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Aromatic inhibitors derived from ammonia-pretreated lignocellulose hinder bacterial ethanologenesis by activating regulatory circuits controlling inhibitor efflux and detoxification

Efficient microbial conversion of lignocellulosic hydrolysates to biofuels is a key barrier to the economically viable deployment of lignocellulosic biofuels. A chief contributor to this barrier is the impact on microbial processes and energy metabolism of lignocellulose-derived inhibitors, includin...

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Autores principales: Keating, David H., Zhang, Yaoping, Ong, Irene M., McIlwain, Sean, Morales, Eduardo H., Grass, Jeffrey A., Tremaine, Mary, Bothfeld, William, Higbee, Alan, Ulbrich, Arne, Balloon, Allison J., Westphall, Michael S., Aldrich, Josh, Lipton, Mary S., Kim, Joonhoon, Moskvin, Oleg V., Bukhman, Yury V., Coon, Joshua J., Kiley, Patricia J., Bates, Donna M., Landick, Robert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4132294/
https://www.ncbi.nlm.nih.gov/pubmed/25177315
http://dx.doi.org/10.3389/fmicb.2014.00402
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author Keating, David H.
Zhang, Yaoping
Ong, Irene M.
McIlwain, Sean
Morales, Eduardo H.
Grass, Jeffrey A.
Tremaine, Mary
Bothfeld, William
Higbee, Alan
Ulbrich, Arne
Balloon, Allison J.
Westphall, Michael S.
Aldrich, Josh
Lipton, Mary S.
Kim, Joonhoon
Moskvin, Oleg V.
Bukhman, Yury V.
Coon, Joshua J.
Kiley, Patricia J.
Bates, Donna M.
Landick, Robert
author_facet Keating, David H.
Zhang, Yaoping
Ong, Irene M.
McIlwain, Sean
Morales, Eduardo H.
Grass, Jeffrey A.
Tremaine, Mary
Bothfeld, William
Higbee, Alan
Ulbrich, Arne
Balloon, Allison J.
Westphall, Michael S.
Aldrich, Josh
Lipton, Mary S.
Kim, Joonhoon
Moskvin, Oleg V.
Bukhman, Yury V.
Coon, Joshua J.
Kiley, Patricia J.
Bates, Donna M.
Landick, Robert
author_sort Keating, David H.
collection PubMed
description Efficient microbial conversion of lignocellulosic hydrolysates to biofuels is a key barrier to the economically viable deployment of lignocellulosic biofuels. A chief contributor to this barrier is the impact on microbial processes and energy metabolism of lignocellulose-derived inhibitors, including phenolic carboxylates, phenolic amides (for ammonia-pretreated biomass), phenolic aldehydes, and furfurals. To understand the bacterial pathways induced by inhibitors present in ammonia-pretreated biomass hydrolysates, which are less well studied than acid-pretreated biomass hydrolysates, we developed and exploited synthetic mimics of ammonia-pretreated corn stover hydrolysate (ACSH). To determine regulatory responses to the inhibitors normally present in ACSH, we measured transcript and protein levels in an Escherichia coli ethanologen using RNA-seq and quantitative proteomics during fermentation to ethanol of synthetic hydrolysates containing or lacking the inhibitors. Our study identified four major regulators mediating these responses, the MarA/SoxS/Rob network, AaeR, FrmR, and YqhC. Induction of these regulons was correlated with a reduced rate of ethanol production, buildup of pyruvate, depletion of ATP and NAD(P)H, and an inhibition of xylose conversion. The aromatic aldehyde inhibitor 5-hydroxymethylfurfural appeared to be reduced to its alcohol form by the ethanologen during fermentation, whereas phenolic acid and amide inhibitors were not metabolized. Together, our findings establish that the major regulatory responses to lignocellulose-derived inhibitors are mediated by transcriptional rather than translational regulators, suggest that energy consumed for inhibitor efflux and detoxification may limit biofuel production, and identify a network of regulators for future synthetic biology efforts.
