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Ultrasound-Enhanced Attenuated Total Reflection Mid-infrared Spectroscopy In-Line Probe: Acquisition of Cell Spectra in a Bioreactor

机译:超声增强衰减全反射中红外光谱在线探针:在生物反应器中获得细胞光谱

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This article presents a novel method for selective acquisition of Fourier transform infrared (FT-IR) spectra of microorganisms in-line during fermentation, using Saccharomyces cerevisiae as an example. The position of the cells relative to the sensitive region of the attenuated total reflection (ATR) FT-IR probe was controlled by combing a commercially available ATR in-line probe with contact-free, gentle particle manipulation by ultrasonic standing waves. A prototype probe was successfully constructed, assembled, and tested in-line during fed-batch fermentations of S. cerevisiae. Control over the position of the cells was achieved by tuning the ultrasound frequency: 2.41 MHz was used for acquisition of spectra of the cells (pushing frequency f(p)) and 1.87 MHz, for retracting the cells from the ATR element, therefore allowing spectra of the medium to be acquired. Accumulation of storage carbohydrates (trehalose and glycogen) inside the cells was induced by a lack of a nitrogen source in the feed medium. These changes in biochemical composition were visible in the spectra of the cells recorded in-line during the application of f(p) and could be verified by reference spectra of dried cell samples recorded off-line with a FT-IR microscope. Comparison of the cell spectra with spectra of trehalose, glycogen, glucose, and mannan, i.e., the major carbohydrates present in S. cerevisiae, and principal components analysis revealed that the changes observed in the cell spectra correlated well with the bands specific for trehalose and glycogen. This proves the applicability and capability of ultrasound-enhanced in-line ATR mid-IR spectroscopy as a real-time PAT method for the in situ monitoring of cellular biochemistry during fermentation.
机译:本文以酿酒酵母为例,提出了一种在发酵过程中在线选择性获取微生物的傅里叶变换红外光谱的新方法。细胞相对于衰减全反射(ATR)FT-IR探针敏感区域的位置是通过将市售ATR在线探针与通过超声波驻波进行的无接触,轻柔的颗粒处理相结合来控制的。在酿酒酵母的分批补料发酵过程中,成功构建,组装并在线测试了原型探针。通过调整超声频率来实现对细胞位置的控制:使用2.41 MHz来获取细胞的光谱(推动频率f(p))和1.87 MHz,以便从ATR元件中收回细胞,从而获得光谱要获取的媒体数量。补料培养基中缺乏氮源,诱导细胞内储存碳水化合物(海藻糖和糖原)的积累。这些生物化学成分的变化在应用f(p)期间在线记录的细胞光谱中可见,并且可以通过使用FT-IR显微镜离线记录的干燥细胞样品的参考光谱进行验证。将细胞光谱与海藻糖,糖原,葡萄糖和甘露聚糖(即酿酒酵母中存在的主要碳水化合物)的光谱进行比较,以及主成分分析表明,细胞光谱中观察到的变化与海藻糖和糖原。这证明了超声增强的在线ATR中红外光谱作为实时PAT方法用于发酵过程中细胞生物化学原位监测的适用性和能力。

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