icon fsr

文献詳細

雑誌文献

臨床整形外科51巻5号

2016年05月発行

文献概要

整形外科/知ってるつもり

3Dポーラス

著者: 神野哲也1

所属機関: 1東京医科歯科大学大学院医歯学総合研究科整形外科学

ページ範囲:P.452 - P.456

文献購入ページに移動
はじめに

 人工関節や人工骨などの生体材料の進歩は,整形外科の発展に大きく寄与してきた.近年,「3Dポーラス」と称される,主として骨親和性の良好な金属を材料として作られた多孔性材料が注目されている.本稿では3Dポーラスについて,用語の意味合いや材料の特徴,臨床応用例について解説する.

参考文献

1) Khanuja HS, Vakil JJ, Goddard MS, et al. Cementless femoral fixation in total hip arthroplasty. J Bone Joint Surg Am 2011;93:500-9.
2) Urban RM, Hall DJ, Della Valle C, et al. Successful long-term fixation and progression of osteolysis associated with first-generation cementless acetabular components retrieved post mortem. J Bone Joint Surg Am 2012;94:1877-85.
3) Banerjee S, Issa K, Kapadia BH, et al. Highly-porous metal option for primary cementless acetabular fixation. What is the evidence? Hip Int 2013;23:509-21.
4) Banerjee S, Issa K, Kapadia BH, et al. Systematic review on outcomes of acetabular revisions with highly-porous metals. Int Orthop 2014;38:689-702.
acetabular component in hip arthroplasty:results at minimum 5 years follow-up. BMC Musculoskelet Disord 2015;16:375.
6) Shah FA, Snis A, Matic A, et al. 3D printed Ti6Al4V implant surface promotes bone maturation and retains a higher density of less aged osteocytes at the bone-implant interface. Acta Biomater 2016;30:357-67.
7) Bobyn JD, Toh KK, Hacking SA, et al. Tissue response to porous tantalum acetabular cups:a canine model. J Arthroplasty 1999;14:347-54.
8) Karageorgiou V, Kaplan D. Porosity of 3D biomaterial scaffolds and osteogenesis. Biomaterials 2005;26:5474-91.
9) Meneghini RM, Meyer C, Buckley CA, et al. Mechanical stability of novel highly porous metal acetabular components in revision total hip arthroplasty. J Arthroplasty 2010;25:337-41.
10) Carli A, Warth L, Nestor B. Primary Tritanium acetabular components are associated with a high prevalence of radiolucencies which compromise clinical function at short term follow-up. AAHKS Poster Abstracts of 2015 Annual Meeting 2015:43.
11) Li Y, Wong C, Xiong J, et al. Cytotoxicity of titanium and titanium alloying elements. J Dent Res 2010;89:493-7.
12) Matsuno H, Yokoyama A, Watari F, et al. Biocompatibility and osteogenesis of refractory metal implants, titanium, hafnium, niobium, tantalum and rhenium. Biomaterials 2001;22:1253-62.
13) Sagomonyants KB, Hakim-Zargar M, Jhaveri A, et al. Porous tantalum stimulates the proliferation and osteogenesis of osteoblasts from elderly female patients. J Orthop Res 2011;29:609-16.
14) Stiehler M, Lind M, Mygind T, et al. Morphology, proliferation, and osteogenic differentiation of mesenchymal stem cells cultured on titanium, tantalum, and chromium surfaces. J Biomed Mater Res A 2008;86:448-58.
15) Schildhauer TA, Robie B, Muhr G, et al. Bacterial adherence to tantalum versus commonly used orthopedic metallic implant materials. J Orthop Trauma 2006;20:476-84.
16) Schildhauer TA, Peter E, Muhr G, et al. Activation of human leukocytes on tantalum trabecular metal in comparison to commonly used orthopedic metal implant materials. J Biomed Mater Res A 2009;88:332-41.
17) Wang JC, Yu WD, Sandhu HS, et al. A comparison of magnetic resonance and computed tomographic image quality after the implantation of tantalum and titanium spinal instrumentation. Spine (Phila Pa 1976) 1998;23:1684-8.
18) Minoda Y, Kobayashi A, Ikebuchi M, et al. Porous tantalum tibial component prevents periprosthetic loss of bone mineral density after total knee arthroplasty for five years-a matched cohort study. J Arthroplasty 2013;28:1760-4.
19) Zhang X, Wang J, Xiao J, et al. Early failures of porous tantalum osteonecrosis implants:a case series with retrieval analysis. Int Orthop 2016 [Epub ahead of print]
20) Rao PJ, Pelletier MH, Walsh WR, et al. Spine interbody implants:material selection and modification, functionalization and bioactivation of surfaces to improve osseointegration. Orthop Surg 2014;6:81-9.
21) Higuera CA, Inoue N, Lim JS, et al. Tendon reattachment to a metallic implant using an allogenic bone plate augmented with rhOP-1 vs. autogenous cancellous bone and marrow in a canine model. J Orthop Res 2005;23:1091-9.
22) Whitney GA, Mera H, Weidenbecher M, et al. Methods for producing scaffold-free engineered cartilage sheets from auricular and articular chondrocyte cell sources and attachment to porous tantalum. Biores Open Access 2012;1:157-65.

掲載誌情報

出版社:株式会社医学書院

電子版ISSN:1882-1286

印刷版ISSN:0557-0433

雑誌購入ページに移動
icon up

本サービスは医療関係者に向けた情報提供を目的としております。
一般の方に対する情報提供を目的としたものではない事をご了承ください。
また,本サービスのご利用にあたっては,利用規約およびプライバシーポリシーへの同意が必要です。

※本サービスを使わずにご契約中の電子商品をご利用したい場合はこちら