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Immobilization of Mucor miehei Lipase onto Macroporous Aminated Polyethersulfone Membrane for Enzymatic Reactions

机译:大孔胺化聚醚砜膜上固定Mucor miehei脂肪酶的酶促反应

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摘要

Immobilization of enzymes is one of the most promising methods in enzyme performance enhancement, including stability, recovery, and reusability. However, investigation of suitable solid support in enzyme immobilization is still a scientific challenge. Polyethersulfone (PES) and aminated PES (PES–NH2) were successfully synthesized as novel materials for immobilization. Membranes with various pore sizes (from 10–600 nm) based on synthesized PES and PES–NH2 polymers were successfully fabricated to be applied as bioreactors to increase the immobilized lipase performances. The influence of pore sizes, concentration of additives, and the functional groups that are attached on the PES backbone on enzyme loading and enzyme activity was studied. The largest enzyme loading was obtained by Mucor miehei lipase immobilized onto a PES–NH2 membrane composed of 10% of PES–NH2, 8% of dibutyl phthalate (DBP), and 5% of polyethylene glycol (PEG) (872.62 µg/cm2). Hydrolytic activity of the immobilized lipases indicated that the activities of biocatalysts are not significantly decreased by immobilization. From the reusability test, the lipase immobilized onto PES–NH2 showed a better constancy than the lipase immobilized onto PES (the percent recovery of the activity of the lipases immobilized onto PES–NH2 and PES are 97.16% and 95.37%, respectively), which indicates that this novel material has the potential to be developed as a bioreactor for enzymatic reactions.
机译:酶的固定化是提高酶性能(包括稳定性,回收率和可重复使用性)中最有前途的方法之一。然而,在酶固定中研究合适的固体支持物仍然是科学挑战。聚醚砜(PES)和胺化PES(PES–NH2)已成功合成为新型固定材料。基于合成的PES和PES-NH2聚合物成功制备了具有各种孔径(10-600 nm)的膜,可以用作生物反应器以提高固定化脂肪酶的性能。研究了孔径,添加剂浓度以及PES骨架上连接的官能团对酶负载和酶活性的影响。通过将Mucor miehei脂肪酶固定在由10%的PES-NH2、8%的邻苯二甲酸二丁酯(DBP)和5%的聚乙二醇(PEG)组成的PES-NH2膜上,可获得最大的酶负载量(872.62 µg / cm < sup> 2 )。固定化脂肪酶的水解活性表明,固定化不会明显降低生物催化剂的活性。从可重用性测试来看,固定在PES–NH2上的脂肪酶比固定在PES上的脂肪酶具有更好的稳定性(固定在PES–NH2和PES上的脂肪酶活性的回收百分比分别为97.16%和95.37%),这指出该新型材料具有开发为酶促反应的生物反应器的潜力。

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