IEEE Trans Nanobioscience. 2019 Apr;18(2):265-268. doi: 10.1109/TNB.2019.2905517. Epub 2019 Mar 15.
Advancements in the microfabrication of soft materials have enabled the creation of increasingly sophisticated functional synthetic tissue structures for a myriad of tissue engineering applications. A challenge facing the field is mimicking the complex microarchitecture necessary to recapitulate proper morphology and function of many endogenous tissue constructs. This paper describes the creation of PEGDA hydrogel microenvironments (microgels) that maintain a high level of viability at single cell patterning scales and can be integrated into composite scaffolds with tunable modulus. PEGDA was stereolithographically patterned using a digital micromirror device to print single cell microgels at progressively decreasing length scales. The effect of feature size on cell viability was assessed and inert gas purging was introduced to preserve viability. A composite PEGDA scaffold created by this technique was mechanically tested and found to enable dynamic adjustability of the modulus. Together this approach advances the ability to microfabricate tissues that better mimic native constructs on cellular and subcellular length scales.
软物质的微制造技术的进步使得能够为众多组织工程应用创建越来越复杂的功能合成组织结构。该领域面临的一个挑战是模仿复杂的微观结构,以再现许多内源性组织构建体的适当形态和功能。本文描述了聚乙二醇二丙烯酸酯(PEGDA)水凝胶微环境(微凝胶)的创建,这些微环境在单细胞模式化尺度上保持高存活率,并可与具有可调模量的复合支架集成。PEGDA 采用数字微镜设备立体光刻进行图案化,以逐渐减小的长度尺度打印单细胞微凝胶。评估了特征尺寸对细胞活力的影响,并引入了惰性气体吹扫以保持活力。通过这种技术创建的复合 PEGDA 支架进行了力学测试,发现其能够动态调节模量。总的来说,这种方法提高了微制造组织的能力,使其在细胞和亚细胞长度尺度上更好地模拟天然结构。