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Micro-Electromechanical Affinity Sensor for the Monitoring of Glucose in Bioprocess Media

机译:微机电亲和力传感器用于监测生物过程介质中的葡萄糖

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摘要

An affinity-viscometry-based micro-sensor probe for continuous glucose monitoring was investigated with respect to its suitability for bioprocesses. The sensor operates with glucose and dextran competing as binding partner for concanavalin A, while the viscosity of the assay scales with glucose concentration. Changes in viscosity are determined with a micro-electromechanical system (MEMS) in the measurement cavity of the sensor probe. The study aimed to elucidate the interactions between the assay and a typical phosphate buffered bacterial cultivation medium. It turned out that contact with the medium resulted in a significant long-lasting drift of the assay’s viscosity at zero glucose concentration. Adding glucose to the medium lowers the drift by a factor of eight. The cglc values measured off-line with the glucose sensor for monitoring of a bacterial cultivation were similar to the measurements with an enzymatic assay with a difference of less than ±0.15 g·L−1. We propose that lectin agglomeration, the electro-viscous effect, and constitutional changes of concanavalin A due to exchanges of the incorporated metal ions may account for the observed viscosity increase. The study has demonstrated the potential of the MEMS sensor to determine sensitive viscosity changes within very small sample volumes, which could be of interest for various biotechnological applications.
机译:基于亲和力黏度法的微传感器探针用于连续葡萄糖监测,研究了其对生物过程的适用性。传感器与葡萄糖和右旋糖酐竞争作为伴刀豆球蛋白A的结合伴侣,而测定的粘度随葡萄糖浓度而定。粘度变化是通过微机电系统(MEMS)在传感器探头的测量腔中确定的。该研究旨在阐明测定法与典型的磷酸盐缓冲细菌培养培养基之间的相互作用。事实证明,在零葡萄糖浓度下,与培养基的接触会导致测定粘度的长期持久漂移。向培养基中添加葡萄糖可使漂移降低八分之一。用葡萄糖传感器离线监测细菌培养的cglc值类似于酶法测定的cglc值,相差小于±0.15 g·L -1 。我们建议凝集素的团聚,电粘性效应和伴刀豆球蛋白A的结构变化(由于掺入的金属离子的交换而引起)可解释粘度的增加。这项研究证明了MEMS传感器在很小的样品量内确定敏感粘度变化的潜力,这对于各种生物技术应用来说可能是有意义的。

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