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使用固定在先进材料上的共固定化酶进行原位和无细胞生物催化。

On-pot and cell-free biocatalysis using coimmobilized enzymes on advanced materials.

作者信息

López-Gallego Fernando

机构信息

Heterogeneous Biocatalysis Laboratory, Instituto de Síntesis Química y Catálisis Homogénea (ISQCH-CSIC), University of Zaragoza, Zaragoza, Spain; ARAID, Aragon I+D Foundation, Zaragoza, Spain.

出版信息

Methods Enzymol. 2019;617:385-411. doi: 10.1016/bs.mie.2018.12.013. Epub 2019 Feb 8.

Abstract

Complex synthetic schemes catalyzed by multienzyme systems immobilized on solid materials are gaining momentum in chemical biomanufacturing. These systems harness the high chemo-, regio-, and stereoselectivity of the enzymes and the recyclability of the heterogeneous catalysts. Moreover, when the enzymes become part of a solid material, they can be easily integrated into packed-bed reactor for continuous biotransformations. Advances in nanotechnology have enabled to precisely control the spatial distribution of multienzyme systems on the surfaces of advanced materials. This chapter summarizes the challenges and opportunities of using immobilized multienzyme systems in step-wise chemical transformations. A plethora of examples given herein illustrates how the nature and the physicochemical properties of the materials as well as the engineering of the protein surfaces impact on the overall functionality of immobilized multienzyme systems to perform cascade reactions. Furthermore, some insights are provided to orchestrate both stabilities and activities of the enzymes in these systems. Immobilized multienzyme systems are an excellent opportunity to increase the robustness and expand the application scope of cell-free biocatalytic systems for synthetic, analytical, medical, and environmental chemistry.

摘要

固定在固体材料上的多酶系统催化的复杂合成方案在化学生物制造中越来越受到关注。这些系统利用了酶的高化学、区域和立体选择性以及多相催化剂的可循环性。此外,当酶成为固体材料的一部分时,它们可以很容易地集成到填充床反应器中进行连续生物转化。纳米技术的进步使得精确控制多酶系统在先进材料表面的空间分布成为可能。本章总结了在逐步化学转化中使用固定化多酶系统的挑战和机遇。本文给出的大量例子说明了材料的性质和物理化学性质以及蛋白质表面工程如何影响固定化多酶系统进行级联反应的整体功能。此外,还提供了一些见解,以协调这些系统中酶的稳定性和活性。固定化多酶系统是提高无细胞生物催化系统的稳健性并扩大其在合成、分析、医学和环境化学中的应用范围的绝佳机会。

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