首页> 外文期刊>Journal of Agricultural and Food Chemistry >Strategy for Biotechnological Process Design Applied to the Enzymatic Hydrolysis of Agave Fructo-oligosaccharides To Obtain Fructose-Rich Syrups
【24h】

Strategy for Biotechnological Process Design Applied to the Enzymatic Hydrolysis of Agave Fructo-oligosaccharides To Obtain Fructose-Rich Syrups

机译:生物技术工艺设计策略应用于龙舌兰低聚果糖的酶促水解以获得富含果糖的糖浆的策略

获取原文
获取原文并翻译 | 示例
       

摘要

A strategy to optimize biotechnological process design is illustrated for the production of fructose-rich syrups via enzymatic hydrolysis of agave fructo-oligosaccharides. The optimization process includes ecological studies from natural fermentations leading to the selection of a strain with capacity for inulinase synthesis, and variable optimization for the synthesis, and enzymatic hydrolysis using the response surface methodology. The results lead to the selection of Kluyvero-myces marxianus, endogenous strains isolated from aguamiel (natural fermented sugary sap from agave plants), as the main strain with high capacity for enzyme synthesis with inulinase activity. Production optimization at bioreactor level revealed that operation at 30.6 °C, 152 rpm, 1.3 VVM of aeration, and pH 6.3 leads to maximum inulinase synthesis, whereas 31 °C, 50 rpm, and pH 6.2 leads to maximum hydrolysis of agave fructo-oligosaccharides. HPLC analysis of the fructose-rich syrups obtained at these optimal conditions showed an average composition of 95% of fructose and 5% of glucose and the absence of sucrose. The analysis also revealed that the syrups are free of residues and toxic compounds, an undesirable occurrence often present when traditional methods based on thermal or acid hydrolysis are applied for their obtainment. Therefore, the product may be suitable for use as additive in many applications in the food and beverage industries.
机译:说明了一种优化生物工艺流程设计的策略,该方法可通过龙舌兰低聚果糖的酶促水解生产富果糖的糖浆。优化过程包括自然发酵的生态学研究,从而选择具有菊粉酶合成能力的菌株,并对合成进行变量优化,并使用响应面方法进行酶促水解。结果导致选择了Kluyvero-myces marxianus,它是从aguamiel(龙舌兰植物的天然发酵糖液)中分离的内源菌株,作为具有菊粉酶活性的高酶合成能力的主要菌株。生物反应器水平的生产优化显示,在30.6°C,152 rpm,通气1.3 VVM和pH 6.3的操作下,菊糖酶合成最大,而在31°C,50 rpm和pH 6.2的条件下,龙舌兰低聚果糖的最大水解。 。在这些最佳条件下获得的富含果糖的糖浆的HPLC分析表明,平均组成为95%的果糖和5%的葡萄糖,并且不存在蔗糖。分析还表明,糖浆中不含残留物和有毒化合物,当采用基于热水解或酸水解的传统方法获得糖浆时,经常会出现这种不良情况。因此,该产品可能适合在食品和饮料行业的许多应用中用作添加剂。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号