Tatum H. Maxillary and sinus implant reconstructions. Dent Clin North Am. 1986;30(2):207–29.
Boyne PJ, James RA. Grafting of the maxillary sinus floor with autogenous marrow and bone. J Oral Surg. 1980;38(8):613–6.
Shamsoddin E, Houshmand B, Golabgiran M. Biomaterial selection for bone augmentation in implant dentistry: a systematic review. J Adv Pharm Technol Res. 2019;10(2):46–50.
Article CAS PubMed PubMed Central Google Scholar
Al-Moraissi EA, Alkhutari AS, Abotaleb B, Altairi NH, Del Fabbro M. Do osteoconductive bone substitutes result in similar bone regeneration for maxillary sinus augmentation when compared to osteogenic and osteoinductive bone grafts? A systematic review and frequentist network meta-analysis. Int J Oral Maxillofac Surg. 2020;49(1):107–20.
Article CAS PubMed Google Scholar
Zijderveld SA, Zerbo IR, van den Bergh JP, Schulten EA, ten Bruggenkate CM. Maxillary sinus floor augmentation using a beta-tricalcium phosphate (Cerasorb) alone compared to autogenous bone grafts. Int J Oral Maxillofac Implants. 2005;20(3):432–40.
Rickert D, Slater JJ, Meijer HJ, Vissink A, Raghoebar GM. Maxillary sinus lift with solely autogenous bone compared to a combination of autogenous bone and growth factors or (solely) bone substitutes. A systematic review. Int J Oral Maxillofac Surg. 2012;41(2):160–7.
Article CAS PubMed Google Scholar
Kirmeier R, Payer M, Wehrschuetz M, Jakse N, Platzer S, Lorenzoni M. Evaluation of three-dimensional changes after sinus floor augmentation with different grafting materials. Clin Oral Implants Res. 2008;19(4):366–72.
La Monaca G, Iezzi G, Cristalli MP, Pranno N, Sfasciotti GL, Vozza I. Comparative histological and histomorphometric results of six biomaterials used in two-stage maxillary sinus augmentation model after 6-month healing. Biomed Res Int. 2018;2018:9430989.
Article PubMed PubMed Central Google Scholar
Annibali S, Iezzi G, Sfasciotti GL, Cristalli MP, Vozza I, Mangano C, et al. Histological and histomorphometric human results of HA-Beta-TCP 30/70 compared to three different biomaterials in maxillary sinus augmentation at 6 months: a preliminary report. Biomed Res Int. 2015;2015: 156850.
Article PubMed PubMed Central Google Scholar
Helder MN, van Esterik FAS, Kwehandjaja MD, Ten Bruggenkate CM, Klein-Nulend J, Schulten EAJM. Evaluation of a new biphasic calcium phosphate for maxillary sinus floor elevation: micro-CT and histomorphometrical analyses. Clin Oral Implants Res. 2018;29(5):488–98.
Article PubMed PubMed Central Google Scholar
Rocha CA, Arantes RVN, Cestari TM, Santos PS, Assis GF, Taga R. Maxillary sinus lift response to platelet-rich plasma associated with autogenous bone, ceramic biphasic HA/β-TCP (70:30), or deproteinized bovine bone. Int J Implant Dent. 2020;6(1):79.
Article PubMed PubMed Central Google Scholar
Ishikawa K, Miyamoto Y, Tsuchiya A, Hayashi K, Tsuru K, Ohe G. Physical and histological comparison of hydroxyapatite, carbonate apatite, and β-tricalcium phosphate bone substitutes. Materials (Basel). 2018;11(10):1993.
Article ADS PubMed PubMed Central Google Scholar
Sokolowski A, Sokolowski A, Schwarze U, Theisen K, Payer M, Lorenzoni M, et al. Phycogenic bone substitutes for sinus floor augmentation: histomorphometric comparison of hydroxyapatite and biphasic calcium phosphate in a randomised clinical pilot study. Int J Oral Implantol (Berl). 2020;13(4):387–99.
Li Y, Zhang X, de Groot K. Hydrolysis and phase transition of alpha-tricalcium phosphate. Biomaterials. 1997;18(10):737–41.
Article CAS PubMed Google Scholar
Abdel-Fattah WI, Reicha FM, Elkhooly TA. Nano-beta-tricalcium phosphates synthesis and biodegradation: 1 Effect of microwave and SO(4)(2−) ions on beta-TCP synthesis and its characterization. Biomed Mater. 2008;3(3):034121.
Article ADS PubMed Google Scholar
Suba Z, Takacs D, Matusovicz D, Fazekas A, Szabo G, Barabas J. Quantitative and qualitative comparison of the maxillary bone regeneration after beta-tricalcium phosphate and autogenous bone implantation. Fogorv Sz. 2006;99(1):21–8.
Suba Z, Hrabak K, Huys L, Coulthard P, Maiorana C, Garagiola U, et al. Histologic and histomorphometric study of bone regeneration induced by beta-tricalcium phosphate (multicenter study). Orv Hetil. 2004;145(27):1431–7.
Ng AM, Tan KK, Phang MY, Aziyati O, Tan GH, Isa MR, et al. Differential osteogenic activity of osteoprogenitor cells on HA and TCP/HA scaffold of tissue engineered bone. J Biomed Mater Res A. 2008;85(2):301–12.
