• Title of article

    Self-assembled composite matrix in a hierarchical 3-D scaffold for bone tissue engineering

  • Author/Authors

    Chen، نويسنده , , Muwan and Le، نويسنده , , Dang Q.S. and Baatrup، نويسنده , , Anette and Nygaard، نويسنده , , Jens V. and Hein، نويسنده , , San and Bjerre، نويسنده , , Lea and Kassem، نويسنده , , Moustapha and Zou، نويسنده , , Xuenong and Bünger، نويسنده , , Cody، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2011
  • Pages
    12
  • From page
    2244
  • To page
    2255
  • Abstract
    It is of high clinical relevance in bone tissue engineering that scaffolds promote a high seeding efficiency of cells capable of osteogenic differentiation, such as human bone marrow-derived mesenchymal stem cells (hMSCs). We evaluated the effects of a novel polycaprolactone (PCL) scaffold on hMSC seeding efficiency, proliferation, distribution and differentiation. Porous PCL meshes prepared by fused deposition modeling (FDM) were embedded in matrix of hyaluronic acid, methylated collagen and terpolymer via polyelectrolyte complex coacervation. Scaffolds were cultured statically and dynamically in osteogenic stimulation medium for up to 28 days. Compared to naked PCL scaffolds, embedded scaffolds provided a higher cell seeding efficiency (t-test, P < 0.05), a more homogeneous cell distribution and more osteogenically differentiated cells, verified by a more pronounced gene expression of the bone markers alkaline phosphatase, osteocalcin, bone sialoprotein I and bone sialoprotein II. Dynamic culture resulted in higher amounts of DNA (day 14 and day 21) and calcium (day 21 and day 28), compared to static culture. Dynamic culture and the embedding synergistically enhanced the calcium deposition of hMSC on day 21 and day 28. This in vitro study provides evidence that hybrid scaffolds made from natural and synthetic polymers improve cellular seeding efficiency, proliferation, distribution and osteogenic differentiation.
  • Keywords
    Human mesenchymal stem cell , Scaffold , real-time RT-PCR , Osteogenic Differentiation , Dynamic culture
  • Journal title
    Acta Biomaterialia
  • Serial Year
    2011
  • Journal title
    Acta Biomaterialia
  • Record number

    1754959