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首页> 外文期刊>Hemijska industrija >Random mutagenesis and process optimization of bacterial co-culture for hyperproduction of 1,4-α-D-glucan glucanohydrolase using submerged fermentation
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Random mutagenesis and process optimization of bacterial co-culture for hyperproduction of 1,4-α-D-glucan glucanohydrolase using submerged fermentation

机译:1,4-α-D-葡聚糖葡聚糖葡聚糖水解酶超大量生产的细菌共培养随机诱变和工艺优化

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摘要

The exponential increase in the application of 1,4-α-D-glucan glucanohydrolase (GGH) in various fields has placed stress and demand in both qualitative improvement and quantitative enhancement through strain improvement. In the present work, Bacillus subtilis LCBT-15 and Bacillus amyloliquefaciens LCBT-20 were subjected to physical as well as chemical mutagenesis for improving the GGH production potential. Applications of the UV light and ethidium bromide did not cause a significant increase in the enzyme production. However, Ethyl methane sulphonate (EMS) treated co-culture 10 gave 1.3-fold increase in the GGH production, in contrast to the wild co-culture. Different physicochemical parameters including fermentation media, rate of fermentation, temperature, pH, nitrogen and carbon sources and surfactants were also investigated. The M7 medium composition was optimized for GGH production after 48h of incubation at 37°C and pH 6. The optimum inoculum size was 3.5 ml (1x106 cells/ml) in 50 ml of medium. The best carbon and nitrogen sources were lactose (2.5 %); ammonium chloride (1.75 %) and beef extract (1 %), respectively. Optimal GGH production (287 U/ml) was obtained when the medium was supplemented with 0.05% Tween 80. The novelty of this work was exploration of the synergistic phenomena of mutant bacterial co-culture for the enhancement of GGH production.
机译:1,4-α-D-葡聚糖葡聚糖水解酶(GGH)在各个领域的应用呈指数增长,这给定性和通过菌株改良的定量提高带来了压力和需求。在本工作中,对枯草芽孢杆菌LCBT-15和解淀粉芽孢杆菌LCBT-20进行了物理诱变和化学诱变,以提高GGH的生产潜力。紫外线和溴化乙锭的应用并未引起酶产量的显着增加。但是,与野生共培养相比,甲烷磺酸乙酯(EMS)处理的共培养10的GGH产量增加了1.3倍。还研究了不同的物理化学参数,包括发酵培养基,发酵速率,温度,pH,氮和碳源以及表面活性剂。在37°C和pH 6下孵育48小时后,M7培养基的组成针对GGH的生产进行了优化。在50 ml培养基中,最佳接种量为3.5 ml(1x106细胞/ ml)。最好的碳源和氮源是乳糖(2.5%)。氯化铵(1.75%)和牛肉提取物(1%)。当培养基中添加0.05%Tween 80时,可获得最佳的GGH产量(287 U / ml)。这项工作的新颖之处在于探索突变细菌共培养以提高GGH产量的协同现象。

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