Bone plastic materials and methods of their use (review)
DOI:
https://doi.org/10.33295/1992-576X-2024-3-84Keywords:
bone grafting, bone grafting materials, implantationAbstract
Relevance. In case of bone deficiency or defect in the area of subsequent implantation, it is rational to perform bone grafting. There are various techniques for bone grafting operations that differ in incisions, volumes, materials, and methods of their use during surgery. When using bone grafting materials, different substrates are used for their mixing.
The purpose of the work is to provide a structured understanding of the current state of development of bone grafting on the example of studies related to operations using bone grafting materials and substances for their mixing (substrates); to identify areas that have not been paid attention to.
Conclusions:
1. Currently, the issue of choosing a substrate for kneading osteoplastic materials has not been sufficiently studied.
2. There is a need to conduct a study comparing different substrates for kneading bone tissue.
3. It is necessary to create scientifically based guidance on the use of different substrates for different clinical cases.
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References
Piattelli M., Bavero G.F., Scarano A., Orsini G., Piattelli A. Bone reactions to anorganic bovine bone (Bio-Oss) used in sinus lifting procedure: A histologic long-term report of 20 cases in man. Int. J. Oral. Maxillofac. Implants, 1999, 14 (6), 835-840.
Wallace S.S., Froum S.J. Effect of maxillary sinus augmentation on the survival of endosseous dental implants. A systematic review. Ann. Periodontol., 2003, 8 (1), 328-343. https://doi.org/10.1902/annals.2003.8.1.328 PMid:14971260
Galindo-Moreno P., Moreno-Riestra I., Avila G., Padial-Molina M., Paya J.A., Wang H.L., O'Valle F. Effect of anorganic bovine bone to autogenous cortical bone ratio upon bone remodeling patterns following maxillary sinus augmentation. Clin. Oral. Implants Res., 2011, 22 (8), 857-864. https://doi.org/10.1111/j.1600-0501.2010.02073.x PMid:21244500
Froum S.J., Wallace S.S., Cho S.C., Elian N., Tarnow D.P. Histomorphometric comparison of a biphasic bone ceramic to anorganic bovine bone for sinus augmentation: 6-to-8-month postsurgical assessment of vital bone formation. A pilot study. Int. J. Periodontics Restorative Dent., 2008, 28 (3), 273-281.
Giovanna Iezzi, Adriano Piattelli1, Alessandra Giuliani, Carlo Mangano, Licia Manzon, Marco Degidi, Flavia Iaculli, Antonio Scarano, Antonella Filippone and Vittoria Perrotti Molecular. Cellular and Pharmaceutical Aspects of Bone Grafting Materials and Membranes During Maxillary Sinus-lift Procedures. Part 1: A General Overview Current Pharmaceutical Biotechnology, 2017, 18, 19-32. https://doi.org/10.2174/1389201017666161221155237 PMid:28003001
Scarano A., Degidi M., Iezzi G., Pecora G., Piattelli M., Orsini G., Caputi S., Perrotti V., Mangano C., Piattelli A. Maxillary sinus augmentation with different biomaterials: a comparative histologic and histomorphometric study in man. Implant Dent., 2006, 15 (2), 197-207. https://doi.org/10.1097/01.id.0000220120.54308.f3 PMid:16766904
Neugebauer J., Iezzi G., Perrotti V., Fischer J.H., Khoury F., Piattelli A., Zoeller J.E. Experimental immediate loading of dental implants in conjunction with grafting procedures. J. Biomed. Mater. Res. B Appl. Biomater., 2009, 91 (2), 604-612. https://doi.org/10.1002/jbm.b.31435 PMid:19582856
Schwarz F., Herten M., Ferrari D., Wieland M., Schmitz L., Engelhardt E., Becker J. Guided bone regeneration at dehiscencetype defects using biphasic hydroxyapatite + beta tricalcium phosphate Bone Ceramic) or a collagen-coated natural bone mineral (BioOss Collagen): An immunohistochemical study in dogs. Int. J. Oral Maxillofac. Surg., 2007, 36 (12), 1198-1206. https://doi.org/10.1016/j.ijom.2007.07.014 PMid:17826958
Mazor Z., Horowitz R.A., Del Corso M., Prasad H.S., Rohrer M.D., Dohan Ehrenfest D.M. Sinus floor augmentation with simultaneous implant placement using Choukroun's platelet-rich fibrin as the sole grafting material: a radiologic and histologic study at 6 months. J. Periodontol., 2009, 80 (12), 2056-2064. https://doi.org/10.1902/jop.2009.090252 PMid:19961389
