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首页> 外文期刊>Applied biochemistry and biotechnology, Part A. enzyme engineering and biotechnology >Efficient L-Alanine Production by a Thermo-Regulated Switch in Escherichia coli
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Efficient L-Alanine Production by a Thermo-Regulated Switch in Escherichia coli

机译:通过大肠杆菌中的温度调节开关高效生产L-丙氨酸

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L-Alanine has important applications in food, pharmaceutical and veterinary and is used as a substrate for production of engineered thermoplastics. Microbial fermentation could reduce the production cost and promote the application of L-alanine. However, the presence of L-alanine significantly inhibit cell growth rate and cause a decrease in the ultimate L-alanine productivity. For efficient l-alanine production, a thermo-regulated genetic switch was designed to dynamically control the expression of l-alanine dehydrogenase (alaD) from Geobacillus stearothermophilus on the Escherichia coli B0016-060BC chromosome. The optimal cultivation conditions for the genetically switched alanine production using B0016-060BC were the following: an aerobic growth phase at 33 A degrees C with a 1-h thermo-induction at 42 A degrees C followed by an oxygen-limited phase at 42 A degrees C. In a bioreactor experiment using the scaled-up conditions optimized in a shake flask, B0016-060BC accumulated 50.3 g biomass/100 g glucose during the aerobic growth phase and 96 g alanine/100 g glucose during the oxygen-limited phase, respectively. The L-alanine titer reached 120.8 g/l with higher overall and oxygen-limited volumetric productivities of 3.09 and 4.18 g/l h, respectively, using glucose as the sole carbon source. Efficient cell growth and L-alanine production were reached separately, by switching cultivation temperature. The results revealed the application of a thermo-regulated strategy for heterologous metabolic production and pointed to strategies for improving L-alanine production.
机译:L-丙氨酸在食品,药品和兽医中具有重要应用,并被用作生产工程热塑性塑料的基材。微生物发酵可以降低生产成本,促进L-丙氨酸的应用。然而,L-丙氨酸的存在显着抑制细胞生长速率并导致最终的L-丙氨酸生产率降低。为了有效地生产l-丙氨酸,设计了一种温度调节的遗传开关,以动态控制大肠杆菌B0016-060BC染色体上来自嗜热脂肪地芽孢杆菌的l-丙氨酸脱氢酶(alaD)的表达。使用B0016-060BC进行基因转换丙氨酸生产的最佳培养条件如下:在33 A摄氏度下有氧生长期,在42 A摄氏度下热诱导1小时,然后在42 A氧气限制阶段在摇瓶中使用优化的按比例放大条件进行的生物反应器实验中,B0016-060BC在有氧生长阶段累积了50.3 g生物量/ 100 g葡萄糖,在氧气受限阶段累积了96 g丙氨酸/ 100 g葡萄糖,分别。使用葡萄糖作为唯一碳源,L-丙氨酸效价达到120.8 g / l,总的和限氧的生产率分别更高,分别为3.09和4.18 g / l h。通过切换培养温度分别达到有效的细胞生长和L-丙氨酸生产。结果揭示了用于异源代谢产生的温度调节策略的应用,并指出了改善L-丙氨酸产生的策略。

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