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      KCI등재 SCIE SCOPUS

      Fabrication and Characterization of Graphene Oxide-Coated Plate for Efficient Culture of Stem Cells

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      https://www.riss.kr/link?id=A107868960

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      다국어 초록 (Multilingual Abstract)

      Background: For stem cell applications in regenerative medicine, it is very important to produce high-quality stem cells in large quantities in a short time period. Recently, many studies have shown big potential of graphene oxide as a biocompatible s...

      Background: For stem cell applications in regenerative medicine, it is very important to produce high-quality stem cells in large quantities in a short time period. Recently, many studies have shown big potential of graphene oxide as a biocompatible substance to enhance cell growth. We investigated if graphene oxide-coated culture plate can promote production efficiency of stem cells.


      Methods: Three types of graphene oxide were used for this study. They are highly concentrated graphene oxide solution, single-layer graphene oxide solution, and ultra-highly concentrated single-layer graphene oxide solution with different single-layer ratios, and coated on cell culture plates using a spray coating method. Physiochemical and biological properties of graphene oxide-coated surface were analyzed by atomic force microscope (AFM), scanning electron microscope (SEM), cell counting kit, a live/dead assay kit, and confocal imaging.


      Results: Graphene oxide was evenly coated on cell culture plates with a roughness of 6.4 ~ 38.2 nm, as measured by SEM and AFM. Young’s Modulus value was up to 115.1 GPa, confirming that graphene oxide was strongly glued to the surface. The ex vivo stem cell expansion efficiency was enhanced as bone marrow-derived stem cell doubling time on the graphene oxide decreased compared to the control (no graphene oxide coating), from 64 to 58 h, and the growth rate increased up to 145%. We also observed faster attachment and higher affinity of stem cells to the graphene oxide compared to control by confocal microscope.


      Conclusion: This study demonstrated that graphene oxide dramatically enhanced the ex vivo expansion efficiency of stem cells. Spray coating enabled an ultra-thin coating of graphene oxide on cell culture plates. The results supported that utilization of graphene oxide on culture plates can be a promising mean for mass production of stem cells for commercial applications.

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      다국어 초록 (Multilingual Abstract)

      Background: For stem cell applications in regenerative medicine, it is very important to produce high-quality stem cells in large quantities in a short time period. Recently, many studies have shown big potential of graphene oxide as a biocompatible s...

      Background: For stem cell applications in regenerative medicine, it is very important to produce high-quality stem cells in large quantities in a short time period. Recently, many studies have shown big potential of graphene oxide as a biocompatible substance to enhance cell growth. We investigated if graphene oxide-coated culture plate can promote production efficiency of stem cells.




      Methods: Three types of graphene oxide were used for this study. They are highly concentrated graphene oxide solution, single-layer graphene oxide solution, and ultra-highly concentrated single-layer graphene oxide solution with different single-layer ratios, and coated on cell culture plates using a spray coating method. Physiochemical and biological properties of graphene oxide-coated surface were analyzed by atomic force microscope (AFM), scanning electron microscope (SEM), cell counting kit, a live/dead assay kit, and confocal imaging.




      Results: Graphene oxide was evenly coated on cell culture plates with a roughness of 6.4 ~ 38.2 nm, as measured by SEM and AFM. Young’s Modulus value was up to 115.1 GPa, confirming that graphene oxide was strongly glued to the surface. The ex vivo stem cell expansion efficiency was enhanced as bone marrow-derived stem cell doubling time on the graphene oxide decreased compared to the control (no graphene oxide coating), from 64 to 58 h, and the growth rate increased up to 145%. We also observed faster attachment and higher affinity of stem cells to the graphene oxide compared to control by confocal microscope.




      Conclusion: This study demonstrated that graphene oxide dramatically enhanced the ex vivo expansion efficiency of stem cells. Spray coating enabled an ultra-thin coating of graphene oxide on cell culture plates. The results supported that utilization of graphene oxide on culture plates can be a promising mean for mass production of stem cells for commercial applications.

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      참고문헌 (Reference)

      1 박재범, "산화그래핀(GO)의 플라스틱(PS) 표면 코팅방법에 대한 연구" 한국표면공학회 54 (54): 77-83, 2021

      2 "Young’s Modulus - Tensile and Yield Strength for common Materials"

      3 Bolotin KI, "Ultrahigh electron mobility in suspended graphene" 146 : 351-355, 2008

      4 Pei SF, "The reduction of graphene oxide" 50 : 3210-3228, 2012

      5 Dreyer DR, "The chemistry of graphene oxide" 39 : 228-240, 2010

      6 Mio T, "Proliferative characteristics of fibroblast lines derived from open lung biopsy specimens of patients with IPF(UIP)" 102 : 832-837, 1992