D. Buser. 20 Years of Guided bone regeneration in implant dentistry, 2nd edition 2009, 15-45, 71-96.
Jensen S.S., Yeo A., Dard M., Hunziker E., Schenk R., Buser D. Evaluation of a novel biphasic calcium phosphate in standard ized bone defects. A histologic and histomorphometric study in the mandibles of minipigs. Clin Oral Implants Res 2007; 18: 752-760. https://doi.org/10.1111/j.1600-0501.2007.01417.x PMid:17888014
Jensen S.S., Bornstein M.M., Dard M., Bosshardt D., Buser D. Comparative study of biphasic calcium phosphates with different HAlTCP ratios in mandibular bone defects. A longterm histomorphometric study in minipigs. J Biomed Mater Res B Appl Biomater 2009; 90B: 171-181. https://doi.org/10.1002/jbm.b.31271 PMid:19085941
Buser D., Martin W., Belser Uc. Optimizing esthetics for implant restorations in the anterior maxilla: Anatomic and surgical considerations. Int J Oral Maxillofac Implants 2004; 19 (suppl): 43-61.
Buser D., Chen S.T., Weber H.P., Belser Uc. Early implant placement following single-tooth extraction in the esthetic zone: Biologic rationale and surgical procedures. Int J Periodontics Restorative Dent 2008; 28: 441-451.
Buser D., Hoffmann B., Bernard Jp., Lussi A., Mettler D., Schenk R.K. Evaluation of Hiliing materials in membrane protected bone defects. A comparative histomorphometric study in the mandibles of miniature pigs. Clin Oral Implants Res 1998; 9: 137-150. https://doi.org/10.1034/j.1600-0501.1998.090301.x PMid:10530128
Jensen S.S., Broggini N., Weibrich G., Hjorting-Hansen E., Schenk R., Buser D. Bone regeneration in standardized bone defects with autografts or bone substitutes in combination with platelet concentrate: A histologic and histomorphometric study in the mandibles of minipigs. Int J Oral Maxillofac Implants 2005; 20: 703-712.
Jensen S.S., Broggini N., Schenk R., Buser D. Bone healing and graft resorption of autograft, anorganic bovine bone and l3-tricalcium phosphate. A histologic and histomorphometric study in the mandibles of minipigs. Clin Oral Implants Res 2006;17: 237-243. https://doi.org/10.1111/j.1600-0501.2005.01257.x PMid:16672017
Honig J., Merten H.A. Das Gottinger Miniatureschwein (GMS) als Versuchstier in der humanmedizinischen osteologischen Grundlagenforschung. Z Zahnarztl ImplantoI, 1993; 2: 244-254.
Pearce A.I., Richards R.G., Milz S., Schneider E., Pearce S.G. Animal models for implant biomaterial research in bone: A review. Eur Cells Mater 2007; 13: 1-10. https://doi.org/10.22203/eCM.v013a01 PMid:17334975
Pinholt E.M., Solheim E., Talsnes 0., Larsen T.B., Bang G., Kirkeby O.J. Revascularization of calvarial, mandibular, tibial, andiliac bone grafts in rats. Ann Plast Surg 1994; 33: 193-197. https://doi.org/10.1097/00000637-199408000-00012 PMid:7979053
De Marco A.C., Jardini M.A., Lima L.P. Revascularization of autogenous block grafts with or without an PTFE membrane. Int J Oral Maxillofac Implants 2005; 20: 867-874.