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spelling pubmed-41322942014-08-29 Aromatic inhibitors derived from ammonia-pretreated lignocellulose hinder bacterial ethanologenesis by activating regulatory circuits controlling inhibitor efflux and detoxification Keating, David H. Zhang, Yaoping Ong, Irene M. McIlwain, Sean Morales, Eduardo H. Grass, Jeffrey A. Tremaine, Mary Bothfeld, William Higbee, Alan Ulbrich, Arne Balloon, Allison J. Westphall, Michael S. Aldrich, Josh Lipton, Mary S. Kim, Joonhoon Moskvin, Oleg V. Bukhman, Yury V. Coon, Joshua J. Kiley, Patricia J. Bates, Donna M. Landick, Robert Front Microbiol Microbiology Efficient microbial conversion of lignocellulosic hydrolysates to biofuels is a key barrier to the economically viable deployment of lignocellulosic biofuels. A chief contributor to this barrier is the impact on microbial processes and energy metabolism of lignocellulose-derived inhibitors, including phenolic carboxylates, phenolic amides (for ammonia-pretreated biomass), phenolic aldehydes, and furfurals. To understand the bacterial pathways induced by inhibitors present in ammonia-pretreated biomass hydrolysates, which are less well studied than acid-pretreated biomass hydrolysates, we developed and exploited synthetic mimics of ammonia-pretreated corn stover hydrolysate (ACSH). To determine regulatory responses to the inhibitors normally present in ACSH, we measured transcript and protein levels in an Escherichia coli ethanologen using RNA-seq and quantitative proteomics during fermentation to ethanol of synthetic hydrolysates containing or lacking the inhibitors. Our study identified four major regulators mediating these responses, the MarA/SoxS/Rob network, AaeR, FrmR, and YqhC. Induction of these regulons was correlated with a reduced rate of ethanol production, buildup of pyruvate, depletion of ATP and NAD(P)H, and an inhibition of xylose conversion. The aromatic aldehyde inhibitor 5-hydroxymethylfurfural appeared to be reduced to its alcohol form by the ethanologen during fermentation, whereas phenolic acid and amide inhibitors were not metabolized. Together, our findings establish that the major regulatory responses to lignocellulose-derived inhibitors are mediated by transcriptional rather than translational regulators, suggest that energy consumed for inhibitor efflux and detoxification may limit biofuel production, and identify a network of regulators for future synthetic biology efforts. Frontiers Media S.A. 2014-08-13 /pmc/articles/PMC4132294/ /pubmed/25177315 http://dx.doi.org/10.3389/fmicb.2014.00402 Text en Copyright © 2014 Keating, Zhang, Ong, McIlwain, Morales, Grass, Tremaine, Bothfeld, Higbee, Ulbrich, Balloon, Westphall, Aldrich, Lipton, Kim, Moskvin, Bukhman, Coon, Kiley, Bates and Landick. http://creativecommons.org/licenses/by/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Microbiology
Keating, David H.
Zhang, Yaoping
Ong, Irene M.
McIlwain, Sean
Morales, Eduardo H.
Grass, Jeffrey A.
Tremaine, Mary
Bothfeld, William
Higbee, Alan
Ulbrich, Arne
Balloon, Allison J.
Westphall, Michael S.
Aldrich, Josh
Lipton, Mary S.
Kim, Joonhoon
Moskvin, Oleg V.
Bukhman, Yury V.
Coon, Joshua J.
Kiley, Patricia J.
Bates, Donna M.
Landick, Robert
Aromatic inhibitors derived from ammonia-pretreated lignocellulose hinder bacterial ethanologenesis by activating regulatory circuits controlling inhibitor efflux and detoxification
title Aromatic inhibitors derived from ammonia-pretreated lignocellulose hinder bacterial ethanologenesis by activating regulatory circuits controlling inhibitor efflux and detoxification
title_full Aromatic inhibitors derived from ammonia-pretreated lignocellulose hinder bacterial ethanologenesis by activating regulatory circuits controlling inhibitor efflux and detoxification
title_fullStr Aromatic inhibitors derived from ammonia-pretreated lignocellulose hinder bacterial ethanologenesis by activating regulatory circuits controlling inhibitor efflux and detoxification
title_full_unstemmed Aromatic inhibitors derived from ammonia-pretreated lignocellulose hinder bacterial ethanologenesis by activating regulatory circuits controlling inhibitor efflux and detoxification
title_short Aromatic inhibitors derived from ammonia-pretreated lignocellulose hinder bacterial ethanologenesis by activating regulatory circuits controlling inhibitor efflux and detoxification
title_sort aromatic inhibitors derived from ammonia-pretreated lignocellulose hinder bacterial ethanologenesis by activating regulatory circuits controlling inhibitor efflux and detoxification
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4132294/
https://www.ncbi.nlm.nih.gov/pubmed/25177315
http://dx.doi.org/10.3389/fmicb.2014.00402
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