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A Causal Relation between Bioluminescence and Oxygen to Quantify the Cell Niche

机译:生物发光与氧气之间的因果关系以量化细胞生态位

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Bioluminescence imaging assays have become a widely integrated technique to quantify effectiveness of cell-based therapies by monitoring fate and survival of transplanted cells. To date these assays are still largely qualitative and often erroneous due to the complexity and dynamics of local micro-environments (niches) in which the cells reside. Here, we report, using a combined experimental and computational approach, on oxygen that besides being a critical niche component responsible for cellular energy metabolism and cell-fate commitment, also serves a primary role in regulating bioluminescent light kinetics. We demonstrate the potential of an oxygen dependent Michaelis-Menten relation in quantifying intrinsic bioluminescence intensities by resolving cell-associated oxygen gradients from bioluminescent light that is emitted from three-dimensional (3D) cell-seeded hydrogels. Furthermore, the experimental and computational data indicate a strong causal relation of oxygen concentration with emitted bioluminescence intensities. Altogether our approach demonstrates the importance of oxygen to evolve towards quantitative bioluminescence and holds great potential for future microscale measurement of oxygen tension in an easily accessible manner.
机译:生物发光成像测定法已成为一种广泛集成的技术,可以通过监测移植细胞的命运和存活情况来量化基于细胞的疗法的有效性。迄今为止,由于细胞所处的局部微环境(生态位)的复杂性和动态性,这些检测在很大程度上仍是定性的,并且常常是错误的。在这里,我们报道,采用组合的实验和计算方法,对氧气进行研究,它不仅是负责细胞能量代谢和细胞命运的重要利基成分,而且在调节生物发光动力学方面也起着主要作用。我们通过从三维(3D)细胞播种的水凝胶发射的生物发光光解析细胞相关的氧梯度,证明了氧依赖性Michaelis-Menten关系在量化固有生物发光强度中的潜力。此外,实验和计算数据表明氧浓度与发射的生物发光强度之间存在很强的因果关系。总的来说,我们的方法证明了氧气向定量生物发光发展的重要性,并为将来以易于访问的方式进行氧气张力的微型测量提供了巨大的潜力。

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