Particle release from dental implants immediately after placement - An ex vivo comparison of different implant systems.
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Julian R. Jones | F. Barrak | Siwei Li | Albert M Muntane | Manoj Bhatia | Kathryn Crossthwaite | Fadi N Barrak
[1] Julian R. Jones,et al. Particle release from implantoplasty of dental implants and impact on cells , 2020, International Journal of Implant Dentistry.
[2] L. Blunt,et al. Quantification of dental implant surface wear and topographical modification generated during insertion , 2020, Surface Topography: Metrology and Properties.
[3] C. Taccioli,et al. Metal Nanoparticles Released from Dental Implant Surfaces: Potential Contribution to Chronic Inflammation and Peri-Implant Bone Loss , 2019, Materials.
[4] Truc Thi Hoang Nguyen,et al. General review of titanium toxicity , 2019, International journal of implant dentistry.
[5] G. Romanos,et al. Potential Causes of Titanium Particle and Ion Release in Implant Dentistry: A Systematic Review , 2018, International journal of molecular sciences.
[6] A. Mombelli,et al. What is the impact of titanium particles and biocorrosion on implant survival and complications? A critical review , 2018, Clinical oral implants research.
[7] A. Stavropoulos,et al. Peri‐implant diseases , 2018, European journal of oral sciences.
[8] F. Iqbal,et al. Short term exposure to titanium, aluminum and vanadium (Ti 6Al 4V) alloy powder drastically affects behavior and antioxidant metabolites in vital organs of male albino mice , 2018, Toxicology reports.
[9] Julian R. Jones,et al. In vitro osteogenesis by intracellular uptake of strontium containing bioactive glass nanoparticles. , 2018, Acta biomaterialia.
[10] Qi Zhou,et al. MicroRNA-494 promotes cancer progression and targets adenomatous polyposis coli in colorectal cancer , 2018, Molecular Cancer.
[11] B. Henriques,et al. Physicochemical and microscopic characterization of implant–abutment joints , 2018, European Journal of Dentistry.
[12] José María Manero,et al. Mechanical Characterisation and Biomechanical and Biological Behaviours of Ti-Zr Binary-Alloy Dental Implants , 2017, BioMed research international.
[13] J. Jacobs,et al. Chemokines Associated with Pathologic Responses to Orthopedic Implant Debris , 2017, Front. Endocrinol..
[14] D. Kohavi,et al. Scaling of titanium implants entrains inflammation-induced osteolysis , 2017, Scientific Reports.
[15] J. Pettersson,et al. Release of titanium after insertion of dental implants with different surface characteristics – an ex vivo animal study , 2017, Acta biomaterialia odontologica Scandinavica.
[16] M. Fraga,et al. The effect of exposure to nanoparticles and nanomaterials on the mammalian epigenome , 2016, International journal of nanomedicine.
[17] F. S. Schwindling,et al. Peri-implant bone response to retrieved human zirconia oral implants after a 4-year loading period: A histologic and histomorphometric evaluation of 22 cases. , 2016, Journal of biomedical materials research. Part B, Applied biomaterials.
[18] V. Bollati,et al. Titanium and Zirconium Levels Are Associated with Changes in MicroRNAs Expression: Results from a Human Cross-Sectional Study on Obese Population , 2016, PloS one.
[19] B. Henriques,et al. Biofilm Affecting the Mechanical Integrity of Implant-Abutment Joints. , 2016, The International journal of prosthodontics.
[20] J. Werckmann,et al. Trojan-Like Internalization of Anatase Titanium Dioxide Nanoparticles by Human Osteoblast Cells , 2016, Scientific Reports.
[21] Sylvester Abanteriba,et al. Status of surface modification techniques for artificial hip implants , 2016, Science and technology of advanced materials.
[22] H. Deppe,et al. Surface morphology analysis of dental implants following insertion into bone using scanning electron microscopy: a pilot study. , 2015, Clinical oral implants research.
[23] S. Kates,et al. Surface Damage on Dental Implants with Release of Loose Particles after Insertion into Bone. , 2015, Clinical implant dentistry and related research.
[24] J. Derks,et al. Peri-implant health and disease. A systematic review of current epidemiology. , 2015, Journal of clinical periodontology.
[25] V Moraschini,et al. Evaluation of survival and success rates of dental implants reported in longitudinal studies with a follow-up period of at least 10 years: a systematic review. , 2015, International journal of oral and maxillofacial surgery.
[26] P. Cundy,et al. Local and systemic metal ion release occurs intraoperatively during correction and instrumented spinal fusion for scoliosis , 2015, Journal of children's orthopaedics.
[27] Alain Iost,et al. Tribological behavior of Ti-6Al-4V and Ti-6Al-7Nb Alloys for Total Hip Prosthesis , 2014 .
