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Modeling of pyruvate decarboxylases from ethanol producing bacteria
Pyruvate decarboxylase (PDC) is a key enzyme in homoethanol fermentation process, which decarboxylates 2-keto acid pyruvate into acetaldehyde and carbon dioxide. PDC enzymes from potential ethanol-producing bacteria such as Zymomonas mobilis, Zymobacter palmae and Sarcina ventriculi have different K...
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Formato: | Texto |
Lenguaje: | English |
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Biomedical Informatics Publishing Group
2010
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2951667/ https://www.ncbi.nlm.nih.gov/pubmed/20975902 |
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author | Shrestha, Anjala Dhamwichukorn, Srisuda Jenwitheesuk, Ekachai |
author_facet | Shrestha, Anjala Dhamwichukorn, Srisuda Jenwitheesuk, Ekachai |
author_sort | Shrestha, Anjala |
collection | PubMed |
description | Pyruvate decarboxylase (PDC) is a key enzyme in homoethanol fermentation process, which decarboxylates 2-keto acid pyruvate into acetaldehyde and carbon dioxide. PDC enzymes from potential ethanol-producing bacteria such as Zymomonas mobilis, Zymobacter palmae and Sarcina ventriculi have different K(m) and k(cat) values for the substrate pyruvate at their respective optimum pH. In this study, the putative three-dimensional structures of PDC dimer of Z. palmae PDC and S. ventriculi PDC were generated based on the X-ray crystal structures of Z. mobilis PDC, Saccharomyces cerevisiae PDC form-A and Enterobacter cloacae indolepyruvate decarboxylase in order to compare the quaternary structures of these bacterial PDCs with respect to enzyme-substrate interactions, and subunit-subunit interfaces that might be related to the different biochemical characteristics. The PROCHECK scores for both models were within recommended intervals. The generated models are similar to the X-ray crystal structure of Z. mobilis PDC in terms of binding modes of the cofactor, the position of Mg(2+), and the amino acids that form the active sites. However, subunit-subunit interface analysis showed lower H-bonding in both models compared with X-ray crystal structure of Z. mobilis PDC, suggesting a smaller interface area and the possibility of conformational change upon substrate binding in both models. Both models have predicted lower affinity towards branched and aromatic 2-keto acids, which correlated with the molecular volumes of the ligands. The models shed valuable information necessary for further improvement of PDC enzymes for industrial production of ethanol and other products. |
format | Text |
id | pubmed-2951667 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2010 |
publisher | Biomedical Informatics Publishing Group |
record_format | MEDLINE/PubMed |
spelling | pubmed-29516672010-10-25 Modeling of pyruvate decarboxylases from ethanol producing bacteria Shrestha, Anjala Dhamwichukorn, Srisuda Jenwitheesuk, Ekachai Bioinformation Hypothesis Pyruvate decarboxylase (PDC) is a key enzyme in homoethanol fermentation process, which decarboxylates 2-keto acid pyruvate into acetaldehyde and carbon dioxide. PDC enzymes from potential ethanol-producing bacteria such as Zymomonas mobilis, Zymobacter palmae and Sarcina ventriculi have different K(m) and k(cat) values for the substrate pyruvate at their respective optimum pH. In this study, the putative three-dimensional structures of PDC dimer of Z. palmae PDC and S. ventriculi PDC were generated based on the X-ray crystal structures of Z. mobilis PDC, Saccharomyces cerevisiae PDC form-A and Enterobacter cloacae indolepyruvate decarboxylase in order to compare the quaternary structures of these bacterial PDCs with respect to enzyme-substrate interactions, and subunit-subunit interfaces that might be related to the different biochemical characteristics. The PROCHECK scores for both models were within recommended intervals. The generated models are similar to the X-ray crystal structure of Z. mobilis PDC in terms of binding modes of the cofactor, the position of Mg(2+), and the amino acids that form the active sites. However, subunit-subunit interface analysis showed lower H-bonding in both models compared with X-ray crystal structure of Z. mobilis PDC, suggesting a smaller interface area and the possibility of conformational change upon substrate binding in both models. Both models have predicted lower affinity towards branched and aromatic 2-keto acids, which correlated with the molecular volumes of the ligands. The models shed valuable information necessary for further improvement of PDC enzymes for industrial production of ethanol and other products. Biomedical Informatics Publishing Group 2010-02-28 /pmc/articles/PMC2951667/ /pubmed/20975902 Text en © 2010 Biomedical Informatics Publishing Group This is an open-access article, which permits unrestricted use, distribution, and reproduction in any medium, for non-commercial purposes, provided the original author and source are credited. |
spellingShingle | Hypothesis Shrestha, Anjala Dhamwichukorn, Srisuda Jenwitheesuk, Ekachai Modeling of pyruvate decarboxylases from ethanol producing bacteria |
title | Modeling of pyruvate decarboxylases from ethanol producing bacteria |
title_full | Modeling of pyruvate decarboxylases from ethanol producing bacteria |
title_fullStr | Modeling of pyruvate decarboxylases from ethanol producing bacteria |
title_full_unstemmed | Modeling of pyruvate decarboxylases from ethanol producing bacteria |
title_short | Modeling of pyruvate decarboxylases from ethanol producing bacteria |
title_sort | modeling of pyruvate decarboxylases from ethanol producing bacteria |
topic | Hypothesis |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2951667/ https://www.ncbi.nlm.nih.gov/pubmed/20975902 |
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