Cargando…

Integrative visual omics of the white-rot fungus Polyporus brumalis exposes the biotechnological potential of its oxidative enzymes for delignifying raw plant biomass

BACKGROUND: Plant biomass conversion for green chemistry and bio-energy is a current challenge for a modern sustainable bioeconomy. The complex polyaromatic lignin polymers in raw biomass feedstocks (i.e., agriculture and forestry by-products) are major obstacles for biomass conversions. White-rot f...

Descripción completa

Detalles Bibliográficos
Autores principales: Miyauchi, Shingo, Rancon, Anaïs, Drula, Elodie, Hage, Hayat, Chaduli, Delphine, Favel, Anne, Grisel, Sacha, Henrissat, Bernard, Herpoël-Gimbert, Isabelle, Ruiz-Dueñas, Francisco J., Chevret, Didier, Hainaut, Matthieu, Lin, Junyan, Wang, Mei, Pangilinan, Jasmyn, Lipzen, Anna, Lesage-Meessen, Laurence, Navarro, David, Riley, Robert, Grigoriev, Igor V., Zhou, Simeng, Raouche, Sana, Rosso, Marie-Noëlle
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6055342/
https://www.ncbi.nlm.nih.gov/pubmed/30061923
http://dx.doi.org/10.1186/s13068-018-1198-5
_version_ 1783341153083457536
author Miyauchi, Shingo
Rancon, Anaïs
Drula, Elodie
Hage, Hayat
Chaduli, Delphine
Favel, Anne
Grisel, Sacha
Henrissat, Bernard
Herpoël-Gimbert, Isabelle
Ruiz-Dueñas, Francisco J.
Chevret, Didier
Hainaut, Matthieu
Lin, Junyan
Wang, Mei
Pangilinan, Jasmyn
Lipzen, Anna
Lesage-Meessen, Laurence
Navarro, David
Riley, Robert
Grigoriev, Igor V.
Zhou, Simeng
Raouche, Sana
Rosso, Marie-Noëlle
author_facet Miyauchi, Shingo
Rancon, Anaïs
Drula, Elodie
Hage, Hayat
Chaduli, Delphine
Favel, Anne
Grisel, Sacha
Henrissat, Bernard
Herpoël-Gimbert, Isabelle
Ruiz-Dueñas, Francisco J.
Chevret, Didier
Hainaut, Matthieu
Lin, Junyan
Wang, Mei
Pangilinan, Jasmyn
Lipzen, Anna
Lesage-Meessen, Laurence
Navarro, David
Riley, Robert
Grigoriev, Igor V.
Zhou, Simeng
Raouche, Sana
Rosso, Marie-Noëlle
author_sort Miyauchi, Shingo
collection PubMed
description BACKGROUND: Plant biomass conversion for green chemistry and bio-energy is a current challenge for a modern sustainable bioeconomy. The complex polyaromatic lignin polymers in raw biomass feedstocks (i.e., agriculture and forestry by-products) are major obstacles for biomass conversions. White-rot fungi are wood decayers able to degrade all polymers from lignocellulosic biomass including cellulose, hemicelluloses, and lignin. The white-rot fungus Polyporus brumalis efficiently breaks down lignin and is regarded as having a high potential for the initial treatment of plant biomass in its conversion to bio-energy. Here, we describe the extraordinary ability of P. brumalis for lignin degradation using its enzymatic arsenal to break down wheat straw, a lignocellulosic substrate that is considered as a biomass feedstock worldwide. RESULTS: We performed integrative multi-omics analyses by combining data from the fungal genome, transcriptomes, and secretomes. We found that the fungus possessed an unexpectedly large set of genes coding for Class II peroxidases involved in lignin degradation (19 genes) and GMC oxidoreductases/dehydrogenases involved in generating the hydrogen peroxide required for lignin peroxidase activity and promoting redox cycling of the fungal enzymes involved in oxidative cleavage of lignocellulose polymers (36 genes). The examination of interrelated multi-omics patterns revealed that eleven Class II Peroxidases were secreted by the fungus during fermentation and eight of them where tightly co-regulated with redox cycling enzymatic partners. CONCLUSION: As a peculiar feature of P. brumalis, we observed gene family extension, up-regulation and secretion of an abundant set of versatile peroxidases and manganese peroxidases, compared with other Polyporales species. The orchestrated secretion of an abundant set of these delignifying enzymes and redox cycling enzymatic partners could contribute to the delignification capabilities of the fungus. Our findings highlight the diversity of wood decay mechanisms present in Polyporales and the potentiality of further exploring this taxonomic order for enzymatic functions of biotechnological interest. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (10.1186/s13068-018-1198-5) contains supplementary material, which is available to authorized users.
format Online
Article
Text
id pubmed-6055342
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-60553422018-07-30 Integrative visual omics of the white-rot fungus Polyporus brumalis exposes the biotechnological potential of its oxidative enzymes for delignifying raw plant biomass Miyauchi, Shingo Rancon, Anaïs Drula, Elodie Hage, Hayat Chaduli, Delphine Favel, Anne Grisel, Sacha Henrissat, Bernard Herpoël-Gimbert, Isabelle Ruiz-Dueñas, Francisco J. Chevret, Didier Hainaut, Matthieu Lin, Junyan Wang, Mei Pangilinan, Jasmyn Lipzen, Anna Lesage-Meessen, Laurence Navarro, David Riley, Robert Grigoriev, Igor V. Zhou, Simeng Raouche, Sana Rosso, Marie-Noëlle Biotechnol Biofuels Research BACKGROUND: Plant biomass conversion for green chemistry and bio-energy is a current challenge for a modern sustainable bioeconomy. The complex polyaromatic lignin polymers in raw biomass feedstocks (i.e., agriculture and forestry by-products) are major obstacles for biomass conversions. White-rot fungi are wood decayers able to degrade all polymers from lignocellulosic biomass including cellulose, hemicelluloses, and lignin. The white-rot fungus Polyporus brumalis efficiently breaks down lignin and is regarded as having a high potential for the initial