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首页> 外文期刊>RSC Advances >Highly porous core–shell chitosan beads with superb immobilization efficiency for Lactobacillus reuteri 121 inulosucrase and production of inulin-type fructooligosaccharides
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Highly porous core–shell chitosan beads with superb immobilization efficiency for Lactobacillus reuteri 121 inulosucrase and production of inulin-type fructooligosaccharides

机译:高度多孔的核壳壳聚糖微珠,对罗伊氏乳杆菌121的inulosucrase和固定的菊糖低聚果糖具有极好的固定效率

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摘要

With the aim to overcome the limitations of hydrogel chitosan beads (HGBs), various types of chitosan, core–shell chitosan beads (CSBs), and dried chitosan beads (DBs) were synthesized. Physical and chemical properties were compared with those of HGBs. CSBs were proved to be an effective support because they displayed higher stability and capacity over the HGBs, and thus, were selected for enzyme immobilization. Recombinant inulosucrase (INU) from Lactobacillus reuteri 121 was immobilized on CSBs using glutaraldehyde as a cross-linker. Immobilized biocatalysts (INU-CSBs) were then used for the synthesis of inulin-type fructooligosaccharide (IFOS). Biochemical characterization revealed that the optimum pH of both INU-CSBs and free enzyme was unaltered at 5.5 whereas the optimum temperature of INU-CSBs shifted from 50 °C to 60 °C. Moreover, pH stability and thermostability of INU-CSBs significantly improved. For batch synthesis of IFOS, INU-CSBs retained approximately 45% of their initial catalytic activity after being reused for 12 cycles. IFOS was also continuously synthesized in a fixed-bed bioreactor for a reaction duration of at least 30 h. The high efficiency of INU-CSBs makes them very attractive for industrial applications.
机译:为了克服水凝胶壳聚糖珠(HGB)的局限性,合成了各种类型的壳聚糖,核壳型壳聚糖珠(CSB)和干燥的壳聚糖珠(DB)。将其物理和化学性质与HGB进行了比较。 CSB被证明是有效的支持物,因为它们比HGB表现出更高的稳定性和容量,因此被选择用于酶固定。使用戊二醛作为交联剂,将来自罗伊氏乳杆菌121的重组inulosucrase(INU)固定在CSB上。然后将固定化的生物催化剂(INU-CSB)用于合成菊粉型低聚果糖(IFOS)。生化特征表明,INU-CSBs和游离酶的最佳pH值在5.5不变,而INU-CSBs的最佳温度从50°C变为60°C。而且,INU-CSB的pH稳定性和热稳定性得到显着改善。对于IFOS的批量合成,INU-CSB在重复使用12个循环后保留了其初始催化活性的约45%。 IFOS还可以在固定床生物反应器中连续合成,反应时间至少为30小时。 INU-CSB的高效率使其对工业应用非常有吸引力。

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