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Characterization of two family AA9 LPMOs from Aspergillus tamarii with distinct activities on xyloglucan reveals structural differences linked to cleavage specificity

Aspergillus tamarii grows abundantly in naturally composting waste fibers of the textile industry and has a great potential in biomass decomposition. Amongst the key (hemi)cellulose-active enzymes in the secretomes of biomass-degrading fungi are the lytic polysaccharide monooxygenases (LPMOs). By ca...

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Autores principales: Monclaro, Antonielle V., Petrović, Dejan M., Alves, Gabriel S. C., Costa, Marcos M. C., Midorikawa, Glaucia E. O., Miller, Robert N. G., Filho, Edivaldo X. F., Eijsink, Vincent G. H., Várnai, Anikó
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7343150/
https://www.ncbi.nlm.nih.gov/pubmed/32640001
http://dx.doi.org/10.1371/journal.pone.0235642
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author Monclaro, Antonielle V.
Petrović, Dejan M.
Alves, Gabriel S. C.
Costa, Marcos M. C.
Midorikawa, Glaucia E. O.
Miller, Robert N. G.
Filho, Edivaldo X. F.
Eijsink, Vincent G. H.
Várnai, Anikó
author_facet Monclaro, Antonielle V.
Petrović, Dejan M.
Alves, Gabriel S. C.
Costa, Marcos M. C.
Midorikawa, Glaucia E. O.
Miller, Robert N. G.
Filho, Edivaldo X. F.
Eijsink, Vincent G. H.
Várnai, Anikó
author_sort Monclaro, Antonielle V.
collection PubMed
description Aspergillus tamarii grows abundantly in naturally composting waste fibers of the textile industry and has a great potential in biomass decomposition. Amongst the key (hemi)cellulose-active enzymes in the secretomes of biomass-degrading fungi are the lytic polysaccharide monooxygenases (LPMOs). By catalyzing oxidative cleavage of glycoside bonds, LPMOs promote the activity of other lignocellulose-degrading enzymes. Here, we analyzed the catalytic potential of two of the seven AA9-type LPMOs that were detected in recently published transcriptome data for A. tamarii, namely AtAA9A and AtAA9B. Analysis of products generated from cellulose revealed that AtAA9A is a C4-oxidizing enzyme, whereas AtAA9B yielded a mixture of C1- and C4-oxidized products. AtAA9A was also active on cellopentaose and cellohexaose. Both enzymes also cleaved the β-(1→4)-glucan backbone of tamarind xyloglucan, but with different cleavage patterns. AtAA9A cleaved the xyloglucan backbone only next to unsubstituted glucosyl units, whereas AtAA9B yielded product profiles indicating that it can cleave the xyloglucan backbone irrespective of substitutions. Building on these new results and on the expanding catalog of xyloglucan- and oligosaccharide-active AA9 LPMOs, we discuss possible structural properties that could underlie the observed functional differences. The results corroborate evidence that filamentous fungi have evolved AA9 LPMOs with distinct substrate specificities and regioselectivities, which likely have complementary functions during biomass degradation.
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spelling pubmed-73431502020-07-17 Characterization of two family AA9 LPMOs from Aspergillus tamarii with distinct activities on xyloglucan reveals structural differences linked to cleavage specificity Monclaro, Antonielle V. Petrović, Dejan M. Alves, Gabriel S. C. Costa, Marcos M. C. Midorikawa, Glaucia E. O. Miller, Robert N. G. Filho, Edivaldo X. F. Eijsink, Vincent G. H. Várnai, Anikó PLoS One Research Article Aspergillus tamarii grows abundantly in naturally composting waste fibers of the textile industry and has a great potential in biomass decomposition. Amongst the key (hemi)cellulose-active enzymes in the secretomes of biomass-degrading fungi are the lytic polysaccharide monooxygenases (LPMOs). By catalyzing oxidative cleavage of glycoside bonds, LPMOs promote the activity of other lignocellulose-degrading enzymes. Here, we analyzed the catalytic potential of two of the seven AA9-type LPMOs that were detected in recently published transcriptome data for A. tamarii, namely AtAA9A and AtAA9B. Analysis of products generated from cellulose revealed that AtAA9A is a C4-oxidizing enzyme, whereas AtAA9B yielded a mixture of C1- and C4-oxidized products. AtAA9A was also active on cellopentaose and cellohexaose. Both enzymes also cleaved the β-(1→4)-glucan backbone of tamarind xyloglucan, but with different cleavage patterns. AtAA9A cleaved the xyloglucan backbone only next to unsubstituted glucosyl units, whereas AtAA9B yielded product profiles indicating that it can cleave the xyloglucan backbone irrespective of substitutions. Building on these new results and on the expanding catalog of xyloglucan- and oligosaccharide-active AA9 LPMOs, we discuss possible structural properties that could underlie the observed functional differences. The results corroborate evidence that filamentous fungi have evolved AA9 LPMOs with distinct substrate specificities and regioselectivities, which likely have complementary functions during biomass degradation. Public Library of Science 2020-07-08 /pmc/articles/PMC7343150/ /pubmed/32640001 http://dx.doi.org/10.1371/journal.pone.0235642 Text en © 2020 Monclaro 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Monclaro, Antonielle V.
Petrović, Dejan M.
Alves, Gabriel S. C.
Costa, Marcos M. C.
Midorikawa, Glaucia E. O.
Miller, Robert N. G.
Filho, Edivaldo X. F.
Eijsink, Vincent G. H.
Várnai, Anikó
Characterization of two family AA9 LPMOs from Aspergillus tamarii with distinct activities on xyloglucan reveals structural differences linked to cleavage specificity
title Characterization of two family AA9 LPMOs from Aspergillus tamarii with distinct activities on xyloglucan reveals structural differences linked to cleavage specificity
title_full Characterization of two family AA9 LPMOs from Aspergillus tamarii with distinct activities on xyloglucan reveals structural differences linked to cleavage specificity
title_fullStr Characterization of two family AA9 LPMOs from Aspergillus tamarii with distinct activities on xyloglucan reveals structural differences linked to cleavage specificity
title_full_unstemmed Characterization of two family AA9 LPMOs from Aspergillus tamarii with distinct activities on xyloglucan reveals structural differences linked to cleavage specificity
title_short Characterization of two family AA9 LPMOs from Aspergillus tamarii with distinct activities on xyloglucan reveals structural differences linked to cleavage specificity
title_sort characterization of two family aa9 lpmos from aspergillus tamarii with distinct activities on xyloglucan reveals structural differences linked to cleavage specificity
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7343150/
https://www.ncbi.nlm.nih.gov/pubmed/32640001
http://dx.doi.org/10.1371/journal.pone.0235642
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