A Novel Multi-Phosphonate Surface Treatment of Titanium Dental Implants: A Study in Sheep
Abstract
1. Introduction
2. Results and Discussion
2.1. Results
2.1.1. Implants and Surface Characteristics
2.1.2. Surgery and Postoperative Period
2.1.3. Macroscopical and Radiological Evaluation
2.1.4. Microradiographic Evaluation
2.1.5. Torque-Test Evaluation
| Group | Removal Torque (N·mm) | Stiffness (N·mm/°) | |||
|---|---|---|---|---|---|
| Average | SE | Average | SE | ||
| RD | 2 weeks | 452.3 | 29.0 | 155.5 | 9.7 |
| 8 weeks | 1055.6 | 39.2 | 180.9 | 4.5 | |
| 52 weeks | 1286.9 | 71.0 | 155.5 | 12.5 | |
| RW | 2 weeks | 516.5 | 46.1 | 155.9 | 9.1 |
| 8 weeks | 920.4 | 73.2 | 186.7 | 10.1 | |
| 52 weeks | 1246.4 | 103.6 | 156.3 | 17.5 | |
| RC | 2 weeks | 450.8 | 37.8 | 140.0 | 9.1 |
| 8 weeks | 1035.0 | 45.4 | 194.2 | 6.9 | |
| 52 weeks | 1267.5 | 45.1 | 138.9 | 12.7 | |
| MD | 2 weeks | 251.5 | 35.0 | 125.6 | 17.9 |
| 8 weeks | 283.3 | 23.6 | 105.3 | 11.0 | |
| 52 weeks | 692.5 | 53.6 | 86.9 | 9.5 | |
| MW | 2 weeks | 277.4 | 31.9 | 117.4 | 13.7 |
| 8 weeks | 290.5 | 29.3 | 109.1 | 8.7 | |
| 52 weeks | 717.5 | 80.4 | 96.6 | 11.5 | |
| MC | 2 weeks | 274.4 | 22.4 | 123.5 | 14.3 |
| 8 weeks | 267.7 | 20.5 | 119.9 | 15.5 | |
| 52 weeks | 758.2 | 107.5 | 104.8 | 16.1 | |


2.1.6. Histological Evaluation and BIC

| Group | Cortical | Cancellous | Total | ||||
|---|---|---|---|---|---|---|---|
| Mean | SE | Mean | SE | Mean | SE | ||
| RD | 2 weeks | 72.3 | 8.1 | 84.9 | 3.3 | 84.4 | 2.9 |
| 8 weeks | 61.9 | 6.1 | 72.1 | 4.5 | 66.0 | 3.6 | |
| 52 weeks | 84.0 | 4.5 | 73.9 | 7.0 | 76.4 | 4.4 | |
| RW | 2 weeks | 78.8 | 5.2 | 76.3 | 5.4 | 73.5 | 6.1 |
| 8 weeks | 63.5 | 4.6 | 76.8 | 4.0 | 71.5 | 5.4 | |
| 52 weeks | 72.3 | 7.2 | 80.6 | 5.3 | 77.5 | 3.4 | |
| RC | 2 weeks | 75.9 | 6.4 | 81.3 | 3.0 | 81.4 | 2.1 |
| 8 weeks | 65.2 | 5.9 | 71.9 | 4.5 | 68.8 | 4.7 | |
| 52 weeks | 80.7 | 4.3 | 76.1 | 5.3 | 76.0 | 3.9 | |
| MD | 2 weeks | 64.2 | 7.2 | 26.0 | 3.7 | 33.9 | 3.9 |
| 8 weeks | 44.0 | 5.7 | 27.9 | 4.5 | 32.1 | 3.6 | |
| 52 weeks | 44.5 | 5.3 | 52.2 | 4.8 | 46.6 | 4.7 | |
| MW | 2 weeks | 75.5 | 6.5 | 36.6 | 3.4 | 45.2 | 4.3 |
| 8 weeks | 47.3 | 9.0 | 33.4 | 4.8 | 37.1 | 6.6 | |
| 52 weeks | 45.5 | 7.6 | 50.8 | 6.5 | 47.1 | 6.0 | |
| MC | 2 weeks | 67.3 | 8.2 | 36.0 | 4.8 | 38.0 | 4.3 |
| 8 weeks | 51.7 | 6.2 | 27.2 | 4.0 | 34.4 | 4.1 | |
| 52 weeks | 42.3 | 3.7 | 53.6 | 5.4 | 48.6 | 5.2 | |


2.1.7. Histomorphometric Evaluation



2.1.8. Scanning Electron Microscopy (SEM) Evaluation of Torque Tested Implants

2.2. Discussion
3. Experimental Section
3.1. Implants and Surface Characteristics
| Group ID | Surface | Treatment | Storage |
|---|---|---|---|
| RD | Rough | Multi-phosphonate | Dry |
| RW | Multi-phosphonate | Wet | |
| RC | Control | Dry | |
| MD | Machined | Multi-phosphonate | Dry |
| MW | Multi-phosphonate | Wet | |
| MC | Control | Dry |
3.2. Animals and Surgical Technique
3.3. Anaesthesia

3.4. Surgical Procedure
