Tissue Engineering Laboratory, Department of Biotechnology, PSG Institute of Advanced Studies, Coimbatore 641004, India.
Tissue Engineering Laboratory, Department of Biotechnology, PSG Institute of Advanced Studies, Coimbatore 641004, India; Department of Electronics and Communication Engineering, PSG College of Technology, Coimbatore 641004, India.
Int J Biol Macromol. 2022 Jan 15;195:179-189. doi: 10.1016/j.ijbiomac.2021.11.184. Epub 2021 Dec 3.
The development of technologies that could ease the production of customizable patient-specific tissue engineering constructs having required biomechanical properties and restoring function in damaged tissue is the need of the hour. In this study, we report the optimization of composite, bioactive and biocompatible tripolymeric hydrogel bioink, suitable for both direct and indirect printing of customizable scaffolds for cartilage tissue engineering applications. A customized hierarchical meniscal scaffold was designed using solid works software and developed using a negative mould made of polylactic acid (PLA) filament and by a direct 3D printing process. A composite tripolymeric bioink made of gelatin, carboxymethyl cellulose (CMC) and alginate was optimized and characterized for its printability, structural, bio-mechanical and bio-functional properties. The optimized composite hydrogel bioink was extruded into the negative mould with and without live cells, cross-linked and the replica of meniscus structure was retrieved aseptically. The cellular proliferation, apatite formation, and extracellular matrix secretion from negative printed meniscal scaffold were determined using MTT, live/dead and collagen estimation assays. A significant increase in collagen secretion, cellular proliferation and changes in biomechanical properties was observed in the 3D scaffolds with MG63-osteosarcoma cells indicating its suitability for cartilage tissue engineering.
开发能够减轻生产具有所需生物力学特性的定制化患者特异性组织工程构建体的技术,以及恢复受损组织功能的技术,是当前的迫切需求。在这项研究中,我们报告了适用于软骨组织工程应用的可定制支架的直接和间接打印的复合、生物活性和生物相容性三聚体水凝胶生物墨水的优化。使用 SolidWorks 软件设计了定制的分层半月板支架,并使用由聚乳酸 (PLA) 细丝制成的负模和直接 3D 打印工艺进行开发。优化了由明胶、羧甲基纤维素 (CMC) 和藻酸盐组成的复合三聚体生物墨水,以评估其可打印性、结构、生物机械和生物功能特性。将优化的复合水凝胶生物墨水挤出到带有和不带有活细胞的负模中,进行交联,并无菌取回半月板结构的复制品。使用 MTT、活/死和胶原估计测定法来确定阴性打印的半月板支架的细胞增殖、磷灰石形成和细胞外基质分泌。在具有 MG63-骨肉瘤细胞的 3D 支架中观察到胶原分泌、细胞增殖和生物力学特性的显著变化,表明其适合软骨组织工程。