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3D printed silk-gelatin hydrogel scaffold with different porous structure and cell seeding strategy for cartilage regeneration

机译:3D印刷丝绸明胶水凝胶支架,具有不同多孔结构和细胞种子策略的软骨再生策略

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Hydrogel scaffolds are attractive for tissue defect repair and reorganization because of their human tissue-like characteristics. However, most hydrogels offer limited cell growth and tissue formation ability due to their submicron- or nano-sized gel networks, which restrict the supply of oxygen, nutrients and inhibit the proliferation and differentiation of encapsulated cells. In recent years, 3D printed hydrogels have shown great potential to overcome this problem by introducing macro-pores within scaffolds. In this study, we fabricated a macroporous hydrogel scaffold through horseradish peroxidase (HRP)-mediated crosslinking of silk fibroin (SF) and tyramine-substituted gelatin (GT) by extrusion-based low-temperature 3D printing. Through physicochemical characterization, we found that this hydrogel has excellent structural stability, suitable mechanical properties, and an adjustable degradation rate, thus satisfying the requirements for cartilage reconstruction. Cell suspension and aggregate seeding methods were developed to assess the inoculation efficiency of the hydrogel. Moreover, the chondrogenic differentiation of stem cells was explored. Stem cells in the hydrogel differentiated into hyaline cartilage when the cell aggregate seeding method was used and into fibrocartilage when the cell suspension was used. Finally, the effect of the hydrogel and stem cells were investigated in a rabbit cartilage defect model. After implantation for 12 and 16 weeks, histological evaluation of the sections was performed. We found that the enzymatic cross-linked and methanol treatment SF 5 GT 15 hydrogel combined with cell aggregates promoted articular cartilage regeneration. In summary, this 3D printed macroporous SF-GT hydrogel combined with stem cell aggregates possesses excellent potential for application in cartilage tissue repair and regeneration.
机译:由于人的组织类特征,水凝胶支架对于组织缺陷修复和重组是有吸引力的。然而,大多数水凝胶由于其亚微米或纳米型凝胶网络而提供有限的细胞生长和组织形成能力,这限制了氧气,营养素的供应,抑制包封细胞的增殖和分化。近年来,通过在支架内引入宏观孔来克服这个问题的3D印刷水凝胶具有很大的潜力。在这项研究中,我们通过挤出的低温3D印刷制造通过辣根过氧化物酶(HRP)和酪胺取代的明胶(GT)的旋过氧化酶(HRP)交联的大孔水凝胶支架。通过物理化学表征,我们发现该水凝胶具有出色的结构稳定性,合适的机械性能和可调节的降解速率,从而满足软骨重建的要求。开发了细胞悬浮液和聚集种子化方法以评估水凝胶的接种效率。此外,探索了干细胞的软骨性分化。当使用细胞综合播种方法时,水凝胶中的干细胞分化为透明软骨,并在使用细胞悬浮液时进入纤维纤维。最后,在兔软骨缺陷模型中研究了水凝胶和干细胞的效果。植入12和16周后,进行细分的组织学评价。我们发现酶联交联和甲醇处理SF 5 GT 15水凝胶与细胞聚集体联合促进关节软骨再生。总之,该3D印刷的大孔SF-GT水凝胶与干细胞聚集体相结合,具有在软骨组织修复和再生中的应用的优异潜力。

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