Li_2023_Nat.Commun_14_4169

Reference

Title : Discovery and mechanism-guided engineering of BHET hydrolases for improved PET recycling and upcycling - Li_2023_Nat.Commun_14_4169
Author(s) : Li A , Sheng Y , Cui H , Wang M , Wu L , Song Y , Yang R , Li X , Huang H
Ref : Nat Commun , 14 :4169 , 2023
Abstract :

Although considerable research achievements have been made to address the plastic crisis using enzymes, their applications are limited due to incomplete degradation and low efficiency. Herein, we report the identification and subsequent engineering of BHETases, which have the potential to improve the efficiency of PET recycling and upcycling. Two BHETases (ChryBHETase and BsEst) are identified from the environment via enzyme mining. Subsequently, mechanism-guided barrier engineering is employed to yield two robust and thermostable deltaBHETases with up to 3.5-fold enhanced k(cat)/K(M) than wild-type, followed by atomic resolution understanding. Coupling deltaBHETase into a two-enzyme system overcomes the challenge of heterogeneous product formation and results in up to 7.0-fold improved TPA production than seven state-of-the-art PET hydrolases, under the conditions used here. Finally, we employ a deltaBHETase-joined tandem chemical-enzymatic approach to valorize 21 commercial post-consumed plastics into virgin PET and an example chemical (p-phthaloyl chloride) for achieving the closed-loop PET recycling and open-loop PET upcycling.

PubMedSearch : Li_2023_Nat.Commun_14_4169
PubMedID: 37443360
Gene_locus related to this paper: 9flao-ChryBHETase , bacsu-pnbae

Related information

Substrate BHET
Gene_locus 9flao-ChryBHETase    bacsu-pnbae

Citations formats

Li A, Sheng Y, Cui H, Wang M, Wu L, Song Y, Yang R, Li X, Huang H (2023)
Discovery and mechanism-guided engineering of BHET hydrolases for improved PET recycling and upcycling
Nat Commun 14 :4169

Li A, Sheng Y, Cui H, Wang M, Wu L, Song Y, Yang R, Li X, Huang H (2023)
Nat Commun 14 :4169