Gordh M., Alberius P., Lindberg L., Johnell O. Bone graft incorporation after cortical perforations of the host bed. Otolaryngol Head Neck Surg 1997; 117: 664-670. https://doi.org/10.1016/S0194-59989770050-0 https://doi.org/10.1016/S0194-5998(97)70050-0 PMid:9419096
Widmark G., Andersson B., Ivanoff C.J. Mandibular bone graft in the anterior maxilla for single-tooth implants. Int J Oral Maxillofac Surg 1997; 26: 100-109. https://doi.org/10.1016/S0901-5027(05)80827-6 PMid:9151163
Gordh M., Alberius P. Some basic factor sessentialto autogeneic nonvascularized onlay bone grafting to the craniofacial skeleton. Scand J Plast Reconstr Surg Hand Surg 1999; 32: 129-146. https://doi.org/10.1080/02844319950159370 PMid:10450569
Springer I.N.G., Terheyden H., Geiss S., Harle F., Hedderich J., Acil Y. Particulated bone grafts Effectiveness of bone cell supply. Clin Oral Implants Res 2004; 15: 205-212. https://doi.org/10.1111/j.1600-0501.2004.00976.x PMid:15008932
Chiapasco M., Abati S., Romeo E., Vogel G. Clinical outcome of autogenous bone blocks or guided bone regeneration with e-PTFE membranes for the reconstruction of narrow edentulous ridges. Clin Oral Implants Res 1999; 10: 278-288. https://doi.org/10.1034/j.1600-0501.1999.100404.x PMid:10551070
Peleg M., Garg A.K., Misch C.M., Mazor Z. Maxillary sinus and ridge augmentations using surface-de-rived autogenous bone graft. J Oral Maxillofac Surg 2004; 62: 1535-1544. https://doi.org/10.1016/j.joms.2004.06.048 PMid:15573355
Artzi Z., Kozlovsky A., Nemcovsky C.E., Weinreb M. The amount of newly formed bone in sinus grafting procedures depends on tissue depth as well as the type and residual amount of the grafted material. J Clin Periodontol 2005; 32: 193-199. https://doi.org/10.1111/j.1600-051X.2005.00656.x PMid:15691351
Zaffe D., D'Avenia F. A novel bone scraper for intraoral harvesting. A device for filling small bone defects. Clin Oral Implants Res 2007; 18: 525-533. https://doi.org/10.1111/j.1600-0501.2007.01368.x PMid:17441981
Kainulainen V.S., Kainulainen T.J., Oikarinen K.S., Carmicheal R.P., Sandor G.K.B. Performance of six bone collectors designed for implant surgery. Clin Oral Implants Res 2006; 17: 282-287. https://doi.org/10.1111/j.1600-0501.2005.01199.x PMid:16672023
Schmitz J., Hollinger J. The critical size defect as an experimental model for craniomandibular nonjunction. Clin Orthop 1986; 205: 299-304. https://doi.org/10.1097/00003086-198604000-00036
Pallesen L., Schou S., Aaboe M., Hjorting-Hansen E., Nattestad A., Melsen F. Influence of particle size on the early stages of bone regeneration: A histologic and stereologic study in rabbit calvarium . Int J Oral Maxillofac Implants 2002; 17: 498-506.
Piattelli M., Favero G.A., Scarano A., Orsini G., Piattelli A. Bone reactions to anorganic bovine bone (Bio-Oss) used in sinus augmentation procedures: A histologic longterm report of 20 cases in humans. Int J Oral Maxillofac Implants 1999; 14: 835-840.
Hammerle C.H.F., Chiantella G.C., Karring I., Lang N.P. The effect of a deproteinized bovine bone mineral on bone regeneration around titanium dental implants. Clin Oral Implants Res 1998; 9: 151-162. https://doi.org/10.1034/j.1600-0501.1998.090302.x PMid:10530129
Buser D., Schenk R.K., Steinemann S., Fiorellini J.P., Fox C.H., Stich H. Influence of surface characteristics on bone integration of titanium implants: A histomorphometric study in miniature pigs. J Biomed Mater Res 1991; 25: 889-902. https://doi.org/10.1002/jbm.820250708 PMid:1918105
Hjorting-Hansen E., Worsaae N., Lemons J.E. Histo-logic response after implantation of porous hydroxylapatite ceramic in humans. Int J Oral Maxillofac Implants 1990; 5: 255-263.
