Fusion of Binding Domains to Thermobifida cellulosilytica Cutinase to Tune Sorption Characteristics and Enhancing PET Hydrolysis

A cutinase from Thermomyces cellullosylitica (Thc_Cut1), hydrolyzing the synthetic polymer polyethylene terephthalate (PET), was fused with two different binding modules to improve sorption and thereby hydrolysis. The binding modules were from cellobiohydrolase I from Hypocrea jecorina (CBM) and fro...

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Veröffentlicht in:Biomacromolecules 2013-06, Vol.14 (6), p.1769-1776
Hauptverfasser: Ribitsch, Doris, Yebra, Antonio Orcal, Zitzenbacher, Sabine, Wu, Jing, Nowitsch, Susanne, Steinkellner, Georg, Greimel, Katrin, Doliska, Ales, Oberdorfer, Gustav, Gruber, Christian C, Gruber, Karl, Schwab, Helmut, Stana-Kleinschek, Karin, Acero, Enrique Herrero, Guebitz, Georg M
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Sprache:eng
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Zusammenfassung:A cutinase from Thermomyces cellullosylitica (Thc_Cut1), hydrolyzing the synthetic polymer polyethylene terephthalate (PET), was fused with two different binding modules to improve sorption and thereby hydrolysis. The binding modules were from cellobiohydrolase I from Hypocrea jecorina (CBM) and from a polyhydroxyalkanoate depolymerase from Alcaligenes faecalis (PBM). Although both binding modules have a hydrophobic nature, it was possible to express the proteins in E. coli. Both fusion enzymes and the native one had comparable k cat values in the range of 311 to 342 s–1 on pNP-butyrate, while the catalytic efficiencies k cat/K m decreased from 0.41 s–1/ μM (native enzyme) to 0.21 and 0.33 s–1/μM for Thc_Cut1+PBM and Thc_Cut1+CBM, respectively. The fusion enzymes were active both on the insoluble PET model substrate bis(benzoyloxyethyl) terephthalate (3PET) and on PET although the hydrolysis pattern was differed when compared to Thc_Cut1. Enhanced adsorption of the fusion enzymes was visible by chemiluminescence after incubation with a 6xHisTag specific horseradish peroxidase (HRP) labeled probe. Increased adsorption to PET by the fusion enzymes was confirmed with Quarz Crystal Microbalance (QCM-D) analysis and indeed resulted in enhanced hydrolysis activity (3.8× for Thc_Cut1+CBM) on PET, as quantified, based on released mono/oligomers.
ISSN:1525-7797
1526-4602
DOI:10.1021/bm400140u