Wei Jie, Heo S J, Kim D H, Kim S E, Hyun Y T, Shin Jung-Woog
Team of BK21, First project team, Department of Biomedical Engineering, Inje University, Gimhae, Gyeongnam 621-749, Republic of Korea.
J R Soc Interface. 2008 Jun 6;5(23):617-30. doi: 10.1098/rsif.2007.1267.
In this study, we fabricated nano-sized calcium silicate/poly(epsilon-caprolactone) composite (n-CPC) and micro-sized calcium silicate/poly(epsilon-caprolactone) composite (m-CPC). The composition, mechanical properties, hydrophilicity and degradability of both n-CPC and m-CPC were determined, and in vitro bioactivity was evaluated by investigating apatite forming on their surfaces in simulated body fluid (SBF). In addition, cell responses to the two kinds of composites were comparably investigated. The results indicated that n-CPC has superior hydrophilicity, compressive strength and elastic modulus properties compared with m-CPC. Both n-CPC and m-CPC exhibited good in vitro bioactivity, with different morphologies of apatite formation on their surfaces. The apatite layer on n-CPC was more homogeneous and compact than on m-CPC, due to the elevated levels of calcium and silicon concentrations in SBF from n-CPC throughout the 14-day soaking period. Significantly higher levels of attachment and proliferation of MG63 cells were observed on n-CPC than on m-CPC, and significantly higher levels of alkaline phosphatase activity were observed in human mesenchymal stem cells (hMSCs) on n-CPC than on m-CPC after 7 days. Scanning electron microscopy observations revealed that hMSCs were in intimate contact with both n-CPC and m-CPC surfaces, and significantly cell adhesion, spread and growth were observed on n-CPC and m-CPC. These results indicated that both n-CPC and m-CPC have the ability to support cell attachment, growth, proliferation and differentiation, and also yield good bioactivity and biocompatibility.
在本研究中,我们制备了纳米级硅酸钙/聚(ε-己内酯)复合材料(n-CPC)和微米级硅酸钙/聚(ε-己内酯)复合材料(m-CPC)。测定了n-CPC和m-CPC的组成、力学性能、亲水性和降解性,并通过研究模拟体液(SBF)中其表面磷灰石的形成来评估体外生物活性。此外,还比较研究了两种复合材料的细胞反应。结果表明,与m-CPC相比,n-CPC具有更好的亲水性、抗压强度和弹性模量性能。n-CPC和m-CPC均表现出良好的体外生物活性,其表面磷灰石形成形态不同。在整个14天的浸泡期内,由于n-CPC释放到SBF中的钙和硅浓度升高,n-CPC表面的磷灰石层比m-CPC表面的更均匀、更致密。在n-CPC上观察到MG63细胞的附着和增殖水平显著高于m-CPC,并且在7天后,n-CPC上的人间充质干细胞(hMSCs)的碱性磷酸酶活性显著高于m-CPC。扫描电子显微镜观察显示,hMSCs与n-CPC和m-CPC表面紧密接触,并且在n-CPC和m-CPC上均观察到显著的细胞粘附、铺展和生长。这些结果表明,n-CPC和m-CPC都具有支持细胞附着、生长、增殖和分化的能力,并且还具有良好的生物活性和生物相容性。