treatment of plant biomass in its conversion to bio-energy. Here, we describe the extraordinary ability of P. brumalis for lignin degradation using its enzymatic arsenal to break down wheat straw, a lignocellulosic substrate that is considered as a biomass feedstock worldwide. RESULTS: We performed integrative multi-omics analyses by combining data from the fungal genome, transcriptomes, and secretomes. We found that the fungus possessed an unexpectedly large set of genes coding for Class II peroxidases involved in lignin degradation (19 genes) and GMC oxidoreductases/dehydrogenases involved in generating the hydrogen peroxide required for lignin peroxidase activity and promoting redox cycling of the fungal enzymes involved in oxidative cleavage of lignocellulose polymers (36 genes). The examination of interrelated multi-omics patterns revealed that eleven Class II Peroxidases were secreted by the fungus during fermentation and eight of them where tightly co-regulated with redox cycling enzymatic partners. CONCLUSION: As a peculiar feature of P. brumalis, we observed gene family extension, up-regulation and secretion of an abundant set of versatile peroxidases and manganese peroxidases, compared with other Polyporales species. The orchestrated secretion of an abundant set of these delignifying enzymes and redox cycling enzymatic partners could contribute to the delignification capabilities of the fungus. Our findings highlight the diversity of wood decay mechanisms present in Polyporales and the potentiality of further exploring this taxonomic order for enzymatic functions of biotechnological interest. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (10.1186/s13068-018-1198-5) contains supplementary material, which is available to authorized users. BioMed Central 2018-07-23 /pmc/articles/PMC6055342/ /pubmed/30061923 http://dx.doi.org/10.1186/s13068-018-1198-5 Text en © The Author(s) 2018 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research
Miyauchi, Shingo
Rancon, Anaïs
Drula, Elodie
Hage, Hayat
Chaduli, Delphine
Favel, Anne
Grisel, Sacha
Henrissat, Bernard
Herpoël-Gimbert, Isabelle
Ruiz-Dueñas, Francisco J.
Chevret, Didier
Hainaut, Matthieu
Lin, Junyan
Wang, Mei
Pangilinan, Jasmyn
Lipzen, Anna
Lesage-Meessen, Laurence
Navarro, David
Riley, Robert
Grigoriev, Igor V.
Zhou, Simeng
Raouche, Sana
Rosso, Marie-Noëlle
Integrative visual omics of the white-rot fungus Polyporus brumalis exposes the biotechnological potential of its oxidative enzymes for delignifying raw plant biomass
title Integrative visual omics of the white-rot fungus Polyporus brumalis exposes the biotechnological potential of its oxidative enzymes for delignifying raw plant biomass
title_full Integrative visual omics of the white-rot fungus Polyporus brumalis exposes the biotechnological potential of its oxidative enzymes for delignifying raw plant biomass
title_fullStr Integrative visual omics of the white-rot fungus Polyporus brumalis exposes the biotechnological potential of its oxidative enzymes for delignifying raw plant biomass
title_full_unstemmed Integrative visual omics of the white-rot fungus Polyporus brumalis exposes the biotechnological potential of its oxidative enzymes for delignifying raw plant biomass
title_short Integrative visual omics of the white-rot fungus Polyporus brumalis exposes the biotechnological potential of its oxidative enzymes for delignifying raw plant biomass
title_sort integrative visual omics of the white-rot fungus polyporus brumalis exposes the biotechnological potential of its oxidative enzymes for delignifying raw plant biomass
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6055342/
https://www.ncbi.nlm.nih.gov/pubmed/30061923
http://dx.doi.org/10.1186/s13068-018-1198-5
work_keys_str_mv AT miyauchishingo integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT ranconanais integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT drulaelodie integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT hagehayat integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT chadulidelphine integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT favelanne integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT griselsacha integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT henrissatbernard integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT herpoelgimbertisabelle integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT ruizduenasfranciscoj integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT chevretdidier integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT hainautmatthieu integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT linjunyan integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT wangmei integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT pangilinanjasmyn integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT lipzenanna integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT lesagemeessenlaurence integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT navarrodavid integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT rileyrobert integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT grigorievigorv integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT zhousimeng integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT raouchesana integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass
AT rossomarienoelle integrativevisualomicsofthewhiterotfunguspolyporusbrumalisexposesthebiotechnologicalpotentialofitsoxidativeenzymesfordelignifyingrawplantbiomass