Institute for Experimental Surgery, University of Rostock, Rostock, Germany.
J Biomed Mater Res A. 2009 Nov;91(2):557-66. doi: 10.1002/jbm.a.32237.
One of the major challenges in the application of bone substitutes is adequate vascularization and biocompatibility of the implant. Thus, the temporal course of neovascularization and the microvascular inflammatory response of implants of NanoBone (fully synthetic nanocrystalline bone grafting material) were studied in vivo by using the mouse dorsal skinfold chamber model. Angiogenesis, microhemodynamics, and leukocyte-endothelial cell interaction were analyzed repetitively after implantation in the center and in the border zone of the implant up to 15 days. Both NanoBone granules and plates exhibited high biocompatibility comparable to that of cancellous bone, as indicated by a lack of venular leukocyte activation after implantation. In both synthetic NanoBone groups, signs of angiogenesis could be observed even at day 5 after implantation, whereas granules showed higher functional vessel density compared with NanoBone plates. The angiogenic response of the cancellous bone was markedly accelerated in the center of the implant tissue. Histologically, implant tissue showed an ingrowth of vascularized fibrous tissue into the material combined with an increased number of foreign-body giant cells. In conclusion, NanoBone, particularly in granular form, showed high biocompatibility and high angiogenic response, thus improving the healing of bone defects. Our results underline that, beside the composition and nanostructure, the macrostructure is also of importance for the incorporation of the biomaterial by the host tissue.
在骨替代物的应用中,一个主要挑战是植入物的充分血管化和生物相容性。因此,本研究通过使用小鼠背部皮肤囊腔模型,体内研究了 NanoBone(全合成纳米晶骨移植材料)植入物的新血管形成和微血管炎症反应的时间过程。在植入后 15 天内,分别在植入物中心和边缘区重复分析血管生成、微血管血液动力学和白细胞-内皮细胞相互作用。NanoBone 颗粒和板均表现出高生物相容性,与松质骨相当,植入后静脉白细胞活化缺乏。在两种合成的 NanoBone 组中,甚至在植入后 5 天就可以观察到血管生成的迹象,而与 NanoBone 板相比,颗粒显示出更高的功能血管密度。在植入物组织中心,松质骨的血管生成反应明显加快。组织学上,植入物组织表现为血管化纤维组织向内生长,同时异物巨细胞数量增加。总之,NanoBone,特别是颗粒形式,具有高生物相容性和高血管生成反应,从而改善了骨缺损的愈合。我们的结果强调了,除了组成和纳米结构外,宏观结构对于宿主组织对生物材料的吸收也很重要。