Laboratory of Biomechanics and Technology Innovation, Rizzoli Orthopaedic Institute, Bologna, Italy.
PLoS One. 2012;7(6):e38710. doi: 10.1371/journal.pone.0038710. Epub 2012 Jun 7.
In case of degenerative disease or lesion, bone tissue replacement and regeneration is an important clinical goal. In particular, nowadays, critical size defects rely on the engineering of scaffolds that are 3D structural supports, allowing cellular infiltration and subsequent integration with the native tissue. Several ceramic hydroxyapatite (HA) scaffolds with high porosity and good osteointegration have been developed in the past few decades but they have not solved completely the problems related to bone defects. In the present study we have developed a novel porous ceramic composite made of HA that incorporates magnetite at three different ratios: HA/Mgn 95/5, HA/Mgn 90/10 and HA/Mgn 50/50. The scaffolds, consolidated by sintering at high temperature in a controlled atmosphere, have been analysed in vitro using human osteoblast-like cells. Results indicate high biocompatibility, similar to a commercially available HA bone graft, with no negative effects arising from the presence of magnetite or by the use of a static magnetic field. HA/Mgn 90/10 was shown to enhance cell proliferation at the early stage. Moreover, it has been implanted in vivo in a critical size lesion of the rabbit condyle and a good level of histocompatibility was observed. Such results identify this scaffold as particularly relevant for bone tissue regeneration and open new perspectives for the application of a magnetic field in a clinical setting of bone replacement, either for magnetic scaffold fixation or magnetic drug delivery.
在退行性疾病或病变的情况下,骨组织的替代和再生是一个重要的临床目标。特别是,在当今时代,临界尺寸缺陷依赖于支架的工程设计,支架是 3D 结构支撑物,允许细胞渗透并随后与原生组织整合。在过去的几十年中,已经开发出了几种具有高孔隙率和良好骨整合性的羟基磷灰石(HA)支架,但它们并未完全解决与骨缺损相关的问题。在本研究中,我们开发了一种由 HA 制成的新型多孔陶瓷复合材料,该复合材料中含有三种不同比例的磁铁矿:HA/Mgn 95/5、HA/Mgn 90/10 和 HA/Mgn 50/50。通过在受控气氛中高温烧结固结的支架,已使用人成骨样细胞进行了体外分析。结果表明具有高生物相容性,类似于市售的 HA 骨移植物,不存在磁铁矿的存在或使用静磁场产生的负面影响。HA/Mgn 90/10 被证明在早期可增强细胞增殖。此外,已将其植入兔髁部的临界尺寸病变体内,并观察到良好的组织相容性。这些结果将该支架确定为特别适用于骨组织再生,并为磁场在骨替代的临床环境中的应用开辟了新的前景,无论是用于磁性支架固定还是磁性药物输送。