Hameed Safa, Viswakarma Navin, Babakhanova Greta, Simon Carl G, Epel Boris, Kotecha Mrignayani
Oxygen Measurement Core, O2M Technologies, LLC, 2201 W Campbell Park Dr, Chicago, IL, 60612, USA.
Biosystems and Biomaterials Division, National Institute of Standards and Technology, 100 Bureau Drive, Gaithersburg, MD, 20899, USA.
Npj Imaging. 2024 Apr 1;2(1):8. doi: 10.1038/s44303-024-00013-7.
The use of oxygen by cells is an essential aspect of cell metabolism and a reliable indicator of viable and functional cells. Here, we report partial pressure oxygen (pO) mapping of live cells as a reliable indicator of viable and metabolically active cells. For pO imaging, we utilized trityl OX071-based pulse electron paramagnetic resonance oxygen imaging (EPROI), in combination with a 25 mT EPROI instrument, JIVA-25™, that provides 3D oxygen maps with high spatial, temporal, and pO resolution. To perform oxygen imaging in an environment-controlled apparatus, we developed a novel multi-well-plate incubator-resonator (MWIR) system that could accommodate 3 strips from a 96-well strip-well plate and image the middle 12 wells noninvasively and simultaneously. The MWIR system was able to keep a controlled environment (temperature at 37 °C, relative humidity between 70%-100%, and a controlled gas flow) during oxygen imaging and could keep cells alive for up to 24 h of measurement, providing a rare previously unseen longitudinal perspective of 3D cell metabolic activities. The robustness of MWIR was tested using an adherent cell line (HEK-293 cells), a nonadherent cell line (Jurkat cells), a cell-biomaterial construct (Jurkat cells seeded in a hydrogel), and a negative control (dead HEK-293 cells). For the first time, we demonstrated that oxygen concentration in a multi-well plate seeded with live cells reduces exponentially with the increase in cell seeding density, even if the cells are exposed to incubator-like gas conditions. For the first time, we demonstrate that 3D, longitudinal oxygen imaging can be used to assess cells seeded in a hydrogel. These results demonstrate that MWIR-based EPROI is a versatile and robust method that can be utilized to observe the cell metabolic activity nondestructively, longitudinally, and in 3D. This approach may be useful for characterizing cell therapies, tissue-engineered medical products, and other advanced therapeutics.
细胞对氧气的利用是细胞新陈代谢的一个重要方面,也是活细胞和功能正常细胞的可靠指标。在此,我们报告活细胞的氧分压(pO)映射,作为活细胞和代谢活跃细胞的可靠指标。对于pO成像,我们利用基于三苯甲基OX071的脉冲电子顺磁共振氧成像(EPROI),结合一台25 mT的EPROI仪器JIVA-25™,该仪器可提供具有高空间、时间和pO分辨率的3D氧图谱。为了在环境可控的装置中进行氧成像,我们开发了一种新型的多孔板培养箱-谐振器(MWIR)系统,该系统可以容纳96孔条孔板中的3条,并且能够对中间的12个孔进行非侵入性的同时成像。MWIR系统能够在氧成像过程中保持可控环境(温度为37°C,相对湿度在70%-100%之间,以及可控的气流),并且能够使细胞在长达24小时的测量过程中保持存活,提供了一个罕见的、以前未见过的3D细胞代谢活动的纵向视角。使用贴壁细胞系(HEK-293细胞)、非贴壁细胞系(Jurkat细胞)、细胞-生物材料构建体(接种在水凝胶中的Jurkat细胞)和阴性对照(死亡的HEK-293细胞)对MWIR的稳健性进行了测试。我们首次证明,即使细胞暴露在类似培养箱的气体条件下,接种活细胞的多孔板中的氧浓度也会随着细胞接种密度的增加而呈指数下降。我们首次证明,3D纵向氧成像可用于评估接种在水凝胶中的细胞。这些结果表明,基于MWIR的EPROI是一种通用且稳健的方法,可用于无损、纵向和3D观察细胞代谢活动。这种方法可能有助于表征细胞疗法、组织工程医疗产品和其他先进疗法。