Fast Depolymerization of PET Bottle Mediated by Microwave Pre‐Treatment and An Engineered PETase**

Author:

Guo Boyang12ORCID,Lopez‐Lorenzo Ximena12ORCID,Fang Yuan3,Bäckström Eva1,Capezza Antonio Jose1,Vanga Sudarsan Reddy12,Furó István3,Hakkarainen Minna1ORCID,Syrén Per‐Olof12ORCID

Affiliation:

1. Department of Fibre and Polymer Technology KTH Royal Institute of Technology Teknikringen 50–58 100 44 Stockholm Sweden

2. School of Chemistry Biotechnology and Health Science for Life Laboratory KTH Royal Institute of Technology Tomtebodavägen 23 171 65 Solna Sweden

3. Department of Chemistry KTH Royal Institute of Technology Teknikringen 30–36 100 44 Stockholm Sweden

Abstract

AbstractRecycling plastics is the key to reaching a sustainable materials economy. Biocatalytic degradation of plastics shows great promise by allowing selective depolymerization of man‐made materials into constituent building blocks under mild aqueous conditions. However, insoluble plastics have polymer chains that can reside in different conformations and show compact secondary structures that offer low accessibility for initiating the depolymerization reaction by enzymes. In this work, we overcome these shortcomings by microwave irradiation as a pre‐treatment process to deliver powders of polyethylene terephthalate (PET) particles suitable for subsequent biotechnology‐assisted plastic degradation by previously generated engineered enzymes. An optimized microwave step resulted in 1400 times higher integral of released terephthalic acid (TPA) from high‐performance liquid chromatography (HPLC), compared to original untreated PET bottle. Biocatalytic plastic hydrolysis of substrates originating from PET bottles responded to 78 % yield conversion from 2 h microwave pretreatment and 1 h enzymatic reaction at 30 °C. The increase in activity stems from enhanced substrate accessibility from the microwave step, followed by the administration of designer enzymes capable of accommodating oligomers and shorter chains released in a productive conformation.

Funder

Familjen Kamprads Stiftelse

Novo Nordisk Fonden

Publisher

Wiley

Subject

General Energy,General Materials Science,General Chemical Engineering,Environmental Chemistry

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