3.5. Animal Sacrifice and Preparation of Bone Samples for Torque-Test and Histology
3.6. Analysis of Removal Torque-Tests
3.7. Histological Analysis


3.8. Histomorphometrical Analysis

3.9. Scanning Electron Microscopy
3.10. Statistical Analysis
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
- Sennerby, L.; Wennerberg, A. State of the art of oral implants. Periodontol 2000 2008, 47, 15–26. [Google Scholar] [CrossRef] [PubMed]
- Ekelund, J.-A.; Lindquist, L.W.; Carlsson, G.E.; Jemt, T. Implant treatment in the edentulous mandible: A prospective study on Brånemark system implants over more than 20 years. Int. J. Prosthodont. 2003, 16, 602–608. [Google Scholar] [PubMed]
- Adell, R.; Lekholm, U.; Rockler, B.; Brånemark, P.I. A 15-year study of osseointegrated implants in the treatment of the edentulous jaw. Int. J. Oral Surg. 1981, 10, 387–416. [Google Scholar] [CrossRef] [PubMed]
- Albrektsson, T.; Dahl, E.; Enbom, L.; Engevall, S.; Engquist, B.; Eriksson, A.R.; Feldmann, G.; Freiberg, N.; Glantz, P.O.; Kjellman, O. Osseointegrated oral implants. A Swedish multicenter study of 8139 consecutively inserted Nobelpharma implants. J. Periodontol. 1988, 59, 287–296. [Google Scholar]
- Brunette, D.; Tengvall, P.; Textor, M.; Thomsen, P. Titanium in Medicine: Material Science, Surface Science, Engineering, Biological Responses and Medical Applications; Springer-Berlin: Berlin, Germany, 2013. [Google Scholar]
- Akagawa, Y.; Abe, Y. Titanium: The ultimate solution or an evolutionary step? Int. J. Prosthodont. 2003, 16, 28–29; 47–51. [Google Scholar]
- Esposito, M.; Murray-Curtis, L.; Grusovin, M.G.; Coulthard, P.; Worthington, H.V. Interventions for replacing missing teeth: Different types of dental implants. Cochrane Database Syst. Rev. 2007. [Google Scholar] [CrossRef]
- Junker, R.; Dimakis, A.; Thoneick, M.; Jansen, J.A. Effects of implant surface coatings and composition on bone integration: A systematic review. Clin. Oral Implants Res. 2009, 20, 185–206. [Google Scholar] [CrossRef] [PubMed]
- Mendonça, G.; Mendonça, D.B.S.; Aragão, F.J.L.; Cooper, L.F. Advancing dental implant surface technology—From micron- to nanotopography. Biomaterials 2008, 29, 3822–3835. [Google Scholar]
- Le Guéhennec, L.; Soueidan, A.; Layrolle, P.; Amouriq, Y. Surface treatments of titanium dental implants for rapid osseointegration. Dent. Mater. Off. Publ. Acad. Dent. Mater. 2007, 23, 844–854. [Google Scholar]
- Creugers, N.H.; Kreulen, C.M.; Snoek, P.A.; de Kanter, R.J. A systematic review of single-tooth restorations supported by implants. J. Dent. 2000, 28, 209–217. [Google Scholar] [CrossRef] [PubMed]
- Bartlett, D. Implants for life? A critical review of implant-supported restorations. J. Dent. 2007, 35, 768–772. [Google Scholar] [CrossRef] [PubMed]
- Friberg, B. The posterior maxilla: Clinical considerations and current concepts using Brånemark System implants. Periodontol. 2000 2008, 47, 67–78. [Google Scholar] [CrossRef] [PubMed]
