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High-throughput laser printing of cells and biomaterials for tissue engineering.

机译:用于组织工程的细胞和生物材料的高通量激光打印。

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摘要

In parallel with ink-jet printing and bioplotting, biological laser printing (BioLP) using laser-induced forward transfer has emerged as an alternative method in the assembly and micropatterning of biomaterials and cells. This paper presents results of high-throughput laser printing of a biopolymer (sodium alginate), biomaterials (nano-sized hydroxyapatite (HA) synthesized by wet precipitation) and human endothelial cells (EA.hy926), thus demonstrating the interest in this technique for three-dimensional tissue construction. A rapid prototyping workstation equipped with an IR pulsed laser (tau=30 ns, lambda=1064 nm, f=1-100 kHz), galvanometric mirrors (scanning speed up to 2000 mm s(-1)) and micrometric translation stages (x, y, z) was set up. The droplet generation process was controlled by monitoring laser fluence, focalization conditions and writing speed, to take into account its mechanism, which is driven mainly by bubble dynamics. Droplets 70 microm in diameter and containing around five to seven living cells per droplet were obtained, thereby minimizing the dead volume of the hydrogel that surrounds the cells. In addition to cell transfer, the potential of using high-throughput BioLP for creating well-defined nano-sized HA patterns is demonstrated. Finally, bioprinting efficiency criteria (speed, volume, resolution, integrability) for the purpose of tissue engineering are discussed.
机译:与喷墨打印和生物绘图同时出现的是,使用激光诱导的正向转移进行生物激光打印(BioLP)作为生物材料和细胞的组装和微图案化的替代方法。本文介绍了高通量激光打印生物聚合物(海藻酸钠),生物材料(通过湿法沉淀法合成的纳米尺寸羟基磷灰石(HA))和人内皮细胞(EA.hy926)的结果,从而证明了该技术的兴趣三维组织结构。快速原型工作站,配备红外脉冲激光(tau = 30 ns,λ= 1064 nm,f = 1-100 kHz),检流镜(扫描速度高达2000 mm s(-1))和测微位移台(x ,y,z)已设置。通过监视激光能量密度,聚焦条件和写入速度来控制液滴的产生过程,并考虑到其机理,该机理主要由气泡动力学驱动。获得直径为70微米的液滴,每个液滴包含约5至7个活细胞,从而使围绕细胞的水凝胶的死体积最小化。除细胞转移外,还展示了使用高通量BioLP产生清晰的纳米级HA模式的潜力。最后,讨论了用于组织工程的生物打印效率标准(速度,体积,分辨率,可整合性)。

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