Unveiling the basis of alkaline stability of an evolved versatile peroxidase

Author:

Sáez-Jiménez Verónica1,Acebes Sandra23,Garcia-Ruiz Eva4,Romero Antonio1,Guallar Victor25,Alcalde Miguel6,Medrano Francisco J.1,Martínez Angel T.1,Ruiz-Dueñas Francisco J.1

Affiliation:

1. Centro de Investigaciones Biológicas, CSIC, Ramiro de Maeztu 9, E-28040 Madrid, Spain

2. Joint BSC-CRG-IRB Research Program in Computational Biology, Barcelona Supercomputing Center, Jordi Girona 29, E-08034 Barcelona, Spain

3. Anaxomics Biotech, Balmes 89, E-08008 Barcelona, Spain

4. Department of Chemical and Biomolecular Engineering, University of Illinois at Urbana-Champaign, 600 South Mathews Avenue, Urbana, IL 61801, U.S.A.

5. ICREA, Passeig Lluis Companys 23, E-08010 Barcelona, Spain

6. Institute of Catalysis and Petroleochemistry, CSIC, Marie Curie 2, Cantoblanco, E-28049 Madrid, Spain

Abstract

A variant of high biotechnological interest (called 2-1B) was obtained by directed evolution of the Pleurotus eryngii VP (versatile peroxidase) expressed in Saccharomyces cerevisiae [García-Ruiz, González-Pérez, Ruiz-Dueñas, Martínez and Alcalde (2012) Biochem. J. 441, 487–498]. 2-1B shows seven mutations in the mature protein that resulted in improved functional expression, activity and thermostability, along with a remarkable stronger alkaline stability (it retains 60% of the initial activity after 120 h of incubation at pH 9 compared with complete inactivation of the native enzyme after only 1 h). The latter is highly demanded for biorefinery applications. In the present study we investigate the structural basis behind the enhanced alkaline stabilization of this evolved enzyme. In order to do this, several VP variants containing one or several of the mutations present in 2-1B were expressed in Escherichia coli, and their alkaline stability and biochemical properties were determined. In addition, the crystal structures of 2-1B and one of the intermediate variants were solved and carefully analysed, and molecular dynamics simulations were carried out. We concluded that the introduction of three basic residues in VP (Lys-37, Arg-39 and Arg-330) led to new connections between haem and helix B (where the distal histidine residue is located), and formation of new electrostatic interactions, that avoided the hexa-co-ordination of the haem iron. These new structural determinants stabilized the haem and its environment, helping to maintain the structural enzyme integrity (with penta-co-ordinated haem iron) under alkaline conditions. Moreover, the reinforcement of the solvent-exposed area around Gln-305 in the proximal side, prompted by the Q202L mutation, further enhanced the stability.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

Reference48 articles.

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3. Microbial degradation of lignin: how a bulky recalcitrant polymer is efficiently recycled in nature and how we can take advantage of this;Ruiz-Dueñas;Microb. Biotechnol.,2009

4. Biodegradation of lignocellulosics: microbiological, chemical and enzymatic aspects of fungal attack to lignin;Martínez;Int. Microbiol.,2005

5. The Paleozoic origin of enzymatic lignin decomposition reconstructed from 31 fungal genomes;Floudas;Science,2012

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