Biophysical Engineering Group, MIRA Institute for Biomedical Technology and Technical Medicine, University of Twente, 7522 ND Enschede, The Netherlands.
Anal Chem. 2010 Mar 1;82(5):1844-50. doi: 10.1021/ac902515c.
We present the development of microbioreactors with a sensitive and accurate optical coupling to a confocal Raman microspectrometer. We show that such devices enable in situ and in vitro investigation of cell cultures for tissue engineering by chemically sensitive Raman spectroscopic imaging techniques. The optical resolution of the Raman microspectrometer allows recognition and chemical analysis of subcellular features. Human bone marrow stromal cells (hBMSCs) have been followed after seeding through a phase of early proliferation until typically 21 days later, well after the cells have differentiated to osteoblasts. Long-term perfusion of cells in the dynamic culture conditions was shown to be compatible with experimental optical demands and off-line optical analysis. We show that Raman optical analysis of cells and cellular differentiation in microbioreactors is feasible down to the level of subcellular organelles during development. We conclude that microbioreactors combined with Raman microspectroscopy are a valuable tool to study hBMSC proliferation, differentiation, and development into tissues under in situ and in vitro conditions.
我们提出了一种将微生物反应器与共焦拉曼微光谱仪进行灵敏和精确光学耦合的方法。我们表明,这种装置能够通过化学敏感的拉曼光谱成像技术,对组织工程中的细胞培养进行原位和体外研究。拉曼微光谱仪的光学分辨率允许识别和分析亚细胞特征。在接种后,我们对人骨髓基质细胞(hBMSCs)进行了早期增殖阶段的跟踪,直到通常 21 天后,细胞已经分化为成骨细胞。在动态培养条件下对细胞进行长期灌注被证明与实验光学要求和离线光学分析兼容。我们表明,在微反应器中对细胞和细胞分化的拉曼光学分析在发育过程中一直到亚细胞器的水平都是可行的。我们得出结论,微生物反应器与拉曼显微镜相结合是一种有价值的工具,可以在原位和体外条件下研究 hBMSC 的增殖、分化和组织发育。