Implant Surface Micro-Design

1
Dr. Ashu Sharma
Dr. Ashu Sharma
2
Dr. G.R.Rahul
Dr. G.R.Rahul
3
Dr. Soorya Poduval
Dr. Soorya Poduval
4
Dr. Rahul Sharma
Dr. Rahul Sharma
1 Sharma Dental Hospital

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The objective of our study was to evaluate, in a population of Togolese People Living With HIV(PLWHIV), the agreement between three scores derived from the general population namely the Framingham score, the Systematic Coronary Risk Evaluation (SCORE), the evaluation of the cardiovascular risk (CVR) according to the World Health Organization.
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The application of implants for dental and orthopedic surgery has increased rapidly within the past few decades. In craniomaxillofacial surgery, different implant systems have been applied, for example, for dental and bone replacement or osteosynthesis plates and screws. These implants may be made of pure titanium or a titanium alloy, usually titanium-aluminumvanadium (Ti-6Al-4V). The surface can he turned or Machined or a coating may cover the metal base. The reason for treating the implant surface is to obtain maximum bone-implant contact and bone-implant stability and to shorten the healing time for earlier loading. The crucial aspect of pure titanium implants is the development of titanium oxide on the surface. This oxide and other known coatings for implant material do not have high wear resistance.

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85 Cites in Articles

References

  1. (2001). Glossary of Periodontal Terms.
  2. Jan Eirik,Ellingsen (1998). Surface configurations of dental implants.
  3. Lise De Jonge,C Sander,Leeuwenburgh,G Joop,John Wolke,Jansen (2008). Organic-Inorganic Surface Modifications for Titanium Implant Surfaces.
  4. D Brunette (1986). Fibroblasts on micromachined substrata orient hierarchically to grooves of different dimensions.
  5. P Clark,P Connolly,A Curtis,J Dow,C Wilkinson (1987). Topographical control of cell behaviour: I. Simple step cues.
  6. P Clark,P Connolly,A Curtis,J Dow,C Wilkinson (1990). Topographical control of cell behaviour: II. Multiple grooved substrata.
  7. D Hay,E Moreno (1979). Differential Adsorption and Chemical Affinities of Proteins for Apatitic Surfaces.
  8. David Puleo,Mark Thomas (2006). Implant Surfaces.
  9. George Macheras,Konstantinos Kateros,Athanassios Kostakos,Stefanos Koutsostathis,Dimitrios Danomaras,Panayiotis Papagelopoulos (2009). Eight- to Ten-Year Clinical and Radiographic Outcome of a Porous Tantalum Monoblock Acetabular Component.
  10. A Clemow,A Weinstein,J Klawitter,J Koeneman,J Anderson (1981). Interface mechanics of porous titanium implants.
  11. Predecki,J Stephan,B Auslaender,V Mooney,K Kirkland (1972). Kinetics of bone growth into cylindrical channels in aluminum oxide and titanium.
  12. J Martin,Z Schwartz,T Hummert,D Schraub,J Simpson,J Lankford,D Dean,D Cochran,B Boyan (1995). Effect of titanium surface roughness on proliferation, differentiation, and protein synthesis of human osteoblast‐like cells (MG63).
  13. C Giordano,E Sandrini,V Busini,R Chiesa,G Fumagalli,G Giavaresi,M Fini,R Giardino,A Cigada (2006). A New Chemical Etching Process to Improve Endosseous Implant Osseointegration: In Vitro Evaluation on Human Osteoblast-Like Cells.
  14. B Schwartz,L Brooks,F Swain,A Del Toro,B Norman,Boyan (1990). Production of 1,25dihydroxyvitamin D3 and 24,25-dihydroxyvitamin D3 by growth zone and resting zone chondrocytes is dependent on cell maturation and is regulated by hormones and growth factors.
  15. Z Schwartz,L Bonewald,K Caulfield,B Brooks,B Boyan (1993). Direct effects of transforming growth factor-beta on chondrocytes are modulated by vitamin D metabolites in a cell maturation-specific manner..
  16. B Boyan,S Lossdörfer,L Wang,G Zhao,C Lohmann,D Cochran,Z Schwartz (2003). Osteoblasts generate an osteogenic microenvironment when grown on surfaces with rough microtopographies.
  17. C Larsson,P Thomsen,B-O Aronsson,M Rodahl,J Lausmaa,B Kasemo,L Ericson (1996). Bone response to surface-modified titanium implants: studies on the early tissue response to machined and electropolished implants with different oxide thicknesses.
  18. J Lausmaa,L Mattsson,U Rolander,B Kasemo (1986). Chemical Composition and Morphology of Titanium Surface Oxides.
  19. Tomas Albrektsson,Ann Wennerberg (2004). Implant Surfaces and their Biological and Clinical Impact.
  20. D Buser,R Schenk,S Steinemann,J Fiorellini,C Fox,H Stich (1991). Influence of surface characteristics on bone integration of Titanium implants. A Histomorphometric study in Miniature pigs.
  21. K Gotfredsen,A Wennerberg,C Johansson,L T Skovgaard,E Hjorting-Hansen (1995). Anchorage of TiO2-blasted,HA-coated and machined implants : an experimental study with rabbits.
  22. T Albrektsson,A Wennerberg (2005). The impact of oral implants-past and future, 1966-2042.
  23. S Best,B Sim,M Kayser,S Downes (1997). The dependence of osteoblastic response on variations in the chemical composition and physical properties of hydroxyapatite.
