Institute for Process Control, Mannheim University of Applied Sciences, Paul-Wittsack-Str. 10, 68163, Mannheim, Germany.
Medical Research Center, University of Heidelberg, Theodor-Kutzer-Ufer 1-3, 68167, Mannheim, Germany.
Bioprocess Biosyst Eng. 2017 Oct;40(10):1519-1527. doi: 10.1007/s00449-017-1808-9. Epub 2017 Jun 27.
The monitoring of microbiological processes using Raman spectroscopy has gained in importance over the past few years. Commercial Raman spectroscopic equipment consists of a laser, spectrometer, and fiberoptic immersion probe in direct contact with the fermentation medium. To avoid possible sterilization problems and biofilm formation on the probe tip, a large-aperture Raman probe was developed. The design of the probe enables non-contact in-line measurements through glass vessels or inspection glasses of bioreactors and chemical reactors. The practical applicability of the probe was tested during yeast fermentations by monitoring the consumption of substrate glucose and the formation of ethanol as the product. Multiple linear regression models were applied to evaluate the Raman spectra. Reference values were determined by high-performance liquid chromatography. The relative errors of prediction for glucose and ethanol were 5 and 3%, respectively. The presented Raman probe allows simple adaption to a wide range of processes in the chemical, pharmaceutical, and biotechnological industries.
近年来,使用拉曼光谱法监测微生物过程变得越来越重要。商用拉曼光谱设备由激光、光谱仪和光纤浸入探头组成,探头直接与发酵介质接触。为了避免探头尖端可能出现的消毒问题和生物膜形成,开发了大孔径拉曼探头。该探头的设计允许通过玻璃容器或生物反应器和化学反应器的观察窗进行非接触式在线测量。通过监测基质葡萄糖的消耗和产物乙醇的形成,在酵母发酵过程中测试了探头的实际适用性。应用多元线性回归模型来评估拉曼光谱。通过高效液相色谱法确定参考值。葡萄糖和乙醇的预测相对误差分别为 5%和 3%。所提出的拉曼探头允许在化学、制药和生物技术行业的广泛过程中进行简单的适配。