- Puleo, D.A.; Thomas, M.V. Implant surfaces. Dent. Clin. North Am. 2006, 50, 323–338. [Google Scholar] [CrossRef] [PubMed]
- Suvan, J.; Petrie, A.; Moles, D.R.; Nibali, L.; Patel, K.; Darbar, U.; Donos, N.; Tonetti, M.; D’Aiuto, F. Body mass index as a predictive factor of periodontal therapy outcomes. J. Dent. Res. 2014, 93, 49–54. [Google Scholar] [CrossRef] [PubMed]
- Scully, C.; Hobkirk, J.; Dios, P.D. Dental endosseous implants in the medically compromised patient. J. Oral Rehabil. 2007, 34, 590–599. [Google Scholar] [CrossRef] [PubMed]
- Lekholm, U. Immediate/early loading of oral implants in compromised patients. Periodontol 2000 2003, 33, 194–203. [Google Scholar] [CrossRef] [PubMed]
- Cano, J.; Campo, J.; Vaquero, J.J.; Martínez González, J.M.; Bascones, A. High resolution image in bone biology II. Review of the literature. Med. Oral Patol. Oral Cir. Bucal 2008, 13, E31–E35. [Google Scholar]
- Al-Sabbagh, M. Implants in the esthetic zone. Dent. Clin. North Am. 2006, 50, 391–407. [Google Scholar]
- Wennerberg, A.; Albrektsson, T. Effects of titanium surface topography on bone integration: A systematic review. Clin. Oral Implants Res. 2009, 20, 172–184. [Google Scholar] [CrossRef] [PubMed]
- Shalabi, M.M.; Gortemaker, A.; Van’t Hof, M.A.; Jansen, J.A.; Creugers, N.H.J. Implant surface roughness and bone healing: A systematic review. J. Dent. Res. 2006, 85, 496–500. [Google Scholar] [CrossRef] [PubMed]
- Cooper, L.F. A role for surface topography in creating and maintaining bone at titanium endosseous implants. J. Prosthet. Dent. 2000, 84, 522–534. [Google Scholar] [CrossRef] [PubMed]
- Albrektsson, T.; Wennerberg, A. The impact of oral implants-past and future, 1966–2042. J. Can. Dent. Assoc. 2005, 71, 327:1–327:5. [Google Scholar]
- Jäger, M.; Zilkens, C.; Zanger, K.; Krauspe, R. Significance of nano- and microtopography for cell-surface interactions in orthopaedic implants. J. Biomed. Biotechnol. 2007, 69036:1–69036:19. [Google Scholar]
- Maekawa, K.; Yoshida, Y.; Mine, A.; Fujisawa, T.; Van Meerbeek, B.; Suzuki, K.; Kuboki, T. Chemical interaction of polyphosphoric acid with titanium and its effect on human bone marrow derived mesenchymal stem cell behavior. J. Biomed. Mater. Res. A 2007, 82, 195–200. [Google Scholar] [CrossRef] [PubMed]
- Maekawa, K.; Shimono, K.; Oshima, M.; Yoshida, Y.; Van Meerbeek, B.; Suzuki, K.; Kuboki, T. Polyphosphoric acid treatment promotes bone regeneration around titanium implants. J. Oral Rehabil. 2009, 36, 362–367. [Google Scholar] [CrossRef] [PubMed]
- Kawazoe, Y.; Shiba, T.; Nakamura, R.; Mizuno, A.; Tsutsumi, K.; Uematsu, T.; Yamaoka, M.; Shindoh, M.; Kohgo, T. Induction of calcification in MC3T3-E1 cells by inorganic polyphosphate. J. Dent. Res. 2004, 83, 613–618. [Google Scholar] [CrossRef] [PubMed]
- Harada, K.; Itoh, H.; Kawazoe, Y.; Miyazaki, S.; Doi, K.; Kubo, T.; Akagawa, Y.; Shiba, T. Polyphosphate-mediated inhibition of tartrate-resistant acid phosphatase and suppression of bone resorption of osteoclasts. PLoS One 2013, 8. [Google Scholar] [CrossRef]
