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氧限制和培养基成分对摇瓶培养中大肠杆菌发酵的影响。

Effect of oxygen limitation and medium composition on Escherichia coli fermentation in shake-flask cultures.

作者信息

Losen Mario, Frölich Bettina, Pohl Martina, Büchs Jochen

机构信息

Biochemical Engineering, RWTH Aachen University, Germany, and Institute of Enzyme Technology, Heinrich-Heine Universität Düsseldorf, Germany.

出版信息

Biotechnol Prog. 2004 Jul-Aug;20(4):1062-8. doi: 10.1021/bp034282t.

Abstract

Shake-flask cultures are widely used for screening of high producing strains. To select suitable strains for production scale, cultivation parameters should be applied that provide optimal growth conditions. A novel method of measuring respiratory activity in shake-flask cultures was employed to analyze Escherichia coli fermentation under laboratory conditions. Our results suggest that the length of fermentation, choice of medium, and aeration do not normally satisfy the requirements for unlimited growth in shake flasks. Using glycerol rather than glucose as a carbon source greatly reduced the accumulation of overflow and fermentative metabolites when oxygen supply was unlimited. A rich buffered medium, Terrific Broth (TB), yielded 5 times more biomass compared to LB medium but also caused oxygen limitation in standard shake-flask cultures at shaking frequencies below 400 rpm. These results were used to optimize the production of benzoylformate decarboxylase from Pseudomonas putida in E. coli SG13009, resulting in a 10-fold increase in volumetric enzyme production. This example demonstrates how variation of medium composition and oxygen supply can be evaluated by the measurement of the respiratory activity. This can help to efficiently optimize screening conditions for E. coli.

摘要

摇瓶培养广泛用于高产菌株的筛选。为了选择适合生产规模的菌株,应采用能提供最佳生长条件的培养参数。采用一种测量摇瓶培养中呼吸活性的新方法,在实验室条件下分析大肠杆菌发酵过程。我们的结果表明,发酵时间、培养基选择和通气通常不能满足摇瓶中无限生长的要求。当氧气供应不受限时,使用甘油而非葡萄糖作为碳源可大大减少溢流和发酵代谢物的积累。丰富的缓冲培养基,即 terrific 肉汤(TB),与 LB 培养基相比,生物量产量高出 5 倍,但在低于 400 rpm 的振荡频率下,标准摇瓶培养中也会导致氧气限制。这些结果被用于优化恶臭假单胞菌在大肠杆菌 SG13009 中生产苯甲酰甲酸脱羧酶的过程,使酶的体积产量提高了 10 倍。这个例子展示了如何通过测量呼吸活性来评估培养基组成和氧气供应的变化。这有助于有效地优化大肠杆菌的筛选条件。

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