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GRAPE,一种用于计算蛋白质工程的贪婪累积策略。

GRAPE, a greedy accumulated strategy for computational protein engineering.

机构信息

CAS Key Laboratory of Microbial Physiological and Metabolic Engineering, State Key Laboratory of Microbial Resources, Institute of Microbiology, Chinese Academy of Sciences, Beijing, China; University of Chinese Academy of Sciences, Beijing, China.

CAS Key Laboratory of Microbial Physiological and Metabolic Engineering, State Key Laboratory of Microbial Resources, Institute of Microbiology, Chinese Academy of Sciences, Beijing, China.

出版信息

Methods Enzymol. 2021;648:207-230. doi: 10.1016/bs.mie.2020.12.026. Epub 2021 Feb 1.

Abstract

Nature harbors fascinating enzymatic catalysts with high efficiency, chemo-, regio- and stereoselectivity. However, the insufficient stability of the enzymes often prevents their widespread utilization for industrial processes. Not content with the finite repertoire of naturally occurring enzymes, protein engineering holds promises to extend the applications of the improved enzymes with desired physical and catalytic properties. Herein, we devised a computational strategy (greedy accumulated strategy for protein engineering, GRAPE) to enhance the thermostability of enzymes. Through scanning of all point mutations of the structural and evolutionary consensus analysis, a library containing fewer than 100 mutations was established for characterization. After preliminary experimental verification, effective mutations are clustered in a multidimensional physical property space and then accumulated via the greedy algorithm to produce the final designed enzyme. Using the recently reported IsPETase from Ideonella sakaiensis that decomposes PET under ambient temperatures as a starting point, we adopted the GRAPE strategy to come up with a DuraPETase (T=77°C, raised by 31°C) which showed drastically enhanced degradation performance (300-fold) on semicrystalline PET films at 40°C.

摘要

自然界蕴藏着具有高效、化学、区域和立体选择性的迷人酶催化剂。然而,酶的稳定性不足常常阻碍了它们在工业过程中的广泛应用。由于天然存在的酶的种类有限,蛋白质工程有望通过具有所需物理和催化性质的改良酶来扩展其应用。在此,我们设计了一种计算策略(用于蛋白质工程的贪婪累积策略,GRAPE)来提高酶的热稳定性。通过对结构和进化共识分析的所有点突变进行扫描,建立了一个包含少于 100 个突变的文库进行表征。经过初步的实验验证,有效的突变在多维物理性质空间中聚类,然后通过贪婪算法累积,产生最终设计的酶。以最近报道的在环境温度下分解 PET 的 Ideonella sakaiensis 的 IsPETase 为起点,我们采用了 GRAPE 策略,得到了 DuraPETase(T=77°C,提高了 31°C),在 40°C 时对半结晶 PET 薄膜的降解性能(提高了 300 倍)有了显著提高。

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