Department of Biochemical Engineering, University College London, Torrington Place, London WC1E 7JE, UK.
Acta Biomater. 2013 Feb;9(2):5251-61. doi: 10.1016/j.actbio.2012.10.004. Epub 2012 Oct 8.
Tissue-engineered airways have achieved clinical success, but concerns remain about short-term loss of biomechanical properties, necessitating a stent. This study investigated the effect of chemical-enzymatic decellularization on biochemical properties of trachea important for cell attachment and vascularization (fibronectin and laminin) and cartilage matrix homeostasis (type II collagen and glycosaminoglycans (GAG)), as well as biomechanical status. Native trachea was used as a control, and NDC trachea stored in phosphate buffered saline (PBS) in parallel to decellularization was used as a time-matched control. Decellularization removed most cells, but chondrocytes and DNA remained after 25 cycles. Fibronectin was retained throughout the lamina propria and laminin at basement membranes. DNA accumulation along ECM fibres was seen. A decline in soluble collagen was observed in decellularized tissue. GAG content of cartilage rings was reduced, even in PBS control tissue from 20 cycles onwards (p<0.05), but decellularization caused the greatest loss (p<0.01). Tensile strength declined throughout the process, but was significant only at later time points. The data demonstrate that the substantial reduction in GAG might contribute to loss of mechanical integrity of biotracheas. Overcoming structural changes that cause an imbalance in cartilage matrix equilibrium will be necessary to optimize clinical benefit, enabling widespread use of biotracheas.
组织工程气道已取得临床成功,但仍存在短期丧失生物力学特性的问题,需要使用支架。本研究探讨了化学-酶法脱细胞化对气管生物化学特性的影响,这些特性对细胞附着和血管化(纤连蛋白和层粘连蛋白)以及软骨基质稳态(II 型胶原蛋白和糖胺聚糖(GAG))很重要,同时也研究了生物力学状态。天然气管用作对照,并行进行脱细胞化的 NDC 气管在磷酸盐缓冲盐水(PBS)中储存作为时间匹配对照。脱细胞化去除了大多数细胞,但在 25 个循环后仍保留软骨细胞和 DNA。纤连蛋白保留在固有层中,层粘连蛋白保留在基底膜处。沿 ECM 纤维可见 DNA 积累。脱细胞化组织中可溶性胶原蛋白减少。即使在 PBS 对照组织中,从 20 个循环开始,软骨环中的 GAG 含量也会减少(p<0.05),但脱细胞化导致的损失最大(p<0.01)。整个过程中拉伸强度下降,但仅在后期时间点具有统计学意义。数据表明,GAG 的大量减少可能导致生物气管的机械完整性丧失。克服导致软骨基质平衡失衡的结构变化对于优化临床获益至关重要,这将使生物气管能够得到广泛应用。