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Bioprinting and Preliminary Testing of Highly Reproducible Novel Bioink for Potential Skin Regeneration

机译:高度可复制的新型Bioink的生物打印和初步测试可用于潜在的皮肤再生

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摘要

Three-dimensional (3D) bioprinting is considered as a novel approach in biofabricating cell-laden constructs that could potentially be used to promote skin regeneration following injury. In this study, a novel crosslinked chitosan (CH)–genipin (GE) bioink laden with keratinocyte and human dermal fibroblast cells was developed and printed successfully using an extruder-based bioprinter. By altering the composition and degree of CH–GE crosslinking, bioink printability was further assessed and compared with a commercial bioink. Rheological analysis showed that the viscosity of the optimised bioink was in a suitable range that facilitated reproducible and reliable printing by applying low pressures ranging from 20–40 kPa. The application of low printing pressures proved vital for viability of cells loaded within the bioinks. Further characterisation using MTT assay showed that cells were still viable within the printed construct at 93% despite the crosslinking, processing and after subjecting to physiological conditions for seven days. The morphological study of the printed cells showed that they were mobile within the bioink. Furthermore, the multi-layered 3D printed constructs demonstrated excellent self-supportive structures in a consistent manner.
机译:三维(3D)生物打印被认为是生物制造载有细胞的构建体的一种新方法,该构建体可能被用于促进损伤后的皮肤再生。在这项研究中,开发了一种新型的,带有角质形成细胞和人皮肤成纤维细胞的交联壳聚糖(CH)–genipin(GE)生物墨水,并使用基于挤出机的生物打印机成功打印。通过改变CH-GE交联的组成和程度,可以进一步评估生物墨水的可印刷性,并将其与商业生物墨水进行比较。流变分析表明,优化的生物墨水的粘度在合适的范围内,通过施加20–40 kPa的低压压力,可促进可再现和可靠的打印。事实证明,低印刷压力的应用对于生物墨水中细胞的生存能力至关重要。使用MTT测定法的进一步表征显示,尽管交联,加工并且在经受生理条件7天后,细胞仍在印刷的构建体中以93%存活。印刷细胞的形态研究表明,它们在生物墨水中可移动。此外,多层3D打印构造以一致的方式展示了出色的自支撑结构。

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