在智能数据监控下控制益生菌发酵环境
Mingxia Wu1, Wei Liu2, Shengyang Zheng1
1College of Life Sciences, Ningde Normal University, Ningde 352100, Fujian, China; Haixi Marine Characteristic Biological Germplasm Resources and Biological Products Development Public Service Platform, Ningde, Fujian 352100.
SLAS technology
|June 6, 2024
概括
这项研究优化了油茶蛋糕的益生菌发酵,确定了尼日尔的阿斯伯吉路斯在降解茶叶沙素方面是有效的. 在动物料应用中,发酵条件被优化,以最大限度地去除氨酸.
科学领域:
- 农业科学 农业科学
- 微生物学 微生物学
- 生物技术是生物技术.
背景情况:
- 益生菌发酵对于动物料应用至关重要.
- 油茶蛋糕是一种丰富的茶叶素来源,它可以具有反营养作用.
- 降解茶叶素可以提高料的营养价值.
研究的目的:
- 评估茶叶素降解细菌对油茶饼发酵的作用.
- 为了优化发酵条件,以便有效降解茶叶氨酸.
- 识别和描述表现最好的微生物菌株.
主要方法:
- 对六种细菌菌株进行查,以检测茶叶沙素降解能力.
- 确定最佳菌株 (L.2) 为尼日尔阿斯伯吉卢斯.
- 使用单因子和响应表面方法优化固态发酵条件.
主要成果:
- 他们分离了六种能够降解茶叶氨酸的菌株.
- 尼日尔菌 (L.2) 显示了茶叶沙素的显著降解.
- 确定了Aspergillus Niger发酵的最佳条件:31.3°C,103.5小时和4.57毫升的初始酸添加.
- 在油茶蛋糕中达到93.96%的茶香素降解率.
结论:
- 尼日尔的阿斯伯吉路斯是一种高度有效的微生物,用于油茶蛋糕的益生菌发酵.
- 优化的发酵条件显著增强了茶叶素的降解.
- 这一过程有可能改善从油茶副产品中获得的动物料的营养质量.
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