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用于生物技术应用的多酶共固定化的纳米结构化载体:成就、挑战和展望。

Nanostructured supports for multienzyme co-immobilization for biotechnological applications: Achievements, challenges and prospects.

机构信息

Institute of Chemical Technology and Engineering, Faculty of Chemical Technology, Poznan University of Technology, Berdychowo 4, PL-60965 Poznan, Poland.

Institute of Chemical Technology and Engineering, Faculty of Chemical Technology, Poznan University of Technology, Berdychowo 4, PL-60965 Poznan, Poland.

出版信息

Adv Colloid Interface Sci. 2023 May;315:102889. doi: 10.1016/j.cis.2023.102889. Epub 2023 Mar 29.

Abstract

The synergistic combination of current biotechnological and nanotechnological research has turned to multienzyme co-immobilization as a promising concept to design biocatalysis engineering. It has also intensified the development and deployment of multipurpose biocatalysts, for instance, multienzyme co-immobilized constructs, via biocatalysis/protein engineering to scale-up and fulfil the ever-increasing industrial demands. Considering the characteristic features of both the loaded multienzymes and nanostructure carriers, i.e., selectivity, specificity, stability, resistivity, induce activity, reaction efficacy, multi-usability, high catalytic turnover, optimal yield, ease in recovery, and cost-effectiveness, multienzyme-based green biocatalysts have become a powerful norm in biocatalysis/protein engineering sectors. In this context, the current state-of-the-art in enzyme engineering with a synergistic combination of nanotechnology, at large, and nanomaterials, in particular, are significantly contributing and providing robust tools to engineer and/or tailor enzymes to fulfil the growing catalytic and contemporary industrial needs. Considering the above critics and unique structural, physicochemical, and functional attributes, herein, we spotlight important aspects spanning across prospective nano-carriers for multienzyme co-immobilization. Further, this work comprehensively discuss the current advances in deploying multienzyme-based cascade reactions in numerous sectors, including environmental remediation and protection, drug delivery systems (DDS), biofuel cells development and energy production, bio-electroanalytical devices (biosensors), therapeutical, nutraceutical, cosmeceutical, and pharmaceutical oriented applications. In conclusion, the continuous developments in nano-assembling the multienzyme loaded co-immobilized nanostructure carriers would be a unique way that could act as a core of modern biotechnological research.

摘要

当前生物技术和纳米技术研究的协同结合已经转向多酶共固定化,作为设计生物催化工程的有前途的概念。它还加强了多功能生物催化剂的开发和部署,例如,通过生物催化/蛋白质工程,多酶共固定化构建体可实现规模化,并满足不断增长的工业需求。考虑到负载多酶和纳米结构载体的特征,即选择性、特异性、稳定性、电阻率、诱导活性、反应效果、多用性、高催化周转率、最佳产率、易于回收和成本效益,基于多酶的绿色生物催化剂已成为生物催化/蛋白质工程领域的有力规范。在这种情况下,纳米技术的协同组合,特别是纳米材料的酶工程的最新技术状态,正在为工程设计和/或定制酶以满足不断增长的催化和当代工业需求提供强大的工具。考虑到上述批评和独特的结构、物理化学和功能属性,本文重点介绍了用于多酶共固定化的有前途的纳米载体的重要方面。此外,这项工作还全面讨论了在包括环境修复和保护、药物输送系统 (DDS)、生物燃料电池开发和能源生产、生物电化学装置 (生物传感器)、治疗、营养保健品、化妆品和制药应用在内的众多领域中部署基于多酶的级联反应的最新进展。总之,纳米组装多酶负载共固定化纳米结构载体的不断发展将是一种独特的方式,可以作为现代生物技术研究的核心。

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