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Publikation: Bidrag til tidsskrift › Tidsskriftartikel › Forskning › peer review
Enzymatic degradation of plastics is currently limited to the use of engineered natural enzymes. As of yet, all engineering approaches applied to plastic degrading enzymes retain the natural α/β-fold. While mutations can be used to increase thermostability, an inherent maximum likely exists for the α/β-fold. It is thus of interest to introduce catalytic activity toward plastics in a different protein fold to escape the sequence space of plastic degrading enzymes. Here, a method for designing highly thermostable enzymes that can degrade plastics is described. With the help of Rosetta an active site catalysing the hydrolysis of polycarbonate is introduced into a set of thermostable scaffolds. Through computational evaluation, a potential PCase was selected and produced recombinantly in Escherichia coli. Thermal analysis suggests that the design has a melting temperature of >95◦C. Activity toward polycarbonate was confirmed using atomic force spectroscopy (AFM), proving the successful design of a PCase.
| Originalsprog | Engelsk |
|---|---|
| Artikelnummer | gzad022 |
| Tidsskrift | Protein Engineering, Design and Selection |
| Vol/bind | 36 |
| ISSN | 1741-0126 |
| DOI | |
| Status | Udgivet - 2023 |
Publikation: Working paper/Preprint › Preprint