Zijderveld SA, Schulten EA, Aartman IH, ten Bruggenkate CM. Long-term changes in graft height after maxillary sinus floor elevation with different grafting materials: radiographic evaluation with a minimum follow-up of 4.5 years. Clin Oral Implants Res. 2009;20(7):691–700.
Loin J, Kun-Darbois JD, Guillaume B, Badja S, Libouban H, Chappard D. Maxillary sinus floor elevation using beta-tricalcium-phosphate (beta-TCP) or natural bone: same inflammatory response. J Mater Sci Mater Med. 2019;30(9):97.
Pereira RS, Gorla LF, Boos FBJD, Okamoto R, Garcia Júnior IR, Hochuli-Vieira E. Use of autogenous bone and beta-tricalcium phosphate in maxillary sinus lifting: histomorphometric study and immunohistochemical assessment of RUNX2 and VEGF. Int J Oral Maxillofac Surg. 2017;46(4):503–10.
Article CAS PubMed Google Scholar
Harel N, Moses O, Palti A, Ormianer Z. Long-term results of implants immediately placed into extraction sockets grafted with β-tricalcium phosphate: a retrospective study. J Oral Maxillofac Surg. 2013;71(2):e63–8.
Chappard D, Guillaume B, Mallet R, Pascaretti-Grizon F, Basle MF, Libouban H. Sinus lift augmentation and beta-TCP: a microCT and histologic analysis on human bone biopsies. Micron. 2010;41(4):321–6.
Article CAS PubMed Google Scholar
Bernhardt A, Lode A, Peters F, Gelinsky M. Comparative evaluation of different calcium phosphate-based bone graft granules—an in vitro study with osteoblast-like cells. Clin Oral Implants Res. 2013;24(4):441–9.
Yao CH, Liu BS, Hsu SH, Chen YS, Tsai CC. Biocompatibility and biodegradation of a bone composite containing tricalcium phosphate and genipin crosslinked gelatin. J Biomed Mater Res A. 2004;69(4):709–17.
Chen Z, Wu C, Yuen J, Klein T, Crawford R, Xiao Y. Influence of osteocytes in the in vitro and in vivo β-tricalcium phosphate-stimulated osteogenesis. J Biomed Mater Res A. 2014;102(8):2813–23.
Jensen OT, Shulman LB, Block MS, Iacono VJ. Report of the Sinus Consensus Conference of 1996. Int J Oral Maxillofac Implants. 1998;13(Suppl):11–45.
Molemans B, Cortellini S, Jacobs R, Pinto N, Teughels W, Quirynen M. Simultaneous sinus floor elevation and implant placement using leukocyte- and platelet-rich fibrin as a sole graft material. Int J Oral Maxillofac Implants. 2019;34(5):1195–201.
Lundgren S, Cricchio G, Palma VC, Salata LA, Sennerby L. Sinus membrane elevation and simultaneous insertion of dental implants: a new surgical technique in maxillary sinus floor augmentation. Periodontol. 2000;2008(47):193–205.
Lundgren S, Cricchio G, Hallman M, Jungner M, Rasmusson L, Sennerby L. Sinus floor elevation procedures to enable implant placement and integration: techniques, biological aspects and clinical outcomes. Periodontol 2000. 2017;73(1):103–20.
Nedir R, Nurdin N, Huynh-Ba G, Bischof M. Change in crown-to-implant ratio of implants placed in grafted and nongrafted posterior maxillary sites: a 5-year prospective randomized study. Int J Oral Maxillofac Implants. 2019;34(5):1231–6.
Geurs NC, Wang IC, Shulman LB, Jeffcoat MK. Retrospective radiographic analysis of sinus graft and implant placement procedures from the academy of osseointegration consensus conference on sinus grafts. Int J Periodontics Restorative Dent. 2001;21(5):517–23.
Mangano FG, Colombo M, Veronesi G, Caprioglio A, Mangano C. Mesenchymal stem cells in maxillary sinus augmentation: a systematic review with meta-analysis. World J Stem Cells. 2015;7(6):976–91.
Article PubMed PubMed Central Google Scholar
Karagah A, Tabrizi R, Mohammadhosseinzade P, Mirzadeh M, Tofangchiha M, Lajolo C, et al. Effect of sinus floor augmentation with platelet-rich fibrin versus allogeneic bone graft on stability of one-stage dental implants: a split-mouth randomized clinical trial. Int J Environ Res Public Health. 2022;19(15):9569.
Article PubMed PubMed Central Google Scholar
Kolerman R, Nissan J, Rahmanov M, Vered H, Cohen O, Tal H. Comparison between mineralized cancellous bone allograft and an alloplast material for sinus augmentation: a split mouth histomorphometric study. Clin Implant Dent Relat Res. 2017;19(5):812–20.
Hatano N, Sennerby L, Lundgren S. Maxillary sinus augmentation using sinus membrane elevation and peripheral venous blood for implant-supported rehabilitation of the atrophic posterior maxilla: case series. Clin Implant Dent Relat Res. 2007;9(3):150–5.
Lewin S, Riben C, Thor A, Öhman-Mägi C. Bone volume assessment around dental implants after open maxillary sinus elevation surgery: a quantitative approach to CBCT images. Int J Oral Maxillofac Implants. 2019;34(2):489–98.
Rong Q, Li X, Chen SL, Zhu SX, Huang DY. Effect of the Schneiderian membrane on the formation of bone after lifting the floor of the maxillary sinus: an experimental study in dogs. Br J Oral Maxillofac Surg. 2015;53(7):607–12.
留言 (0)