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Crystal structure and functional characterization of a cold-active acetyl xylan esterase (PbAcE) from psychrophilic soil microbe Paenibacillus sp.

Cold-active acetyl xylan esterases allow for reduced bioreactor heating costs in bioenergy production. Here, we isolated and characterized a cold-active acetyl xylan esterase (PbAcE) from the psychrophilic soil microbe Paenibacillus sp. R4. The enzyme hydrolyzes glucose penta-acetate and xylan aceta...

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Autores principales: Park, Sun-Ha, Yoo, Wanki, Lee, Chang Woo, Jeong, Chang Sook, Shin, Seung Chul, Kim, Han-Woo, Park, Hyun, Kim, Kyeong Kyu, Kim, T. Doohun, Lee, Jun Hyuck
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6209228/
https://www.ncbi.nlm.nih.gov/pubmed/30379876
http://dx.doi.org/10.1371/journal.pone.0206260
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author Park, Sun-Ha
Yoo, Wanki
Lee, Chang Woo
Jeong, Chang Sook
Shin, Seung Chul
Kim, Han-Woo
Park, Hyun
Kim, Kyeong Kyu
Kim, T. Doohun
Lee, Jun Hyuck
author_facet Park, Sun-Ha
Yoo, Wanki
Lee, Chang Woo
Jeong, Chang Sook
Shin, Seung Chul
Kim, Han-Woo
Park, Hyun
Kim, Kyeong Kyu
Kim, T. Doohun
Lee, Jun Hyuck
author_sort Park, Sun-Ha
collection PubMed
description Cold-active acetyl xylan esterases allow for reduced bioreactor heating costs in bioenergy production. Here, we isolated and characterized a cold-active acetyl xylan esterase (PbAcE) from the psychrophilic soil microbe Paenibacillus sp. R4. The enzyme hydrolyzes glucose penta-acetate and xylan acetate, reversibly producing acetyl xylan from xylan, and it shows higher activity at 4°C than at 25°C. We solved the crystal structure of PbAcE at 2.1-Å resolution to investigate its active site and the reason for its low-temperature activity. Structural analysis showed that PbAcE forms a hexamer with a central substrate binding tunnel, and the inter-subunit interactions are relatively weak compared with those of its mesophilic and thermophilic homologs. PbAcE also has a shorter loop and different residue composition in the β4–α3 and β5–α4 regions near the substrate binding site. Flexible subunit movements and different active site loop conformations may enable the strong low-temperature activity and broad substrate specificity of PbAcE. In addition, PbAcE was found to have strong activity against antibiotic compound substrates, such as cefotaxime and 7-amino cephalosporanic acid (7-ACA). In conclusion, the PbAcE structure and our biochemical results provide the first example of a cold-active acetyl xylan esterase and a starting template for structure-based protein engineering.
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spelling pubmed-62092282018-11-19 Crystal structure and functional characterization of a cold-active acetyl xylan esterase (PbAcE) from psychrophilic soil microbe Paenibacillus sp. Park, Sun-Ha Yoo, Wanki Lee, Chang Woo Jeong, Chang Sook Shin, Seung Chul Kim, Han-Woo Park, Hyun Kim, Kyeong Kyu Kim, T. Doohun Lee, Jun Hyuck PLoS One Research Article Cold-active acetyl xylan esterases allow for reduced bioreactor heating costs in bioenergy production. Here, we isolated and characterized a cold-active acetyl xylan esterase (PbAcE) from the psychrophilic soil microbe Paenibacillus sp. R4. The enzyme hydrolyzes glucose penta-acetate and xylan acetate, reversibly producing acetyl xylan from xylan, and it shows higher activity at 4°C than at 25°C. We solved the crystal structure of PbAcE at 2.1-Å resolution to investigate its active site and the reason for its low-temperature activity. Structural analysis showed that PbAcE forms a hexamer with a central substrate binding tunnel, and the inter-subunit interactions are relatively weak compared with those of its mesophilic and thermophilic homologs. PbAcE also has a shorter loop and different residue composition in the β4–α3 and β5–α4 regions near the substrate binding site. Flexible subunit movements and different active site loop conformations may enable the strong low-temperature activity and broad substrate specificity of PbAcE. In addition, PbAcE was found to have strong activity against antibiotic compound substrates, such as cefotaxime and 7-amino cephalosporanic acid (7-ACA). In conclusion, the PbAcE structure and our biochemical results provide the first example of a cold-active acetyl xylan esterase and a starting template for structure-based protein engineering. Public Library of Science 2018-10-31 /pmc/articles/PMC6209228/ /pubmed/30379876 http://dx.doi.org/10.1371/journal.pone.0206260 Text en © 2018 Park 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
Park, Sun-Ha
Yoo, Wanki
Lee, Chang Woo
Jeong, Chang Sook
Shin, Seung Chul
Kim, Han-Woo
Park, Hyun
Kim, Kyeong Kyu
Kim, T. Doohun
Lee, Jun Hyuck
Crystal structure and functional characterization of a cold-active acetyl xylan esterase (PbAcE) from psychrophilic soil microbe Paenibacillus sp.
title Crystal structure and functional characterization of a cold-active acetyl xylan esterase (PbAcE) from psychrophilic soil microbe Paenibacillus sp.
title_full Crystal structure and functional characterization of a cold-active acetyl xylan esterase (PbAcE) from psychrophilic soil microbe Paenibacillus sp.
title_fullStr Crystal structure and functional characterization of a cold-active acetyl xylan esterase (PbAcE) from psychrophilic soil microbe Paenibacillus sp.
title_full_unstemmed Crystal structure and functional characterization of a cold-active acetyl xylan esterase (PbAcE) from psychrophilic soil microbe Paenibacillus sp.
title_short Crystal structure and functional characterization of a cold-active acetyl xylan esterase (PbAcE) from psychrophilic soil microbe Paenibacillus sp.
title_sort crystal structure and functional characterization of a cold-active acetyl xylan esterase (pbace) from psychrophilic soil microbe paenibacillus sp.
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6209228/
https://www.ncbi.nlm.nih.gov/pubmed/30379876
http://dx.doi.org/10.1371/journal.pone.0206260
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