College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science & Technology, Xi'an, 710021, China.
College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science & Technology, Xi'an, 710021, China.
J Environ Manage. 2023 Apr 15;332:117370. doi: 10.1016/j.jenvman.2023.117370. Epub 2023 Jan 28.
High carbon dioxide (CO) concentration in the atmosphere urgently requires eco-friendly mitigation strategies. Carbonic anhydrase (CA) is a high-quality enzyme protein, available from a wide range of sources, which has an extremely high catalytic efficiency for the hydration of CO compared with other catalytic CO conversion systems. While free CA is costly and weakly stable, CA immobilization can significantly improve its stability and allow enzyme recycling. However, gaseous CO is significantly different from traditional liquid substrates. Additionally, due to the presence of enzyme carriers, there is limited mass transfer between CO and the active center of immobilized CA. Most of the available reviews provide an overview of the improvement in catalytic activity and stability of CA by different immobilization methods and substrates. However, they do not address the limited mass transfer between CO and the active center of immobilized CA. Therefore, by focusing on the mass transfer process, this review presents CA immobilization strategies that are more efficient and of greater environmental tolerance by categorizing the methods of enhancing the mass transfer process at each stage of the enzymatic CO capture reaction. Such improvements in this green and environmentally friendly biological carbon capture process can increase its efficiency for industrial applications.
大气中高浓度的二氧化碳(CO)迫切需要环保的缓解策略。碳酸酐酶(CA)是一种高质量的酶蛋白,可从多种来源获得,与其他催化 CO 转化系统相比,其对 CO 的水合具有极高的催化效率。虽然游离 CA 成本高且稳定性弱,但 CA 固定化可以显著提高其稳定性并允许酶回收。然而,气态 CO 与传统的液体底物有很大的不同。此外,由于存在酶载体,固定化 CA 的活性中心与 CO 之间的传质受到限制。大多数现有的综述都提供了不同固定化方法和底物对 CA 催化活性和稳定性提高的概述。然而,它们没有解决 CO 与固定化 CA 的活性中心之间的有限传质问题。因此,通过关注传质过程,本综述通过对酶 CO 捕获反应的每个阶段的传质过程进行分类,提出了更高效和更具环境耐受性的 CA 固定化策略。这种对绿色环保生物碳捕获过程的改进可以提高其在工业应用中的效率。