In Situ Formation of 3D Conductive and Cell-Laden Graphene Hydrogel for Electrically Regulating Cellular Behavior

被引:7
|
作者
Chen, Xuelong [1 ]
Ranjan, Vivek Damodar [2 ]
Liu, Sijun [3 ]
Liang, Yen Nan [4 ]
Lim, Jacob Song Kiat [5 ]
Chen, Hui [5 ]
Hu, Xiao [1 ,4 ,5 ]
Zhang, Yilei [6 ]
机构
[1] Nanyang Technol Univ, Sch Mat Sci & Engn, Nanyang Ave, Singapore 639798, Singapore
[2] Nanyang Technol Univ, Interdisciplinary Grad Sch, NTU Inst Hlth Technol, Singapore 639798, Singapore
[3] Shanghai Jiao Tong Univ, Adv Rheol Inst, Dept Polymer Sci & Engn, Shanghai 200240, Peoples R China
[4] Nanyang Technol Univ, Nanyang Environm & Water Res Inst, Singapore 637141, Singapore
[5] Nanyang Technol Univ, Temasek Labs, 50 Nanyang Dr, Singapore 637553, Singapore
[6] Univ Canterbury, Dept Mech Engn, Christchurch 8041, New Zealand
关键词
cell differentiation; electrically conductive; graphene oxide; hydrogel; polydopamine; polyvinyl alcohol; tissue engineering;
D O I
10.1002/mabi.202000374
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Electroconductive and injectable hydrogels are attracting increasing attention owing to the needs of electrically induced regulation of cell behavior, tissue engineering of electroactive tissues, and achieving minimum invasiveness during tissue repair. In this study, a novel in situ formed 3D conductive and cell-laden hydrogel is developed, which can be broadly used in bioprinting, tissue engineering, neuroengineering etc. An instantaneous, uniform spatial distribution and encapsulation of cells can be achieved as a result of hydrogen bonding induced hydrogel formation. Particularly, the cell-laden hydrogel can be easily obtained by simply mixing and shaking the polydopamine (PDA) functionalized rGO (rGO-PDA) with polyvinyl alcohol (PVA) solution containing cells. Graphene oxide is reduced and functionalized by dopamine to restore the electrical conductivity, while simultaneously enhancing both hydrophilicity and biocompatibility of reduced graphene oxide. In vitro culture of PC12 cells within the cell-laden hydrogel demonstrates its biocompatibility, noncytotoxicity as well as the ability to support long-term cell growth and proliferation. Enhanced neuronal differentiation is also observed, both with and without electrical stimulation. Overall, this 3D conductive, cell-laden hydrogel holds great promise as potential platform for tissue engineering of electroactive tissues.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Preparation and characterization of a biodegradable polyurethane hydrogel and the hybrid gel with soy protein for 3D cell-laden bioprinting
    Lin, Hsin-Hua
    Hsieh, Fu-Yu
    Tseng, Ching-Shiow
    Hsu, Shan-hui
    [J]. JOURNAL OF MATERIALS CHEMISTRY B, 2016, 4 (41) : 6694 - 6705
  • [32] Cell-Laden 3D Printed Scaffolds for Bone Tissue Engineering
    Piard C.M.
    Chen Y.
    Fisher J.P.
    [J]. Clinical Reviews in Bone and Mineral Metabolism, 2015, 13 (4): : 245 - 255
  • [33] Engineered 3D tissue models for cell-laden microfluidic channels
    Song, Young S.
    Lin, Richard L.
    Montesano, Grace
    Durmus, Naside G.
    Lee, Grace
    Yoo, Seung-Schik
    Kayaalp, Emre
    Haeggstrom, Edward
    Khademhosseini, Ali
    Demirci, Utkan
    [J]. ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2009, 395 (01) : 185 - 193
  • [34] 3D Bioprinting of Oxygenated Cell-Laden Gelatin Methacryloyl Constructs
    Erdem, Ahmet
    Darabi, Mohammad Ali
    Nasiri, Rohollah
    Sangabathuni, Sivakoti
    Ertas, Yavuz Nuri
    Alem, Halima
    Hosseini, Vahid
    Shamloo, Amir
    Nasr, Ali S.
    Ahadian, Samad
    Dokmeci, Mehmet R.
    Khademhosseini, Ali
    Ashammakhi, Nureddin
    [J]. ADVANCED HEALTHCARE MATERIALS, 2020, 9 (15)
  • [35] Biofabrication of tissue constructs by 3D bioprinting of cell-laden microcarriers
    Levato, Riccardo
    Visser, Jetze
    Planell, Josep A.
    Engel, Elisabeth
    Malda, Jos
    Mateos-Timoneda, Miguel A.
    [J]. BIOFABRICATION, 2014, 6 (03)
  • [36] 3D Bioprinting of Vascularized, Heterogeneous Cell-Laden Tissue Constructs
    Kolesky, David B.
    Truby, Ryan L.
    Gladman, A. Sydney
    Busbee, Travis A.
    Homan, Kimberly A.
    Lewis, Jennifer A.
    [J]. ADVANCED MATERIALS, 2014, 26 (19) : 3124 - 3130
  • [37] Development of a cell-laden 3D hydrogel scaffold assessing neuronal function through microelectrode array recordings
    Lauria, I.
    Bendt, F.
    Hartmann, J.
    Nimtz, L.
    Blaeser, A.
    Ruetten, S.
    Fritsche, E.
    [J]. TOXICOLOGY LETTERS, 2018, 295 : S121 - S121
  • [38] 3D bioprinting of cell-laden electroconductive MXene nanocomposite bioinks
    Rastin, Hadi
    Zhang, Bingyang
    Mazinani, Arash
    Hassan, Kamrul
    Bi, Jingxiu
    Tran Thanh Tung
    Losic, Dusan
    [J]. NANOSCALE, 2020, 12 (30) : 16069 - 16080
  • [39] 3D-printed microfluidic chips with patterned, cell-laden hydrogel constructs
    Knowlton, Stephanie
    Yu, Chu Hsiang
    Ersoy, Fulya
    Emadi, Sharareh
    Khademhosseini, Ali
    Tasoglu, Savas
    [J]. BIOFABRICATION, 2016, 8 (02)
  • [40] 3D bioprinting of complex channels within cell-laden hydrogels
    Ji, Shen
    Almeida, Emily
    Guvendiren, Murat
    [J]. ACTA BIOMATERIALIA, 2019, 95 : 214 - 224