School of Life Science and Food Engineering, Huaiyin Institute of Technology, Huaian 223003, China.
Tecnologico de Monterrey, School of Engineering and Sciences, Campus Monterrey, Ave. Eugenio Garza Sada 2501, Monterrey, N.L. CP 64849, Mexico.
Int J Biol Macromol. 2019 Jun 1;130:462-482. doi: 10.1016/j.ijbiomac.2019.02.152. Epub 2019 Feb 28.
Naturally-derived biopolymers such as alginate, chitosan, cellulose, agarose, guar gum/guaran, agar, carrageenan, gelatin, dextran, xanthan, and pectins, etc. have appealed significant attention over the past several years owing to their natural abundance and availability all over the years, around the globe. In addition, their versatile properties such as non-toxicity, biocompatibility, biodegradability, flexibility, renewability, and the availability of numerous reactive sites offer significant functionalities with multipurpose applications. At present, intensive research efforts have been focused on engineering enzymes using natural biopolymers as novel support/composite materials for diverse applications in biomedical, environmental, pharmaceutical, food and biofuel/energy sectors. Immobilization appears as a straightforward and promising approach to developing biocatalysts with improved catalytic properties as compared to their free counterparts. Biopolymers-assisted enzymes are more stable, robust, and recoverable than that of free forms, and can be employed for continuous biocatalytic reactions. The present review highlights the recent developments and use of biopolymers and their advanced composites as support carriers for the immobilization of a variety of different enzymes to develop biocatalysts with desired catalytic activity and stability characteristics for emerging applications.
近年来,由于天然生物聚合物(如海藻酸盐、壳聚糖、纤维素、琼脂糖、瓜尔胶/ guaran、琼脂、卡拉胶、明胶、葡聚糖、黄原胶和果胶等)在全球范围内的丰富性和可用性,它们引起了人们的极大关注。此外,它们具有多种特性,如无毒、生物相容性、可生物降解性、灵活性、可再生性和众多反应性位点的可用性,为多用途应用提供了重要功能。目前,人们正在集中精力利用天然生物聚合物作为新型支撑/复合材料来工程化酶,以在生物医学、环境、制药、食品和生物燃料/能源等领域的各种应用中使用。与游离酶相比,固定化酶是一种简单而有前途的方法,可以提高生物催化剂的催化性能。与游离形式相比,生物聚合物辅助酶更稳定、更坚固、更易于回收,可用于连续生物催化反应。本综述重点介绍了生物聚合物及其先进复合材料作为载体用于固定化各种不同酶的最新发展和应用,以开发具有所需催化活性和稳定性特征的生物催化剂,用于新兴应用。