Browse > Article
http://dx.doi.org/10.5051/jpis.2017.47.1.20

Three-dimensional microstructure of human alveolar trabecular bone: a micro-computed tomography study  

Lee, Ji-Hyun (Department of Periodontology, Chonbuk National University School of Dentistry)
Kim, Hee-Jin (Division in Anatomy and Developmental Biology, Department of Oral Biology, BK21 PLUS Project, Human Identification Research Center, Yonsei University College of Dentistry)
Yun, Jeong-Ho (Department of Periodontology, Chonbuk National University School of Dentistry)
Publication Information
Journal of Periodontal and Implant Science / v.47, no.1, 2017 , pp. 20-29 More about this Journal
Abstract
Purpose: The microstructural characteristics of trabecular bone were identified using micro-computed tomography (micro-CT), in order to develop a potential strategy for implant surface improvement to facilitate osseointegration. Methods: Alveolar bone specimens from the cadavers of 30 humans were scanned by high-resolution micro-CT and reconstructed. Volumes of interest chosen within the jaw were classified according to Hounsfield units into 4 bone quality categories. Several structural parameters were measured and statistically analyzed. Results: Alveolar bone specimens with D1 bone quality had significantly higher values for all structural parameters than the other bone quality categories, except for trabecular thickness (Tb.Th). The percentage of bone volume, trabecular separation (Tb.Sp), and trabecular number (Tb.N) varied significantly among bone quality categories. Tb.Sp varied markedly across the bone quality categories (D1: $0.59{\pm}0.22mm$, D4: $1.20{\pm}0.48mm$), whereas Tb.Th had similar values (D1: $0.30{\pm}0.08mm$, D4: $0.22{\pm}0.05mm$). Conclusions: Bone quality depended on Tb.Sp and number-that is, endosteal space architecture-rather than bone surface and Tb.Th. Regardless of bone quality, Tb.Th showed little variation. These factors should be taken into account when developing individualized implant surface topographies.
Keywords
Cadaver; Dental implants; X-ray microtomography;
Citations & Related Records
Times Cited By KSCI : 2  (Citation Analysis)
연도 인용수 순위
1 Jiang Y, Zhao J, Augat P, Ouyang X, Lu Y, Majumdar S, et al. Trabecular bone mineral and calculated structure of human bone specimens scanned by peripheral quantitative computed tomography: relation to biomechanical properties. J Bone Miner Res 1998;13:1783-90.   DOI
2 Pallesen L, Schou S, Aaboe M, Hjorting-Hansen E, Nattestad A, Melsen F. Influence of particle size of autogenous bone grafts on the early stages of bone regeneration: a histologic and stereologic study in rabbit calvarium. Int J Oral Maxillofac Implants 2002;17:498-506.
3 Taniguchi N, Fujibayashi S, Takemoto M, Sasaki K, Otsuki B, Nakamura T, et al. Effect of pore size on bone ingrowth into porous titanium implants fabricated by additive manufacturing: an in vivo experiment. Mater Sci Eng C Mater Biol Appl 2016;59:690-701.   DOI
4 Zadpoor AA. Bone tissue regeneration: the role of scaffold geometry. Biomater Sci 2015;3:231-45.   DOI
5 Jemt T, Lekholm U. Oral implant treatment in posterior partially edentulous jaws: a 5-year follow-up report. Int J Oral Maxillofac Implants 1993;8:635-40.
6 Drago CJ. Rates of osseointegration of dental implants with regard to anatomical location. J Prosthodont 1992;1:29-31.   DOI
7 Fanuscu MI, Chang TL. Three-dimensional morphometric analysis of human cadaver bone: microstructural data from maxilla and mandible. Clin Oral Implants Res 2004;15:213-8.   DOI
8 Branemark PI, Zarb GA, Albrektsson T. Tissue-integrated prostheses: osseointegration in clinical dentistry. Chicago (IL): Quintessence; 1985.
9 Jensen O. Site classification for the osseointegrated implant. J Prosthet Dent 1989;61:228-34.   DOI
10 Misch CE. Contemporary implant dentistry. St. Louis (MO): Mosby; 1993.
11 Kim YJ, Henkin J. Micro-computed tomography assessment of human alveolar bone: bone density and three-dimensional micro-architecture. Clin Implant Dent Relat Res 2015;17:307-13.   DOI
12 Park YS, Kim S, Oh SH, Park HJ, Lee S, Kim TI, et al. Comparison of alveolar ridge preservation methods using three-dimensional micro-computed tomographic analysis and two-dimensional histometric evaluation. Imaging Sci Dent 2014;44:143-8.   DOI
13 Burghardt AJ, Link TM, Majumdar S. High-resolution computed tomography for clinical imaging of bone microarchitecture. Clin Orthop Relat Res 2011;469:2179-93.   DOI
14 Ibrahim N, Parsa A, Hassan B, van der Stelt P, Wismeijer D. Diagnostic imaging of trabecular bone microstructure for oral implants: a literature review. Dentomaxillofac Radiol 2013;42:20120075.   DOI
15 Ulrich D, van Rietbergen B, Laib A, Ruegsegger P. The ability of three-dimensional structural indices to reflect mechanical aspects of trabecular bone. Bone 1999;25:55-60.   DOI
16 Moon HS, Won YY, Kim KD, Ruprecht A, Kim HJ, Kook HK, et al. The three-dimensional microstructure of the trabecular bone in the mandible. Surg Radiol Anat 2004;26:466-73.   DOI
17 Sugisaki M, Agematsu H, Matsunaga S, Saka H, Sakiyama K, Ide Y. Three-dimensional analysis of the internal structure of the mandibular condyle in dentulous and edentulous jaws using micro-CT. Cranio 2009;27:78-87.   DOI
18 Xue W, Krishna BV, Bandyopadhyay A, Bose S. Processing and biocompatibility evaluation of laser processed porous titanium. Acta Biomater 2007;3:1007-18.   DOI
19 LeBrun A, Joglekar T, Bieberich C, Ma R, Zhu L. Identification of infusion strategy for achieving repeatable nanoparticle distribution and quantification of thermal dosage using micro-CT Hounsfield unit in magnetic nanoparticle hyperthermia. Int J Hyperthermia 2016;32:132-43.   DOI
20 Todisco M, Trisi P. Bone mineral density and bone histomorphometry are statistically related. Int J Oral Maxillofac Implants 2005;20:898-904.
21 Razali NM, Wah YB. Power comparisons of shapiro-wilk, kolmogorov-smirnov, lilliefors and anderson-darling tests. J Stat Model Anal 2011;2:21-33.
22 Shapiro SS, Wilk MB. An analysis of variance test for normality (complete samples). Biometrika 1965;52:591-611.   DOI
23 Puleo DA, Nanci A. Understanding and controlling the bone-implant interface. Biomaterials 1999;20:2311-21.   DOI
24 Kim JE, Shin JM, Oh SO, Yi WJ, Heo MS, Lee SS, et al. The three-dimensional microstructure of trabecular bone: analysis of site-specific variation in the human jaw bone. Imaging Sci Dent 2013;43:227-33.   DOI
25 Norton MR, Gamble C. Bone classification: an objective scale of bone density using the computerized tomography scan. Clin Oral Implants Res 2001;12:79-84.   DOI
26 Borden M, Attawia M, Khan Y, Laurencin CT. Tissue engineered microsphere-based matrices for bone repair: design and evaluation. Biomaterials 2002;23:551-9.   DOI
27 Le Guehennec L, Soueidan A, Layrolle P, Amouriq Y. Surface treatments of titanium dental implants for rapid osseointegration. Dent Mater 2007;23:844-54.   DOI