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Dispersible oxygen microsensors map oxygen gradients in three-dimensional cell cultures

机译:可分散的氧微调在三维细胞培养物中的氧梯度

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Phase fluorimetry, unlike the more commonly used intensity-based measurement, is not affected by differences in light paths from culture vessels or by optical attenuation through dense 3D cell cultures and hydrogels thereby minimizing dependence on signal intensity for accurate measurements. This work describes the use of phase fluorimetry on oxygen-sensor microbeads to perform oxygen measurements in different microtissue culture environments. In one example, cell spheroids were observed to deplete oxygen from the cell-culture medium filling the bottom of conventional microwells within minutes, whereas oxygen concentrations remained close to ambient levels for several days in hanging-drop cultures. By dispersing multiple oxygen microsensors in cell-laden hydrogels, we also mapped cell-generated oxygen gradients. The spatial oxygen mapping was sufficiently precise to enable the use of computational models of oxygen diffusion and uptake to give estimates of the cellular oxygen uptake rate and the half-saturation constant. The results show the importance of integrated design and analysis of 3D cell cultures from both biomaterial and oxygen supply aspects. While this paper specifically tests spheroids and cell-laden gel cultures, the described methods should be useful for measuring pericellular oxygen concentrations in a variety of biomaterials and culture formats.
机译:与更常用的基于强度的测量不同,相对于培养血管的光路径或通过致密3D细胞培养物和水凝胶的光学衰减,不存在荧光测量,从而最小化对信号强度的依赖性进行准确测量的依赖性。这项工作描述了在氧传感器微珠上使用相氟代件,以在不同的微小训练环境中进行氧气测量。在一个实例中,观察细胞球体从填充常规微孔的底部的细胞培养基中耗尽氧气,而氧浓度在悬浮培养物中仍然接近环境水平近几天。通过分散细胞升温水凝胶中的多个氧微体,我们还映射了细胞产生的氧梯度。空间氧映射足够精确以使得能够使用氧气扩散和摄取的计算模型,以给出细胞氧吸收率和半饱和常数的估计。结果表明,从生物材料和氧气供应方面的3D细胞培养物综合设计和分析的重要性。虽然本文具体地测试球状体和升起的凝胶培养物,但所描述的方法应该用于测量各种生物材料和培养物种的脑氧浓度。

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