Ewers R. Maxilla sinus grafting with marine algae derived bone forming material: A clinical report of longterm results. J Oral Maxillofac Surg 2005; 63: 1712-1723. https://doi.org/10.1016/j.joms.2005.08.020 PMid:16297691
Thorwarth M., Wehman F., Srour S. еt al. Evaluationof substitutes for bone: Comparison of microradio-graphic and histological assessments. Br J Oral Maxillofac Surg 2007; 45: 41-47. https://doi.org/10.1016/j.bjoms.2006.03.013 PMid:16713040
Schwartz Z., Weesner T., van Dijk S. et al. Ability of deproteinized cancellous bovine bone to induce new bone formation. J Periodontol 2000; 71: 1258-1269. https://doi.org/10.1902/jop.2000.71.8.1258 PMid:10972641
Wenz B., Oesch B., Horst M. Analysis of the risk of transmitting bovine spongiform encephalopathy through bone grafts derived from bovine bone. Biomaterials 2001; 22: 1599-1606. https://doi.org/10.1016/S0142-9612(00)00312-4 PMid:11374460
Buser D., Broggini N., Wieland M. et al. Enhanced bone apposition to a chemically modified SLA titanium surface. J Dent Res 2004; 83: 529-533. https://doi.org/10.1177/154405910408300704 PMid:15218041
Branemark P.I. Osseointegration and its experimental background. J prosthet Dent. 1983; 50: 399-410. https://doi.org/10.1016/S0022-3913(83)80101-2 PMid:6352924
Branemark P.I., Zarb G.A., Albrektsson T., Rosen H.M. Tissue-integrated prostheses. osseointegration in clinical dentistry.
Albrektsson T., Bránemark P.I., Hansson H.A, Lindstrom J. Osseointegrated titanium implants: requirements for ensuring a long-lasting, direct bone-to-implant anchorage in man. Acta Orthopaedica Scandinavica. 1981, Jan, 1; 52(2): 155-70. https://doi.org/10.3109/17453678108991776 PMid:7246093
C.M. Misch, C.E. Misch. The repair of localized severe ridge defects for implant placement using mandibular bone grafts. Implant Dentistry, 1995, Winter; 4 (4): 261-7. https://doi.org/10.1097/00008505-199500440-00006 PMid:8603135
Marks S.C. Jr., Popoff S.N. Bone cell biology: The regulation of development, structure, and function in the skeleton. Am J Anat 1988;183: 1-44. https://doi.org/10.1002/aja.1001830102 PMid:3055928
Qiu S., Rao D.S., Palnitkar S., Parfitt A.M. Relationships between osteocyte density and bone formation rate in human cancellous bone. Bone 2002; 31: 709-711. https://doi.org/10.1016/S8756-3282(02)00907-9 PMid:12531566
Ferretti M., Muglia M.A., Remaggi F., Cane V., Palumbo C. Histomorphometric study on the osteocyte lacunocanalicular network in animals of different species. 2. Parallelfibered and lamellar bones. Ital J Anat Embryol 1999; 104: 121-131.
Ham A.W. Some histophysiological problems peculiar to calcified tissues. J Bone Joint Surg 1952; 34A: 701-728. https://doi.org/10.2106/00004623-195234030-00028
Noble B.S., Reeve J. Osteocyte function, osteocyte death and bone fracture resistance. Mol Cell EndocrinoI 2000; 159: 7-13. https://doi.org/10.1016/S0303-7207(99)00174-4 PMid:10687847
Jones S.J., Boyde A. Scanning electron microscopy of bone cells in cultures. In: Copp D.H., Talmage R.V. (eds). Endocrinology of Calcium Metabolism. Amsterdam: Excerpta Medica, 1978: 97-104.
Teitelbaum S.L., Ross F.P. Genetic regulation of osteoclast development and function. Nat Rev Genet 2003; 4: 638-649. https://doi.org/10.1038/nrg1122 PMid:12897775
Minkin C. Bone acid phosphatase: Tartrateresistant acid phosphatase as a marker of osteoclast function. Calcif Tissue Int 1982; 34: 285-290. https://doi.org/10.1007/BF02411252 PMid:6809291
Nanci A. Content and distribution of noncollage-nous matrix proteins in bone and cementum: Relationship to speed of formation and collagen packing density. J Struct Bioi 1999; 126: 256-269. https://doi.org/10.1006/jsbi.1999.4137 PMid:10441531
Robey P.G. Vertebrate mineralized matrix proteins: Structure and function. Connect Tissue Res 1996; 35: 131-136. https://doi.org/10.3109/03008209609029183 PMid:9084650
Sodek J., McKee M.D. Molecular and cellular biology of alveolar bone. Periodontol 2000; 24: 99-126. https://doi.org/10.1034/j.1600-0757.2000.2240106.x PMid:11276877
Butler W.T. Noncollagenous proteins of bone and dentin: A brief overview. In: Goldberg M., Boskey A., Robinson C. (eds). Chemistry and Biology of Mineralized Tissues. Rosemont, IL: American Academy o f Orthopedic Surgeons, 2000: 137-141.
