Fraunhofer IGB Institute, Nobelstraße 12, 70569, Stuttgart, Germany.
J Mater Sci Mater Med. 2014 Mar;25(3):595-606. doi: 10.1007/s10856-013-5097-9. Epub 2013 Nov 21.
Biomimetic nanocrystalline calcium-deficient apatite compounds are particularly attractive for the setup of bioactive bone-repair scaffolds due to their high similarity to bone mineral in terms of chemical composition, structural and substructural features. As such, along with the increasingly appealing development of moderate temperature engineered routes for sample processing, they have widened the armamentarium of orthopedic and maxillofacial surgeons in the field of bone tissue engineering. This was made possible by exploiting the exceptional surface reactivity of biomimetic apatite nanocrystals, capable of easily exchanging ions or adsorbing (bio)molecules, thus leading to highly-versatile drug delivery systems. In this contribution we focus on the preparation of hybrid materials combining biomimetic nanocrystalline apatites and enzymes (lysozyme and subtilisin). This paper reports physico-chemical data as well as cytotoxicity evaluations towards Cal-72 osteoblast-like cells and finally antimicrobial assessments towards selected strains of interest in bone surgery. Biomimetic apatite/enzyme hybrids could be prepared in varying buffers. They were found to be non-cytotoxic toward osteoblastic cells and the enzymes retained their biological activity (e.g. bond cleavage or antibacterial properties) despite the immobilization and drying processes. Release properties were also examined. Beyond these illustrative examples, the concept of biomimetic apatites functionalized with enzymes is thus shown to be useable in practice, e.g. for antimicrobial purposes, thus widening possible therapeutic perspectives.
仿生纳米晶缺钙磷灰石化合物在生物活性骨修复支架的制备方面特别有吸引力,因为它们在化学成分、结构和亚结构特征方面与骨矿物质非常相似。因此,随着中温工程路线在样品处理方面的发展越来越吸引人,它们拓宽了矫形和颌面外科医生在骨组织工程领域的治疗手段。这是通过利用仿生磷灰石纳米晶体的特殊表面反应性来实现的,这些纳米晶体能够轻易地交换离子或吸附(生物)分子,从而形成高度多功能的药物输送系统。在本研究中,我们专注于制备结合仿生纳米晶磷灰石和酶(溶菌酶和枯草杆菌蛋白酶)的杂化材料。本文报告了物理化学数据以及对 Cal-72 成骨样细胞的细胞毒性评估,最后还评估了它们对骨外科中感兴趣的选定菌株的抗菌性能。可以在不同的缓冲液中制备仿生磷灰石/酶杂化材料。结果表明,它们对成骨样细胞无细胞毒性,并且尽管进行了固定化和干燥处理,酶仍保留其生物活性(例如键断裂或抗菌性能)。还检查了释放性能。除了这些说明性示例之外,还表明了用酶功能化的仿生磷灰石的概念在实践中是可行的,例如用于抗菌目的,从而拓宽了可能的治疗前景。