- Russell, R.G.G.; Watts, N.B.; Ebetino, F.H.; Rogers, M.J. Mechanisms of action of bisphosphonates: Similarities and differences and their potential influence on clinical efficacy. Osteoporos. Int. 2008, 19, 733–759. [Google Scholar] [CrossRef] [PubMed]
- Gittens, R.A.; Scheideler, L.; Rupp, F.; Hyzy, S.L.; Geis-Gerstorfer, J.; Schwartz, Z.; Boyan, B.D. A review on the wettability of dental implant surfaces II: Biological and clinical aspects. Acta Biomater. 2014, 10, 2907–2918. [Google Scholar] [CrossRef] [PubMed]
- Shannon, F.J.; Cottrell, J.M.; Deng, X.-H.; Crowder, K.N.; Doty, S.B.; Avaltroni, M.J.; Warren, R.F.; Wright, T.M.; Schwartz, J. A novel surface treatment for porous metallic implants that improves the rate of bony ongrowth. J. Biomed. Mater. Res. A 2008, 86, 857–864. [Google Scholar] [CrossRef] [PubMed]
- Auernheimer, J.; Zukowski, D.; Dahmen, C.; Kantlehner, M.; Enderle, A.; Goodman, S.L.; Kessler, H. Titanium implant materials with improved biocompatibility through coating with phosphonate-anchored cyclic RGD peptides. Chembiochem. Eur. J. Chem. Biol. 2005, 6, 2034–2040. [Google Scholar] [CrossRef]
- Heijink, A.; Schwartz, J.; Zobitz, M.E.; Nicole Crowder, K.; Lutz, G.E.; Sibonga, J.D. Self-assembled monolayer films of phosphonates for bonding RGD to titanium. Clin. Orthop. 2008, 466, 977–984. [Google Scholar] [CrossRef] [PubMed]
- Viornery, C.; Chevolot, Y.; Léonard, D.; Aronsson, B.-O.; Péchy, P.; Mathieu, H.J.; Descouts, P.; Grätzel, M. Surface modification of titanium with phosphonic acid to improve bone bonding: Characterization by XPS and ToF-SIMS. Langmuir 2002, 18, 2582–2589. [Google Scholar] [CrossRef]
- Esposito, M.; Grusovin, M.G.; Achille, H.; Coulthard, P.; Worthington, H.V. Interventions for replacing missing teeth: Different times for loading dental implants. Cochrane Database Syst. Rev. 2009. [Google Scholar] [CrossRef]
- Viornery, C.; Guenther, H.L.; Aronsson, B.-O.; Péchy, P.; Descouts, P.; Grätzel, M. Osteoblast culture on polished titanium disks modified with phosphonic acids. J. Biomed. Mater. Res. 2002, 62, 149–155. [Google Scholar] [CrossRef] [PubMed]
- Terheyden, H.; Lang, N.P.; Bierbaum, S.; Stadlinger, B. Osseointegration–communication of cells. Clin. Oral Implants Res. 2012, 23, 1127–1135. [Google Scholar] [CrossRef]
- Dayer, R.; Rizzoli, R.; Péchy, P.; Vig, T.; Aronsson, B.-O.; Descouts, P.; Ammann, P. Chemical modification of smooth titanium implant surface by coating with propylene-tetra-phosphonic acid increases their osseointegration. Bone 2005, 36. [Google Scholar] [CrossRef]
- Esposito, M.; Dojcinovic, I.; Germon, L.; Lévy, N.; Curno, R.; Buchini, S.; Péchy, P.; Aronsson, B.-O. Safety and efficacy of a biomimetic monolayer of permanently bound multi-phosphonic acid molecules on dental implants: 1 year post-loading results from a pilot quadruple-blinded randomised controlled trial. Eur. J. Oral Implantol. 2013, 6, 227–236. [Google Scholar] [PubMed]
