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Spatially monitoring oxygen level in 3D microfabricated cell culture systems using optical oxygen sensing beads

机译:使用光学氧气感应珠在3D微型细胞培养系统中空间监测氧气水平

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Capability of measuring and monitoring local oxygen concentration at the single cell level (tens of microns scale) is often desirable but difficult to achieve in cell culture. In this study, biocompatible oxygen sensing beads were prepared and tested for their potential for real-time monitoring and mapping of local oxygen concentration in 3D micro-patterned cell culture systems. Each oxygen sensing bead is composed of a silica core loaded with both an oxygen sensitive Ru(Ph2phen3)CI2 dye and oxygen insensitive Nile blue reference dye, and a poly-dimethylsiloxane (PDMS) shell rendering biocompatibility. Human intestinal epithelial Caco-2 cells were cultivated on a series of PDMS and type I collagen based substrates patterned with micro-well arrays for 3 or 7 days, and then brought into contact with oxygen sensing beads. Using an image analysis algorithm to convert florescence intensity of beads to partial oxygen pressure in the culture system, tens of microns-size oxygen sensing beads enabled the spatial measurement of local oxygen concentration in the microfabricated system. Results generally indicated lower oxygen level inside wells than on top of wells, and local oxygen level dependence on structural features of cell culture surfaces. Interestingly, chemical composition of cell culture substrates also appeared to affect oxygen level, with type-l collagen based cell culture systems having lower oxygen concentration compared to PDMS based cell culture systems. In general, results suggest that oxygen sensing beads can be utilized to achieve realtime and local monitoring of micro-environment oxygen level in 3D microfabricated cell culture systems.
机译:通常需要在单个细胞水平(数十微米规模)上测量和监视局部氧气浓度的能力,但在细胞培养中很难实现。在这项研究中,制备了生物相容性氧感应珠,并测试了其在3D微模式细胞培养系统中实时监测和绘制局部氧浓度的潜力。每个氧感测珠均由二氧化硅核组成,该二氧化硅核既装有对氧敏感的Ru(Ph2phen3)Cl2染料和对氧不敏感的尼罗蓝参考染料,又具有赋予生物相容性的聚二甲基硅氧烷(PDMS)壳。将人肠上皮Caco-2细胞在一系列PDMS和基于I型胶原的底物上进行培养3或7天,这些底物上用微孔阵列进行了图案化,然后与氧敏感珠接触。使用图像分析算法将珠子的荧光强度转换为培养系统中的部分氧气压力,数十微米大小的氧感应珠子可以对微型系统中的局部氧浓度进行空间测量。结果通常表明孔内的氧水平低于孔顶部的氧水平,并且局部氧水平取决于细胞培养表面的结构特征。有趣的是,与基于PDMS的细胞培养系统相比,基于I型胶原的细胞培养系统具有较低的氧浓度,细胞培养底物的化学组成也似乎会影响氧水平。总的来说,结果表明,氧感测珠可用于实现3D微型细胞培养系统中微环境氧气水平的实时和本地监控。

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