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Discovery of Microorganisms and Enzymes Involved in High-Solids Decomposition of Rice Straw Using Metagenomic Analyses

High-solids incubations were performed to enrich for microbial communities and enzymes that decompose rice straw under mesophilic (35°C) and thermophilic (55°C) conditions. Thermophilic enrichments yielded a community that was 7.5 times more metabolically active on rice straw than mesophilic enrichm...

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Autores principales: Reddy, Amitha P., Simmons, Christopher W., D’haeseleer, Patrik, Khudyakov, Jane, Burd, Helcio, Hadi, Masood, Simmons, Blake A., Singer, Steven W., Thelen, Michael P., VanderGheynst, Jean S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3808287/
https://www.ncbi.nlm.nih.gov/pubmed/24205054
http://dx.doi.org/10.1371/journal.pone.0077985
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author Reddy, Amitha P.
Simmons, Christopher W.
D’haeseleer, Patrik
Khudyakov, Jane
Burd, Helcio
Hadi, Masood
Simmons, Blake A.
Singer, Steven W.
Thelen, Michael P.
VanderGheynst, Jean S.
author_facet Reddy, Amitha P.
Simmons, Christopher W.
D’haeseleer, Patrik
Khudyakov, Jane
Burd, Helcio
Hadi, Masood
Simmons, Blake A.
Singer, Steven W.
Thelen, Michael P.
VanderGheynst, Jean S.
author_sort Reddy, Amitha P.
collection PubMed
description High-solids incubations were performed to enrich for microbial communities and enzymes that decompose rice straw under mesophilic (35°C) and thermophilic (55°C) conditions. Thermophilic enrichments yielded a community that was 7.5 times more metabolically active on rice straw than mesophilic enrichments. Extracted xylanase and endoglucanse activities were also 2.6 and 13.4 times greater, respectively, for thermophilic enrichments. Metagenome sequencing was performed on enriched communities to determine community composition and mine for genes encoding lignocellulolytic enzymes. Proteobacteria were found to dominate the mesophilic community while Actinobacteria were most abundant in the thermophilic community. Analysis of protein family representation in each metagenome indicated that cellobiohydrolases containing carbohydrate binding module 2 (CBM2) were significantly overrepresented in the thermophilic community. Micromonospora, a member of Actinobacteria, primarily housed these genes in the thermophilic community. In light of these findings, Micromonospora and other closely related Actinobacteria genera appear to be promising sources of thermophilic lignocellulolytic enzymes for rice straw deconstruction under high-solids conditions. Furthermore, these discoveries warrant future research to determine if exoglucanases with CBM2 represent thermostable enzymes tolerant to the process conditions expected to be encountered during industrial biofuel production.
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spelling pubmed-38082872013-11-07 Discovery of Microorganisms and Enzymes Involved in High-Solids Decomposition of Rice Straw Using Metagenomic Analyses Reddy, Amitha P. Simmons, Christopher W. D’haeseleer, Patrik Khudyakov, Jane Burd, Helcio Hadi, Masood Simmons, Blake A. Singer, Steven W. Thelen, Michael P. VanderGheynst, Jean S. PLoS One Research Article High-solids incubations were performed to enrich for microbial communities and enzymes that decompose rice straw under mesophilic (35°C) and thermophilic (55°C) conditions. Thermophilic enrichments yielded a community that was 7.5 times more metabolically active on rice straw than mesophilic enrichments. Extracted xylanase and endoglucanse activities were also 2.6 and 13.4 times greater, respectively, for thermophilic enrichments. Metagenome sequencing was performed on enriched communities to determine community composition and mine for genes encoding lignocellulolytic enzymes. Proteobacteria were found to dominate the mesophilic community while Actinobacteria were most abundant in the thermophilic community. Analysis of protein family representation in each metagenome indicated that cellobiohydrolases containing carbohydrate binding module 2 (CBM2) were significantly overrepresented in the thermophilic community. Micromonospora, a member of Actinobacteria, primarily housed these genes in the thermophilic community. In light of these findings, Micromonospora and other closely related Actinobacteria genera appear to be promising sources of thermophilic lignocellulolytic enzymes for rice straw deconstruction under high-solids conditions. Furthermore, these discoveries warrant future research to determine if exoglucanases with CBM2 represent thermostable enzymes tolerant to the process conditions expected to be encountered during industrial biofuel production. Public Library of Science 2013-10-25 /pmc/articles/PMC3808287/ /pubmed/24205054 http://dx.doi.org/10.1371/journal.pone.0077985 Text en © 2013 Reddy et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Reddy, Amitha P.
Simmons, Christopher W.
D’haeseleer, Patrik
Khudyakov, Jane
Burd, Helcio
Hadi, Masood
Simmons, Blake A.
Singer, Steven W.
Thelen, Michael P.
VanderGheynst, Jean S.
Discovery of Microorganisms and Enzymes Involved in High-Solids Decomposition of Rice Straw Using Metagenomic Analyses
title Discovery of Microorganisms and Enzymes Involved in High-Solids Decomposition of Rice Straw Using Metagenomic Analyses
title_full Discovery of Microorganisms and Enzymes Involved in High-Solids Decomposition of Rice Straw Using Metagenomic Analyses
title_fullStr Discovery of Microorganisms and Enzymes Involved in High-Solids Decomposition of Rice Straw Using Metagenomic Analyses
title_full_unstemmed Discovery of Microorganisms and Enzymes Involved in High-Solids Decomposition of Rice Straw Using Metagenomic Analyses
title_short Discovery of Microorganisms and Enzymes Involved in High-Solids Decomposition of Rice Straw Using Metagenomic Analyses
title_sort discovery of microorganisms and enzymes involved in high-solids decomposition of rice straw using metagenomic analyses
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3808287/
https://www.ncbi.nlm.nih.gov/pubmed/24205054
http://dx.doi.org/10.1371/journal.pone.0077985
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