Mesenchymal stem cell proliferation and differentiation on load-bearing trabecular Nitinol scaffolds

被引:37
|
作者
Gotman, Irena [1 ]
Ben-David, Dror [2 ]
Unger, Ronald E. [3 ]
Boese, Thomas [3 ]
Gutmanas, Elazar Y. [1 ]
Kirkpatrick, C. James [3 ]
机构
[1] Technion Israel Inst Technol, Dept Mat Sci & Engn, IL-32000 Haifa, Israel
[2] Technion Israel Inst Technol, Rappaport Fac Med, Dept Anat & Cell Biol, IL-31096 Haifa, Israel
[3] Johannes Gutenberg Univ Mainz, Univ Med Ctr, Inst Pathol, REPAIR Lab, D-55101 Mainz, Germany
关键词
Trabecular Nitinol; 3-D scaffolds; Load bearing; Mesenchymal stem cells; Endothelial cells; MARROW STROMAL CELLS; BONE-GRAFT; MECHANICAL-PROPERTIES; SURFACE-ROUGHNESS; ENDOTHELIAL-CELLS; POROUS TANTALUM; TITANIUM-ALLOY; IMPLANTS; INGROWTH; NICKEL;
D O I
10.1016/j.actbio.2013.05.030
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Bone tissue regeneration in load-bearing regions of the body requires high-strength porous scaffolds capable of supporting angiogenesis and osteogenesis. 70% porous Nitinol (NiTi) scaffolds with a regular 3-D architecture resembling trabecular bone were produced from Ni foams using an original reactive vapor infiltration technique. The "trabecular Nitinol" scaffolds possessed a high compressive strength of 79 MPa and high permeability of 6.9 x 10(-6) cm(2). The scaffolds were further modified to produce a near Ni-free surface layer and evaluated in terms of Ni ion release and human mesenchymal stem cell (hMSC) proliferation (AlamarBlue), differentiation (alkaline phosphatase activity, ALP) and mineralization (Alizarin Red S staining). Scanning electron microscopy was employed to qualitatively corroborate the results. hMSCs were able to adhere and proliferate on both as-produced and surface-modified trabecular NiTi scaffolds, to acquire an osteoblastic phenotype and produce a mineralized extracellular matrix. Both ALP activity and mineralization were increased on porous scaffolds compared to control polystyrene plates. Experiments in a model coculture system of microvascular endothelial cells and hMSCs demonstrated the formation of prevascular structures in trabecular NiTi scaffolds. These data suggest that load-bearing trabecular Nitinol scaffolds could be effective in regenerating damaged or lost bone tissue. (C) 2013 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:8440 / 8448
页数:9
相关论文
共 50 条
  • [31] Fabrication of Load-Bearing NiTi Scaffolds for Bone Ingrowth by Ni Foam Conversion
    Gotman, Irena
    ADVANCED ENGINEERING MATERIALS, 2010, 12 (07) : B320 - B325
  • [32] Porous poly(para-phenylene) scaffolds for load-bearing orthopedic applications
    DiRienzo, Amy L.
    Yakacki, Christopher M.
    Frensemeier, Mareike
    Schneider, Andreas S.
    Safranski, David L.
    Hoyt, Anthony J.
    Frick, Carl P.
    JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2014, 30 : 347 - 357
  • [33] Structure design and manufacturing of layered bioceramic scaffolds for load-bearing bone reconstruction
    Yang, Jing-Zhou
    Hu, Xiao-Zhi
    Sultana, Rumana
    Day, Robert Edward
    Ichim, Paul
    BIOMEDICAL MATERIALS, 2015, 10 (04)
  • [34] The Effect of Aligned and Random Electrospun Fibrous Scaffolds on Rat Mesenchymal Stem Cell Proliferation
    Jahani, Hoda
    Kaviani, Saeid
    Hassanpour-Ezatti, Majid
    Soleimani, Masoud
    Kaviani, Zeinab
    Zonoubi, Zahra
    CELL JOURNAL, 2012, 14 (01) : 31 - 38
  • [35] Cardiac and mesenchymal stem cell growth and selective differentiation on three dimensional bioerodable scaffolds
    Forte, G.
    Carotenuto, F.
    Vozzi, G.
    Cossa, P.
    Fiaccavento, R.
    Minieri, M.
    Pagliari, F.
    Pagliari, S.
    Romano, R.
    Ahluwalia, A.
    Traversa, E.
    Di Nardo, P.
    TISSUE ENGINEERING, 2007, 13 (07): : 1647 - 1647
  • [36] Optimization of Surface-Modified Biodegradable Scaffolds for Mesenchymal Stem Cell Adhesion and Differentiation
    Ferlin, K. M.
    Kaplan, D. S.
    Fisher, J. P.
    TISSUE ENGINEERING PART A, 2014, 20 : S29 - S29
  • [37] Macropore design of tissue engineering scaffolds regulates mesenchymal stem cell differentiation fate
    Swanson, W. Benton
    Omi, Maiko
    Zhang, Zhen
    Nam, Hwa Kyung
    Jung, Younghun
    Wang, Gefei
    Ma, Peter X.
    Hatch, Nan E.
    Mishina, Yuji
    BIOMATERIALS, 2021, 272 (272)
  • [38] Bespoke bioceramic scaffolds support mesenchymal stem cell growth and osteogenic differentiation.
    Dyson, J.
    Genever, P.
    Dalgamo, K.
    Wood, D.
    JOURNAL OF BONE AND MINERAL RESEARCH, 2007, 22 : S144 - S144
  • [39] Injectable, highly flexible and thermoresponsive hydrogels for mesenchymal stem cell proliferation and differentiation
    Li, Zhenqing
    Guan, Jianjun
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2010, 240
  • [40] The Effect of Photobiomodulation Therapy on the Differentiation, Proliferation, and Migration of the Mesenchymal Stem Cell: A Review
    Ahrabi, Behnaz
    Tavirani, Mostafa Rezaei
    Khoramgah, Maryam Sadat
    Noroozian, Mohsen
    Darabi, Shahram
    Khoshsirat, Shahrokh
    Abbaszadeh, Hojjat Allah
    JOURNAL OF LASERS IN MEDICAL SCIENCES, 2019, 10 (04) : S96 - S103