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Proteomic Dissection of the Cellulolytic Machineries Used by Soil-Dwelling Bacteroidetes

Bacteria of the phylum Bacteroidetes are regarded as highly efficient carbohydrate metabolizers, but most species are limited to (semi)soluble glycans. The soil Bacteroidetes species Cytophaga hutchinsonii and Sporocytophaga myxococcoides have long been known as efficient cellulose metabolizers, but...

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Autores principales: Taillefer, Marcel, Arntzen, Magnus Ø., Henrissat, Bernard, Pope, Phillip B., Larsbrink, Johan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6247017/
https://www.ncbi.nlm.nih.gov/pubmed/30505945
http://dx.doi.org/10.1128/mSystems.00240-18
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author Taillefer, Marcel
Arntzen, Magnus Ø.
Henrissat, Bernard
Pope, Phillip B.
Larsbrink, Johan
author_facet Taillefer, Marcel
Arntzen, Magnus Ø.
Henrissat, Bernard
Pope, Phillip B.
Larsbrink, Johan
author_sort Taillefer, Marcel
collection PubMed
description Bacteria of the phylum Bacteroidetes are regarded as highly efficient carbohydrate metabolizers, but most species are limited to (semi)soluble glycans. The soil Bacteroidetes species Cytophaga hutchinsonii and Sporocytophaga myxococcoides have long been known as efficient cellulose metabolizers, but neither species conforms to known cellulolytic mechanisms. Both species require contact with their substrate but do not encode cellulosomal systems of cell surface-attached enzyme complexes or the polysaccharide utilization loci found in many other Bacteroidetes species. Here, we have fractionated the cellular compartments of each species from cultures growing on crystalline cellulose and pectin, respectively, and analyzed them using label-free quantitative proteomics as well as enzymatic activity assays. The combined results enabled us to highlight enzymes likely to be important for cellulose conversion and to infer their cellular localization. The combined proteomes represent a wide array of putative cellulolytic enzymes and indicate specific and yet highly redundant mechanisms for cellulose degradation. Of the putative endoglucanases, especially enzymes of hitherto-unstudied glycoside hydrolase family, 8 were abundant, indicating an overlooked important role during cellulose metabolism. Furthermore, both species generated a large number of abundant hypothetical proteins during cellulose conversion, providing a treasure trove of targets for future enzymology studies. IMPORTANCE Cellulose is the most abundant renewable polymer on earth, but its recalcitrance limits highly efficient conversion methods for energy-related and material applications. Though microbial cellulose conversion has been studied for decades, recent advances showcased that large knowledge gaps still exist. Bacteria of the phylum Bacteroidetes are regarded as highly efficient carbohydrate metabolizers, but most species are limited to (semi)soluble glycans. A few species, including the soil bacteria C. hutchinsonii and S. myxococcoides, are regarded as cellulose specialists, but their cellulolytic mechanisms are not understood, as they do not conform to the current models for enzymatic cellulose turnover. By unraveling the proteome setups of these two bacteria during growth on both crystalline cellulose and pectin, we have taken a significant step forward in understanding their idiosyncratic mode of cellulose conversion. This report provides a plethora of new enzyme targets for improved biomass conversion.
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spelling pubmed-62470172018-11-30 Proteomic Dissection of the Cellulolytic Machineries Used by Soil-Dwelling Bacteroidetes Taillefer, Marcel Arntzen, Magnus Ø. Henrissat, Bernard Pope, Phillip B. Larsbrink, Johan mSystems Research Article Bacteria of the phylum Bacteroidetes are regarded as highly efficient carbohydrate metabolizers, but most species are limited to (semi)soluble glycans. The soil Bacteroidetes species Cytophaga hutchinsonii and Sporocytophaga myxococcoides have long been known as efficient cellulose metabolizers, but neither species conforms to known cellulolytic mechanisms. Both species require contact with their substrate but do not encode cellulosomal systems of cell surface-attached enzyme complexes or the polysaccharide utilization loci found in many other Bacteroidetes species. Here, we have fractionated the cellular compartments of each species from cultures growing on crystalline cellulose and pectin, respectively, and analyzed them using label-free quantitative proteomics as well as enzymatic activity assays. The combined results enabled us to highlight enzymes likely to be important for cellulose conversion and to infer their cellular localization. The combined proteomes represent a wide array of putative cellulolytic enzymes and indicate specific and yet highly redundant mechanisms for cellulose degradation. Of the putative endoglucanases, especially enzymes of hitherto-unstudied glycoside hydrolase family, 8 were abundant, indicating an overlooked important role during cellulose metabolism. Furthermore, both species generated a large number of abundant hypothetical proteins during cellulose conversion, providing a treasure trove of targets for future enzymology studies. IMPORTANCE Cellulose is the most abundant renewable polymer on earth, but its recalcitrance limits highly efficient conversion methods for energy-related and material applications. Though microbial cellulose conversion has been studied for decades, recent advances showcased that large knowledge gaps still exist. Bacteria of the phylum Bacteroidetes are regarded as highly efficient carbohydrate metabolizers, but most species are limited to (semi)soluble glycans. A few species, including the soil bacteria C. hutchinsonii and S. myxococcoides, are regarded as cellulose specialists, but their cellulolytic mechanisms are not understood, as they do not conform to the current models for enzymatic cellulose turnover. By unraveling the proteome setups of these two bacteria during growth on both crystalline cellulose and pectin, we have taken a significant step forward in understanding their idiosyncratic mode of cellulose conversion. This report provides a plethora of new enzyme targets for improved biomass conversion. American Society for Microbiology 2018-11-20 /pmc/articles/PMC6247017/ /pubmed/30505945 http://dx.doi.org/10.1128/mSystems.00240-18 Text en Copyright © 2018 Taillefer et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Taillefer, Marcel
Arntzen, Magnus Ø.
Henrissat, Bernard
Pope, Phillip B.
Larsbrink, Johan
Proteomic Dissection of the Cellulolytic Machineries Used by Soil-Dwelling Bacteroidetes
title Proteomic Dissection of the Cellulolytic Machineries Used by Soil-Dwelling Bacteroidetes
title_full Proteomic Dissection of the Cellulolytic Machineries Used by Soil-Dwelling Bacteroidetes
title_fullStr Proteomic Dissection of the Cellulolytic Machineries Used by Soil-Dwelling Bacteroidetes
title_full_unstemmed Proteomic Dissection of the Cellulolytic Machineries Used by Soil-Dwelling Bacteroidetes
title_short Proteomic Dissection of the Cellulolytic Machineries Used by Soil-Dwelling Bacteroidetes
title_sort proteomic dissection of the cellulolytic machineries used by soil-dwelling bacteroidetes
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6247017/
https://www.ncbi.nlm.nih.gov/pubmed/30505945
http://dx.doi.org/10.1128/mSystems.00240-18
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