Weldon School of Biomedical Engineering, Purdue University, West Lafayette, IN 47907, USA.
Acta Biomater. 2013 Jan;9(1):4618-25. doi: 10.1016/j.actbio.2012.08.041. Epub 2012 Aug 30.
Biomimetic scaffolds that promote regeneration and resist proteolysis are required as a tissue engineering solution to repair or replace a broad range of diseased tissues. Native corrosive environments, such as the richly enzymatic milieu of diseased articular cartilage, degrade the local extracellular matrix structure, so an implantable replacement must both replicate the healthy structure and demonstrate substantial proteolytic immunity, yet promote regeneration, if long-term functional success is to be achieved. Here, we combine magnetically aligned collagen with peptidoglycans, biosynthetic molecules that mimic proteoglycan activity but lack core proteins susceptible to proteases, to develop cartilage scaffold analogs with tailored functionality. With the incorporation of the aggrecan mimic, we demonstrate an ability to enhance bulk mechanical properties and prevent cytokine-induced degradation. Furthermore, fiber alignment in collagen scaffolds enhanced the gene expression of aggrecan, indicating cell responsiveness to anisotropy that also better replicates the natural environment of cartilage. Finally, the expression of type II collagen is enhanced with both alignment and incorporation of the aggrecan mimic, showing synergism between fiber alignment and incorporation of the aggrecan mimic. The work presented here identified a mechanistic synergy of matrix molecules and organization to prevent proteolysis while simultaneously upregulating protein expression.
作为组织工程解决方案,需要能够促进再生并抵抗蛋白水解的仿生支架来修复或替代广泛的患病组织。在富含酶的病变关节软骨等天然腐蚀性环境中,局部细胞外基质结构会被降解,因此可植入的替代品不仅必须复制健康的结构,而且还必须具有很强的蛋白水解免疫能力,同时促进再生,以实现长期的功能成功。在这里,我们将磁性排列的胶原与肽聚糖结合在一起,肽聚糖是模拟蛋白聚糖活性但缺乏易受蛋白酶影响的核心蛋白的生物合成分子,从而开发出具有定制功能的软骨支架模拟物。通过掺入聚集蛋白模拟物,我们证明了增强整体机械性能和防止细胞因子诱导降解的能力。此外,在胶原支架中纤维排列增强了聚集蛋白的基因表达,表明细胞对各向异性的反应性,这也更好地复制了软骨的自然环境。最后,随着聚集蛋白模拟物的排列和掺入,II 型胶原的表达均得到增强,表明纤维排列和聚集蛋白模拟物的掺入之间具有协同作用。本文的研究结果确定了基质分子和组织的协同作用机制,可防止蛋白水解,同时上调蛋白表达。