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June 15, 2021ChemSusChem212 citationsOpen Access

Low Carbon Footprint Recycling of Post‐Consumer PET Plastic with a Metagenomic Polyester Hydrolase

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CSChristian SonnendeckerJOJuliane OeserPRP. Konstantin Richter

Key Points

  • This research aims to explore the efficiency of using PHL7, a polyester hydrolase, for recycling post-consumer polyethylene terephthalate (PET).
  • Isolated polyester hydrolase PHL7 from a compost metagenome.
  • Assessed enzyme activity in hydrolyzing amorphous PET films and thermoform PET packaging at 70 °C.
  • Measured terephthalic acid production and degradation rates of PET using vertical scanning interferometry.
  • PHL7 released 91 mg of terephthalic acid per hour from PET films.
  • Complete degradation of post-consumer PET packaging at a rate of 6.8 μm h-1 using 0.6 mg enzyme gPET-1 in 24 hours.
  • Demonstrated potential to synthesize virgin PET from recovered terephthalic acid, highlighting low carbon footprint.

Abstract

Earth is flooded with plastics and the need for sustainable recycling strategies for polymers has become increasingly urgent. Enzyme-based hydrolysis of post-consumer plastic is an emerging strategy for closed-loop recycling of polyethylene terephthalate (PET). The polyester hydrolase PHL7, isolated from a compost metagenome, completely hydrolyzes amorphous PET films, releasing 91 mg of terephthalic acid per hour and mg of enzyme. Vertical scanning interferometry shows degradation rates of the PET film of 6.8 μm h-1 . Structural analysis indicates the importance of leucine at position 210 for the extraordinarily high PET-hydrolyzing activity of PHL7. Within 24 h, 0.6 mgenzyme gPET -1 completely degrades post-consumer thermoform PET packaging in an aqueous buffer at 70 °C without any energy-intensive pretreatments. Terephthalic acid recovered from the enzymatic hydrolysate is then used to synthesize virgin PET, demonstrating the potential of polyester hydrolases as catalysts in sustainable PET recycling processes with a low carbon footprint.

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Cite This Study

Sonnendecker et al. (2021) studied this question.

synapsesocial.com/papers/69d80a87ba18484428d184bahttps://doi.org/10.1002/cssc.202101062
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