4.8 Article

Computational Redesign of a PETase for Plastic Biodegradation under Ambient Condition by the GRAPE Strategy

期刊

ACS CATALYSIS
卷 11, 期 3, 页码 1340-1350

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acscatal.0c05126

关键词

computational redesign; thermostability; IsPETase; plastic biodegradation; synergistic effects

资金

  1. National Key R&D Program of China [2018YFA0901600]
  2. National Natural Science Foundation of China [31601412, 31822002, 31961133016]
  3. Beijing Natural Science Foundation [8194074]
  4. Biological Resources Programme [KFJ-BRP-017-58]
  5. Key Research Program of Frontier Sciences from the Chinese Academy of Sciences [ZDBS-LY-SM014]

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This study successfully improved the robustness of PETase through a computational strategy, resulting in the redesign of a variant DuraPETase with significantly elevated melting temperature and enhanced degradation of PET films, as well as complete biodegradation of microplastics at mild temperatures. The design strategy presents opportunities for handling uncollectable PET waste and converting resulting monomers into high-value molecules.
Nature has provided a fantastic array of enzymes that are responsible for essential biochemical functions but not usually suitable for technological applications. Not content with the natural repertoire, protein engineering holds promise to extend the applications of improved enzymes with tailored properties. However, engineering of robust proteins remains a difficult task since the positive mutation library may not cooperate to reach the target function in most cases owing to the ubiquity of epistatic effects. The main demand lies in identifying an efficient path of accumulated mutations. Herein, we devised a computational strategy (greedy accumulated strategy for protein engineering, GRAPE) to improve the robustness of a PETase from Ideonella sakaiensis. A systematic clustering analysis combined with greedy accumulation of beneficial mutations in a computationally derived library enabled the redesign of a variant, DuraPETase, which exhibits an apparent melting temperature that is drastically elevated by 31 degrees C and a strikingly enhanced degradation toward semicrystalline poly(ethylene terephthalate) (PET) films (30%) at mild temperatures (over 300-fold). Complete biodegradation of 2 g/L microplastics to water-soluble products under mild conditions is also achieved, opening up opportunities to steer the biological degradation of uncollectable PET waste and further conversion of the resulting monomers to high-value molecules. The crystal structure revealed the individual mutation match with the design model. Concurrently, synergistic effects are captured, while epistatic interactions are alleviated during the accumulation process. We anticipate that our design strategy will provide a broadly applicable strategy for global optimization of enzyme performance.

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