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整合酶固定化和蛋白质工程:开发新型和改良工业生物催化剂的另一种途径。

Integrating enzyme immobilization and protein engineering: An alternative path for the development of novel and improved industrial biocatalysts.

机构信息

Laboratorio de Tecnología de Enzimas para Bioprocesos, Departamento de Ingeniería en Alimentos, Universidad de La Serena, Av. Raúl Bitrán 1305, 1720010 La Serena, Chile; Instituto de Investigación Multidisciplinario en Ciencia y Tecnología, Universidad de La Serena, Benavente 980, 1720010 La Serena, Chile.

Laboratorio de Tecnología de Enzimas para Bioprocesos, Departamento de Ingeniería en Alimentos, Universidad de La Serena, Av. Raúl Bitrán 1305, 1720010 La Serena, Chile.

出版信息

Biotechnol Adv. 2018 Sep-Oct;36(5):1470-1480. doi: 10.1016/j.biotechadv.2018.06.002. Epub 2018 Jun 9.

Abstract

Enzyme immobilization often achieves reusable biocatalysts with improved operational stability and solvent resistance. However, these modifications are generally associated with a decrease in activity or detrimental modifications in catalytic properties. On the other hand, protein engineering aims to generate enzymes with increased performance at specific conditions by means of genetic manipulation, directed evolution and rational design. However, the achieved biocatalysts are generally generated as soluble enzymes, -thus not reusable- and their performance under real operational conditions is uncertain. Combined protein engineering and enzyme immobilization approaches have been employed as parallel or consecutive strategies for improving an enzyme of interest. Recent reports show efforts on simultaneously improving both enzymatic and immobilization components through genetic modification of enzymes and optimizing binding chemistry for site-specific and oriented immobilization. Nonetheless, enzyme engineering and immobilization are usually performed as separate workflows to achieve improved biocatalysts. In this review, we summarize and discuss recent research aiming to integrate enzyme immobilization and protein engineering and propose strategies to further converge protein engineering and enzyme immobilization efforts into a novel "immobilized biocatalyst engineering" research field. We believe that through the integration of both enzyme engineering and enzyme immobilization strategies, novel biocatalysts can be obtained, not only as the sum of independently improved intrinsic and operational properties of enzymes, but ultimately tailored specifically for increased performance as immobilized biocatalysts, potentially paving the way for a qualitative jump in the development of efficient, stable biocatalysts with greater real-world potential in challenging bioprocess applications.

摘要

酶固定化通常可获得具有改进的操作稳定性和耐溶剂性的可重复使用的生物催化剂。然而,这些修饰通常伴随着活性的降低或催化性能的不利修饰。另一方面,蛋白质工程旨在通过遗传操作、定向进化和合理设计生成在特定条件下具有更高性能的酶。然而,所获得的生物催化剂通常作为可溶性酶产生,因此不可重复使用,并且其在实际操作条件下的性能是不确定的。组合蛋白质工程和酶固定化方法已被用作平行或连续的策略,以提高感兴趣的酶。最近的报告显示,通过酶的遗传修饰和优化结合化学来实现酶和固定化组件的同时改进,用于酶的固定化。尽管如此,酶工程和固定化通常作为单独的工作流程来实现改进的生物催化剂。在这篇综述中,我们总结和讨论了最近旨在整合酶固定化和蛋白质工程的研究,并提出了进一步将蛋白质工程和酶固定化工作融合到一个新的“固定化生物催化剂工程”研究领域的策略。我们相信,通过整合酶工程和酶固定化策略,可以获得新型生物催化剂,不仅是酶的固有和操作性能的独立改进的总和,而且最终可以专门针对固定化生物催化剂的性能进行定制,有可能为高效、稳定的生物催化剂的发展带来定性飞跃,这些生物催化剂在具有挑战性的生物加工应用中具有更大的实际潜力。

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