Department of Biomedical Engineering, Amirkabir University of Technology (Tehran Polytechnic), Tehran, Iran.
Institute for Nanoscience and Nanotechnology, Sharif University of Technology, Tehran, Iran.
Sci Rep. 2024 Feb 10;14(1):3418. doi: 10.1038/s41598-024-52866-y.
In recent years, microscopy has revolutionized the study of dynamic living cells. However, performing long-term live cell imaging requires stable environmental conditions such as temperature, pH, and humidity. While standard incubators have traditionally provided these conditions, other solutions, like stagetop incubators are available. To further enhance the accessibility of stable cell culture environments for live cell imaging, we developed a portable CO cell culture mini-incubator that can be easily adapted to any x-y inverted microscope stage, enabling long-term live cell imaging. This mini-incubator provides and maintains stable environmental conditions and supports cell viability comparable to standard incubators. Moreover, it allows for parallel experiments in the same environment, saving both time and resources. To demonstrate its functionality, different cell lines (VERO and MDA-MB-231) were cultured and evaluated using various assays, including crystal violet staining, MTT, and flow cytometry tests to assess cell adhesion, viability, and apoptosis, respectively. Time-lapse imaging was performed over an 85-h period with MDA-MB-231 cells cultured in the mini-incubator. The results indicate that this device is a viable solution for long-term imaging and can be applied in developmental biology, cell biology, and cancer biology research where long-term time-lapse recording is required.
近年来,显微镜技术已经彻底改变了对动态活细胞的研究。然而,进行长期的活细胞成像需要稳定的环境条件,如温度、pH 值和湿度。虽然标准培养箱传统上提供了这些条件,但也有其他解决方案,如台式培养箱。为了进一步增强用于活细胞成像的稳定细胞培养环境的可及性,我们开发了一种便携式 CO2 细胞培养迷你培养箱,它可以轻松地适应任何倒置显微镜的 x-y 载物台,从而实现长期的活细胞成像。这种迷你培养箱提供并维持稳定的环境条件,并支持与标准培养箱相当的细胞活力。此外,它允许在相同的环境中进行并行实验,节省时间和资源。为了证明其功能,我们使用不同的细胞系(VERO 和 MDA-MB-231)进行了培养,并使用各种测定法(包括结晶紫染色、MTT 和流式细胞术测试)进行了评估,分别评估细胞粘附、活力和凋亡。对 MDA-MB-231 细胞在迷你培养箱中培养的 85 小时的时间 lapse 成像进行了研究。结果表明,该设备是一种可行的长期成像解决方案,可应用于需要长期时间 lapse 记录的发育生物学、细胞生物学和癌症生物学研究。