ALPhANOV, Institut d'Optique d'Aquitaine, Rue François Mitterrand, 33400 Talence, France.
Department of Tissue Bioengineering, Université de Bordeaux, Rue François Mitterrand, 33076 Bordeaux, France.
Int J Mol Sci. 2022 Jun 14;23(12):6636. doi: 10.3390/ijms23126636.
To face the increasing demand for organ transplantation, currently the development of tissue engineering appears as the best opportunity to effectively regenerate functional tissues and organs. However, these approaches still face the lack of an efficient method to produce an efficient vascularization system. To answer these issues, the formation of an intra-volume channel within a three-dimensional, scaffold free, mature, and cell-covered collagen microfibre is here investigated through laser-induced cavitation. An intra-volume channel was formed upon irradiation with a near-infrared, femtosecond laser beam, focused with a high numerical aperture lens. The laser beam directly crossed the surface of a dense and living-cell bilayer and was focused behind the bilayer to induce channel formation in the hydrogel core while preserving the cell bilayer. Channel formation was assessed through confocal microscopy. Channel generation inside the hydrogel core was enhanced by the formation of voluminous cavitation bubbles with a lifetime longer than 30 s, which also improved intra-volume channel durability. Twenty-four hours after laser processing, cellular viability dropped due to a lack of sufficient hydration for processing longer than 10 min. However, the processing automation could drastically reduce the cellular mortality, this way enabling the formation of hollowed microfibres with a high density of living-cell outer bilayer.
为了满足日益增长的器官移植需求,目前组织工程学的发展似乎是有效再生功能性组织和器官的最佳机会。然而,这些方法仍然面临着缺乏有效方法来生成高效的血管化系统的问题。为了解决这些问题,本研究通过激光空化在无支架、成熟且细胞覆盖的胶原微纤维内形成体积内通道。通过用具有高数值孔径透镜聚焦的近红外飞秒激光束辐照,在体积内形成通道。激光束直接穿过密集且活细胞双层的表面,并聚焦在双层后面,以在水凝胶芯中诱导通道形成,同时保留细胞双层。通过共聚焦显微镜评估通道形成。体积内通道的生成通过形成寿命超过 30 秒的大量空化气泡得到增强,这也提高了体积内通道的耐久性。激光处理后 24 小时,由于处理时间超过 10 分钟导致缺乏足够的水合作用,细胞活力下降。然而,加工自动化可以大大降低细胞死亡率,从而能够形成具有高密活细胞外层双层的中空微纤维。