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Convened under the auspicious of esteemed endorsers - ISTA

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anodized/hydro<strong>the</strong>rmally treated titanium implants, J Biomed Mater Res B Appl Biomater, 66,520 (2003).18. YT Sul, The significance <strong>of</strong> <strong>the</strong> surface properties <strong>of</strong> oxidized titanium to <strong>the</strong> boneresponse: special emphasis on potential biochemical bonding <strong>of</strong> oxidized titanium implant,Biomaterials, 24, 3893 (2003).19. D Li, SJ Ferguson, T Beutler, et al., Biomechanical comparison <strong>of</strong> <strong>the</strong> sandblasted andacid-etched and <strong>the</strong> machined and acid-etched titanium surface for dental implants, J BiomedMater Res, 60, 325 (2002).20. D Buser, T Nydegger, T Oxland, et al., Interface shear strength <strong>of</strong> titanium implantswith a sandblasted and acid-etched surface: a biomechanical study in <strong>the</strong> maxilla <strong>of</strong> miniaturepigs, J Biomed Mater Res, 45, 75 (1999).21. A Wennerberg, T Albrektsson, B Andersson, et al., A histomorphometric and removaltorque study <strong>of</strong> screw-shaped titanium implants with three different surface topographies, ClinOral Implants Res, 6, 24 (1995).22. W Becker, BE Becker, A Ricci, et al., A prospective multicenter clinical trial comparingone- and two-stage titanium screw-shaped fixtures with one-stage plasma-sprayed solid-screwfixtures, Clin Implant Dent Relat Res, 2, 159 (2000).23. SA Hacking, JD Bobyn, M Tanzer, et al., The osseous response to corundum blastedimplant surfaces in a canine hip model, Clin Orthop Relat Res, 240 (1999).24. JE Ellingsen, CB Johansson, A Wennerberg, et al., Improved retention and bonetolmplantcontact with fluoride-modified titanium implants, Int J Oral, 19, 659 (2004).25. G Giavaresi, F Branda, F Causa, et al., Poly(2-hydroxyethyl methacrylate) biomimeticcoating to improve osseointegration <strong>of</strong> a PMMA/HA/glass composite implant: in vivomechanical and histomorphometric assessments, Int J Artifi Organs, 27, 674 (2004).26. A Tach, L Gan, D Deporter, et al., Effect <strong>of</strong> surface chemistry on <strong>the</strong> rate <strong>of</strong>osseointegration <strong>of</strong> sintered porous-surfaced Ti-6Al-4V implants, Int J Oral, 19, 19 (2004).27. Y Sul, E Byon, Y Jeong, Biomechanical measurements <strong>of</strong> calcium-incorporatedoxidized implants in rabbit bone: effect <strong>of</strong> calcium surface chemistry <strong>of</strong> a novel implant, ClinImplant Dent Relat Res, 6, 101 (2004).28. F Liu, Y Song, F Wang, et al., Formation characterization <strong>of</strong> hydroxyapatite on titaniumby microarc oxidation and hydro<strong>the</strong>rmal treatment, J Biosci Bioeng, 100, 100 (2005).29. C Johansson, T Albrektsson, Integration <strong>of</strong> screw implants in <strong>the</strong> rabbit: a 1-yearfollow-up <strong>of</strong> removal torque <strong>of</strong> titanium implants, Int J Oral, 2, 69 (1987).30. X Nie, A Leyland, A Mat<strong>the</strong>ws, Deposition <strong>of</strong> layered bioceramic hydroxyapatite/TiO2coatings on titanium alloys using a hybrid technique <strong>of</strong> micro-arc oxidation and electrophoresis,Surface Coatings Technol, 125, 407 (2000).31. YT Sul, CB Johansson, S Petronis, et al., Characteristics <strong>of</strong> <strong>the</strong> surface oxides on turnedand electrochemically oxidized pure titanium implants up to dielectric breakdown: <strong>the</strong> oxidethickness, micropore configurations, surface roughness, crystal structure and chemicalcomposition, Biomaterials, 23, 491 (2002).Figure Legendsfile:///E|/<strong>ISTA</strong>2010-Abstracts.htm[12/7/2011 3:15:47 PM]

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