Wodnicka M, Guarino R D, Hemperly J J, Timmins M R, Stitt D, Pitner J B
BD Technologies, Research Triangle Park, NC 27709, USA.
J Biomol Screen. 2000 Jun;5(3):141-52. doi: 10.1177/108705710000500306.
We have developed a novel fluorescent Oxygen BioSensor technology platform adaptable to many applications in the area of drug discovery and development, particularly cell-based assays. This biosensor technology requires no additional reagents or incubations, and affords continuous real-time readout of dissolved oxygen concentrations. Since the level of oxygen dissolved in an assay's medium correlates to the number and viability of the cells in the medium, this technology is ideally suited for monitoring cell viability, proliferation, or death. The technology is particularly well suited to investigating cells' kinetic responses to proliferative or toxic stimuli, such as drugs. When incorporated into a 96- or 384-well microplate format, it is compatible with standard laboratory automation systems. Here we present data illustrating the application of the Oxygen BioSensor technology for rapid, homogeneous detection and evaluation of metabolic activity of a variety of eukaryotic and prokaryotic cells, including mammalian cells, insect cells, yeast, and bacteria. In the absence of toxic substances, we find a good correlation between cell number and signal over a wide range of cell concentrations and growth times. To evaluate the usefulness of the Oxygen BioSensor for cytotoxicity assays, we have performed a series of experiments using a range of toxic agents and cell types, including both bacteria and mammalian cell lines. In a side-by-side comparison to standard MTT assays using HL60 cells, comparable IC(50) values were found with the Oxygen BioSensor for five different toxins or drugs. This assay method does not have the need for additional reagents, handling steps, or incubation periods required by the MTT assays.
我们开发了一种新型荧光氧生物传感器技术平台,适用于药物发现与开发领域的多种应用,特别是基于细胞的检测。这种生物传感器技术无需额外试剂或孵育,可实现对溶解氧浓度的连续实时读数。由于检测培养基中溶解的氧水平与培养基中细胞的数量和活力相关,该技术非常适合监测细胞活力、增殖或死亡。该技术特别适合研究细胞对增殖或毒性刺激(如药物)的动力学反应。当整合到96孔或384孔微孔板形式中时,它与标准实验室自动化系统兼容。在此,我们展示数据,说明氧生物传感器技术在快速、均匀检测和评估多种真核和原核细胞(包括哺乳动物细胞、昆虫细胞、酵母和细菌)代谢活性方面的应用。在没有有毒物质的情况下,我们发现在广泛的细胞浓度和生长时间范围内,细胞数量与信号之间存在良好的相关性。为了评估氧生物传感器在细胞毒性检测中的实用性,我们使用了一系列有毒试剂和细胞类型(包括细菌和哺乳动物细胞系)进行了一系列实验。在与使用HL60细胞的标准MTT检测的并行比较中,氧生物传感器对五种不同毒素或药物的IC(50)值相当。这种检测方法不需要MTT检测所需额外的试剂、处理步骤或孵育时间。