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打破酶活性与稳定性之间的权衡:利用熵来提高活性和热稳定性。

Defying the activity-stability trade-off in enzymes: taking advantage of entropy to enhance activity and thermostability.

作者信息

Siddiqui Khawar Sohail

机构信息

a Department of Life Sciences , King Fahd University of Petroleum and Minerals (KFUPM) , Dhahran , Kingdom of Saudi Arabia.

出版信息

Crit Rev Biotechnol. 2017 May;37(3):309-322. doi: 10.3109/07388551.2016.1144045. Epub 2016 Mar 3.

Abstract

The biotechnological applications of enzymes are limited due to the activity-stability trade-off, which implies that an increase in activity is accompanied by a concomitant decrease in protein stability. This premise is based on thermally adapted homologous enzymes where cold-adapted enzymes show high intrinsic activity linked to enhanced thermolability. In contrast, thermophilic enzymes show low activity around ambient temperatures. Nevertheless, genetically and chemically modified enzymes are beginning to show that the activity-stability trade-off can be overcome. In this review, the origin of the activity-stability trade-off, the thermodynamic basis for enhanced activity and stability, and various approaches for escaping the activity-stability trade-off are discussed. The role of entropy in enhancing both the activity and the stability of enzymes is highlighted with a special emphasis placed on the involvement of solvent water molecules. This review is concluded with suggestions for further research, which underscores the implications of these findings in the context of productivity curves, the Daniel-Danson equilibrium model, catalytic antibodies, and life on cold planets.

摘要

由于活性与稳定性之间的权衡,酶的生物技术应用受到限制,这意味着活性的增加伴随着蛋白质稳定性的相应降低。这一前提基于热适应的同源酶,其中冷适应酶表现出与热稳定性增强相关的高内在活性。相比之下,嗜热酶在环境温度附近表现出低活性。然而,基因修饰和化学修饰的酶开始表明活性与稳定性之间的权衡可以被克服。在这篇综述中,讨论了活性与稳定性权衡的起源、活性和稳定性增强的热力学基础以及摆脱活性与稳定性权衡的各种方法。强调了熵在增强酶的活性和稳定性方面的作用,特别强调了溶剂水分子的参与。这篇综述最后提出了进一步研究的建议,强调了这些发现在生产力曲线、丹尼尔-丹森平衡模型、催化抗体以及寒冷星球上的生命背景下的意义。

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