Federal University of Ceará, Technology Center, Chemical Engineering Department, Campus do Pici, Bloco 709, 60 455 - 760 Fortaleza, Ceará, Brazil.
Instituto de Catálisis y Petroleoquímica - CSIC, Campus of excellence UAM-CSIC, Cantoblanco, 28049 Madrid, Spain; Center of Excellence in Bionanoscience Research, King Abdulaziz University, Jeddah, Saudi Arabia.
Int J Biol Macromol. 2021 Nov 30;191:881-898. doi: 10.1016/j.ijbiomac.2021.09.133. Epub 2021 Sep 25.
A review on the enzyme β-galactosidase from Kluyveromyces lactis is presented, from the perspective of its structure and mechanisms of action, the main catalyzed reactions, the key factors influencing its activity, and selectivity, as well as the main techniques used for improving the biocatalyst functionality. Particular attention was given to the discussion of hydrolysis, transglycosylation, and galactosylation reactions, which are commonly mediated by this enzyme. In addition, the products generated from these processes were highlighted. Finally, biocatalyst improvement techniques are also discussed, such as enzyme immobilization and protein engineering. On these topics, the most recent immobilization strategies are presented, emphasizing processes that not only allow the recovery of the biocatalyst but also deliver enzymes that show better resistance to high temperatures, chemicals, and inhibitors. In addition, genetic engineering techniques to improve the catalytic properties of the β-galactosidases were reported. This review gathers information to allow the development of biocatalysts based on the β-galactosidase enzyme from K. lactis, aiming to improve existing bioprocesses or develop new ones.
本文综述了乳克鲁维酵母β-半乳糖苷酶的结构与作用机制、主要催化反应、影响其活性和选择性的关键因素以及提高生物催化剂功能的主要技术。特别关注了该酶介导的水解、转糖苷和半乳糖基化反应的讨论。此外,还强调了这些过程中生成的产物。最后,还讨论了生物催化剂的改进技术,如酶固定化和蛋白质工程。关于这些主题,本文介绍了最新的固定化策略,重点介绍了不仅允许生物催化剂回收,而且还提供了对高温、化学品和抑制剂具有更好抗性的酶的过程。此外,还报道了用于改善β-半乳糖苷酶催化特性的遗传工程技术。本文综述了信息,以开发基于乳克鲁维酵母β-半乳糖苷酶的生物催化剂,旨在改进现有的生物工艺或开发新的生物工艺。