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Role of oxygen supply in submerged fermentation of Ganoderma lucidum for production of Ganoderma polysaccharide and ganoderic acid

机译:供氧在灵芝深层发酵中生产灵芝多糖和灵芝酸的作用

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摘要

The effects of oxygen supply on the submerged fermentation of Ganoderma lucidum, a famous traditional Chinese medicinal mushroom, for simultaneous production of bioactive compounds-Ganoderma polysaccharide and ganoderic acid (GA) were studied. An initial volumetric oxygen transfer coefficient (K(L)a) value within the range of 16.4-96.0 h(-1) had a significant effect on the cell growth, cellular morphology and metabolites biosynthesis. At an initial K(L)a of 78.2 h(-1), a maximal cell concentration of 15.62 gl(-1) by dry weight was obtained, as well as a maximal intracellular polysaccharide (IPS) production of 2.19 g l(-1) and its maximal productivity of 217 mg l(-1) per day. An increase of initial K(L)a led to a bigger size of mycelia aggregates and a higher production and productivity of GA. The GA production and productivity at an initial K(L)a of 96.0 h(-1) was 1.8-fold those at an initial K(L)a of 16.4 h(-1). Dissolved oxygen tension (DOT) also affected the fermentation process. The cell growth of G. lucidum was significantly inhibited when DOT was controlled similar to10% of air saturation, which was due to the oxygen limitation in mycelia aggregates. The production of extracellular polysaccharide (EPS) and contents of IPS and GA similar to10% of DOT were higher than those similar to25% of DOT. However, the total production and productivity of IPS and GA at a low DOT were lower than those at a high DOT. The fundamental information obtained in this study will be useful for submerged fermentation of G. lucidum on a large scale.
机译:研究了供氧对同时生产生物活性化合物-灵芝多糖和灵芝酸(GA)的著名中药灵芝深层发酵的影响。初始体积氧转移系数(K(L)a)值在16.4-96.0 h(-1)范围内,对细胞生长,细胞形态和代谢物的生物合成具有重要影响。在初始K(L)a为78.2 h(-1)时,以干重计最大细胞浓度为15.62 gl(-1),最大细胞内多糖(IPS)产量为2.19 gl(-1)。 ),每天的最大生产率为217 mg l(-1)。初始K(L)a的增加导致菌丝体聚集体的尺寸更大,GA的产量和生产率更高。最初的K(L)a为96.0 h(-1)时,GA的产量和生产率是最初的16.4 h(-1)时的GA产量和生产率的1.8倍。溶解氧张力(DOT)也影响发酵过程。当控制DOT接近空气饱和度的10%时,灵芝的细胞生长受到显着抑制,这是由于菌丝体聚集体中的氧气限制所致。胞外多糖(EPS)的产生,IPS和GA的含量均接近DOT的10%,高于胞外多糖的25%。但是,低DOT时IPS和GA的总生产量和生产率低于高DOT时。在这项研究中获得的基本信息将对灵芝的大规模深层发酵有用。

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