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首页> 外文期刊>Biochemical Engineering Journal >Nutritional requirements for the hyperproduction of bioactive exopolysaccharides by submerged fermentation of the edible medicinal fungus Cordyceps tail
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Nutritional requirements for the hyperproduction of bioactive exopolysaccharides by submerged fermentation of the edible medicinal fungus Cordyceps tail

机译:食用菌冬虫夏草尾的深层发酵超生生物活性胞外多糖的营养需求

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摘要

Exopolysaccharides (EPSs) from Cordyceps taii have potent pharmacological effects and present an unparalleled resource for drug discovery, and optimization of EPS yield through systematic analysis and refinement of fermentation parameters was therefore sought. A one-variable-at-a-time method identified xylose (NH4)2SO4, and vitamins A and D as the optimum source of carbon, nitrogen, and growth-stimulating factor, respectively. Ammonium salts led to acidification of the culture medium, and the combination of (NH4)2SO4 with soybean steep liquor, the best organic nitrogen source, was therefore selected for subsequent optimization. Further experiments identified only xylose, soybean steep liquor and (NH4)2SO4 as having statistically significant effects on EPS production by a Plackett-Burman design. Re-optimization of these factors employed a path of steepest ascent approach followed by a central composite design modeling the response surface as a function of the experimental conditions. This predicted that optimum production of EPS would be achieved using a combination of xylose 31.27 g/l, soybean steep liquor 4.85 g/l, and (NH4 )2 SO4 0.15 g/l. Experimental validation revealed that the actual yield of EPS (43.87 ± 0.28 g/l) was accurately predicted by the model. This level of production represented an increase of over 8-fold vs. the highest yield (5.21 ± 0.14g/l) obtained in preliminary experiments.
机译:泰冬虫夏草的胞外多糖(EPS)具有强大的药理作用,为药物发现提供了无与伦比的资源,因此寻求通过系统分析和优化发酵参数来优化EPS产量。一次可变的方法将木糖(NH4)2SO4以及维生素A和D分别确定为碳,氮和生长刺激因子的最佳来源。铵盐可导致培养基酸化,因此选择(NH4)2SO4与大豆浸渍液(最佳有机氮源)的组合进行后续优化。进一步的实验通过Plackett-Burman设计仅确定了木糖,大豆浆和(NH4)2SO4对EPS产生具有统计学意义的影响。对这些因素的重新优化采用了最陡峭的上升路径,然后进行了中央复合设计,根据响应条件对响应面进行了建模。这预示了通过使用木糖31.27 g / l,大豆浸渍液4.85 g / l和(NH4)2 SO4 0.15 g / l的组合,可以实现EPS的最佳生产。实验验证表明,该模型可准确预测EPS的实际产量(43.87±0.28 g / l)。与在初步实验中获得的最高产量(5.21±0.14g / l)相比,该产量水平增长了8倍以上。

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