Parametric Study of Jet/Droplet Formation Process during LIFT Printing of Living Cell-Laden Bioink

Author:

Kryou ChristinaORCID,Theodorakos IoannisORCID,Karakaidos PanagiotisORCID,Klinakis Apostolos,Hatziapostolou Antonios,Zergioti IoannaORCID

Abstract

Bioprinting offers great potential for the fabrication of three-dimensional living tissues by the precise layer-by-layer printing of biological materials, including living cells and cell-laden hydrogels. The laser-induced forward transfer (LIFT) of cell-laden bioinks is one of the most promising laser-printing technologies enabling biofabrication. However, for it to be a viable bioprinting technology, bioink printability must be carefully examined. In this study, we used a time-resolved imaging system to study the cell-laden bioink droplet formation process in terms of the droplet size, velocity, and traveling distance. For this purpose, the bioinks were prepared using breast cancer cells with different cell concentrations to evaluate the effect of the cell concentration on the droplet formation process and the survival of the cells after printing. These bioinks were compared with cell-free bioinks under the same printing conditions to understand the effect of the particle physical properties on the droplet formation procedure. The morphology of the printed droplets indicated that it is possible to print uniform droplets for a wide range of cell concentrations. Overall, it is concluded that the laser fluence and the distance of the donor–receiver substrates play an important role in the printing impingement type; consequently, a careful adjustment of these parameters can lead to high-quality printing.

Funder

European Union’s Horizon 2020

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Mechanical Engineering,Control and Systems Engineering

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. 3D Bioprinting techniques;Towards 4D Bioprinting;2023

2. Laser-Induced Forward Transfer on Regenerative Medicine Applications;Biomedical Materials & Devices;2022-12-08

3. 3D Printed Biohybrid Microsystems;Advanced Materials Technologies;2022-08-11

4. Laser Bioprinting of Cells Using UV and Visible Wavelengths: A Comparative DNA Damage Study;Bioengineering;2022-08-09

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