[28] H. Matusiewicz. Potential release of in vivo trace metals from metallic medical implants in the human body: from ions to nanoparticles--a systematic analytical review. , 2014, Acta biomaterialia.
[29] J. Jacobs,et al. The Pathology of Orthopedic Implant Failure Is Mediated by Innate Immune System Cytokines , 2014, Mediators of inflammation.
[30] M. J. Nine,et al. Wear Debris Characterization and Corresponding Biological Response: Artificial Hip and Knee Joints , 2014, Materials.
[31] Juliana Ribeiro Pala Jorge,et al. Titanium in Dentistry: Historical Development, State of the Art and Future Perspectives , 2013, Journal of Indian Prosthodontic Society.
[32] Shin-Yoon Kim,et al. Inhibitory effects of luteolin on titanium particle-induced osteolysis in a mouse model. , 2012, Acta biomaterialia.
[33] R. Cabrini,et al. Oral mucosa tissue response to titanium cover screws. , 2012, Journal of periodontology.
[34] M. Dard,et al. A Review of Titanium Zirconium (TiZr) Alloys for Use in Endosseous Dental Implants , 2012, Materials.
[35] Eleftherios Tsiridis,et al. Molecular and immune toxicity of CoCr nanoparticles in MoM hip arthroplasty. , 2012, Trends in molecular medicine.
[36] T. narayanan,et al. Comparison of fretting corrosion behaviour of Ti–6Al–4V alloy and CP-Ti in Ringer’s solution , 2011 .
[37] R. Staden,et al. Dynamic modelling and simulation of dental implant insertion process-A finite element study , 2011 .
[38] N. Gjerdet,et al. Mapping of titanium particles in peri-implant oral mucosa by laser ablation inductively coupled plasma mass spectrometry and high-resolution optical darkfield microscopy. , 2011, Journal of oral pathology & medicine : official publication of the International Association of Oral Pathologists and the American Academy of Oral Pathology.
[39] A. Singh,et al. Ti based biomaterials, the ultimate choice for orthopaedic implants – A review , 2009 .
[40] M. Olejnik,et al. EVALUATION OF PLASMA NITRIDING EFFICIENCY OF TITANIUM ALLOYS FOR MEDICAL APPLICATIONS , 2009 .
[41] M. Meyers,et al. Systemic levels of metallic ions released from orthodontic mini-implants. , 2009, American journal of orthodontics and dentofacial orthopedics : official publication of the American Association of Orthodontists, its constituent societies, and the American Board of Orthodontics.
[42] P. Revell,et al. The combined role of wear particles, macrophages and lymphocytes in the loosening of total joint prostheses , 2008, Journal of The Royal Society Interface.
[43] Noel Claffey,et al. Surgical treatment of peri-implantitis. , 2008, Journal of clinical periodontology.
[44] H. Fischer-Brandies,et al. Microdamage in Cortical Bone due to the Overtightening of Orthodontic Microscrews , 2008, Journal of Orofacial Orthopedics / Fortschritte der Kieferorthopädie.
[45] K. Robbie,et al. Nanomaterials and nanoparticles: Sources and toxicity , 2007, Biointerphases.
[46] Ian M. Hutchings,et al. Wear-mode mapping for the micro-scale abrasion test , 2003 .
[47] K. Schlegel,et al. Soft tissue findings above submerged titanium implants--a histological and spectroscopic study. , 2002, Biomaterials.
[48] F. Dalard,et al. Influence of fluoride content and pH on the corrosion resistance of titanium and its alloys. , 2002, Biomaterials.
[49] V. Goldberg,et al. Rapid repair of titanium particle‐induced osteolysis is dramatically reduced in aged mice , 2001, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[50] C J Andres,et al. Electrochemical corrosion of titanium and titanium-based alloys. , 2001, The Journal of prosthetic dentistry.
[51] K. Bessho,et al. Clinicopathological study on titanium miniplates , 1994 .
[52] G. Voet,et al. Improved method of analysis for aluminum in brain tissue. , 1990 .
[53] M. Buzalaf,et al. The effect of the solute on the structure, selected mechanical properties, and biocompatibility of Ti-Zr system alloys for dental applications. , 2014, Materials science & engineering. C, Materials for biological applications.
[54] Y. Konttinen,et al. Macrophage polarization and activation in response to implant debris: influence by "particle disease" and "ion disease". , 2014, Journal of long-term effects of medical implants.
[55] M. Esposito,et al. Interventions for replacing missing teeth: treatment of peri-implantitis. , 2012, The Cochrane database of systematic reviews.
[56] P. Srinivasa Pai,et al. Significance of Tribocorrosion in Biomedical Applications: Overview and Current Status , 2009 .
[57] Ulrike Diebold,et al. The surface science of titanium dioxide , 2003 .
[58] S. Tosatti,et al. Properties and Biological Significance of Natural Oxide Films on Titanium and Its Alloys , 2001 .