Suppr超能文献

基质硬度会影响喷墨系统对活细胞的高分辨率打印。

Substrate stiffness influences high resolution printing of living cells with an ink-jet system.

机构信息

Faculty of Engineering, University of Pisa, Pisa, Italy.

出版信息

J Biosci Bioeng. 2011 Jul;112(1):79-85. doi: 10.1016/j.jbiosc.2011.03.019. Epub 2011 Apr 15.

Abstract

The adaptation of inkjet printing technology for the realisation of controlled micro- and nano-scaled biological structures is of great potential in tissue and biomaterial engineering. In this paper we present the Olivetti BioJet system and its applications in tissue engineering and cell printing. BioJet, which employs a thermal inkjet cartridge, was used to print biomolecules and living cells. It is well known that high stresses and forces are developed during the inkjet printing process. When printing living particles (i.e., cell suspensions) the mechanical loading profile can dramatically damage the processed cells. Therefore computational models were developed to predict the velocity profile and the mechanical load acting on a droplet during the printing process. The model was used to investigate the role of the stiffness of the deposition substrate during droplet impact and compared with experimental investigations on cell viability after printing on different materials. The computational model and the experimental results confirm that impact forces are highly dependent on the deposition substrate and that soft and viscous surfaces can reduce the forces acting on the droplet, preventing cell damage. These results have high relevance for cell bioprinting; substrates should be designed to have a good compromise between substrate stiffness to conserve spatial patterning without droplet coalescence but soft enough to absorb the kinetic energy of droplets in order to maintain cell viability.

摘要

喷墨打印技术在实现可控的微纳尺度生物结构方面具有很大的潜力,尤其在组织工程和生物材料工程方面。本文介绍了 Olivetti BioJet 系统及其在组织工程和细胞打印方面的应用。BioJet 采用热喷墨墨盒,可用于打印生物分子和活细胞。众所周知,在喷墨打印过程中会产生很高的应力和力。当打印活的粒子(即细胞悬浮液)时,机械负载会严重破坏处理过的细胞。因此,开发了计算模型来预测打印过程中液滴的速度分布和所受的机械载荷。该模型用于研究沉积基底的刚度在液滴撞击过程中的作用,并与不同材料上打印后细胞活力的实验研究进行了比较。计算模型和实验结果证实,撞击力高度依赖于沉积基底,柔软粘性的表面可以降低作用在液滴上的力,防止细胞损伤。这些结果对于细胞生物打印具有重要意义;基底的设计应在保持空间图案而不发生液滴聚结的前提下具有良好的基底刚度,但又要足够柔软,以吸收液滴的动能,从而保持细胞活力。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验