Page 88 - IJB-2-2
P. 88

Structural, mechanical and in vitro studies on pulsed laser deposition of hydroxyapatite on additive manufactured polyamide substrate

                 of implant surface coatings and  composition on  bone   46.  Wong K V and Hernandez A, 2012, A review of additive
                 integration: A systematic review. Clinical Oral Implants   manufacturing.   ISRN  Mechanical  Engineering,
                 Research, vol.20(S4): 185–206.                     vol.2012(208760): 1–10.
                  http://dx.doi.org/10.1111/j.1600-0501.2009.01777.x   http://dx.doi.org/10.5402/2012/208760
              39.  McBeath R, Pirone D M, Nelson C M, et al., 2004, Cell   47.  Salmoria G V, Leite J L and Paggi R A, 2009, The mi-
                  shape, cytoskeletal tension, and RhoA regulate stem cell   crostructural  characterization of PA6/PA12  blend spe-
                  lineage commitment. Developmental Cell, vol.6(4): 483–   cimens fabricated by selective laser sintering. Polymer
                 495.                                               Testing, vol.28(7): 746–751.
                 http://dx.doi.org/10.1016/S1534-5807(04)00075-9    http://dx.doi.org/10.1016/j.polymertesting.2009.06.010
              40.  Engler A J, Sen S, Sweeney H L, et al., 2006, Matrix   48.  Liu Y, Hou D and Wang G, 2004, A simple wet chemical
                 elasticity directs stem cell  lineage specification.  Cell,   synthesis  and characterization  of hydroxyapatite nano-
                 vol.126(4): 677–689.                               rods. Materials Chemistry and Physics, vol.86(1): 69–73.
                 http://dx.doi.org/10.1016/j.cell.2006.06.044       http://dx.doi.org/10.1016/j.matchemphys.2004.02.009
              41.  Dalby M J, Gadegaard N, Tare R, et al., 2007, The con-  49.  Khandelwal H, Singh G, Agrawal K, et al., 2013, Cha-
                 trol of human  mesenchymal cell differentiation using   racterization of  hydroxyapatite  coating by pulse laser
                 nanoscale symmetry and disorder,  Nature Materials,   deposition technique on stainless steel 316 L by varying
                 vol.6(12): 997–1003.                               laser energy. Applied Surface Science, vol.265: 30–35.
                 http://dx.doi.org/10.1038/nmat2013                 http://dx.doi.org/10.1016/j.apsusc.2012.10.072
              42.  Schmidt D R, Waldeck H and Kao W J, 2009, Protein   50.  Rajesh P, Muraleedharan C V, Komath M, et al., 2011,
                 adsorption to biomaterials, in Puleo D A and Bizios R   Laser surface  modification of titanium substrate for
                 (eds),  Biological Interactions on Materials Surfaces,   pulsed laser deposition of highly adherent hydroxyapa-
                 Springer, New York, 1–18.                          tite.  Journal  of Materials  Science: Materials in Medi-
                 http://dx.doi.org/10.1007/978-0-387-98161-1_1      cine, vol.22(7): 1671–1679.
              43.  Riss T L, Moravec R A, Niles  A L,  et al.,  2004, Cell   http://dx.doi.org/10.1007/s10856-011-4342-3
                  viability assays, in Sittampalam G S, Coussens N P, Nel-  51.  Gittens R A, McLachlan T, Olivares-Navarrete R, et al.,
                  son H, et al. (eds), Assay Guidance Manual, Bethesda   2011, The effects of combined micron-submicron-scale
                 (MD): Eli Lilly & Company and the National Center for   surface roughness and nanoscale features on cell proli-
                 Advancing Translational Sciences, viewed April 3, 2016,     feration and differentiation.  Biomaterials, vol.32(13):
                 <http://europepmc.org/books/NBK144065/pdf/mttassay  3395–3403.
                 s.pdf>                                             http://dx.doi.org/10.1016/j.biomaterials.2011.01.029
              44.  Buehler M J, 2006, Nature designs tough collagen: ex-  52.  Wang  G  and Zreiqat  H,  2010,  Functional coatings or
                 plaining the nanostructure of collagen fibrils. Proceed-  films for hard-tissue applications.  Materials, vol.3(7):
                 ings of the National Academy of Sciences of the United   3994–4050.
                 States of America, vol.103(33): 12285–12290.       http://dx.doi.org/10.3390/ma3073994
                 http://dx.doi.org/10.1073/pnas.0603216103      53.  Guerrini L M, Branciforti M C, Canova T, et al., 2009,
              45.  EOSINT, Plastic laser-sintering for direct manufacturing.   Electrospinning and characterization of polyamide 66
                 EOS GmbH, Technical Data. Birmingham — UK, 2002.   nanofibers with  different molecular weights.  Materials
                 Fine Polyamide PA 2200 for EOSINT P, Material Data   Research, vol.12(2): 181–190.
                 Sheet.                                             http://dx.doi.org/10.1590/S1516-14392009000200012




















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