Pietak Alexis, Mahoney Patricia, Dias George J, Staiger Mark P
Department of Mechanical Engineering, University of Canterbury, Private Bag 4800, Christchurch, New Zealand.
J Mater Sci Mater Med. 2008 Jan;19(1):407-15. doi: 10.1007/s10856-007-3172-9. Epub 2007 Jul 3.
Mg metal and its alloys have promise as a biocompatible, degradable biomaterials. This work evaluates the potential of in vitro cell culture work with osteoblast-like cells on Mg based materials, and investigates cell differentiation and growth on Mg alloyed with various non-toxic or low-toxicity elements. Mg based substrates support the adhesion, differentiation and growth of stromal cells towards an osteoblast-like phenotype with the subsequent production of a bone like matrix under in vitro conditions. No significant difference in the final tissue layer is observed on pure Mg, an AZ21 alloy or a 0.5 wt% Ca alloy. Only a 0.8 wt% Ca alloy which shows complete structural disintegration shows minimal cell growth. Due to association of non-soluble degradation products formed when Mg is incubated in physiological-like fluid, mass changes typically used to report Mg degradation are not viable estimates of degradation. Methods quantifying the time dependent change in the mechanical integrity of samples as a function of incubation time are required for a proper assessment of Mg degradation. We conclude that in vitro cell culture of bone cells on Mg substrates is expected to be a viable screening technique to assess the relative biological activity of Mg-based materials.
镁金属及其合金有望成为生物相容性、可降解的生物材料。这项工作评估了在基于镁的材料上与成骨样细胞进行体外细胞培养的潜力,并研究了与各种无毒或低毒性元素合金化的镁上的细胞分化和生长。基于镁的基质支持基质细胞向成骨样表型的粘附、分化和生长,并在体外条件下随后产生骨样基质。在纯镁、AZ21合金或0.5 wt%钙合金上,最终组织层未观察到显著差异。只有显示完全结构崩解的0.8 wt%钙合金显示出最小的细胞生长。由于镁在类似生理的流体中孵育时形成的不溶性降解产物的关联,通常用于报告镁降解的质量变化不是降解的可行估计。为了正确评估镁的降解,需要量化样品机械完整性随孵育时间的时间依赖性变化的方法。我们得出结论,在镁基质上对骨细胞进行体外细胞培养有望成为一种可行的筛选技术,以评估基于镁的材料的相对生物活性。