Kotsakis, G. A. & Olmedo, D. G. Peri-implantitis is not periodontitis: Scientific discoveries shed light on microbiome-biomaterial interactions that may determine disease phenotype. Periodontol 2000 86, 231–240 (2021).
Jepsen, S. et al. Periodontal manifestations of systemic diseases and developmental and acquired conditions: Consensus report of workgroup 3 of the 2017 World Workshop on the Classification of Periodontal and Peri-Implant Diseases and Conditions. J. Periodontol. 89, S237–s248 (2018).
Dixon, D. R. & London, R. M. Restorative design and associated risks for peri-implant diseases. Periodontol 2000 81, 167–178 (2019).
Komatsu, K. et al. Discriminating microbial community structure between peri-implantitis and periodontitis with integrated metagenomic, metatranscriptomic, and network analysis. Front. Cell. Infect. Microbiol. 10, 596490 (2020).
Article PubMed PubMed Central Google Scholar
Carcuac, O. et al. Experimental periodontitis and peri-implantitis in dogs. Clin. Oral. Implants Res 24, 363–371 (2013).
Nakajima, H. & Okabe, T. Titanium in dentistry: development and research in the U.S.A. Dent. Mater. J. 15, 77–90 (1996).
Sarraf, M., Rezvani Ghomi, E., Alipour, S., Ramakrishna, S. & Liana Sukiman, N. A state-of-the-art review of the fabrication and characteristics of titanium and its alloys for biomedical applications. Bio-Des. Manuf. 5, 371–395 (2022).
Franchi, M. et al. Early detachment of titanium particles from various different surfaces of endosseous dental implants. Biomaterials 25, 2239–2246 (2004).
Schwarz, F., Derks, J., Monje, A. & Wang, H. L. Peri-implantitis. J. Periodontol. 89, S267–s290 (2018).
Berglundh, T. et al. Peri-implant diseases and conditions: Consensus report of workgroup 4 of the 2017 World Workshop on the Classification of Periodontal and Peri-Implant Diseases and Conditions. J. Clin. Periodontol. 45, S286–s291 (2018).
Delgado-Ruiz, R & Romanos, G. Potential causes of titanium particle and ion release in implant dentistry: A systematic review. Int. J. Mol. Sci. 19, https://doi.org/10.3390/ijms19113585 (2018).
Romanos, GE, Fischer, GA & Delgado-Ruiz, R. Titanium wear of dental implants from placement, under loading and maintenance protocols. Int. J. Mol. Sci. 22, https://doi.org/10.3390/ijms22031067 (2021).
Möhlhenrich, S. C., Modabber, A., Steiner, T., Mitchell, D. A. & Hölzle, F. Heat generation and drill wear during dental implant site preparation: Systematic review. Br. J. Oral. Maxillofac. Surg. 53, 679–689 (2015).
Rashad, A. et al. Material attrition and bone micromorphology after conventional and ultrasonic implant site preparation. Clin. Oral. Implants Res 24, 110–114 (2013).
Alevizakos, V., Mitov, G., Ahrens, A. M. & von See, C. The influence of implant site preparation and sterilization on the performance and wear of implant drills. Int. J. Oral. Maxillofac. Implants 36, 546–552 (2021).
Allsobrook, O. F., Leichter, J., Holborrow, D. & Swain, M. Descriptive study of the longevity of dental implant surgery drills. Clin. Implant Dent. Relat. Res. 13, 244–254 (2011).
Oliveira, N., Alaejos-Algarra, F., Mareque-Bueno, J., Ferrés-Padró, E. & Hernández-Alfaro, F. Thermal changes and drill wear in bovine bone during implant site preparation. A comparative in vitro study: twisted stainless steel and ceramic drills. Clin. Oral. Implants Res 23, 963–969 (2012).
Möhlhenrich, S. C. et al. Influence of bone density and implant drill diameter on the resulting axial force and temperature development in implant burs and artificial bone: an in vitro study. Oral. Maxillofac. Surg. 20, 135–142 (2016).
Barrak, F. et al. Particle release from dental implants immediately after placement - An ex vivo comparison of different implant systems. Dent. Mater. 38, 1004–1014 (2022).
Guan, H., van Staden, R. C., Johnson, N. W. & Loo, Y. C. Dynamic modelling and simulation of dental implant insertion process—A finite element study. Finite Elem. Anal. Des. 47, 886–897 (2011).
Gao, S. S., Zhang, Y. R., Zhu, Z. L. & Yu, H. Y. Micromotions and combined damages at the dental implant/bone interface. Int. J. oral. Sci. 4, 182–188 (2012).
