3D bioprinting for modelling vasculature.

Microphysiological systems Pub Date : 2018-11-01 Epub Date: 2018-11-05 DOI:10.21037/mps.2018.10.02
Pranabesh Sasmal, Pallab Datta, Yang Wu, Ibrahim T Ozbolat
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引用次数: 46

Abstract

Though in vivo models provide the most physiologically-relevant environment for studying tissue development and function, an in vitro substitute is being offered by the advancement of three-dimensional (3D) bioprinting technology, which is a reproducible and scalable fabrication strategy providing precise 3D control compared to conventional microfluidic tissue fabrication methods. In this review, vasculature models printed using extrusion-, droplet-, and laser-based bioprinting techniques are summarized and compared. Besides bioprinting of hydrogels as bioinks, an alternative method to obtain vascular models by bioprinting is to use exogenous biomaterial-free cell aggregates such as tissue spheroids and cell pellet, which has also been discussed here. In addition, there have been efforts to fabricate micro-vasculature constructs (e.g., capillaries) to overcome the practical limitations of bioprinting of large scale vascular networks. At the end of the review, limitations and prospective of bioprinting in vasculature modelling has also been expounded.

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用于血管系统建模的3D生物打印。
尽管体内模型为研究组织发育和功能提供了最具生理相关性的环境,但三维(3D)生物打印技术的进步正在提供一种体外替代品,与传统的微流体组织制造方法相比,这是一种可重复和可扩展的制造策略,可提供精确的3D控制。在这篇综述中,总结和比较了使用基于挤出、液滴和激光的生物打印技术打印的脉管系统模型。除了将水凝胶作为生物墨水进行生物打印外,通过生物打印获得血管模型的另一种方法是使用外源性无生物材料的细胞聚集体,如组织球体和细胞颗粒,这也在这里进行了讨论。此外,还努力制造微血管结构(例如,毛细管),以克服大规模血管网络的生物打印的实际限制。在综述的最后,还阐述了生物打印在脉管系统建模中的局限性和前景。
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