Stem Cell Aging, Institute for Biomedical Aging Research, Austrian Academy of Sciences, Innsbruck, Austria.
Biosens Bioelectron. 2012 Apr 15;34(1):63-9. doi: 10.1016/j.bios.2012.01.013. Epub 2012 Feb 8.
Biosensor systems which enable impedance measurements on adherent cell layers under label-free conditions are considered powerful tools for monitoring specific biological characteristics. A radio frequency identification-based sensor platform was adopted to characterize cultivation and differentiation of human bone marrow-derived multipotent stem cells (bmMSC) over periods of up to several days and weeks. Electric cell-substrate impedance sensing was achieved through fabrication of sensitive elements onto glass substrates which comprised two comb-shaped interdigitated gold electrodes covering an area of 1.8 mm×2 mm. The sensing systems were placed into the wells of a 6-well tissue culture plate, stacked onto a reader unit and could thus be handled and operated under sterile conditions. Continuous measurements were carried out with a sinusoidal voltage of 35 mV at a frequency of 10 kHz. After seeding of human bmMSC, this sensor was able to trace significant impedance changes contingent upon cell spreading and adhesion. The re-usable system was further proven suitable for live examination of cell-substrate attachment or continuous cell monitoring up to several weeks. Induction of either osteogenic or adipogenic differentiation could be validated in bmMSC cultures within a few days, in contrast to state-of-the-art protocols, which require several weeks of cultivation time. In the context of medical cell production in a GMP-compliant process, the here presented interdigitated electric microsensor technology allows the documentation of MSC quality in a fast, efficient and reliable fashion.
生物传感器系统可以在无标记条件下对贴壁细胞层进行阻抗测量,被认为是监测特定生物学特性的有力工具。本研究采用基于射频识别的传感器平台,对人骨髓间充质干细胞(bmMSC)的培养和分化进行了长达数天和数周的特征描述。通过在玻璃基底上制作敏感元件来实现细胞-基底阻抗传感,该敏感元件由两个梳状叉指状金电极组成,覆盖面积为 1.8mm×2mm。传感系统被放置在 6 孔组织培养板的孔中,堆叠在读取器单元上,因此可以在无菌条件下进行处理和操作。使用 35mV 的正弦波和 10kHz 的频率进行连续测量。在接种人 bmMSC 后,该传感器能够跟踪显著的阻抗变化,这取决于细胞的铺展和黏附。可重复使用的系统进一步被证明适合于活细胞-基底附着的检查或长达数周的连续细胞监测。与需要数周培养时间的最新技术相比,在几天内就可以验证 bmMSC 培养物中的成骨或成脂分化。在符合 GMP 要求的细胞生产过程中,这里提出的叉指式电动微传感器技术允许快速、高效和可靠地记录 MSC 的质量。