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Poly(N-vinylpyrrolidone)-Poly(dimethylsiloxane)-Based Polymersome Nanoreactors for Laccase-Catalyzed Biotransformations

Spulber, Mariana and Baumann, Patric and Saxer, Sina S. and Pieles, Uwe and Meier, Wolfgang and Bruns, Nico. (2014) Poly(N-vinylpyrrolidone)-Poly(dimethylsiloxane)-Based Polymersome Nanoreactors for Laccase-Catalyzed Biotransformations. Biomacromolecules, Vol. 15, H. 4. pp. 1469-1475.

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Official URL: http://edoc.unibas.ch/dok/A6329062

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Abstract

Laccases (Lac) are oxidizing enzymes with a broad range of applications, for example, in soil remediation, as bleaching agent in the textile industry, and for cosmetics. Protecting the enzyme against degradation and inhibition is of great importance for many of these applications. Polymer vesicles (polymersomes) from poly(N-vinylpyrrolidone)-block-poly(dimethylsiloxane)-block-poly(N-vinyl pyrrolidone) (PNVP-b-PDMS-b-PNVP) triblock copolymers were prepared and investigated as intrinsically semipermeable nanoreactors for Lac. The block copolymers allow oxygen to enter and reactive oxygen species (ROS) to leave the polymersomes. EPR spectroscopy proved that Lac can generate ROS. They could diffuse out of the polymersome and oxidize an aromatic substrate outside the vesicles. Michaelis-Menten constants K-m between 60 and 143 mu M and turn over numbers k(cat) of 0.11 to 0.18 s(-1) were determined for Lac in the nanoreactors. The molecular weight and the PDMS-to-PNVP ratio of the block copolymers influenced these apparent Michaelis-Menten parameters. Encapsulation of Lac in the polymersomes significantly protected the enzyme against enzymatic degradation and against small inhibitors: proteinase K caused 90% less degradation and the inhibitor sodium azide did not affect the enzyme`s activity. Therefore, these polymer nanoreactors are an effective means to stabilize laccase.
Faculties and Departments:05 Faculty of Science > Departement Chemie
05 Faculty of Science > Departement Chemie > Chemie
05 Faculty of Science > Departement Chemie > Former Organization Units Chemistry > Makromolekulare Chemie (Meier)
UniBasel Contributors:Meier, Wolfgang P. and Pieles, Uwe and Bruns, Nico and Baumann, Patric and Spulber, Mariana
Item Type:Article, refereed
Article Subtype:Research Article
Publisher:American Chemical Soc.
ISSN:1525-7797
Note:Publication type according to Uni Basel Research Database: Journal article
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Last Modified:02 Oct 2015 10:00
Deposited On:09 Jan 2015 09:25

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