球体
自愈水凝胶
3D生物打印
诱导多能干细胞
组织工程
再生医学
生物医学工程
细胞
细胞融合
再生(生物学)
细胞生物学
化学
干细胞
生物
体外
医学
胚胎干细胞
生物化学
遗传学
有机化学
基因
作者
Andrew C. Daly,Matthew D. Davidson,Jason A. Burdick
标识
DOI:10.1101/2020.05.21.103127
摘要
Abstract Cellular models are needed to study human development and disease in vitro , including the screening of drugs for toxicity and efficacy. However, current approaches are limited in the engineering of functional tissue models with requisite cell densities and heterogeneity to appropriately model cell and tissue behaviors. Here, we develop a new bioprinting approach to transfer spheroids into self-healing support hydrogels at high resolution, which enables their patterning and fusion into high-cell density microtissues of prescribed spatial organization. As an example application, we bioprint induced pluripotent stem cell-derived cardiac microtissue models with spatially controlled cardiomyocyte and fibroblast cell ratios to replicate the structural and functional features of scarred cardiac tissue that arise following myocardial infarction, including reduced contractility and irregular electrical activity. The bioprinted in vitro model is combined with functional readouts to probe how various pro-regenerative microRNA treatment regimes influence tissue regeneration and recovery of function as a result of cardiomyocyte proliferation. This method is useful for a range of biomedical applications, including the development of precision models to mimic diseases and for the screening of drugs, particularly where high cell densities and heterogeneity are important.
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