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利用活细胞传感器和电子鼻对乙醇发酵过程进行实时在线监测。

Real-time and on-line monitoring of ethanol fermentation process by viable cell sensor and electronic nose.

作者信息

Feng Yao, Tian Xiwei, Chen Yang, Wang Zeyu, Xia Jianye, Qian Jiangchao, Zhuang Yingping, Chu Ju

机构信息

State Key Laboratory of Bioreactor Engineering, East China University of Science and Technology, 130 Meilong Road, P. O. Box 329#, Shanghai, 200237, China.

出版信息

Bioresour Bioprocess. 2021 May 11;8(1):37. doi: 10.1186/s40643-021-00391-5.

Abstract

In this study, introduction of a viable cell sensor and electronic nose into ethanol fermentation was investigated, which could be used in real-time and on-line monitoring of the amount of living cells and product content, respectively. Compared to the conventional off-line biomass determination, the capacitance value exhibited a completely consistent trend with colony forming units, indicating that the capacitance value could reflect the living cells in the fermentation broth. On the other hand, in comparison to the results of off-line determination by high-performance liquid chromatography, the ethanol concentration measured by electronic nose presented an excellent consistency, so as to realize the on-line monitoring during the whole process. On this basis, a dynamic feeding strategy of glucose guided by the changes of living cells and ethanol content was developed. And consequently, the ethanol concentration, productivity and yield were enhanced by 15.4%, 15.9% and 9.0%, respectively. The advanced sensors adopted herein to monitor the key parameters of ethanol fermentation process could be readily extended to an industrial scale and other similar fermentation processes.

摘要

本研究考察了将一种可行的细胞传感器和电子鼻引入乙醇发酵过程,它们可分别用于实时在线监测活细胞数量和产物含量。与传统的离线生物量测定相比,电容值与菌落形成单位呈现出完全一致的趋势,这表明电容值能够反映发酵液中的活细胞。另一方面,与高效液相色谱法离线测定的结果相比,电子鼻测定的乙醇浓度具有极佳的一致性,从而实现了全过程的在线监测。在此基础上,制定了一种基于活细胞和乙醇含量变化的葡萄糖动态补料策略。结果,乙醇浓度、生产率和产率分别提高了15.4%、15.9%和9.0%。本文采用的用于监测乙醇发酵过程关键参数的先进传感器可轻松扩展至工业规模以及其他类似发酵过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/631b/10991113/aea730e3f52e/40643_2021_391_Fig1_HTML.jpg

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