微藻培养过程控制的膜离子迁移率自动评价在线监测工具

IF 3.9 4区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Malcolm Cämmerer, Thomas Mayer, Carolin Schott, Juliane Steingroewer, Ralf Petrich, Helko Borsdorf
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引用次数: 1

摘要

在开放的环形池塘或封闭的生物反应器中培养藻类,可以为食品、制药、化妆品或化学工业提供可再生的生物质生产。然而,需要最佳的培养条件,以确保这些化合物的生产既有效又经济。因此,需要高频分析测量,以便及时控制过程并检测藻类生长过程中可能出现的干扰。这种分析方法仅在有限的范围内可用。因此,我们提出了一种实时监测藻类在生物反应器顶空释放挥发性有机化合物(VOCs)的方法。该方法基于离子迁移谱法(IMS)和膜入口(MI)相结合。IMS的独特之处在于实时检测全谱,而不是检测求和信号。在离子迁移谱中产生的这些光谱模式通过主成分分析(PCA)自动评估。检测到的峰值模式是各自藻类培养的特征;允许分配个体生长阶段,并反映实验参数的影响。这些结果首次允许对藻类培养进行连续监测,从而早期发现生物技术过程中可能出现的干扰。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Membrane inlet—ion mobility spectrometry with automatic spectra evaluation as online monitoring tool for the process control of microalgae cultivation

Membrane inlet—ion mobility spectrometry with automatic spectra evaluation as online monitoring tool for the process control of microalgae cultivation

The cultivation of algae either in open raceway ponds or in closed bioreactors could allow the renewable production of biomass for food, pharmaceutical, cosmetic, or chemical industries. Optimal cultivation conditions are however required to ensure that the production of these compounds is both efficient and economical. Therefore, high-frequency analytical measurements are required to allow timely process control and to detect possible disturbances during algae growth. Such analytical methods are only available to a limited extent. Therefore, we introduced a method for monitoring algae release volatile organic compounds (VOCs) in the headspace above a bioreactor in real time. This method is based on ion mobility spectrometry (IMS) in combination with a membrane inlet (MI). The unique feature of IMS is that complete spectra are detected in real time instead of sum signals. These spectral patterns produced in the ion mobility spectrum were evaluated automatically via principal component analysis (PCA). The detected peak patterns are characteristic for the respective algae culture; allow the assignment of the individual growth phases and reflect the influence of experimental parameters. These results allow for the first time a continuous monitoring of the algae cultivation and thus an early detection of possible disturbances in the biotechnological process.

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来源期刊
Engineering in Life Sciences
Engineering in Life Sciences 工程技术-生物工程与应用微生物
CiteScore
6.40
自引率
3.70%
发文量
81
审稿时长
3 months
期刊介绍: Engineering in Life Sciences (ELS) focuses on engineering principles and innovations in life sciences and biotechnology. Life sciences and biotechnology covered in ELS encompass the use of biomolecules (e.g. proteins/enzymes), cells (microbial, plant and mammalian origins) and biomaterials for biosynthesis, biotransformation, cell-based treatment and bio-based solutions in industrial and pharmaceutical biotechnologies as well as in biomedicine. ELS especially aims to promote interdisciplinary collaborations among biologists, biotechnologists and engineers for quantitative understanding and holistic engineering (design-built-test) of biological parts and processes in the different application areas.
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