Huth Ina, Schrader Jens, Holtmann Dirk
DECHEMA-Forschungsinstitut Frankfurt am Main Germany.
Eng Life Sci. 2017 Jul 20;17(10):1064-1070. doi: 10.1002/elsc.201700041. eCollection 2017 Oct.
Microscale bioprocessing techniques are rapidly emerging as a means to increase the speed of bioprocess design and to reduce material consumption. However, there is still a lack of suitable parallelized techniques to investigate the industrially important group of filamentous bacteria and fungi. Cultivation of filamentous organisms in shake flasks is still the favored technique for comparing and optimizing cultivation conditions of production strains at mL-scale. In this paper, the application of a microtiter plate-based cultivation system in combination with the filamentous fungus was investigated. A protocol for reproducible cultivation was developed and evaluated. Productivity of concerning the rose-like aroma compound 2-phenylethanol showed low standard deviations while regular and consistent morphologies appeared in the parallelized system. Furthermore, the effect of addition of microparticles on the morphology was investigated. The results can be used to accelerate the process development with and other filamentous organisms.
微尺度生物加工技术正迅速崛起,成为加快生物加工设计速度和减少材料消耗的一种手段。然而,仍缺乏合适的并行技术来研究具有工业重要性的丝状细菌和真菌群体。在摇瓶中培养丝状生物仍然是在毫升规模上比较和优化生产菌株培养条件的首选技术。本文研究了基于微孔板的培养系统与丝状真菌的联合应用。制定并评估了可重复培养的方案。关于玫瑰样香气化合物2-苯乙醇的生产力显示出较低的标准差,同时在并行系统中出现了规则且一致的形态。此外,还研究了添加微粒对形态的影响。这些结果可用于加速米根霉和其他丝状生物的工艺开发。