Department of Materials Science and Engineering, University of Alabama at Birmingham, Birmingham, AL 35294, USA.
Macromol Biosci. 2010 Apr 8;10(4):433-44. doi: 10.1002/mabi.200900287.
The ability to mimic the chemical, physical and mechanical properties of the natural extra-cellular matrix is a key requirement for tissue engineering scaffolds to be successful. In this study, we successfully fabricated aligned nanofibrous multi-component scaffolds for bone tissue engineering using electrospinning. The chemical features were mimicked by using the natural components of bone: collagen and nano-hydroxyapatite along with poly[(D,L-lactide)-co-glycolide] as the major component. Anisotropic features were mimicked by aligning the nanofibers using a rotating mandrel collector. We evaluated the effect of incorporation of nano-HA particles to the system. The morphology and mechanical properties revealed that,at low concentrations, nano-HA acted as a reinforcement. However, at higher nano-HA loadings, it was difficult to disrupt aggregations and, hence, a detrimental effect was observed on the overall scaffold properties. Thermal analysis showed that there were slight interactions between the individual components even though the polymers existed as a two-phase system. Preliminary in vitro cell-culture studies revealed that the scaffold supported cell adhesion and spreading. The cells assumed a highly aligned morphology along the direction of fiber orientation. Protein adsorption experiments revealed that the synergistic effect of increased surface area and the presence of nano-HA in the polymer matrix enhanced total protein adsorption. Crosslinking with 1-ethyl-3-(3-dimethylaminopropyl) carbodiimide hydrochloride resulted in improved mechanical properties of the scaffolds and improved degradation stability, under physiological conditions.
模仿天然细胞外基质的化学、物理和机械性能是组织工程支架成功的关键要求。在这项研究中,我们成功地使用静电纺丝制备了用于骨组织工程的定向纳米纤维多组分支架。通过使用天然骨成分(胶原和纳米羟基磷灰石)以及聚[(D,L-丙交酯)-共-乙交酯]作为主要成分来模拟化学特性。通过使用旋转芯棒收集器对纳米纤维进行定向排列来模拟各向异性特征。我们评估了纳米 HA 颗粒对系统的影响。形态和机械性能表明,在低浓度下,纳米 HA 起到增强作用。然而,在更高的纳米 HA 负载下,难以破坏团聚,因此对整体支架性能观察到有害影响。热分析表明,即使聚合物存在两相体系,各个成分之间也存在轻微的相互作用。初步的体外细胞培养研究表明,支架支持细胞黏附和铺展。细胞在纤维取向的方向上呈现出高度定向的形态。蛋白质吸附实验表明,聚合物基质中增加的表面积和纳米 HA 的存在的协同作用增强了总蛋白质吸附。用 1-乙基-3-(3-二甲基氨基丙基)碳二亚胺盐酸盐交联可改善支架的机械性能,并在生理条件下提高降解稳定性。