Skip to main navigation Skip to search Skip to main content

Engineering and application of a thermostable MHETase for PET depolymerization

  • Natasha P. Murphy
  • , Japheth E. Gado
  • , Tabea Neumann
  • , Pablo Perez-Garcia
  • , Evan Komp
  • , Luisana Avilan
  • , Irimpan I. Mathews
  • , Elizabeth L. Bell
  • , Brenna Norton-Baker
  • , Matilda Clark
  • , Rebecca R. Garcia
  • , Hannah M. Alt
  • , Ritimukta Sarangi
  • , Andrew R. Pickford
  • , Wolfgang R. Streit
  • , John E. McGeehan
  • , Nicholas P. Gauthier
  • , Gregg T. Beckham

Research output: Contribution to journalArticlepeer-review

2 Downloads (Pure)

Abstract

Enzymatic hydrolysis of poly-(ethylene terephthalate) (PET) releases mono-(2-hydroxyethyl) terephthalate (MHET) as a major product, the accumulation of which can prolong reactor residence times and complicate downstream monomer separations. The use of a MHETase enzyme can enable MHET hydrolysis to the monomers, terephthalic acid and ethylene glycol, but industrial PETases typically operate at thermophilic temperatures and the well-known MHETase from Ideonella sakaiensis is a mesophilic enzyme, thus warranting the development of thermophilic MHETases. Here, we characterize thermostable MHET-active enzymes from a natural diversity screen by applying a hidden Markov model based on the previously reported, archaeal ferulic acid esterase, PET46. We identified enzymes with higher thermostability than PET46 and quantified their MHETase activity in reactions at 70 °C. The crystal structure of MHT077, the homologue with the highest MHETase activity and an apparent melting temperature (T m,app) of 94.6 °C, informed site saturation mutagenesis in the active site and lid-domain interface. MHT077 exhibited a ∼100-fold slower unfolding rate at 65 °C than PET46, indicating substantially greater kinetic stability. In parallel, we applied evolution-informed design, a probabilistic model that leverages coevolutionary patterns in large multiple sequence alignments, to improve the activity and thermostability of five ferulic acid esterases. One design, EV-MHT043-5 was identified with a comparable thermostability (T m,app = 96.1 °C) and a 3-fold improvement in its MHETase activity relative to the wildtype enzyme, MHT043. Combination variants of beneficial mutations were screened and afforded a variant, MHT077LFK, which reduced MHET accumulation in bioreactor experiments with postconsumer PET waste. Overall, this study expands the known MHET-hydrolyzing protein scaffolds available for enzymatic PET recycling.

Original languageEnglish
Pages (from-to)10981-10995
Number of pages15
JournalACS Sustainable Chemistry and Engineering
Volume14
Issue number24
Early online date8 Jun 2026
DOIs
Publication statusPublished - 22 Jun 2026

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 12 - Responsible Consumption and Production
    SDG 12 Responsible Consumption and Production
  2. SDG 14 - Life Below Water
    SDG 14 Life Below Water

Keywords

  • Enzymes
  • High-throughput assay
  • Interfacial biocatalysis
  • Polymers
  • Protein engineering

Fingerprint

Dive into the research topics of 'Engineering and application of a thermostable MHETase for PET depolymerization'. Together they form a unique fingerprint.

Cite this