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A Single-Step Surface Modification of Electrospun Silica Nanofibers Using a Silica Binding Protein Fused with an RGD Motif for Enhanced PC12 Cell Growth and Differentiation

In this study, a previously known high-affinity silica binding protein (SB) was genetically engineered to fuse with an integrin-binding peptide (RGD) to create a recombinant protein (SB-RGD). SB-RGD was successfully expressed in Escherichia coli and purified using silica beads through a simple and f...

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Autores principales: Chen, Wen Shuo, Guo, Ling Yu, Masroujeh, Amien Mohamed, Augustine, Anna Morgan, Tsai, Cheng Kang, Chin, Ting Yu, Chen-Yang, Yui Whei, Yang, Mong-Lin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6024934/
https://www.ncbi.nlm.nih.gov/pubmed/29848981
http://dx.doi.org/10.3390/ma11060927
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author Chen, Wen Shuo
Guo, Ling Yu
Masroujeh, Amien Mohamed
Augustine, Anna Morgan
Tsai, Cheng Kang
Chin, Ting Yu
Chen-Yang, Yui Whei
Yang, Mong-Lin
author_facet Chen, Wen Shuo
Guo, Ling Yu
Masroujeh, Amien Mohamed
Augustine, Anna Morgan
Tsai, Cheng Kang
Chin, Ting Yu
Chen-Yang, Yui Whei
Yang, Mong-Lin
author_sort Chen, Wen Shuo
collection PubMed
description In this study, a previously known high-affinity silica binding protein (SB) was genetically engineered to fuse with an integrin-binding peptide (RGD) to create a recombinant protein (SB-RGD). SB-RGD was successfully expressed in Escherichia coli and purified using silica beads through a simple and fast centrifugation method. A further functionality assay showed that SB-RGD bound to the silica surface with an extremely high affinity that required 2 M MgCl(2) for elution. Through a single-step incubation, the purified SB-RGD proteins were noncovalently coated onto an electrospun silica nanofiber (SNF) substrate to fabricate the SNF-SB-RGD substrate. SNF-SB-RGD was characterized by a combination of scanning electron microscopy (SEM), Fourier transform infrared (FTIR) spectroscopy, and immunostaining fluorescence microscopy. As PC12 cells were seeded onto the SNF-SB-RGD surface, significantly higher cell viability and longer neurite extensions were observed when compared to those on the control surfaces. These results indicated that SB-RGD could serve as a noncovalent coating biologic to support and promote neuron growth and differentiation on silica-based substrates for neuronal tissue engineering. It also provides proof of concept for the possibility to genetically engineer protein-based signaling molecules to noncovalently modify silica-based substrates as bioinspired material.
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spelling pubmed-60249342018-07-09 A Single-Step Surface Modification of Electrospun Silica Nanofibers Using a Silica Binding Protein Fused with an RGD Motif for Enhanced PC12 Cell Growth and Differentiation Chen, Wen Shuo Guo, Ling Yu Masroujeh, Amien Mohamed Augustine, Anna Morgan Tsai, Cheng Kang Chin, Ting Yu Chen-Yang, Yui Whei Yang, Mong-Lin Materials (Basel) Article In this study, a previously known high-affinity silica binding protein (SB) was genetically engineered to fuse with an integrin-binding peptide (RGD) to create a recombinant protein (SB-RGD). SB-RGD was successfully expressed in Escherichia coli and purified using silica beads through a simple and fast centrifugation method. A further functionality assay showed that SB-RGD bound to the silica surface with an extremely high affinity that required 2 M MgCl(2) for elution. Through a single-step incubation, the purified SB-RGD proteins were noncovalently coated onto an electrospun silica nanofiber (SNF) substrate to fabricate the SNF-SB-RGD substrate. SNF-SB-RGD was characterized by a combination of scanning electron microscopy (SEM), Fourier transform infrared (FTIR) spectroscopy, and immunostaining fluorescence microscopy. As PC12 cells were seeded onto the SNF-SB-RGD surface, significantly higher cell viability and longer neurite extensions were observed when compared to those on the control surfaces. These results indicated that SB-RGD could serve as a noncovalent coating biologic to support and promote neuron growth and differentiation on silica-based substrates for neuronal tissue engineering. It also provides proof of concept for the possibility to genetically engineer protein-based signaling molecules to noncovalently modify silica-based substrates as bioinspired material. MDPI 2018-05-30 /pmc/articles/PMC6024934/ /pubmed/29848981 http://dx.doi.org/10.3390/ma11060927 Text en © 2018 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chen, Wen Shuo
Guo, Ling Yu
Masroujeh, Amien Mohamed
Augustine, Anna Morgan
Tsai, Cheng Kang
Chin, Ting Yu
Chen-Yang, Yui Whei
Yang, Mong-Lin
A Single-Step Surface Modification of Electrospun Silica Nanofibers Using a Silica Binding Protein Fused with an RGD Motif for Enhanced PC12 Cell Growth and Differentiation
title A Single-Step Surface Modification of Electrospun Silica Nanofibers Using a Silica Binding Protein Fused with an RGD Motif for Enhanced PC12 Cell Growth and Differentiation
title_full A Single-Step Surface Modification of Electrospun Silica Nanofibers Using a Silica Binding Protein Fused with an RGD Motif for Enhanced PC12 Cell Growth and Differentiation
title_fullStr A Single-Step Surface Modification of Electrospun Silica Nanofibers Using a Silica Binding Protein Fused with an RGD Motif for Enhanced PC12 Cell Growth and Differentiation
title_full_unstemmed A Single-Step Surface Modification of Electrospun Silica Nanofibers Using a Silica Binding Protein Fused with an RGD Motif for Enhanced PC12 Cell Growth and Differentiation
title_short A Single-Step Surface Modification of Electrospun Silica Nanofibers Using a Silica Binding Protein Fused with an RGD Motif for Enhanced PC12 Cell Growth and Differentiation
title_sort single-step surface modification of electrospun silica nanofibers using a silica binding protein fused with an rgd motif for enhanced pc12 cell growth and differentiation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6024934/
https://www.ncbi.nlm.nih.gov/pubmed/29848981
http://dx.doi.org/10.3390/ma11060927
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