Serex Ludovic, Bertsch Arnaud, Renaud Philippe
EPFL STI IMT LMIS4, Station 17, CH-1015 Lausanne, Switzerland.
Micromachines (Basel). 2018 Feb 16;9(2):86. doi: 10.3390/mi9020086.
Advances in 3D printing have enabled the use of this technology in a growing number of fields, and have started to spark the interest of biologists. Having the particularity of being cell friendly and allowing multimaterial deposition, extrusion-based 3D printing has been shown to be the method of choice for bioprinting. However as biologically relevant constructs often need to be of high resolution and high complexity, new methods are needed, to provide an improved level of control on the deposited biomaterials. In this paper, we demonstrate how microfluidics can be used to add functions to extrusion 3D printers, which widens their field of application. Micromixers can be added to print heads to perform the last-second mixing of multiple components just before resin dispensing, which can be used for the deposition of new polymeric or composite materials, as well as for bioprinting new materials with tailored properties. The integration of micro-concentrators in the print heads allows a significant increase in cell concentration in bioprinting. The addition of rapid microfluidic switching as well as resolution increase through flow focusing are also demonstrated. Those elementary implementations of microfluidic functions for 3D printing pave the way for more complex applications enabling new prospects in 3D printing.
3D打印技术的进步使其在越来越多的领域得到应用,并开始引发生物学家的兴趣。基于挤压的3D打印具有对细胞友好和允许多种材料沉积的特性,已被证明是生物打印的首选方法。然而,由于具有生物学相关性的构建体通常需要高分辨率和高复杂性,因此需要新的方法来提高对沉积生物材料的控制水平。在本文中,我们展示了微流控技术如何用于为挤压式3D打印机添加功能,从而拓宽其应用领域。可以在打印头上添加微混合器,以便在树脂分配前对多种成分进行最后一秒的混合,这可用于沉积新型聚合物或复合材料,以及生物打印具有定制特性的新材料。在打印头中集成微浓缩器可显著提高生物打印中的细胞浓度。还展示了快速微流控切换的添加以及通过流动聚焦提高分辨率。这些用于3D打印的微流控功能的基本实现为更复杂的应用铺平了道路,为3D打印带来了新的前景。