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February 15, 2024Nature Communications187 citationsOpen Access

Computational redesign of a hydrolase for nearly complete PET depolymerization at industrially relevant high-solids loading

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YCYinglu CuiYCYanchun ChenJSJinyuan Sun

Key Points

  • Engineered TurboPETase achieves nearly complete poly(ethylene terephthalate) depolymerization, overcoming the 10% nonbiodegradable barrier of earlier variants.
  • Nearly complete breakdown occurs within 8 h at an industrially relevant solids loading of 200 g kg−1, outperforming other well-known PET hydrolases.
  • Computational redesign of a bacterium HR29 hydrolase creates a flexible PET-binding groove, which may guide future engineering of robust polyester hydrolases.

Abstract

Abstract Biotechnological plastic recycling has emerged as a suitable option for addressing the pollution crisis. A major breakthrough in the biodegradation of poly(ethylene terephthalate) (PET) is achieved by using a LCC variant, which permits 90% conversion at an industrial level. Despite the achievements, its applications have been hampered by the remaining 10% of nonbiodegradable PET. Herein, we address current challenges by employing a computational strategy to engineer a hydrolase from the bacterium HR29. The redesigned variant, TurboPETase, outperforms other well-known PET hydrolases. Nearly complete depolymerization is accomplished in 8 h at a solids loading of 200 g kg −1 . Kinetic and structural analysis suggest that the improved performance may be attributed to a more flexible PET-binding groove that facilitates the targeting of more specific attack sites. Collectively, our results constitute a significant advance in understanding and engineering of industrially applicable polyester hydrolases, and provide guidance for further efforts on other polymer types.

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Cite This Study

Cui et al. (2024) studied this question.

synapsesocial.com/papers/68e78f53b6db643587700e50https://doi.org/10.1038/s41467-024-45662-9
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