• DocumentCode
    80926
  • Title

    Adhesion and Proliferation of Osteoblast-Like Cells on Anodic Porous Alumina Substrates With Different Morphology

  • Author

    Salerno, M. ; Caneva-Soumetz, F. ; Pastorino, Laura ; Patra, Nipanjana ; Diaspro, A. ; Ruggiero, Carmelina

  • Author_Institution
    Nanophysics Dept., Ist. Italiano di Tecnol., Genoa, Italy
  • Volume
    12
  • Issue
    2
  • fYear
    2013
  • fDate
    Jun-13
  • Firstpage
    106
  • Lastpage
    111
  • Abstract
    We have fabricated nanoporous alumina surfaces by means of anodization in oxalic acid in different conditions and used them as the substrates for the growth of cells from a human osteoblast-like cell line. The rough nanoporous alumina substrates have been compared both with smooth standard Petri dishes used as the control and with commercial substrates of similar material. The viability of the cells has been assessed at different culture times of 4, 11, 18, and 25 days in vitro. It turned out that the porous side of the galvanostatically fabricated alumina performed similar to the control and better than the commercial porous alumina, whereas the potentiostatically fabricated porous alumina performed better than all the other substrates at all times, and in particular at the two shortest time periods of 4 and 11 days in vitro. The best performance of the substrates is associated with intermediate surface roughness and feature spacing.
  • Keywords
    adhesion; alumina; anodisation; biological techniques; biomechanics; cellular biophysics; nanofabrication; porous materials; statistical analysis; substrates; surface morphology; surface roughness; Al2O3; Petri dishes; anodic porous alumina substrates; cell growth; feature spacing; galvanostatically alumina fabrication; human osteoblast-like cell line adhesion; human osteoblast-like cell line proliferation; morphology; nanoporous alumina surface fabrication; oxalic acid; potentiostatically porous alumina fabrication; surface roughness; time 11 day; time 18 day; time 25 day; time 4 day; Biocompatibility; nanoporous alumina; osteoblast; surface roughness; Aluminum Oxide; Cell Adhesion; Cell Culture Techniques; Cell Line; Cell Proliferation; Cell Survival; Electrodes; Humans; Microscopy, Atomic Force; Osteoblasts; Oxalic Acid; Porosity;
  • fLanguage
    English
  • Journal_Title
    NanoBioscience, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1536-1241
  • Type

    jour

  • DOI
    10.1109/TNB.2013.2257835
  • Filename
    6521449