- Langhoff, J.D.; Voelter, K.; Scharnweber, D.; Schnabelrauch, M.; Schlottig, F.; Hefti, T.; Kalchofner, K.; Nuss, K.; von Rechenberg, B. Comparison of chemically and pharmaceutically modified titanium and zirconia implant surfaces in dentistry: A study in sheep. Int. J. Oral Maxillofac. Surg. 2008, 37, 1125–1132. [Google Scholar] [CrossRef] [PubMed]
- Martini, L.; Fini, M.; Giavaresi, G.; Giardino, R. Sheep model in orthopedic research: A literature review. Comp. Med. 2001, 51, 292–299. [Google Scholar] [PubMed]
- Apelt, D.; Theiss, F.; El-Warrak, A.O.; Zlinszky, K.; Bettschart-Wolfisberger, R.; Bohner, M.; Matter, S.; Auer, J.A.; von Rechenberg, B. In vivo behavior of three different injectable hydraulic calcium phosphate cements. Biomaterials 2004, 25, 1439–1451. [Google Scholar] [CrossRef] [PubMed]
- Kuttenberger, J.J.; Waibel, A.; Stübinger, S.; Werner, M.; Klasing, M.; Ivanenko, M.; Hering, P.; von Rechenberg, B.; Sader, R.; Zeilhofer, H.-F. Bone healing of the sheep tibia shaft after carbon dioxide laser osteotomy: Histological results. Lasers Med. Sci. 2010, 25, 239–249. [Google Scholar] [CrossRef] [PubMed]
- Newman, E.; Turner, A.S.; Wark, J.D. The potential of sheep for the study of osteopenia: Current status and comparison with other animal models. Bone 1995, 16, S277–S284. [Google Scholar] [CrossRef]
- Kimmel, D.B.; Jee, W.S. A quantitative histologic study of bone turnover in young adult beagles. Anat. Rec. 1982, 203, 31–45. [Google Scholar] [CrossRef] [PubMed]
- Al-Nawas, B.; Groetz, K.A.; Goetz, H.; Duschner, H.; Wagner, W. Comparative histomorphometry and resonance frequency analysis of implants with moderately rough surfaces in a loaded animal model. Clin. Oral Implants Res. 2008, 19, 1–8. [Google Scholar]
- Morand, M.; Irinakis, T. The challenge of implant therapy in the posterior maxilla: Providing a rationale for the use of short implants. J. Oral Implantol. 2007, 33, 257–266. [Google Scholar] [CrossRef] [PubMed]
- Abrahamsson, I.; Linder, E.; Larsson, L.; Berglundh, T. Deposition of nanometer scaled calcium-phosphate crystals to implants with a dual acid-etched surface does not improve early tissue integration. Clin. Oral Implants Res. 2013, 24, 57–62. [Google Scholar] [CrossRef] [PubMed]
- Wheeler, S.L. Eight-year clinical retrospective study of titanium plasma-sprayed and hydroxyapatite-coated cylinder implants. Int. J. Oral Maxillofac. Implants 1996, 11, 340–350. [Google Scholar] [PubMed]
- Van Oirschot, B.A.J.A.; Bronkhorst, E.M.; van den Beucken, J.J.J.P.; Meijer, G.J.; Jansen, J.A.; Junker, R. Long-term survival of calcium phosphate-coated dental implants: A meta-analytical approach to the clinical literature. Clin. Oral Implants Res. 2013, 24, 355–362. [Google Scholar]
- Albrektsson, T.O.; Johansson, C.B.; Sennerby, L. Biological aspects of implant dentistry: Osseointegration. Periodontol 2000 1994, 4, 58–73. [Google Scholar] [CrossRef] [PubMed]