  24. J Damen,J Ten Cate,J Ellingsen (1991). Induction of Calcium Phosphate Precipitation by Titanium Dioxide.
  25. Jan Ellingsen (1991). A study on the mechanism of protein adsorption to TiO2.
  26. Giorgio Bernardi,Tsutomu Kawasaki (1968). Chromatography of polypeptides and proteins on hydroxyapatite columns.
  27. P Gagnon (1996). Ceramic hydroxyapatite: A new dimension in chromatography of biological molecules.
  28. C Baud,S Bang,J Very (1977). Minor elements in bone mineral and their effects on its solubility.
  29. Paul Anderson,James Copenhaver,Allan Tencer,John Clark (1991). Response of cortical bone to local controlled release of sodium fluoride: The effect of implant insertion site.
  30. A Shteyer,R Liberman,A Simkin,I Gedalia (1977). Effect of local application of fluoride on healing of experimental bone fractures in rabbits.
  31. Victor Sendax (1992). Postscript: Hydroxyapatite-Coated Implants.
  32. P Bessa,M Casal,R Reis (2008). Bone morphogenetic proteins in tissue engineering: the road from the laboratory to the clinic, part I (basic concepts).
  33. P Bessa,M Casal,R Reis (2008). Bone morphogenetic proteins in tissue engineering: the road from laboratory to clinic, part II (BMP delivery).
  34. H Hahn,W Palich (1970). Preliminary evaluation of porous metal surfaced titanium for orthopedic implants.
  35. Gianluca Giavaresi,Milena Fini,Roberto Chiesa,Carmen Giordano,Enrico Sandrini,Andrea Bianchi,Paolo Ceribelli,Roberto Giardino (2008). A novel multiphase anodic spark deposition coating for the improvement of orthopedic implant osseointegration: An experimental study in cortical bone of sheep.
  36. D Puleo,Nanci (1999). Understanding and controlling the bone–implant interface.
  37. J Dean,K Culbertson,D' Angelo,A (1995). Fibronectin and laminin enhance gingival cell attachment to dental implant surfaces in vitro.
  38. E Swope,R James (1981). A longitudinal study on hemidesmosome formation at the dental implant-tissue overflow.
  39. Ricardo Bernhardt,Juliette Van Den Dolder,Sussane Bierbaum,Rene Beutner,Dieter Scharnweber,John Jansen,Felix Beckmann,Hartmut Worch (2006). Erratum to “Osteoconductive modifications of Ti-implants in a goat defect model: Characterization of bone growth with SR μCT and histology”.
  40. Henning Schliephake,Arash Aref,Dieter Scharnweber,Susanne Bierbaum,Sophie Roessler,Andreas Sewing (2005). Effect of immobilized bone morphogenic protein 2 coating of titanium implants on peri‐implant bone formation.
  41. S Rammelt,T Illert,S Bierbaum,D Scharnweber,H Zwipp,W Schneiders (2006). Coating of titanium implants with collagen, RGD peptide and chondroitin sulfate.
  42. Catherine Reyes,Timothy Petrie,Kellie Burns,Zvi Schwartz,Andrés García (2007). Biomolecular surface coating to enhance orthopaedic tissue healing and integration.
  43. H Schliephake,D Scharnweber,M Dard,S Röbetaler,A Sewing,C Hüttmann (2003). Biological performance of biomimetic calcium phosphate coating of titanium implants in the dog mandible.
  44. D Chappard,E Aguado,G Huré,F Grizon,M Basle (1999). The early remodeling phases around titanium implants: a histomorphometric assessment of bone quality in a 3-and 6-month study in sheep.
  45. L De Jonge,S Leeuwenburgh,J Wolke,J Jansen (2008). Organic-inorganic surface modific-ations for titanium implant surfaces.
  46. Y Yamazaki,S Oida,K Ishihara,N Nakabayashi (1996). Ectopic induction of cartilage and bone by bovine bone morphogenetic protein using a biodegradable polymeric reservoir.
  47. G�ran Zellin,Anders Linde (1997). Importance of delivery systems for growth-stimulatory factors in combination with osteopromotive membranes. An experimental study using rhBMP-2 in rat mandibular defects.
  48. J Teixeira,M Urist (1998). Bone morphogenetic protein induced repair of compartmentalized segmental diaphyseal defects.
  49. A Reddi (1995). Cartilage morphogenesis: role of bone and cartilage morphogenetic proteins, homeobox genes and extracellular matrix.
  50. B Stadlinger,E Pilling,M Huhle,R Mai,S Bierbaum,D Scharnweber,E Kuhlisch,R Loukota,U Eckelt (2007). Evaluation of osseointegration of dental implants coated with collagen, chondroitin sulphate and BMP-4: an animal study.
  51. Di Chen,Ming Zhao,Gregory Mundy (2004). Bone Morphogenetic Proteins.
  52. E Blom,J Verheij,J De Blieck-Hogervorst,Di Silvio,L Klein,C (1998). Cortical bone ingrowth in growth hormone-loaded grooved implants with calcium phosphate coatings in goat femurs.
  53. C Stefani,M Machado,E Sallum,A Sallum,S Toledo,F Nociti (2000). Platelet-Derived Growth Factor/Insulin-Like Growth Factor-1 Combination and Bone Regeneration Around Implants Placed Into Extraction Sockets.
  54. G Fuerst (2003). Enhanced bone to implant contact by plateletreleasedgrowth factors in mandibular cortical bone: a histomorpho-metricstudy in minipigs.
  55. Eduardo Anitua (2006). Enhancement of Osseointegration by Generating a Dynamic Implant Surface.
  56. A Deranieri,Amarjit Virdi,Shinji Kuroda,S Shott,Yang Dai,Dale Sumner (2005). Local application of rhTGF-β2 modulates dynamic gene expression in a rat implant model.
