WEI, Ren, Gerlis VON HAUGWIT, Lara PFAFF, Jan MIČAN, Christoffel P. S. BADENHORST, Weidong LIU, Gert WEBER, Harry P. AUSTIN, David BEDNÁŘ, Jiří DAMBORSKÝ a Uwe T. BORNSCHEUER. Mechanism-Based Design of Efficient PET Hydrolases. ACS Catalysis. American Chemical Society, 2022, roč. 12, č. 6, s. 3382-3396. ISSN 2155-5435. Dostupné z: https://dx.doi.org/10.1021/acscatal.1c05856.
Další formáty:   BibTeX LaTeX RIS
Základní údaje
Originální název Mechanism-Based Design of Efficient PET Hydrolases
Autoři WEI, Ren, Gerlis VON HAUGWIT, Lara PFAFF, Jan MIČAN (203 Česká republika, domácí), Christoffel P. S. BADENHORST, Weidong LIU, Gert WEBER, Harry P. AUSTIN, David BEDNÁŘ (203 Česká republika, domácí), Jiří DAMBORSKÝ (203 Česká republika, garant, domácí) a Uwe T. BORNSCHEUER.
Vydání ACS Catalysis, American Chemical Society, 2022, 2155-5435.
Další údaje
Originální jazyk angličtina
Typ výsledku Článek v odborném periodiku
Obor 10403 Physical chemistry
Stát vydavatele Spojené státy
Utajení není předmětem státního či obchodního tajemství
WWW URL
Impakt faktor Impact factor: 12.900
Kód RIV RIV/00216224:14310/22:00126169
Organizační jednotka Přírodovědecká fakulta
Doi http://dx.doi.org/10.1021/acscatal.1c05856
UT WoS 000778789200013
Klíčová slova anglicky Hydrolase; enzymatic degradation; interfacial biocatalysis; plastic recycling; protein engineering; polyethylene terephthalate (PET); product inhibition; thermostability
Štítky rivok
Příznaky Mezinárodní význam, Recenzováno
Změnil Změnila: Mgr. Michaela Hylsová, Ph.D., učo 211937. Změněno: 15. 3. 2023 22:07.
Anotace
Polyethylene terephthalate (PET) is the most widespread synthetic polyester, having been utilized in textile fibers and packaging materials for beverages and food, contributing considerably to the global solid waste stream and environmental plastic pollution. While enzymatic PET recycling and upcycling have recently emerged as viable disposal methods for a circular plastic economy, only a handful of benchmark enzymes have been thoroughly described and subjected to protein engineering for improved properties over the last 16 years. By analyzing the specific material properties of PET and the reaction mechanisms in the context of interfacial biocatalysis, this Perspective identifies several limitations in current enzymatic PET degradation approaches. Unbalanced enzyme-substrate interactions, limited thermostability, and low catalytic efficiency at elevated reaction temperatures, and inhibition caused by oligomeric degradation intermediates still hamper industrial applications that require high catalytic efficiency. To overcome these limitations, successful protein engineering studies using innovative experimental and computational approaches have been published extensively in recent years in this thriving research field and are summarized and discussed in detail here. The acquired knowledge and experience will be applied in the near future to address plastic waste contributed by other mass-produced polymer types (e.g., polyamides and polyurethanes) that should also be properly disposed by biotechnological approaches.
Návaznosti
EF17_043/0009632, projekt VaVNázev: CETOCOEN Excellence
857560, interní kód MU
(Kód CEP: EF17_043/0009632)
Název: CETOCOEN Excellence (Akronym: CETOCOEN Excellence)
Investor: Evropská unie, CETOCOEN Excellence, Spreading excellence and widening participation
VytisknoutZobrazeno: 30. 5. 2024 19:48