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明胶固定化纤维素酶用于高效水解不溶性纤维素的可逆固定化。

Reversible immobilization of cellulase on gelatin for efficient insoluble cellulose hydrolysis.

机构信息

School of Bioresources Chemical and Materials Engineering, Shaanxi University of Science and Technology, Xi'an, Shaanxi 710021, China; Institute of Biomass & Functional Materials, Shaanxi University of Science & Technology, Xi'an, Shaanxi 710021, China.

School of Bioresources Chemical and Materials Engineering, Shaanxi University of Science and Technology, Xi'an, Shaanxi 710021, China; Institute of Biomass & Functional Materials, Shaanxi University of Science & Technology, Xi'an, Shaanxi 710021, China.

出版信息

Int J Biol Macromol. 2024 Jul;273(Pt 2):132928. doi: 10.1016/j.ijbiomac.2024.132928. Epub 2024 Jun 17.

Abstract

Immobilized enzymes are one of the most common tools used in enzyme engineering, as they can substantially reduce the cost of enzyme isolation and use. However, efficient catalysis of solid substrates using immobilized enzymes is challenging, hydrolysis of insoluble cellulose by immobilized cellulases is a typical example of this problem. In this study, inspired by bees and honeycombs, we prepared gelatin-modified cellulase (BEE) and gelatin hydrogels (HONEYCOMB) to achieve reversible recycling versus release of cellulase through temperature-responsive changes in the triple-stranded helix-like interactions between BEE and HONEYCOMB. At elevated temperatures, BEE was released from HONEYCOMB and participated in hydrolytic saccharification. After 24 h, the glucose yields of both the free enzyme and BEE reached the same level. When the temperature was decreased, BEE recombined with HONEYCOMB to facilitate the effective separation and recycling of BEE from the system. The enzymatic system retained >70 % activity after four reuse cycles. In addition, this system showed good biocompatibility and environmental safety. This method increases the mass transfer capacity and enables easy recovery of immobilized cellulase, thereby serving as a valuable strategy for the immobilization of other enzymes.

摘要

固定化酶是酶工程中最常用的工具之一,因为它可以大大降低酶分离和使用的成本。然而,使用固定化酶有效地催化固体底物是具有挑战性的,固定化纤维素酶水解不溶性纤维素就是这个问题的一个典型例子。在这项研究中,受蜜蜂和蜂巢的启发,我们制备了明胶修饰的纤维素酶(BEE)和明胶水凝胶(HONEYCOMB),通过 BEE 和 HONEYCOMB 之间三股螺旋状相互作用的温度响应变化,实现了纤维素酶的可逆回收与释放。在较高温度下,BEE 从 HONEYCOMB 中释放出来,并参与水解糖化。24 小时后,游离酶和 BEE 的葡萄糖产率达到相同水平。当温度降低时,BEE 与 HONEYCOMB 重新组合,有利于从体系中有效分离和回收 BEE。该酶系统在经过四次重复使用后仍保留了超过 70%的活性。此外,该系统还表现出良好的生物相容性和环境安全性。该方法提高了传质能力,并能够方便地回收固定化纤维素酶,因此是固定化其他酶的一种有价值的策略。

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