An Engineered Laccase from Fomitiporia mediterranea Accelerates Lignocellulose Degradation

Author:

Pham Le Thanh Mai12,Deng Kai34,Choudhary Hemant12ORCID,Northen Trent R.45,Singer Steven W.26,Adams Paul D.478,Simmons Blake A.26ORCID,Sale Kenneth L.29ORCID

Affiliation:

1. Department of Bioresource & Environmental Security, Sandia National Laboratories, 7011 East Avenue, Livermore, CA 94551, USA

2. Deconstruction Division, Joint BioEnergy Institute, 5885 Hollis Street, Emeryville, CA 94608, USA

3. Department of Biomaterials & Biomanufacturing, Sandia National Laboratories, 7011 East Avenue, Livermore, CA 94551, USA

4. Technology Division, Joint BioEnergy Institute, 5885 Hollis Street, Emeryville, CA 94608, USA

5. Environmental Genomics and Systems Biology Divison, Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Berkeley, CA 94720, USA

6. Biological Systems and Engineering Division, Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Berkeley, CA 94720, USA

7. Molecular Biophysics and Integrated Bioimaging Division, Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Berkeley, CA 94720, USA

8. Department of Bioengineering, University of California, Berkeley, CA 94704, USA

9. Department of Biosecurity and Bioassurance, Sandia National Laboratories, 7011 East Avenue, Livermore, CA 94551, USA

Abstract

Laccases from white-rot fungi catalyze lignin depolymerization, a critical first step to upgrading lignin to valuable biodiesel fuels and chemicals. In this study, a wildtype laccase from the basidiomycete Fomitiporia mediterranea (Fom_lac) and a variant engineered to have a carbohydrate-binding module (Fom_CBM) were studied for their ability to catalyze cleavage of β-O-4′ ether and C–C bonds in phenolic and non-phenolic lignin dimers using a nanostructure-initiator mass spectrometry-based assay. Fom_lac and Fom_CBM catalyze β-O-4′ ether and C–C bond breaking, with higher activity under acidic conditions (pH < 6). The potential of Fom_lac and Fom_CBM to enhance saccharification yields from untreated and ionic liquid pretreated pine was also investigated. Adding Fom_CBM to mixtures of cellulases and hemicellulases improved sugar yields by 140% on untreated pine and 32% on cholinium lysinate pretreated pine when compared to the inclusion of Fom_lac to the same mixtures. Adding either Fom_lac or Fom_CBM to mixtures of cellulases and hemicellulases effectively accelerates enzymatic hydrolysis, demonstrating its potential applications for lignocellulose valorization. We postulate that additional increases in sugar yields for the Fom_CBM enzyme mixtures were due to Fom_CBM being brought more proximal to lignin through binding to either cellulose or lignin itself.

Funder

Joint BioEnergy Institute, U.S. Department of Energy, Office of Science, Biological and Environmental Research Program

U.S. Department of Energy’s National Nuclear Security Administration

Publisher

MDPI AG

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