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Homology modeling of Mycoplasma pneumoniae enolase and its molecular interaction with human plasminogen
Alpha (α)-enolase (e), a glycolytic enzyme, has an alternative role as a surface receptor of several bacteria mediating plasminogen (pg) binding. It is also recognized as a virulence factor of some pathogenic bacteria facilitating plasminogen activation and host cell invasion. A mycoplasmal α-enolas...
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Formato: | Texto |
Lenguaje: | English |
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Biomedical Informatics Publishing Group
2008
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2586135/ https://www.ncbi.nlm.nih.gov/pubmed/19052661 |
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author | Chumchua, Vasunun Pornputtapong, Natapol Thammarongtham, Chinae Meksuriyen, Duangdeun |
author_facet | Chumchua, Vasunun Pornputtapong, Natapol Thammarongtham, Chinae Meksuriyen, Duangdeun |
author_sort | Chumchua, Vasunun |
collection | PubMed |
description | Alpha (α)-enolase (e), a glycolytic enzyme, has an alternative role as a surface receptor of several bacteria mediating plasminogen (pg) binding. It is also recognized as a virulence factor of some pathogenic bacteria facilitating plasminogen activation and host cell invasion. A mycoplasmal α-enolase is also a plasminogen binding protein. Molecular interactions of enolase from Mycoplasma pneumoniae with host plasminogen would be useful for exploring the pathogen-host interaction. In an attempt to identify plasminogen binding sites of M. pneumoniae enolase, homology modeling and docking studies were conducted to obtain modeled structures of the M. pneumoniae enolase-plasminogen complex. The refined model was validated further by standard methods. Molecular docking revealed hydrogen bonding of eLys70-pgTyr50, eAsn165-pgThr66, eAla168-pgGlu21, eAsp17-pgLys70, and eAsn213-pgPro68/pgAsn69. Substantial decreases in accessible surface area (ASA) were observed and in concurrence with hydrogen bond pattern. These findings provide a detailed prediction of key residues that interact at the protein-protein interface. Our theoretical prediction is consistent with known biochemical data. The predicted interaction complex can be of great assistance in understanding structural insights, which is necessary to pathogen and host-component interaction. The ability of M. pneumoniae enolase to bind plasminogen may be indicative of an important role in invasion of this pathogen to host. |
format | Text |
id | pubmed-2586135 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2008 |
publisher | Biomedical Informatics Publishing Group |
record_format | MEDLINE/PubMed |
spelling | pubmed-25861352008-12-03 Homology modeling of Mycoplasma pneumoniae enolase and its molecular interaction with human plasminogen Chumchua, Vasunun Pornputtapong, Natapol Thammarongtham, Chinae Meksuriyen, Duangdeun Bioinformation Hypothesis Alpha (α)-enolase (e), a glycolytic enzyme, has an alternative role as a surface receptor of several bacteria mediating plasminogen (pg) binding. It is also recognized as a virulence factor of some pathogenic bacteria facilitating plasminogen activation and host cell invasion. A mycoplasmal α-enolase is also a plasminogen binding protein. Molecular interactions of enolase from Mycoplasma pneumoniae with host plasminogen would be useful for exploring the pathogen-host interaction. In an attempt to identify plasminogen binding sites of M. pneumoniae enolase, homology modeling and docking studies were conducted to obtain modeled structures of the M. pneumoniae enolase-plasminogen complex. The refined model was validated further by standard methods. Molecular docking revealed hydrogen bonding of eLys70-pgTyr50, eAsn165-pgThr66, eAla168-pgGlu21, eAsp17-pgLys70, and eAsn213-pgPro68/pgAsn69. Substantial decreases in accessible surface area (ASA) were observed and in concurrence with hydrogen bond pattern. These findings provide a detailed prediction of key residues that interact at the protein-protein interface. Our theoretical prediction is consistent with known biochemical data. The predicted interaction complex can be of great assistance in understanding structural insights, which is necessary to pathogen and host-component interaction. The ability of M. pneumoniae enolase to bind plasminogen may be indicative of an important role in invasion of this pathogen to host. Biomedical Informatics Publishing Group 2008-09-08 /pmc/articles/PMC2586135/ /pubmed/19052661 Text en © 2008 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 Chumchua, Vasunun Pornputtapong, Natapol Thammarongtham, Chinae Meksuriyen, Duangdeun Homology modeling of Mycoplasma pneumoniae enolase and its molecular interaction with human plasminogen |
title | Homology modeling of Mycoplasma pneumoniae enolase and its molecular interaction with human plasminogen |
title_full | Homology modeling of Mycoplasma pneumoniae enolase and its molecular interaction with human plasminogen |
title_fullStr | Homology modeling of Mycoplasma pneumoniae enolase and its molecular interaction with human plasminogen |
title_full_unstemmed | Homology modeling of Mycoplasma pneumoniae enolase and its molecular interaction with human plasminogen |
title_short | Homology modeling of Mycoplasma pneumoniae enolase and its molecular interaction with human plasminogen |
title_sort | homology modeling of mycoplasma pneumoniae enolase and its molecular interaction with human plasminogen |
topic | Hypothesis |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2586135/ https://www.ncbi.nlm.nih.gov/pubmed/19052661 |
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