  57. J Park,J Koak,J Jang,C Han,S Kim,S Heo (2006). Osseointegration of anodized titanium implants coated with fibroblast growth factor-fibronectin (FGF-FN) fusion protein.
  58. S Munisamy,T Vaidyanathan,J Vaidyanathan (2008). A Bone-Like Precoating Strategy for Implants: Collagen Immobilization and Its Mineralization on Pure Titanium Implant Surface.
  59. M Lifland,D Kim,K Okazaki (1993). Mechanical properties of a Ti-6A1–4V dental implant produced by electro-discharge compaction.
  60. J Drummond,J Dominici,P Sammon,K Okazaki,R Geissler,M Lifland (1995). A light and scanning electron microscopic evaluation of electrodischarge-compacted porous titanium implants in rabbit tibia.
  61. B Story,W Wagner,D Gaisser,S Cook,A Rust-Dawicki (1998). In vivo performance of a modified CS Ti dental implant coating.
  62. Richard Lotzara,Tiziano Testorf,Paolo Trisi,Stephan Porter,Roberto Weinstein (1999). A Human Histologie Anaiysis of Osseotite and Machined Surfaces Using impiants with 2 Opposing Surfaces.
  63. Conrado Aparicio,F Javier Gil,Carlos Fonseca,Mario Barbosa,Josep Planell (2003). Corrosion behaviour of commercially pure titanium shot blasted with different materials and sizes of shot particles for dental implant applications.
  64. C Massaro,P Rotolo,F De Riccardis,E Milella,A Napoli,M Wieland,M Textor,N Spencer,D Brunette (2002). Comparative investigation of the surface properties of commercial titanium dental implants. Part I: chemical composition.
  65. L Le Guéhennec,A Soueidan,P Layrolle,Y Amouriq (2007). Surface treatments of titanium dental implants for rapid osseointegration.
  66. Perry Klokkevold,Paul Johnson,Soheila Dadgostari,John Davies,Angelo Caputo,Russel Nishimura (2001). Early endosseous integration enhanced by dual acid etching of titanium: a torque removal study in the rabbit.
  67. Christine Foley,• Hyon,Kerns,G • David,Hallmon,W • William,Francisco Rivera-Hidalgo,Nelson,J • Carl,Robert Spears (2010). Effect of phosphate treatment of Acid-etched implants on mineral apposition rates near implants in a dog model.
  68. D Buser,N Broggini,M Wieland,R Schenk,A Denzer,D Cochran (2004). Enhanced Bone Apposition to a Chemically Modified SLA Titanium Surface.
  69. D Buser,N Broggini,M Wieland,R Schenk,A Denzer,D Cochran,B Hoffmann,A Lussi,S Steinemann (2004). Enhanced Bone Apposition to a Chemically Modified SLA Titanium Surface.
  70. M Michael,Julia-Gabriela Bornstein,Urs Wittneben,Daniel Brägger,Buser (2010). Early Loading at 21 Days of Non-Submerged Titanium Implants With a Chemically Modified Sandblasted and Acid-Etched Surface: 3-Year Results of a Prospective Study in the Posterior Mandible.
  71. M De Maeztu,I Braceras,J Alava,Cosme Gay-Escoda (2007). Improvement of osseointegration of titanium dental implant surfaces modified with CO ions: a comparative histomorphometric study in beagle dogs.
  72. M Shalabi,A Gortemaker,M Van't Hof,J Jansen,N Creugers (2006). Implant Surface Roughness and Bone Healing: a Systematic Review.
  73. Young-Taeg Sul,Carina Johansson,Ann Wennerberg,Lee-Ra Cho,Beom-Seok Chang,Tomas Albrektsson (2005). Optimum Surface Properties of Oxidized Implants for Reinforcement of Osseointegration: Surface Chemistry, Oxide Thickness, Porosity, Roughness, and Crystal Struc-ture.
  74. Young-Taeg Sul,Carina Johansson,Eungsun Byon,Tomas Albrektsson (2005). The bone response of oxidized bioactive and non-bioactive titanium implants.
  75. Wael Att,Masahiro Yamada,Takahiro Ogawa (2009). Effect of Titanium Surface Characteristics on the Behavior and Function of Oral Fibroblasts.
  76. K Anselme,M Bigerelle,B Noel,A Lost,P Hardouin (2002). Effect of grooved titanium substratum on human osteoblastic cell growth.
  77. Leif Persson,Tord Berglundh,Jan Lindhe,Lars Sennerby (2001). Re‐osseointegration after treatment of peri‐implantitis at different implant surfaces.
  78. T J Webster,J Ejiofor (2004). Increased osteoblast adhesion on nanophase metals: Ti, Ti6Al4V, and CoCrMo.
  79. Jinping Zhou,Chunyu Chang,Ruping Zhang,Lina Zhang (2007). Hydrogels Prepared from Unsubstituted Cellulose in NaOH/Urea Aqueous Solution.
  80. Besim Ben-Nissan,Andy Choi (2006). Sol-Gel Production of Bioactive Nanocoatings for Medical Applications. Part 1: An Introduction.
  81. Dean-Mo Liu,T Troczynski,Wenjea Tseng (2001). Water-based sol–gel synthesis of hydroxyapatite: process development.
  82. Hyun-Min Kim,Tadashi Kokubo,Shunsuke Fujibayashi,Shigeru Nishiguchi,Takashi Nakamura (2000). Bioactive macroporous titanium surface layer on titanium substrate.
  83. S H Lee,H Kim,E J Lee,Lil Kim,H (2006). Hydroxyapatite-TiO2 hybrid coating on Ti implants.
  84. Ichiro Nishimura,Yuhong Huang,Frank Butz,Takahiro Ogawa,Audrey Lin,Chiachien Wang (2007). Discrete deposition of hydroxyapatite nanoparticles on a titanium implant with predisposing substrate microtopography accelerated osseointegration.
  85. P Coelho,M Suzuki (2005). Evaluation of an IBAD TH infilm process as an alternative method for surface in corporation of bioceramics on dental implants. A study in dogs.

