Graphene supports in vitro proliferation and osteogenic differentiation of goat adult mesenchymal stem cells: potential for bone tissue engineering

被引:116
作者
Elkhenany, Hoda [1 ]
Amelse, Lisa [1 ]
Lafont, Andersen [2 ]
Bourdo, Shawn [2 ]
Caldwell, Marc [1 ]
Neilsen, Nancy [1 ]
Dervishi, Enkeleda [2 ]
Derek, Oshin [2 ]
Biris, Alexandru S. [2 ]
Anderson, David [1 ]
Dhar, Madhu [1 ]
机构
[1] Univ Tennessee, Dept Large Anim Clin Sci, Knoxville, TN 37996 USA
[2] Univ Arkansas, Ctr Integrat Nanotechnol Sci, Little Rock, AR 72204 USA
关键词
Goat mesenchymal stem cells; oxidized graphene; bio-scaffold; osteogenesis; CARBON NANOTUBES; THERAPY; GROWTH;
D O I
10.1002/jat.3024
中图分类号
R99 [毒物学(毒理学)];
学科分类号
100405 ;
摘要
Current treatments for bone loss injuries involve autologous and allogenic bone grafts, metal alloys and ceramics. Although these therapies have proved useful, they suffer from inherent challenges, and hence, an adequate bone replacement therapy has not yet been found. We hypothesize that graphene may be a useful nanoscaffold for mesenchymal stem cells and will promote proliferation and differentiation into bone progenitor cells. In this study, we evaluate graphene, a biocompatible inert nanomaterial, for its effect on in vitro growth and differentiation of goat adult mesenchymal stem cells. Cell proliferation and differentiation are compared between polystyrene-coated tissue culture plates and graphene-coated plates. Graphitic materials are cytocompatible and support cell adhesion and proliferation. Importantly, cells seeded on to oxidized graphene films undergo osteogenic differentiation in fetal bovine serum-containing medium without the addition of any glucocorticoid or specific growth factors. These findings support graphene's potential to act as an osteoinducer and a vehicle to deliver mesenchymal stem cells, and suggest that the combination of graphene and goat mesenchymal stem cells provides a promising construct for bone tissue engineering. Copyright (c) 2014 John Wiley & Sons, Ltd. Current treatments for bone loss injuries involve autologous and allogenic bone grafts, metal alloys, and ceramics. Although these therapies have proved to be useful, they suffer from inherent challenges, hence, an adequate bone replacement therapy has not yet been found. We hypothesize that graphene may be a useful nanoscaffold for mesenchymal stem cells and will promote proliferation and differentiation into bone progenitor cells. In this study we evaluate a combination of graphene and goat mesenchymal stem cells for bone regeneration.
引用
收藏
页码:367 / 374
页数:8
相关论文
共 28 条
  • [1] Advances in top-down and bottom-up surface nanofabrication: Techniques, applications & future prospects
    Biswas, Abhijit
    Bayer, Ilker S.
    Biris, Alexandru S.
    Wang, Tao
    Dervishi, Enkeleda
    Faupel, Franz
    [J]. ADVANCES IN COLLOID AND INTERFACE SCIENCE, 2012, 170 (1-2) : 2 - 27
  • [2] Bruder SP, 1997, J CELL BIOCHEM, V64, P278, DOI 10.1002/(SICI)1097-4644(199702)64:2<278::AID-JCB11>3.0.CO
  • [3] 2-F
  • [4] In vitro analysis of equine, bone marrow-derived mesenchymal stem cells demonstrates differences within age- and gender-matched horses
    Carter-Arnold, J. L.
    Neilsen, N. L.
    Amelse, L. L.
    Odoi, A.
    Dhar, M. S.
    [J]. EQUINE VETERINARY JOURNAL, 2014, 46 (05) : 589 - 595
  • [5] Rapid expansion of recycling stem cells in cultures of plastic-adherent cells from human bone marrow
    Colter, DC
    Class, R
    DiGirolamo, CM
    Prockop, DJ
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2000, 97 (07) : 3213 - 3218
  • [6] The effect of carbon nanotubes and graphene on the mechanical properties of multi-component polymeric composites
    Dervishi, Enkeleda
    Hategekimana, Festus
    Boyer, Laurent
    Watanabe, Fumiya
    Mustafa, Thikra
    Biswas, Abhijit
    Biris, Alexandru R.
    Biris, Alexandru S.
    [J]. CHEMICAL PHYSICS LETTERS, 2013, 590 : 126 - 130
  • [7] Minimal criteria for defining multipotent mesenchymal stromal cells. The International Society for Cellular Therapy position statement
    Dominici, M.
    Le Blanc, K.
    Mueller, I.
    Slaper-Cortenbach, I.
    Marini, F. C.
    Krause, D. S.
    Deans, R. J.
    Keating, A.
    Prockop, D. J.
    Horwitz, E. M.
    [J]. CYTOTHERAPY, 2006, 8 (04) : 315 - 317
  • [8] Cell proliferation, viability, and in vitro differentiation of equine mesenchymal stem cells seeded on bacterial cellulose hydrogel scaffolds
    Favi, Pelagie M.
    Benson, Roberto S.
    Neilsen, Nancy R.
    Hammonds, Ryan L.
    Bates, Cassandra C.
    Stephens, Christopher P.
    Dhar, Madhu S.
    [J]. MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2013, 33 (04): : 1935 - 1944
  • [9] Large animal models for stem cell therapy
    Harding, John
    Roberts, R. Michael
    Mirochnitchenko, Oleg
    [J]. STEM CELL RESEARCH & THERAPY, 2013, 4
  • [10] Jaiswal N, 1997, J CELL BIOCHEM, V64, P295, DOI 10.1002/(SICI)1097-4644(199702)64:2<295::AID-JCB12>3.3.CO