Center for Stem Cell and Tissue Engineering, School of Medicine, Zhejiang University, Hangzhou, Zhejiang, People's Republic of China.
Acta Biomater. 2013 Jul;9(7):7236-47. doi: 10.1016/j.actbio.2013.04.003. Epub 2013 Apr 6.
An optimal scaffold is crucial for osteochondral regeneration. Collagen and electrospun nanofibers have been demonstrated to facilitate cartilage and bone regeneration, respectively. However, the effect of combining collagen and electrospun nanofibers on osteochondral regeneration has yet to be evaluated. Here, we report that the combination of collagen and electrospun poly-l-lactic acid nanofibers synergistically promotes osteochondral regeneration. We first fabricated bi-layer microporous scaffold with collagen and electrospun poly-l-lactic acid nanofibers (COL-nanofiber). Mesenchymal stem cells were cultured on the bi-layer scaffold and their adhesion, proliferation and differentiation were examined. Moreover, osteochondral defects were created in rabbits and implanted with COL-nanofiber scaffold. Cartilage and subchondral bone regeneration were evaluated at 6 and 12weeks after surgery. Compared with COL scaffold, cells on COL-nanofiber scaffold exhibited more robust osteogenic differentiation, indicated by higher expression levels of OCN and runx2 genes as well as the accumulation of calcium nodules. Furthermore, implantation of COL-nanofiber scaffold seeded with cells induced more rapid subchondral bone emergence, and better cartilage formation, which led to better functional repair of osteochondral defects as manifested by histological staining, biomechanical test and micro-computed tomography data. Our study underscores the potential of using the bi-layer microporous COL-nanofiber scaffold for the treatment of deep osteochondral defects.
优化的支架对于骨软骨再生至关重要。胶原蛋白和静电纺纳米纤维分别被证明有助于软骨和骨再生。然而,将胶原蛋白和静电纺纳米纤维结合起来对骨软骨再生的影响尚未得到评估。在这里,我们报告胶原蛋白和静电纺聚乳酸纳米纤维的组合协同促进骨软骨再生。我们首先制备了具有胶原蛋白和静电纺聚乳酸纳米纤维(COL-纳米纤维)的双层微孔支架。间充质干细胞在双层支架上培养,并检测其黏附、增殖和分化。此外,在兔体内建立骨软骨缺损,并植入 COL-纳米纤维支架。术后 6 和 12 周评估软骨和软骨下骨再生。与 COL 支架相比,COL-纳米纤维支架上的细胞表现出更强的成骨分化,OCN 和 Runx2 基因的表达水平更高,钙结节的积累也更多。此外,植入 COL-纳米纤维支架上的细胞诱导更快的软骨下骨出现,以及更好的软骨形成,这通过组织学染色、生物力学测试和微计算机断层扫描数据表明对骨软骨缺损有更好的功能修复。我们的研究强调了使用双层微孔 COL-纳米纤维支架治疗深部骨软骨缺损的潜力。