Graphene Oxide-Based Biocompatible 3D Mesh with a Tunable Porosity and Tensility for Cell Culture

被引:5
|
作者
Zhang, Ying [1 ,3 ]
Liu, Xiao [1 ]
Michelson, Kayla [2 ]
Trivedi, Rachana [2 ]
Wu, Xu [1 ]
Schepp, Eric [1 ]
Xing, Yuqian [1 ]
Darland, Diane [2 ]
Zhao, Julia Xiaojun [1 ]
机构
[1] Univ North Dakota, Dept Chem, Grand Forks, ND 58202 USA
[2] Univ North Dakota, Dept Biol, Grand Forks, ND 58202 USA
[3] Shijiazhuang Ctr Dis Control & Prevent, Shijiazhuang 050019, Hebei, Peoples R China
来源
关键词
graphene oxide; 3D mesh; poly(ethylene) (glycol); salt leaching; vascular cell microenvironment; NEURAL STEM-CELLS; TISSUE ENGINEERING APPLICATIONS; MECHANICAL STRENGTH; NEURITE OUTGROWTH; CHITOSAN HYDROGEL; CARBON NANOTUBES; DRUG-DELIVERY; SCAFFOLD; DIFFERENTIATION; ENHANCEMENT;
D O I
10.1021/acsbiomaterials.8b00190
中图分类号
TB3 [工程材料学]; R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
One of the major challenges associated with modeling the influence of the cellular microenvironment on cell growth and differentiation is finding suitable substrates for growing the cells in a manner that recapitulates the cell-cell and cell- microenvironmental interactions in vitro. As one approach to address this challenge, we have developed graphene oxide (GO)-3D mesh with tunable hardness and porosity for application in cell culture systems. The synthetic method of GO-3D mesh is simple, easily reproducible, and low cost. The foundation of the method is the combination of poly(ethylene)(glycol) (PEG) and GO together with a salt-leaching approach (NaCl) in addition to a controlled application of heat during the synthetic process to tailor the mechanical properties, porosity, and pore-size distribution of the resulting GO-3D mesh. With this methodology, the hydrogel formed by PEG and GO generates a microporous mesh in the presence of the NaCl, leading to the formation of a stable 3D scaffold after extensive heating and washing. Varying the ratio of NaCl to GO controls porosity, pore size, and pore connectivity for the GO-3D mesh. When the porosity is less than 90%, with an increasing ratio of NaCl to GO, the number of pores increases with good interconnectivity. The 3D-mesh showed excellent biocompatibility with vascular cells which can take on a morphology comparable to that observed in vessels in vivo. Cell proliferation and gene expression can be determined from cells grown on the GO-3D scaffold, providing a valuable tool for investigating cell-microenvironmental changes. The GO-3D mesh described results from the synergy of the combined chemical properties of the PEG and GO with the salt-leaching methodology to generate a unique and flexible mesh that can be modified and optimized for a variety of in vitro applications.
引用
收藏
页码:1505 / 1517
页数:25
相关论文
共 50 条
  • [41] Tunable, self-assembled 3D reduced graphene oxide structures fabricated via boiling
    Jo, HangJin
    Noh, Hyunwoo
    Kaviany, Massoud
    Kim, Ji Min
    Kim, Moo Hwan
    Ahn, Ho Seon
    CARBON, 2015, 81 : 357 - 366
  • [42] 3D TOOTH MESH SEGMENTATION WITH SIMPLIFIED MESH CELL REPRESENTATION
    Jana, Ananya
    Subhash, Hrebesh Molly
    Metaxas, Dimitris
    2023 IEEE 20TH INTERNATIONAL SYMPOSIUM ON BIOMEDICAL IMAGING, ISBI, 2023,
  • [43] 3D graphene with tailored porosity in for highly efficient energy storage
    Duan, Xiangfeng
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2017, 254
  • [44] Electromolding for 3D Cell Culture
    Lai, Yi-Han
    Fan, Shih-Kang
    2015 IEEE 10TH INTERNATIONAL CONFERENCE ON NANO/MICRO ENGINEERED AND MOLECULAR SYSTEMS (NEMS), 2015, : 268 - 271
  • [45] Biocompatible Hydrogels Based on Food Gums with Tunable Physicochemical Properties as Scaffolds for Cell Culture
    Qi, Xiaoliang
    Zhang, Mengying
    Su, Ting
    Pan, Wenhao
    Tong, Xianqin
    Zeng, Qiankun
    Xiong, Wei
    Jiang, Ning
    Qian, Yuna
    Li, Zhipeng
    He, Xiaojun
    Shen, Liangliang
    Zhou, Zaigang
    Shen, Jianliang
    JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2020, 68 (12) : 3770 - 3778
  • [46] 3D Stem Cell Culture
    Ylostalo, Joni H.
    CELLS, 2020, 9 (10)
  • [47] High Resolution, Biocompatible 3D Printing for Microfluidic Cell-Based Assays
    Boaks, Mawla
    Roper, Connor
    Woolley, Adam T.
    Christensen, Kenneth A.
    Nordin, Gregory P.
    2023 IEEE BIOSENSORS CONFERENCE, BIOSENSORS, 2023,
  • [48] Skeleton based 3D mesh deformation
    Ma Zhanguo
    Liu Bo
    Zhang Hongbin
    2007 6TH INTERNATIONAL CONFERENCE ON INFORMATION, COMMUNICATIONS & SIGNAL PROCESSING, VOLS 1-4, 2007, : 721 - 725
  • [49] Highly Tunable and Scalable Fabrication of 3D Flexible Graphene Micropatterns for Directing Cell Alignment
    Lu, Jiao Yang
    Zhang, Xin Xing
    Zhu, Qu Yan
    Zhang, Fu Rui
    Huang, Wei Tao
    Ding, Xue Zhi
    Xia, Li Qu
    Luo, Hong Qun
    Li, Nian Bing
    ACS APPLIED MATERIALS & INTERFACES, 2018, 10 (21) : 17704 - 17713
  • [50] A 3D Biocompatible Plasmonic Tweezer for Single Cell Manipulation
    Kang, Siyu
    Nisar, Muhammad Shemyal
    Lu, Yu
    Chang, Ning
    Huang, Yan
    Ni, Haibin
    Novikov, Sergey M.
    Wang, Yi
    Cui, Qiannan
    Zhao, Xiangwei
    SMALL METHODS, 2023, 7 (02)