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首页> 外文期刊>Biotechnology Journal: Healthcare,Nutrition,Technology >Inkjet-bioprinted acrylated peptides and PEG hydrogel with human mesenchymal stem cells promote robust bone and cartilage formation with minimal printhead clogging
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Inkjet-bioprinted acrylated peptides and PEG hydrogel with human mesenchymal stem cells promote robust bone and cartilage formation with minimal printhead clogging

机译:带有人间充质干细胞的喷墨生物打印丙烯酸酯化肽和PEG水凝胶可促进骨骼和软骨的牢固形成,且打印头堵塞最少

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摘要

Inkjet bioprinting is one of the most promising additive manufacturing approaches for tissue fabrication with the advantages of high speed, high resolution, and low cost. The limitation of this technology is the potential damage to the printed cells and frequent clogging of the printhead. Here we developed acrylated peptides and co-printed with acrylated poly(ethylene glycol) (PEG) hydrogel with simultaneous photopolymerization. At the same time, the bone marrow-derived human mesenchymal stem cells (hMSCs) were precisely printed during the scaffold fabrication process so the cells were delivered simultaneously with minimal UV exposure. The multiple steps of scaffold synthesis and cell encapsulation were successfully combined into one single step using bioprinting. The resulted peptide-conjugated PEG scaffold demonstrated excellent biocompatibility, with a cell viability of 87.9 +/- 5.3%. Nozzle clogging was minimized due to the low viscosity of the PEG polymer. With osteogenic and chondrogenic differentiation, the bioprinted bone and cartilage tissue demonstrated excellent mineral and cartilage matrix deposition, as well as significantly increased mechanical properties. Strikingly, the bioprinted PEG-peptide scaffold dramatically inhibited hMSC hypertrophy during chondrogenic differentiation. Collectively, bioprinted PEG-peptide scaffold and hMSCs significantly enhanced osteogenic and chondrogenic differentiation for robust bone and cartilage formation with minimal printhead clogging.
机译:喷墨生物打印是组织制造中最有前途的增材制造方法之一,它具有高速,高分辨率和低成本的优点。该技术的局限性是对打印单元的潜在损坏以及打印头的频繁堵塞。在这里,我们开发了丙烯酸酯化的肽,并与丙烯酸酯化的聚乙二醇(PEG)水凝胶同时进行了光聚合同时打印。同时,在支架制造过程中精确打印了骨髓来源的人间充质干细胞(hMSCs),因此可以在最小的紫外线照射下同时递送细胞。支架合成和细胞封装的多个步骤已成功地通过生物印记整合为一个步骤。所得的肽缀合的PEG支架表现出优异的生物相容性,细胞活力为87.9 +/- 5.3%。由于PEG聚合物的低粘度,喷嘴堵塞得以最小化。通过成骨和软骨形成的分化,生物打印的骨骼和软骨组织表现出出色的矿物质和软骨基质沉积,并显着提高了机械性能。令人惊讶的是,生物打印的PEG肽支架在软骨分化过程中显着抑制了hMSC肥大。总体而言,生物打印的PEG肽支架和hMSC显着增强了成骨和软骨形成分化,从而在最小的打印头堵塞的情况下形成了坚固的骨和软骨。

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