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Solid fermentation of wheat bran for hydrolytic enzymes production and saccharification content by a local isolate Bacillus megatherium

机译:小麦麸皮的固体发酵,通过局部分离的巨大芽孢杆菌来生产水解酶和糖化含量

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Back ground For enzyme production, the costs of solid state fermentation (SSF) techniques were lower and the production higher than submerged cultures. A large number of fungal species was known to grow well on moist substrates, whereas many bacteria were unable to grow under this condition. Therefore, the aim of this study was to isolate a highly efficient strain of Bacillus sp utilizing wheat bran in SSF and optimizing the enzyme production and soluble carbohydrates. Results A local strain Bacillus megatherium was isolated from dung sheep. The maximum production of pectinase, xylanase and α-amylase, and saccharification content (total soluble carbohydrates and reducing sugars) were obtained by application of the B. megatherium in SSF using wheat bran as compared to grasses, palm leaves and date seeds. All enzymes and saccharification content exhibited their maximum production during 12–24?h, at the range of 40–80% moisture content of wheat bran, temperature 37-45°C and pH?5–8. An ascending repression of pectinase production was observed by carbon supplements of lactose, glucose, maltose, sucrose and starch, respectively. All carbon supplements improved the production of xylanase and α-amylase, except of lactose decreased α-amylase production. A little increase in the yield of total reducing sugars was detected for all carbon supplements. Among the nitrogen sources, yeast extract induced a significant repression to all enzyme productivity. Sodium nitrate, urea and ammonium chloride enhanced the production of xylanase, α-amylase and pectinase, respectively. Yeast extract, urea, ammonium sulphate and ammonium chloride enhanced the productivity of reducing sugars. Conclusions The optimization of enzyme production and sccharification content by B. megatherium in SSF required only adjustment of incubation period and temperature, moisture content and initial pH. Wheat bran supplied enough nutrients without any need for addition of supplements of carbon and nitrogen sources.
机译:背景对于酶的生产,固态发酵(SSF)技术的成本要低于沉浸式培养,而生产则要高得多。已知大量真菌物种在潮湿的底物上生长良好,而许多细菌在这种条件下无法生长。因此,本研究的目的是在SSF中利用麦麸分离高效芽孢杆菌属菌株,并优化酶的生产和可溶性碳水化合物。结果从羊中分离到了本地的巨大芽孢杆菌。果胶酶,木聚糖酶和α-淀粉酶的最大产量以及糖化含量(总可溶性碳水化合物和还原糖)是通过使用小麦麸皮与小麦,棕榈叶和枣子种子一起在小麦SF中施用巨芽孢杆菌获得的。所有的酶和糖化含量在12–24?h内表现出最大的产量,在麦麸水分含量为40-80%,温度为37-45°C,pH为5-8的范围内。分别通过乳糖,葡萄糖,麦芽糖,蔗糖和淀粉的碳补充剂观察到果胶酶生产的上升抑制。除乳糖降低了α-淀粉酶的产量外,所有碳补充剂均改善了木聚糖酶和α-淀粉酶的产量。对于所有碳补充剂,总还原糖的收率略有增加。在氮源中,酵母提取物可显着抑制所有酶的生产力。硝酸钠,尿素和氯化铵分别提高了木聚糖酶,α-淀粉酶和果胶酶的产量。酵母提取物,尿素,硫酸铵和氯化铵提高了还原糖的生产率。结论超级芽孢杆菌在SSF中优化酶的产生和糖化含量仅需调节孵育时间和温度,水分含量和初始pH。麦麸提供了足够的营养,而无需添加任何碳和氮源。

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