首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Optimization of the medium composition for production of mycelial biomass and exo-polymer by Grifola frondosa GF9801 using response surface methodology
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Optimization of the medium composition for production of mycelial biomass and exo-polymer by Grifola frondosa GF9801 using response surface methodology

机译:响应面法优化Grifola frondosa GF9801生产菌丝体生物质和外聚合物的培养基组成

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In this work, a three-level Box-Behnken factorial design was employed combining with response surface methodology (RSM) to optimize the medium composition for the production of the mycelial biomass and exo-polymer in submerged cultures by Grifola frondosa GF9801. A mathematical model was then developed to show the effect of each medium composition and their interactions on the production of mycelial biomass and exo-polymer. The model estimated that, a maximal yield of mycelial biomass (17.61 g/l) could be obtained when the concentrations of glucose, KH2PO4, peptone were set at 45.2 g/l, 2.97 g/l, 6.58 g/l, respectively; while a maximal exo-polymer yield (1.326 g/l) could be achieved when setting concentrations of glucose, KH2PO4, peptone at 58.6 g/l, 4.06 g/l and 3.79 g/l, respectively. These predicted values were also verified by validation experiments. Compared with the values obtained by other runs in the experimental design, the optimized medium resulted in a significant increase in the yields of mycelial biomass and exo-polymer. Maximum mycelial biomass yield of 22.50 g/l was achieved in a 15-1 fermenter using the optimized medium. (c) 2005 Elsevier Ltd. All rights reserved.
机译:在这项工作中,采用了三级Box-Behnken因子设计并结合响应表面方法(RSM)来优化培养基,以生产灰树花(Grifola frondosa GF9801)淹没培养物中的菌丝生物质和外聚合物。然后开发了一个数学模型,以显示每种培养基成分及其相互作用对菌丝体生物质和外聚合物生成的影响。该模型估计,当葡萄糖,KH2PO4,蛋白ept的浓度分别设置为45.2 g / l,2.97 g / l,6.58 g / l时,可获得最高的菌丝生物量产量(17.61 g / l)。当将葡萄糖,KH2PO4,蛋白one的浓度分别设置为58.6 g / l,4.06 g / l和3.79 g / l时,可以达到最大的外聚合物收率(1.326 g / l)。这些预测值也通过验证实验进行了验证。与实验设计中其他运行获得的值相比,优化的培养基可显着提高菌丝体生物量和外聚合物的收率。使用优化的培养基,在15-1发酵罐中达到22.50 g / l的最大菌丝生物量产量。 (c)2005 Elsevier Ltd.保留所有权利。

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