Instituto de Química (IQ), Universidade Federal do Rio Grande do Sul (UFRGS), Porto Alegre, RS, Brazil.
Instituto de Geociências (IGEO), Universidade Federal do Rio Grande do Sul (UFRGS), Porto Alegre, RS, Brazil.
Food Chem. 2021 Oct 15;359:129890. doi: 10.1016/j.foodchem.2021.129890. Epub 2021 Apr 19.
A new support for the immobilization of β-d-galactosidase from Kluyveromyces lactis was developed, consisting of mesoporous silica/titania with a chitosan coating. This support presents a high available surface area and adequate pore size for optimizing the immobilization efficiency of the enzyme and, furthermore, maintaining its activity. The obtained supported biocatalyst was applied in enzyme hydrolytic activity tests with o-NPG, showing high activity 1223 Ug, excellent efficiency (74%), and activity recovery (54%). Tests of lactose hydrolysis in a continuous flow reactor showed that during 14 days operation, the biocatalyst maintained full enzymatic activity. In a batch system, after 15 cycles, it retained approximately 90% of its initial catalytic activity and attained full conversion of the lactose 100% (±12%). Additionally, with the use of the mesoporous silica/titania support, the biocatalyst presented no deformation and fragmentation, in both systems, demonstrating high operational stability and appropriate properties for applications in food manufacturing.
开发了一种新的固定化乳糖酶的载体,由介孔二氧化硅/二氧化钛和壳聚糖涂层组成。该载体具有高比表面积和合适的孔径,可优化酶的固定化效率,并保持其活性。所得到的负载生物催化剂应用于 o-NPG 的酶水解活性测试,显示出高活性(1223Ug)、高效率(74%)和活性回收率(54%)。在连续流反应器中进行乳糖水解的测试表明,在 14 天的运行过程中,生物催化剂保持了完全的酶活性。在分批系统中,经过 15 个循环后,它保留了约 90%的初始催化活性,并实现了乳糖的完全转化(±12%)。此外,在这两种系统中,使用介孔二氧化硅/二氧化钛载体,生物催化剂没有变形和破碎,表现出高操作稳定性和适用于食品制造的应用特性。