Biomimetic Hybrid Nanofiber Sheets Composed of RGD Peptide-Decorated PLGA as Cell-Adhesive Substrates

In biomedical applications, there is a need for tissue engineering scaffolds to promote and control cellular behaviors, including adhesion, proliferation and differentiation. In particular, the initial adhesion of cells has a great influence on those cellular behaviors. In this study, we concentrate...

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Main Authors: Yong Cheol Shin, Jong Ho Lee, Min Jeong Kim, Ji Hoon Park, Sung Eun Kim, Jin Su Kim, Jin-Woo Oh, Dong-Wook Han
Format: Article
Language:English
Published: MDPI AG 2015-05-01
Series:Journal of Functional Biomaterials
Subjects:
Online Access:http://www.mdpi.com/2079-4983/6/2/367
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spelling doaj-fa4a9938097b49f29402d456fdca985e2020-11-24T22:31:44ZengMDPI AGJournal of Functional Biomaterials2079-49832015-05-016236737810.3390/jfb6020367jfb6020367Biomimetic Hybrid Nanofiber Sheets Composed of RGD Peptide-Decorated PLGA as Cell-Adhesive SubstratesYong Cheol Shin0Jong Ho Lee1Min Jeong Kim2Ji Hoon Park3Sung Eun Kim4Jin Su Kim5Jin-Woo Oh6Dong-Wook Han7Department of Optics and Mechatronics Engineering, BK21+ Nano-Integrated Cogno-Mechatronics Engineering, College of Nanoscience & Nanotechnology, Pusan National University, Busandaehak-ro 63beon-gil, Geumjeong-gu, Busan 609-735, KoreaDepartment of Optics and Mechatronics Engineering, BK21+ Nano-Integrated Cogno-Mechatronics Engineering, College of Nanoscience & Nanotechnology, Pusan National University, Busandaehak-ro 63beon-gil, Geumjeong-gu, Busan 609-735, KoreaDepartment of Optics and Mechatronics Engineering, BK21+ Nano-Integrated Cogno-Mechatronics Engineering, College of Nanoscience & Nanotechnology, Pusan National University, Busandaehak-ro 63beon-gil, Geumjeong-gu, Busan 609-735, KoreaDepartment of Optics and Mechatronics Engineering, BK21+ Nano-Integrated Cogno-Mechatronics Engineering, College of Nanoscience & Nanotechnology, Pusan National University, Busandaehak-ro 63beon-gil, Geumjeong-gu, Busan 609-735, KoreaDepartment of Optics and Mechatronics Engineering, BK21+ Nano-Integrated Cogno-Mechatronics Engineering, College of Nanoscience & Nanotechnology, Pusan National University, Busandaehak-ro 63beon-gil, Geumjeong-gu, Busan 609-735, KoreaDepartment of Optics and Mechatronics Engineering, BK21+ Nano-Integrated Cogno-Mechatronics Engineering, College of Nanoscience & Nanotechnology, Pusan National University, Busandaehak-ro 63beon-gil, Geumjeong-gu, Busan 609-735, KoreaDepartment of Nanoenergy Engineering, College of Nanoscience & Nanotechnology, Pusan National University, Busandaehak-ro 63beon-gil, Geumjeong-gu, Busan 609-735, KoreaDepartment of Optics and Mechatronics Engineering, BK21+ Nano-Integrated Cogno-Mechatronics Engineering, College of Nanoscience & Nanotechnology, Pusan National University, Busandaehak-ro 63beon-gil, Geumjeong-gu, Busan 609-735, KoreaIn biomedical applications, there is a need for tissue engineering scaffolds to promote and control cellular behaviors, including adhesion, proliferation and differentiation. In particular, the initial adhesion of cells has a great influence on those cellular behaviors. In this study, we concentrate on developing cell-adhesive substrates applicable for tissue engineering scaffolds. The hybrid nanofiber sheets were prepared by electrospinning poly(lactic-co-glycolic acid) (PLGA) and M13 phage, which was genetically modified to enhance cell adhesion thru expressing RGD peptides on their surface. The RGD peptide is a specific motif of extracellular matrix (ECM) for integrin receptors of cells. RGD peptide-decorated PLGA (RGD-PLGA) nanofiber sheets were characterized by scanning electron microscopy, immunofluorescence staining, contact angle measurement and differential scanning calorimetry. In addition, the initial adhesion and proliferation of four