Conserved white-rot enzymatic mechanism for wood decay in the Basidiomycota genus Pycnoporus

Author:

Miyauchi Shingo12,Hage Hayat1,Drula Elodie1,Lesage-Meessen Laurence13,Berrin Jean-Guy1,Navarro David13,Favel Anne13,Chaduli Delphine13,Grisel Sacha1,Haon Mireille1,Piumi François1,Levasseur Anthony1,Lomascolo Anne1,Ahrendt Steven4,Barry Kerrie4,LaButti Kurt M4,Chevret Didier5,Daum Chris4,Mariette Jérôme6,Klopp Christophe6,Cullen Daniel7,de Vries Ronald P89,Gathman Allen C10,Hainaut Matthieu1112,Henrissat Bernard1112,Hildén Kristiina S9,Kües Ursula1314,Lilly Walt10,Lipzen Anna4,Mäkelä Miia R9,Martinez Angel T15ORCID,Morel-Rouhier Mélanie2,Morin Emmanuelle2,Pangilinan Jasmyn4,Ram Arthur F J16,Wösten Han A B17,Ruiz-Dueñas Francisco J15,Riley Robert4,Record Eric1,Grigoriev Igor V418,Rosso Marie-Noëlle1ORCID

Affiliation:

1. INRAE, UMR1163, Biodiversity and Biotechnology of Fungi, Aix Marseille University, 13009 Marseille, France

2. INRAE, UMR1136, Interactions Arbres/Microorganismes, Université de Lorraine, Nancy, France

3. INRAE, CIRM-CF, UMR1163, Aix Marseille University, Marseille, France

4. US Department of Energy, Joint Genome Institute, Walnut Creek, CA, USA

5. INRAE, UMR1319, Micalis, Plateforme d’Analyse Protéomique de Paris Sud-Ouest, Jouy-en-Josas, France

6. INRAE, Genotoul Bioinfo, UR875, Mathématiques et Informatique Appliquées de Toulouse, Castanet-Tolosan, France

7. USDA Forest Products Laboratory, Madison, WI, USA

8. Fungal Physiology, Westerdijk Fungal Biodiversity Institute and Fungal Molecular Physiology, Utrecht University, Utrecht, The Netherlands

9. Department of Microbiology, University of Helsinki, Helsinki, Finland

10. Department of Biology, Southeast Missouri State University, Cape Girardeau, MI, USA

11. CNRS, UMR7257, AFMB, Aix Marseille University, Marseille, France

12. INRAE, USC1408, AFMB, Marseille, France

13. Department of Molecular Wood Biotechnology and Technical Mycology, Büsgen-Institute, Georg-August-University Göttingen, Göttingen, Germany

14. Center for Molecular Biosciences (GZMB), Georg-August-University Göttingen, Göttingen, Germany

15. Centro de Investigaciones Biológicas, CSIC, Madrid, Spain

16. Molecular Microbiology and Biotechnology, Institute of Biology Leiden, Leiden University, Leiden, The Netherlands

17. Microbiology, Utrecht University, Utrecht, The Netherlands

18. Department of Plant and Microbial Biology, University of California Berkeley, Berkeley, CA, USA

Abstract

Abstract White-rot (WR) fungi are pivotal decomposers of dead organic matter in forest ecosystems and typically use a large array of hydrolytic and oxidative enzymes to deconstruct lignocellulose. However, the extent of lignin and cellulose degradation may vary between species and wood type. Here, we combined comparative genomics, transcriptomics and secretome proteomics to identify conserved enzymatic signatures at the onset of wood-decaying activity within the Basidiomycota genus Pycnoporus. We observed a strong conservation in the genome structures and the repertoires of protein-coding genes across the four Pycnoporus species described to date, despite the species having distinct geographic distributions. We further analysed the early response of P. cinnabarinus, P. coccineus and P. sanguineus to diverse (ligno)-cellulosic substrates. We identified a conserved set of enzymes mobilized by the three species for breaking down cellulose, hemicellulose and pectin. The co-occurrence in the exo-proteomes of H2O2-producing enzymes with H2O2-consuming enzymes was a common feature of the three species, although each enzymatic partner displayed independent transcriptional regulation. Finally, cellobiose dehydrogenase-coding genes were systematically co-regulated with at least one AA9 lytic polysaccharide monooxygenase gene, indicative of enzymatic synergy in vivo. This study highlights a conserved core white-rot fungal enzymatic mechanism behind the wood-decaying process.

Funder

French National Agency for Research

Publisher

Oxford University Press (OUP)

Subject

Genetics,Molecular Biology,General Medicine

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