首页> 外文期刊>Biofabrication >Engineering considerations on extrusion-based bioprinting: interactions of material behavior, mechanical forces and cells in the printing needle
【24h】

Engineering considerations on extrusion-based bioprinting: interactions of material behavior, mechanical forces and cells in the printing needle

机译:基于挤出的生物打印的工程注意事项:打印针中材料行为、机械力和细胞的相互作用

获取原文
获取原文并翻译 | 示例

摘要

Systematic analysis of the extrusion process in 3D bioprinting is mandatory for process optimization concerning production speed, shape fidelity of the 3D construct and cell viability. In this study, we applied numerical and analytical modeling to describe the fluid flow inside the printing head based on a Herschel-Bulkley model. The presented analytical calculation method nicely reproduces the results of Computational Fluid Dynamics simulation concerning pressure drop over the printing head and maximal shear parameters at the outlet. An approach with dimensionless flow parameter enables the user to adapt rheological characteristics of a bioink, the printing pressure and needle diameter with regard to processing time, shear sensitivity of the integrated cells, shape fidelity and strand dimension. Bioinks consist of a blend of polymers and cells, which lead to a complex fluid behavior. In the present study, a bioink containing alginate, methylcellulose and agarose (AMA) was used as experimental model to compare the calculated with the experimental pressure gradient. With cultures of an immortalized human mesenchymal stem cell line and plant cells (basil) it was tested how cells influence the flow and how mechanical forces inside the printing needle affect cell viability. Influences on both sides increased with cell (aggregation) size as well as a less spherical shape. This study contributes to a systematic description of the extrusion-based bioprinting process and introduces a general strategy for process design, transferable to other bioinks.
机译:对 3D 生物打印中的挤出工艺进行系统分析对于工艺优化有关生产速度、3D 构建体的形状保真度和细胞活力是必不可少的。在这项研究中,我们应用数值和解析建模来描述基于Herschel-Bulkley模型的打印头内部的流体流动。所提出的解析计算方法很好地再现了计算流体动力学模拟的结果,涉及打印头上的压降和出口处的最大剪切参数。采用无量纲流动参数的方法使用户能够适应生物墨水的流变特性、印刷压力和针头直径、加工时间、集成单元的剪切灵敏度、形状保真度和股线尺寸。生物墨水由聚合物和细胞的混合物组成,这导致了复杂的流体行为。本研究以含有海藻酸盐、甲基纤维素和琼脂糖(AMA)的生物墨水为实验模型,将计算结果与实验压力梯度进行比较。通过永生化人类间充质干细胞系和植物细胞(罗勒)的培养物,测试了细胞如何影响流动以及打印针内的机械力如何影响细胞活力。对两侧的影响随着细胞(聚集体)大小的增加以及球形的减少而增加。本研究有助于系统描述基于挤出的生物打印工艺,并引入工艺设计的一般策略,可转移到其他生物墨水中。

著录项

相似文献

  • 外文文献
  • 中文文献
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号