J
2022
Structural Insights into (Tere)phthalate-Ester Hydrolysis by a Carboxylesterase and Its Role in Promoting PET Depolymerization
VON HAUGWITZ, Gerlis; Xu HAN; Lara PFAFF; Qian LI; Hongli WEI et al.
Základní údaje
Originální název
Structural Insights into (Tere)phthalate-Ester Hydrolysis by a Carboxylesterase and Its Role in Promoting PET Depolymerization
Autoři
VON HAUGWITZ, Gerlis; Xu HAN; Lara PFAFF; Qian LI; Hongli WEI; Jian GAO; Karen METHLING; Yufei AO; Yannik BRACK; Jan MIČAN; Christian G FEILER; Manfred S WEISS; David BEDNÁŘ; Gottfried J. PALM; Michael LALK; Michael LAMMERS; Jiří DAMBORSKÝ; Gert WEBER; Weidong LIU; Uwe T. BORNSCHEUER a Ren WEI
Vydání
ACS Catalysis, Washington, D.C. American Chemical Society, 2022, 2155-5435
Další údaje
Typ výsledku
Článek v odborném periodiku
Stát vydavatele
Spojené státy
Utajení
není předmětem státního či obchodního tajemství
Označené pro přenos do RIV
Ano
Kód RIV
RIV/00216224:14310/22:00127611
Organizace
Přírodovědecká fakulta – Masarykova univerzita – Repozitář
Klíčová slova anglicky
PET hydrolysis; plastic; dual enzyme system; carboxylesterase; structure; enzyme engineering
Návaznosti
EF17_043/0009632, projekt VaV. LM2018140, projekt VaV. 857560, interní kód Repo. ELIXIR-CZ II, velká výzkumná infrastruktura.
V originále
TfCa, a promiscuous carboxylesterase from Thermobifida fusca, was found to hydrolyze polyethylene terephthalate (PET) degradation intermediates such as bis(2-hydroxyethyl) terephthalate (BHET) and mono-(2-hydroxyethyl)-terephthalate (MHET). In this study, we elucidated the structures of TfCa in its apo form, as well as in complex with a PET monomer analogue and with BHET. The structure–function relationship of TfCa was investigated by comparing its hydrolytic activity on various ortho- and para-phthalate esters of different lengths. Structure-guided rational engineering of amino acid residues in the substrate-binding pocket resulted in the TfCa variant I69W/V376A (WA), which showed 2.6-fold and 3.3-fold higher hydrolytic activity on MHET and BHET, respectively, than the wild-type enzyme. TfCa or its WA variant was mixed with a mesophilic PET depolymerizing enzyme variant [Ideonella sakaiensis PETase (IsPETase) PM] to degrade PET substrates of various crystallinity. The dual enzyme system with the wild-type TfCa or its WA variant produced up to 11-fold and 14-fold more terephthalate (TPA) than the single IsPETase PM, respectively. In comparison to the recently published chimeric fusion protein of IsPETase and MHETase, our system requires 10% IsPETase and one-fourth of the reaction time to yield the same amount of TPA under similar PET degradation conditions. Our simple dual enzyme system reveals further advantages in terms of cost-effectiveness and catalytic efficiency since it does not require time-consuming and expensive cross-linking and immobilization approaches.
Zobrazeno: 2. 5. 2026 20:46