Cell Migration According to Shape of Graphene Oxide Micropatterns

Photolithography is a unique process that can effectively manufacture micro/nano-sized patterns on various substrates. On the other hand, the meniscus-dragging deposition (MDD) process can produce a uniform surface of the substrate. Graphene oxide (GO) is the oxidized form of graphene that has high...

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Main Authors: Sung Eun Kim, Min Sung Kim, Yong Cheol Shin, Seong Un Eom, Jong Ho Lee, Dong-Myeong Shin, Suck Won Hong, Bongju Kim, Jong-Chul Park, Bo Sung Shin, Dohyung Lim, Dong-Wook Han
Format: Article
Language:English
Published: MDPI AG 2016-10-01
Series:Micromachines
Subjects:
Online Access:http://www.mdpi.com/2072-666X/7/10/186
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spelling doaj-43347b43e17b45c58ce1c33744fe1e752020-11-25T01:04:28ZengMDPI AGMicromachines2072-666X2016-10-0171018610.3390/mi7100186mi7100186Cell Migration According to Shape of Graphene Oxide MicropatternsSung Eun Kim0Min Sung Kim1Yong Cheol Shin2Seong Un Eom3Jong Ho Lee4Dong-Myeong Shin5Suck Won Hong6Bongju Kim7Jong-Chul Park8Bo Sung Shin9Dohyung Lim10Dong-Wook Han11Department of Cogno-Mechatronics Engineering, College of Nanoscience and Nanotechnology, Pusan National University, Busan 46241, KoreaCellbiocontrol Laboratory, Department of Medical Engineering, Yonsei University College of Medicine, Seoul 03722, KoreaDepartment of Cogno-Mechatronics Engineering, College of Nanoscience and Nanotechnology, Pusan National University, Busan 46241, KoreaDepartment of Cogno-Mechatronics Engineering, College of Nanoscience and Nanotechnology, Pusan National University, Busan 46241, KoreaDepartment of Cogno-Mechatronics Engineering, College of Nanoscience and Nanotechnology, Pusan National University, Busan 46241, KoreaResearch Center for Energy Convergence Technology, Pusan National University, Busan 46241, KoreaDepartment of Cogno-Mechatronics Engineering, College of Nanoscience and Nanotechnology, Pusan National University, Busan 46241, KoreaDental Life Science Research Institute, Seoul National University Dental Hospital, Seoul 03080, KoreaCellbiocontrol Laboratory, Department of Medical Engineering, Yonsei University College of Medicine, Seoul 03722, KoreaDepartment of Cogno-Mechatronics Engineering, College of Nanoscience and Nanotechnology, Pusan National University, Busan 46241, KoreaDepartment of Mechanical Engineering, Sejong University, Seoul 05006, KoreaDepartment of Cogno-Mechatronics Engineering, College of Nanoscience and Nanotechnology, Pusan National University, Busan 46241, KoreaPhotolithography is a unique process that can effectively manufacture micro/nano-sized patterns on various substrates. On the other hand, the meniscus-dragging deposition (MDD) process can produce a uniform surface of the substrate. Graphene oxide (GO) is the oxidized form of graphene that has high hydrophilicity and protein absorption. It is widely used in biomedical fields such as drug delivery, regenerative medicine, and tissue engineering. Herein, we fabricated uniform GO micropatterns via MDD and photolithography. The physicochemical properties of the GO micropatterns were characterized by atomic force microscopy (AFM), scanning electron microscopy (SEM), and Raman spectroscopy. Furthermore, cell migration on the GO micropatterns was investigated, and the difference in cell migration on triangle and square GO micropatterns was examined for their effects on cell migration. Our results demonstrated that the GO micropatterns with a desired shape can be finely fabricated via MDD and photolithography. Moreover, it was revealed that the shape of GO micropatterns plays a crucial role in cell migration distance, speed, and directionality. Therefore, our findings suggest that the GO micropatterns can serve as a promising biofunctional platform and cell-guiding substrate for applications to bioelectric devices, cell-on-a-chip, and tissue engineering scaffolds.http://www.mdpi.com/2072-666X/7/10/186photolithographymeniscus-dragging depositiongraphene oxidemicropatternscell migration
collection DOAJ
language English
format Article
sources DOAJ
author Sung Eun Kim
Min Sung Kim
Yong Cheol Shin
Seong Un Eom
Jong Ho Lee
Dong-Myeong Shin
Suck Won Hong
Bongju Kim
Jong-Chul Park
Bo Sung Shin
Dohyung Lim
Dong-Wook Han
spellingShingle Sung Eun Kim
Min Sung Kim
Yong Cheol Shin
Seong Un Eom
Jong Ho Lee
Dong-Myeong Shin
Suck Won Hong
Bongju Kim
Jong-Chul Park
Bo Sung Shin
Dohyung Lim
Dong-Wook Han
Cell Migration According to Shape of Graphene Oxide Micropatterns
Micromachines
photolithography
meniscus-dragging deposition
graphene oxide
micropatterns
cell migration
author_facet Sung Eun Kim
Min Sung Kim
Yong Cheol Shin
Seong Un Eom
Jong Ho Lee
Dong-Myeong Shin
Suck Won Hong
Bongju Kim
Jong-Chul Park
Bo Sung Shin
Dohyung Lim
Dong-Wook Han
author_sort Sung Eun Kim
title Cell Migration According to Shape of Graphene Oxide Micropatterns
title_short Cell Migration According to Shape of Graphene Oxide Micropatterns
title_full Cell Migration According to Shape of Graphene Oxide Micropatterns
title_fullStr Cell Migration According to Shape of Graphene Oxide Micropatterns
title_full_unstemmed Cell Migration According to Shape of Graphene Oxide Micropatterns
title_sort cell migration according to shape of graphene oxide micropatterns
publisher MDPI AG
series Micromachines
issn 2072-666X
publishDate 2016-10-01
description Photolithography is a unique process that can effectively manufacture micro/nano-sized patterns on various substrates. On the other hand, the meniscus-dragging deposition (MDD) process can produce a uniform surface of the substrate. Graphene oxide (GO) is the oxidized form of graphene that has high hydrophilicity and protein absorption. It is widely used in biomedical fields such as drug delivery, regenerative medicine, and tissue engineering. Herein, we fabricated uniform GO micropatterns via MDD and photolithography. The physicochemical properties of the GO micropatterns were characterized by atomic force microscopy (AFM), scanning electron microscopy (SEM), and Raman spectroscopy. Furthermore, cell migration on the GO micropatterns was investigated, and the difference in cell migration on triangle and square GO micropatterns was examined for their effects on cell migration. Our results demonstrated that the GO micropatterns with a desired shape can be finely fabricated via MDD and photolithography. Moreover, it was revealed that the shape of GO micropatterns plays a crucial role in cell migration distance, speed, and directionality. Therefore, our findings suggest that the GO micropatterns can serve as a promising biofunctional platform and cell-guiding substrate for applications to bioelectric devices, cell-on-a-chip, and tissue engineering scaffolds.
topic photolithography
meniscus-dragging deposition
graphene oxide
micropatterns
cell migration
url http://www.mdpi.com/2072-666X/7/10/186
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