Babusch Ch. Dental Implants. The Art and Science. - Philadelphia - I.ondon: W.B. Saunders Company, 2001.
Borgner R. Clinical experience and Statistical Analisis of Endosseous Implants in the Atrophic Maxilla Meeting of American Academy of Implant Dentistry / R. Borgner. Atlanta, 1995.
Chanavaz M. Maxillary Sinus anathomy, physiology, surgery and bone grafting related to implantology. Eleven eyars Surgical experience / M. Chanavaz // J. Oral Impl. 1990. - Vol. 16. - P. 199-209.
Becker W., Becker B.E., Caffesse R. (1994) A comparison of demineralized freeze-dried bone and autologous bone to induce bone formation in human extraction sockets. Journal of Periodontology 65: 1128-1133. https://doi.org/10.1902/jop.1994.65.12.1128 PMid:7877084
Becker W., Urist M.R., Tucker L.M., Becker B.E., Ochsenbein C. (1995) Human demineralized freeze-dried bone: inadequate induced bone formation in athymic mice. A preliminary report. Journal of Periodontology 66: 822-828. https://doi.org/10.1902/jop.1995.66.9.822 PMid:7500251
Bereiter H., Melcher G.A., Gautier E., Huggler A.H. (1991) Erfahrungen mit Bio-Oss, einem bovinen Apatit, bei verschiedenen klinischen Indikationsbereichen. In: Huggler A.H., Kuner E.H., eds. Aktueller Stand beim Knochenersatz, 117-126. Hefte zur Unfallheilkunde. Springer: Berlin. https://doi.org/10.1007/978-3-642-84519-2_11
Berglundh T., Lindhe J. (1997) Healing around implants placed in bone defects treated with Bio-Oss A. An experimental study in the dog. Clinical Oral Implants Research 8: 117-124. https://doi.org/10.1034/j.1600-0501.1997.080206.x PMid:9758962
Boyne P.J., James R.A. (1980) Grafting of the maxillary sinus floor with autogenous marrow and bone. Journal of Oral Surgery 38: 613-616.
Boyne P.J. (1993) Analysis of performance of root-form endosseous implants placed in the maxillary sinus. Journal of Long-Term Effects of Medical Implants 3: 143-159.
Burchardt H. (1987) Biology of bone transplantation. Orthopedic Clinics of North America 18: 187-196. https://doi.org/10.1016/S0030-5898(20)30382-5 PMid:3550571
Yildirim M., Spiekermann H., Biesterfeld S., Edelhoff D. Maxillary sinus augmentation using xenogenic bone substitute material Bio-Oss in combination with venous blood. A histologic and histomorphometric study in humans. Clin Oral Impl Res 2000: 11: 217-229. Munksgaard 2000. https://doi.org/10.1034/j.1600-0501.2000.011003217.x PMid:11168213
Giuseppe Grasso, Stefano Mummolo, Sara Bernardi, Davide Pietropaoli, Giuseppe D'Ambrosio, Giovanna Iezzi, Adriano Piattelli, Serena Bianchi and Enrico Marchetti. Histological and Histomorphometric Evaluation of New Bone Formation after Maxillary Sinus Augmentation with Two Di erent Osteoconductive Materials: A Randomized, Parallel, Double-Blind Clinical Trial. Materials 2020, 13, 5520. https://doi.org/10.3390/ma13235520 PMid:33287281 PMCid:PMC7729968
Joseph Bassil, Nada Naaman, Raed Lattouf, Cynthia Kassis, Sylvie Changotade, Brigitte Baroukh, Karim Senni, Gaston Godeau. Clinical, Histological and Histomorphometrical Analysis of Maxillary Sinus Augmentation Using Inorganic Bovine in Humans: Preliminary Results. Journal of Oral Implantology. 2013, 73-80. https://doi.org/10.1563/AAID-JOI-D-11-00012 PMid:21905893
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