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仿生合成的Hap-Gel纳米复合材料作为骨替代物的表征

Characterization of biomimetically synthesized Hap-Gel nanocomposites as bone substitute.

作者信息

Bera Tanmay, Vivek A N, Saraf S K, Ramachandrarao P

机构信息

Department of Metallurgical Engineering, Institute of Technology, Banaras Hindu University, Varanasi 221 005, India.

出版信息

Biomed Mater. 2008 Jun;3(2):025001. doi: 10.1088/1748-6041/3/2/025001. Epub 2008 Mar 25.

Abstract

There is an increasing demand for an affordable and easy-to-fabricate material to help patients having a long bone gap. In this paper, we describe the biomimetic synthesis of Hap-Gel in situ nanocomposite powders with varied proportions. Their biocompatibility and bone regeneration abilities were assessed on a rabbit model. The use of Hap crystals and Gel molecule, the soluble form of bone protein, makes the nanocomposites comparable to natural bone in constituents. The application of biomimetic principles improves crystal morphology and the interaction of Hap crystals with the Gel molecules as seen through in vitro characterizations. Out of the various compositions studied, one with 80:20 proportions of Hap to Gel proved to be closest to the characteristics of natural bone. The immunological response to this composite, assessed through intradermal inoculation, did not reveal any reaction. The in vivo implantation studies in the femoral condyle of the animals, as assessed by serial post-operative follow-up radiography and the histological evaluation, revealed a good biocompatibility and bone-regeneration ability of the material. Thus, nanocomposites of Hap-Gel have a great potential for serving as an effective and affordable biomaterial for bone grafting applications.

摘要

对于一种价格亲民且易于制造的材料的需求日益增长,这种材料能够帮助患有长骨间隙的患者。在本文中,我们描述了不同比例的原位纳米复合粉末状仿生合成Hap - Gel。在兔模型上评估了它们的生物相容性和骨再生能力。使用Hap晶体和骨蛋白的可溶形式——凝胶分子,使得纳米复合材料在成分上可与天然骨相媲美。通过体外表征可以看出,仿生原理的应用改善了晶体形态以及Hap晶体与凝胶分子之间的相互作用。在所研究的各种组成中,Hap与凝胶比例为80:20的一种被证明最接近天然骨的特性。通过皮内接种评估对这种复合材料的免疫反应,未发现任何反应。通过术后系列随访X线摄影和组织学评估对动物股骨髁进行的体内植入研究表明,该材料具有良好的生物相容性和骨再生能力。因此,Hap - Gel纳米复合材料作为一种有效且价格亲民的骨移植生物材料具有巨大潜力。

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