Tissue Engineering Laboratory, PSG Institute of Advanced Studies, Coimbatore 641004, India.
Advanced Textile and Polymer Research Laboratory, PSG Institute of Advanced Studies, Coimbatore 641004, India.
J Biomed Mater Res A. 2018 Jun;106(6):1722-1731. doi: 10.1002/jbm.a.36372. Epub 2018 Mar 13.
Tissue engineered constructs with rapid restoration of mechanical and biological properties remain a challenge, emphasizing the need to develop novel scaffolds. Here, we present a multicomponent composite three-dimensional scaffold structure with biomimetic reinforcement and biomolecule functionalization for meniscus tissue engineering. The scaffold structure was developed using 3:1 silk fibroin (SF) and polyvinyl alcohol (PVA). Autoclaved eggshell membrane (AESM) powder (1-3%w/v) was used as reinforcement to enhance biomechanical properties. Further to improve cell attachment and proliferation, these scaffolds were functionalized using an optimized unique combination of biomolecules. Comprehensive analysis of scaffolds was carried out on morphological, structural, mechanical and biological functionalities. Their mechanical properties were compared with different native human menisci. The results indicated that, functionalized SF-PVA with 3%AESM has shown similar order of magnitude of compressive and dynamic mechanical properties as in human meniscus. Moreover, 3% AESM based scaffolds were found to support better primary human meniscal cellular proliferation and extracellular matrix secretion. Immunohistochemical analysis revealed angiogenesis and biocompatibility with minimal inflammatory response for subcutaneously implanted scaffolds in New Zealand white rabbits. The developed reinforced and functionalized SF-PVA scaffolds can uniquely combine the potential for load-bearing properties with improved in vitro and in vivo support for meniscus tissue regeneration. © 2018 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 106A: 1722-1731, 2018.
具有快速恢复机械和生物性能的组织工程构建体仍然是一个挑战,这强调了开发新型支架的必要性。在这里,我们提出了一种具有仿生增强和生物分子功能化的多组分复合三维支架结构,用于半月板组织工程。支架结构是使用 3:1 的丝素蛋白 (SF) 和聚乙烯醇 (PVA) 开发的。使用 1-3%w/v 的灭菌鸡蛋壳膜 (AESM) 粉末作为增强剂来增强生物力学性能。为了进一步改善细胞附着和增殖,这些支架通过优化的独特生物分子组合进行功能化。对支架进行了形态、结构、力学和生物学功能的综合分析。并将其力学性能与不同的天然人半月板进行了比较。结果表明,功能化的 SF-PVA 中添加 3%AESM 后,其压缩和动态力学性能与人体半月板相似。此外,基于 3% AESM 的支架被发现支持更好的原代人半月板细胞增殖和细胞外基质分泌。免疫组织化学分析显示,新西兰白兔皮下植入支架具有血管生成和生物相容性,炎症反应最小。开发的增强和功能化的 SF-PVA 支架可以独特地结合承载性能的潜力,并改善体外和体内对半月板组织再生的支持。 © 2018 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 106A: 1722-1731, 2018.