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Ultrasonic Manipulation of Yeast Cells in Suspension for Absorption Spectroscopy with an Immersible Mid-Infrared Fiberoptic Probe

机译:浸没中红外光纤探头对悬浮细胞中酵母细胞的超声操纵进行吸收光谱分析

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摘要

Recent advances in combining ultrasonic particle manipulation with attenuated total reflection infrared spectroscopy of yeast suspensions are presented. Infrared spectroscopy provides highly specific molecular information about the sample. It has not been applicable to in-line monitoring of cells during fermentation, however, because positioning cells in the micron-thin measurement region of the attenuated total reflection probe was not possible. Ultrasonic radiation forces exerted on suspended particles by an ultrasonic standing wave can result in the buildup of agglomerates in the nodal planes, hence enabling the manipulation of suspended cells on the microscopic scale. When a chamber setup and a prototype in-line applicable probe were used, successful control over the position of the yeast cells relative to the attenuated total reflection sensor surface could be proven. Both rate of increase and maximum mid-infrared absorption of yeast-specific bands during application of a pushing frequency (chamber setup: 1.863 MHz, in-line probe: 1.990 MHz) were found to correlate with yeast cell concentration.
机译:提出了结合超声粒子操纵与酵母悬浮液的衰减全反射红外光谱技术的最新进展。红外光谱可提供有关样品的高度特异性分子信息。但是,由于无法将细胞定位在衰减的全反射探针的微米薄的测量区域中,因此不适用于发酵过程中的细胞在线监测。超声波驻波作用在悬浮颗粒上的超声波辐射力会导致结块在结平面内积聚,因此可以在微观尺度上操作悬浮细胞。当使用腔室设置和原型在线适用探针时,可以证明成功控制了酵母细胞相对于衰减的全反射传感器表面的位置。发现在施加推动频率(腔室设置:1.863 MHz,在线探针:1.990 MHz)期间,酵母特异性条带的增加速率和最大中红外吸收率均与酵母细胞浓度相关。

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