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用生物相容性聚合物对人工关节进行表面移植以预防假体周围骨溶解。

Surface grafting of artificial joints with a biocompatible polymer for preventing periprosthetic osteolysis.

作者信息

Moro Toru, Takatori Yoshio, Ishihara Kazuhiko, Konno Tomohiro, Takigawa Yorinobu, Matsushita Tomiharu, Chung Ung-Il, Nakamura Kozo, Kawaguchi Hiroshi

机构信息

Department of Sensory & Motor System Medicine, Faculty of Medicine, The University of Tokyo, Hongo 7-3-1, Bunkyo, Tokyo 113-0033, Japan.

出版信息

Nat Mater. 2004 Nov;3(11):829-36. doi: 10.1038/nmat1233. Epub 2004 Oct 24.

Abstract

Periprosthetic osteolysis-bone loss in the vicinity of a prosthesis-is the most serious problem limiting the longevity of artificial joints. It is caused by bone-resorptive responses to wear particles originating from the articulating surface. This study investigated the effects of graft polymerization of our original biocompatible phospholipid polymer 2-methacryloyloxyethyl phosphorylcholine (MPC) onto the polyethylene surface. Mechanical studies using a hip-joint simulator revealed that the MPC grafting markedly decreased the friction and the amount of wear. Osteoclastic bone resorption induced by subperiosteal injection of particles onto mouse calvariae was abolished by the MPC grafting on particles. MPC-grafted particles were shown to be biologically inert by culture systems with respect to phagocytosis and resorptive cytokine secretion by macrophages, subsequent expression of receptor activator of NF-kappaB ligand in osteoblasts, and osteoclastogenesis from bone marrow cells. From the mechanical and biological advantages, we believe that our approach will make a major improvement in artificial joints by preventing periprosthetic osteolysis.

摘要

假体周围骨溶解——假体周围的骨质流失——是限制人工关节使用寿命的最严重问题。它是由对关节表面磨损颗粒的骨吸收反应引起的。本研究调查了我们最初的生物相容性磷脂聚合物2-甲基丙烯酰氧基乙基磷酰胆碱(MPC)接枝聚合到聚乙烯表面的效果。使用髋关节模拟器进行的力学研究表明,MPC接枝显著降低了摩擦力和磨损量。通过在颗粒上进行MPC接枝,消除了通过在小鼠颅骨骨膜下注射颗粒诱导的破骨细胞骨吸收。在关于巨噬细胞吞噬作用和吸收性细胞因子分泌、随后成骨细胞中核因子κB受体活化因子配体的表达以及骨髓细胞破骨细胞生成的培养系统中,MPC接枝颗粒显示出生物惰性。基于力学和生物学优势,我们相信我们的方法将通过预防假体周围骨溶解在人工关节方面带来重大改进。

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