit no visible signs of stress or cytoplasmic vacuolation. Cell viability analyses indicate little cell death after one week in culture on all substrates except GaAs, where cells died within 6 h. Cells on all surfaces proliferate except on GaAs and GaAs-ODT. Cell growth is observed to be greater on SAM modified ITO and Si-substrates. Preservation of cellular phenotype assessed through type I collagen immunostaining and positive staining of HDF cells were observed on all modified surfaces except that on GaAs. These results suggest that conducting and semi-conducting SAM-modified surfaces support HDF growth and functionality and represent a promising area of bioengineering research.
topic human dermal fibroblasts
self-assembled monolayer
amino group
proliferation
GaAs
ITO
conducting surface
url http://www.mdpi.com/2079-6412/6/1/9
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