- Gholami, H.; Mericske-Stern, R.; Kessler-Liechti, G.; Katsoulis, J. Radiographic bone level changes of implant-supported restorations in edentulous and partially dentate patients: 5-year results. Int. J. Oral Maxillofac. Implants 2014, 29, 898–904. [Google Scholar] [CrossRef] [PubMed]
- Esposito, M.; Hirsch, J.M.; Lekholm, U.; Thomsen, P. Biological factors contributing to failures of osseointegrated oral implants. (I). Success criteria and epidemiology. Eur. J. Oral Sci. 1998, 106, 527–551. [Google Scholar]
- Kong, Y.-M.; Kim, D.-H.; Kim, H.-E.; Heo, S.-J.; Koak, J.-Y. Hydroxyapatite-based composite for dental implants: An in vivo removal torque experiment. J. Biomed. Mater. Res. 2002, 63, 714–721. [Google Scholar] [CrossRef] [PubMed]
- Sabbatini, L.; Zambonin, P.G. XPS and SIMS surface chemical analysis of some important classes of polymeric biomaterials. J. Electron Spectrosc. Relat. Phenom. 1996, 81, 285–301. [Google Scholar] [CrossRef]
- Buser, D.; Nydegger, T.; Oxland, T.; Cochran, D.L.; Schenk, R.K.; Hirt, H.P.; Snétivy, D.; Nolte, L.P. Interface shear strength of titanium implants with a sandblasted and acid-etched surface: A biomechanical study in the maxilla of miniature pigs. J. Biomed. Mater. Res. 1999, 45, 75–83. [Google Scholar] [CrossRef] [PubMed]
- Ferguson, S.J.; Langhoff, J.D.; Voelter, K.; von Rechenberg, B.; Scharnweber, D.; Bierbaum, S.; Schnabelrauch, M.; Kautz, A.R.; Frauchiger, V.M.; Mueller, T.L.; et al. Biomechanical comparison of different surface modifications for dental implants. Int. J. Oral Maxillofac. Implants 2008, 23, 1037–1046. [Google Scholar] [PubMed]
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Von Salis-Soglio, M.; Stübinger, S.; Sidler, M.; Klein, K.; Ferguson, S.J.; Kämpf, K.; Zlinszky, K.; Buchini, S.; Curno, R.; Péchy, P.; et al. A Novel Multi-Phosphonate Surface Treatment of Titanium Dental Implants: A Study in Sheep. J. Funct. Biomater. 2014, 5, 135-157. https://doi.org/10.3390/jfb5030135
Von Salis-Soglio M, Stübinger S, Sidler M, Klein K, Ferguson SJ, Kämpf K, Zlinszky K, Buchini S, Curno R, Péchy P, et al. A Novel Multi-Phosphonate Surface Treatment of Titanium Dental Implants: A Study in Sheep. Journal of Functional Biomaterials. 2014; 5(3):135-157. https://doi.org/10.3390/jfb5030135
Chicago/Turabian StyleVon Salis-Soglio, Marcella, Stefan Stübinger, Michéle Sidler, Karina Klein, Stephen J. Ferguson, Käthi Kämpf, Katalin Zlinszky, Sabrina Buchini, Richard Curno, Péter Péchy, and et al. 2014. "A Novel Multi-Phosphonate Surface Treatment of Titanium Dental Implants: A Study in Sheep" Journal of Functional Biomaterials 5, no. 3: 135-157. https://doi.org/10.3390/jfb5030135
APA StyleVon Salis-Soglio, M., Stübinger, S., Sidler, M., Klein, K., Ferguson, S. J., Kämpf, K., Zlinszky, K., Buchini, S., Curno, R., Péchy, P., Aronsson, B.-O., & Von Rechenberg, B. (2014). A Novel Multi-Phosphonate Surface Treatment of Titanium Dental Implants: A Study in Sheep. Journal of Functional Biomaterials, 5(3), 135-157. https://doi.org/10.3390/jfb5030135
