Department of Health Technology, DTU Health Tech, Technical University of Denmark, 2800 Kgs. Lyngby, Denmark.
Lab Chip. 2022 Oct 25;22(21):4167-4179. doi: 10.1039/d2lc00063f.
Sufficient and controllable oxygen supply is essential for 3D cell and tissue culture at high cell densities, which calls for volumetric oxygen analysis methods to quantitatively assess the oxygen distribution. This paper presents a general approach for accurate and precise non-contact 3D mapping of oxygen tension in high cell-density cultures embedded commercially available oxygen microsensor beads read out by confocal phosphorescence lifetime microscopy (PLIM). Optimal acquisition conditions and data analysis procedures are established and implemented in a publicly available software package. The versatility of the established method is first demonstrated in model-assisted fluidic design of microperfused 3D printed hydrogel culture chips with the aim of full culture oxygenation, and subsequently for monitoring and maintenance of physiologically relevant spatial and temporal oxygen gradients in the 3D printed chips controlled by static or dynamic flow conditions during 3D culture.
充足且可控制的氧气供应对于高细胞密度下的 3D 细胞和组织培养至关重要,这就需要体积氧分析方法来定量评估氧气分布。本文提出了一种通用的方法,用于通过共焦荧光寿命显微镜(PLIM)读取商用氧微传感器珠来准确、精确地非接触式映射高细胞密度培养物中的氧张力。建立了最佳采集条件和数据分析程序,并在一个公开的软件包中实现。所建立的方法的多功能性首先在模型辅助的微流体设计中得到了证明,目的是对微灌注 3D 打印水凝胶培养芯片进行充分的氧合,随后用于监测和维持 3D 打印芯片中的生理相关的空间和时间氧梯度,这些梯度通过 3D 培养期间的静态或动态流动条件来控制。