Article PubMed PubMed Central Google Scholar
Alqutaibi, A. Y. & Aboalrejal, A. N. Microgap and micromotion at the implant abutment interface cause marginal bone loss around dental implant but more evidence is needed. J. Evid. Based Dent. Pract. 18, 171–172 (2018).
Lopes, P. A. et al. Physicochemical and microscopic characterization of implant-abutment joints. Eur. J. Dent. 12, 100–104 (2018).
Article PubMed PubMed Central Google Scholar
Blum, K. et al. Fatigue induced changes in conical implant-abutment connections. Dent. Mater. 31, 1415–1426 (2015).
Gratton, D. G., Aquilino, S. A. & Stanford, C. M. Micromotion and dynamic fatigue properties of the dental implant-abutment interface. J. Prosthet. Dent. 85, 47–52 (2001).
Binon, P. P. The effect of implant/abutment hexagonal misfit on screw joint stability. Int. J. Prosthodont. 9, 149–160 (1996).
Zipprich, H., Weigl, P., Ratka, C., Lange, B. & Lauer, H. C. The micromechanical behavior of implant-abutment connections under a dynamic load protocol. Clin. Implant Dent. Relat. Res. 20, 814–823 (2018).
Huang, HH et al. Blood coagulation on titanium dioxide films with various crystal structures on titanium implant surfaces. Cells 11, https://doi.org/10.3390/cells11172623 (2022).
Addison, O. et al. Do ‘passive’ medical titanium surfaces deteriorate in service in the absence of wear? J. R. Soc., Interface 9, 3161–3164 (2012).
Valente, M. L., Lepri, C. P. & dos Reis, A. C. In vitro microstructural analysis of dental implants subjected to insertion torque and pullout test. Braz. Dent. J. 25, 343–345 (2014).
Feng, B. et al. Characterization of surface oxide films on titanium and bioactivity. J. Mater. Sci. Mater. Med. 13, 457–464 (2002).
Alrabeah, G. O., Knowles, J. C. & Petridis, H. The effect of platform switching on the levels of metal ion release from different implant-abutment couples. Int. J. oral. Sci. 8, 117–125 (2016).
Article PubMed PubMed Central Google Scholar
Ramel, C. F. et al. Surface roughness of dental implants and treatment time using six different implantoplasty procedures. Clin. Oral. Implants Res 27, 776–781 (2016).
Dhaliwal, J. S. et al. Microbial biofilm decontamination on dental implant surfaces: A mini review. Front. Cell. Infect. Microbiol. 11, 736186 (2021).
Article PubMed PubMed Central Google Scholar
Louropoulou, A., Slot, D. E. & Van der Weijden, F. A. Titanium surface alterations following the use of different mechanical instruments: a systematic review. Clin. Oral. Implants Res 23, 643–658 (2012).
Ronay, V., Merlini, A., Attin, T., Schmidlin, P. R. & Sahrmann, P. In vitro cleaning potential of three implant debridement methods. Simulation of the non-surgical approach. Clin. Oral. Implants Res 28, 151–155 (2017).
Mouhyi, J., Dohan Ehrenfest, D. M. & Albrektsson, T. The peri-implantitis: implant surfaces, microstructure, and physicochemical aspects. Clin. Implant Dent. Relat. Res 14, 170–183 (2012).
Mombelli, A., Hashim, D. & Cionca, N. What is the impact of titanium particles and biocorrosion on implant survival and complications? A critical review. Clin. Oral. Implants Res 29, 37–53 (2018).
Wheelis, S. E. et al. Effects of decontamination solutions on the surface of titanium: investigation of surface morphology, composition, and roughness. Clin. Oral. Implants Res 27, 329–340 (2016).
Chen, W. Q., Zhang, S. M. & Qiu, J. Surface analysis and corrosion behavior of pure titanium under fluoride exposure. J. Prosthet. Dent. 124, 239.e231–239.e238 (2020).
Chen, X. et al. Elucidating the corrosion-related degradation mechanisms of a Ti-6Al-4V dental implant. Dent. Mater. 36, 431–441 (2020).
Barbieri, M. et al. Corrosion behavior of dental implants immersed into human saliva: preliminary results of an in vitro study. Eur. Rev. Med. Pharmacol. Sci. 21, 3543–3548 (2017).
Faverani, L. P. et al. Effect of bleaching agents and soft drink on titanium surface topography. J. Biomed. Mater. Res. B Appl. Biomater. 102, 22–30 (2014).
Siddiqui, D. A. et al. Evaluation of oral microbial corrosion on the surface degradation of dental implant materials. J. Periodontol. 90, 72–81 (2019).
Alhamad, M, Barão, VAR, Sukotjo, C, Cooper, LF & Mathew, MT. Ti-ions and/or particles in saliva potentially aggravate dental implant corrosion. Materials (Basel, Switzerland)
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