      7 Georgakilas V, "Noncovalent functionalization of graphene and graphene oxide for energy materials, biosensing, catalytic, and biomedical applications" 116 : 5464-5519, 2016

      8 Go EJ, "Next-generation biopharmaceuticals and cell therapy market status and prospects" LG Economic Research Institute

      9 Sun X, "Nano-graphene oxide for cellular imaging and drug delivery" 1 : 203-212, 2008

      10 Luong-Van K, "Mechanisms of graphene influence on cell differentiation" 6 : 100250-, 2020

      1 박재범, "산화그래핀(GO)의 플라스틱(PS) 표면 코팅방법에 대한 연구" 한국표면공학회 54 (54): 77-83, 2021

      2 "Young’s Modulus - Tensile and Yield Strength for common Materials"

      3 Bolotin KI, "Ultrahigh electron mobility in suspended graphene" 146 : 351-355, 2008

      4 Pei SF, "The reduction of graphene oxide" 50 : 3210-3228, 2012

      5 Dreyer DR, "The chemistry of graphene oxide" 39 : 228-240, 2010

      6 Mio T, "Proliferative characteristics of fibroblast lines derived from open lung biopsy specimens of patients with IPF(UIP)" 102 : 832-837, 1992

      7 Georgakilas V, "Noncovalent functionalization of graphene and graphene oxide for energy materials, biosensing, catalytic, and biomedical applications" 116 : 5464-5519, 2016

      8 Go EJ, "Next-generation biopharmaceuticals and cell therapy market status and prospects" LG Economic Research Institute

      9 Sun X, "Nano-graphene oxide for cellular imaging and drug delivery" 1 : 203-212, 2008

      10 Luong-Van K, "Mechanisms of graphene influence on cell differentiation" 6 : 100250-, 2020

      11 Lee C, "Measurement of the elastic properties and intrinsic strength of monolayer graphene" 18 : 385-388, 2008

      12 Akinwande D, "Largearea graphene electrodes : using CVD to facilitate applications in commercial touchscreens, flexible nanoelectronics, and neural interfaces" 9 : 6-14, 2015

      13 Kazemi E, "Iron oxide functionalized graphene oxide as an efficient sorbent for dispersive micro-solid phase extraction of sulfadiazine followed by spectrophotometric and mode-mismatched thermal lens spectrometric determination" 147 : 561-568, 2016

      14 Zhong M, "Interface coupling in graphene/fluorographene heterostructure for highperformance graphene/silicon solar cells" 28 : 12-18, 2016

      15 Marcano DC, "Improved synthesis of graphene oxide" 4 : 4806-4814, 2010

      16 Kim TH, "Graphene-based materials for stem cell applications" 8 : 8674-8690, 2015

      17 Ruiz ON, "Graphene oxide : a nonspecific enhancer of cellular growth" 5 : 8100-8107, 2011

      18 Wang S, "Grafting antibacterial polymer brushes from titanium surface via polydopamine chemistry and activators regenerated by electron transfer ATRP" 140 : 48-55, 2019

      19 Morozov SV, "Giant intrinsic carrier mobilities in graphene and its bilaye" 100 : 016602-, 2008

      20 Nishmura A, "Fabrication of tissue-engineered cell sheets by automated cell culture equipment" 13 : 2246-2255, 2019

      21 Novoselov KS, "Electric field effect in atomically thin carbon filmes" 306 : 666-669, 2004

      22 Roberts JN, "Dynamic surfaces for the study of mesenchymal stem cell growth through adhesion regulation" 10 : 6667-6679, 2016

      23 Knowledge Industry Information Service R&D Information Center, "Carbon/Metal Materials Industry Technology Development Analysis-Carbon·CNT/Graphene/SIC/Lightweight·Sparse Metal"

      24 Chung C, "Biomedical applications of graphene and graphene oxide" 46 : 2211-2224, 2013

      25 Virdi Jasmeet Kaur, "Biomaterials Regulate Mechanosensors YAP/TAZ in Stem Cell Growth and Differentiation" 한국조직공학과 재생의학회 18 (18): 199-215, 2021

      26 Yoo James J., "Applications of Organoids for Tissue Engineering and Regenerative Medicine" 한국조직공학과 재생의학회 17 (17): 729-730, 2020

      27 Mason C, "A brief definition of regenerative medicine" 3 : 1-5, 2007

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      학술지등록 한글명 : 조직공학과 재생의학
      외국어명 : Tissue Engineering and Regenerative Medicine
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2013-10-01 평가 등재학술지 선정 (기타) KCI등재
      2012-01-01 평가 등재후보 1차 FAIL (기타) KCI등재후보
      2011-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2010-01-01 평가 등재후보 1차 FAIL (등재후보1차) KCI등재후보
      2008-01-01 평가 SCIE 등재 (신규평가) KCI등재후보
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      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.08 0.42 0.81
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.69 0.51 0.367 0.03
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