Funding

No external funding was declared for this work.

Conflict of Interest

The authors declare no conflict of interest.

Ethical Approval

No ethics committee approval was required for this article type.

Data Availability

Not applicable for this article.

Dr. Ashu Sharma. 2014. \u201cImplant Surface Micro-Design\u201d. Global Journal of Medical Research - J: Dentistry & Otolaryngology GJMR-J Volume 14 (GJMR Volume 14 Issue J4): .

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Crossref Journal DOI 10.17406/gjmra

Print ISSN 0975-5888

e-ISSN 2249-4618

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August 16, 2014

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English

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Article in Review

The application of implants for dental and orthopedic surgery has increased rapidly within the past few decades. In craniomaxillofacial surgery, different implant systems have been applied, for example, for dental and bone replacement or osteosynthesis plates and screws. These implants may be made of pure titanium or a titanium alloy, usually titanium-aluminumvanadium (Ti-6Al-4V). The surface can he turned or Machined or a coating may cover the metal base. The reason for treating the implant surface is to obtain maximum bone-implant contact and bone-implant stability and to shorten the healing time for earlier loading. The crucial aspect of pure titanium implants is the development of titanium oxide on the surface. This oxide and other known coatings for implant material do not have high wear resistance.

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Implant Surface Micro-Design

Dr. Ashu Sharma
Dr. Ashu Sharma Sharma Dental Hospital
Dr. G.R.Rahul
Dr. G.R.Rahul
Dr. Soorya Poduval
Dr. Soorya Poduval
Dr. Rahul Sharma
Dr. Rahul Sharma

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