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首页> 外文期刊>Macromolecular materials and engineering >Personalized Single‐Cell Encapsulation Using E‐Jet 3D Printing with AC‐Pulsed Modulation
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Personalized Single‐Cell Encapsulation Using E‐Jet 3D Printing with AC‐Pulsed Modulation

机译:个性化的单量细胞封装使用E的飞机3 d打印技术与交流脉冲调制

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摘要

Abstract With the growing therapeutic importance of cell microcarriers, there has been a rise in the need to develop technologies that facilitate efficient microencapsulation of cells, currently limited by a lack of straightforward and low‐cost strategies for single‐cell isolation and printing. Thus, the aim of this study is to develop a gentle and cell‐compatible electro‐hydrodynamic jet 3D printing technique to facilitate the efficient microencapsulation of cells in hydrogel microspheres, and investigate the effects of parameters (flow rate, voltage frequency, nozzle diameter, working distance, and substrate velocity) on the printing process. Stable microspheres are obtained by regulating these parameters to balance various forces, with control of their diameters in the range of 100–600 μm. The study demonstrates that under optimized conditions, the technique is able to successfully encapsulate cells within hydrogel microspheres with high viability over a wide range of diameters. This 3D printing technique expands the potential utility of microspheres into additional biological applications, such as cancer biology and drug screening. It can also be used as an effective platform for the production of tumor spheroids, generating multicellular spheroid models in vitro or for injectable cell delivery.
机译:与增长治疗细胞微载体的重要性,有需要开发的上升技术,促进高效微型胶囊的细胞,目前限制缺乏简单和低成本策略单量细胞分离和印刷。本研究的目的是开发一个温柔细胞量兼容的电水动力喷射3 d印刷技术来方便高效微型胶囊在水凝胶的细胞微球,并研究的影响参数(流量、电压频率、喷嘴直径、工作距离和衬底在印刷过程速度)。通过调节这些微球参数来平衡各种力量,控制他们的直径范围内的100 - 600μm。优化条件下,这项技术能够成功地封装细胞在水凝胶微球与可行性高宽直径的范围。扩展了微球的潜在效用到额外的生物应用程序,如癌症生物学和药物筛选。作为一个有效的生产平台肿瘤的球状体,产生多细胞球体模型体外细胞或注射交付。

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