different types of mammalian cells were determined in order to evaluate the potential of RGD-PLGA nanofiber sheets as cell-adhesive substrates. Our results showed that the hybrid nanofiber sheets have a three-dimensional porous structure comparable to the native ECM. Furthermore, the initial adhesion and proliferation of cells were significantly enhanced on RGD-PLGA sheets. These results suggest that biomimetic RGD-PLGA nanofiber sheets can be promising cell-adhesive substrates for application as tissue engineering scaffolds.http://www.mdpi.com/2079-4983/6/2/367tissue engineering scaffoldscell-adhesive substrateshybrid nanofiber sheetselectrospinningpoly(lactic-co-glycolic acid)RGD peptides
collection DOAJ
language English
format Article
sources DOAJ
author Yong Cheol Shin
Jong Ho Lee
Min Jeong Kim
Ji Hoon Park
Sung Eun Kim
Jin Su Kim
Jin-Woo Oh
Dong-Wook Han
spellingShingle Yong Cheol Shin
Jong Ho Lee
Min Jeong Kim
Ji Hoon Park
Sung Eun Kim
Jin Su Kim
Jin-Woo Oh
Dong-Wook Han
Biomimetic Hybrid Nanofiber Sheets Composed of RGD Peptide-Decorated PLGA as Cell-Adhesive Substrates
Journal of Functional Biomaterials
tissue engineering scaffolds
cell-adhesive substrates
hybrid nanofiber sheets
electrospinning
poly(lactic-co-glycolic acid)
RGD peptides
author_facet Yong Cheol Shin
Jong Ho Lee
Min Jeong Kim
Ji Hoon Park
Sung Eun Kim
Jin Su Kim
Jin-Woo Oh
Dong-Wook Han
author_sort Yong Cheol Shin
title Biomimetic Hybrid Nanofiber Sheets Composed of RGD Peptide-Decorated PLGA as Cell-Adhesive Substrates
title_short Biomimetic Hybrid Nanofiber Sheets Composed of RGD Peptide-Decorated PLGA as Cell-Adhesive Substrates
title_full Biomimetic Hybrid Nanofiber Sheets Composed of RGD Peptide-Decorated PLGA as Cell-Adhesive Substrates
title_fullStr Biomimetic Hybrid Nanofiber Sheets Composed of RGD Peptide-Decorated PLGA as Cell-Adhesive Substrates
title_full_unstemmed Biomimetic Hybrid Nanofiber Sheets Composed of RGD Peptide-Decorated PLGA as Cell-Adhesive Substrates
title_sort biomimetic hybrid nanofiber sheets composed of rgd peptide-decorated plga as cell-adhesive substrates
publisher MDPI AG
series Journal of Functional Biomaterials
issn 2079-4983
publishDate 2015-05-01
description In biomedical applications, there is a need for tissue engineering scaffolds to promote and control cellular behaviors, including adhesion, proliferation and differentiation. In particular, the initial adhesion of cells has a great influence on those cellular behaviors. In this study, we concentrate on developing cell-adhesive substrates applicable for tissue engineering scaffolds. The hybrid nanofiber sheets were prepared by electrospinning poly(lactic-co-glycolic acid) (PLGA) and M13 phage, which was genetically modified to enhance cell adhesion thru expressing RGD peptides on their surface. The RGD peptide is a specific motif of extracellular matrix (ECM) for integrin receptors of cells. RGD peptide-decorated PLGA (RGD-PLGA) nanofiber sheets were characterized by scanning electron microscopy, immunofluorescence staining, contact angle measurement and differential scanning calorimetry. In addition, the initial adhesion and proliferation of four different types of mammalian cells were determined in order to evaluate the potential of RGD-PLGA nanofiber sheets as cell-adhesive substrates. Our results showed that the hybrid nanofiber sheets have a three-dimensional porous structure comparable to the native ECM. Furthermore, the initial adhesion and proliferation of cells were significantly enhanced on RGD-PLGA sheets. These results suggest that biomimetic RGD-PLGA nanofiber sheets can be promising cell-adhesive substrates for application as tissue engineering scaffolds.
topic tissue engineering scaffolds
cell-adhesive substrates
hybrid nanofiber sheets
electrospinning
poly(lactic-co-glycolic acid)
RGD peptides
url http://www.mdpi.com/2079-4983/6/2/367
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