Cargando…
Kinetic Characterization and Phosphoregulation of the Francisella tularensis 1-Deoxy-D-Xylulose 5-Phosphate Reductoisomerase (MEP Synthase)
Deliberate and natural outbreaks of infectious disease underscore the necessity of effective vaccines and antimicrobial/antiviral therapeutics. The prevalence of antibiotic resistant strains and the ease by which antibiotic resistant bacteria can be intentionally engineered further highlights the ne...
Autores principales: | , , , , , , , |
---|---|
Formato: | Texto |
Lenguaje: | English |
Publicado: |
Public Library of Science
2009
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2788227/ https://www.ncbi.nlm.nih.gov/pubmed/20011597 http://dx.doi.org/10.1371/journal.pone.0008288 |
_version_ | 1782174949508644864 |
---|---|
author | Jawaid, Safdar Seidle, Heather Zhou, Weidong Abdirahman, Hafsa Abadeer, Maher Hix, Joseph H. van Hoek, Monique L. Couch, Robin D. |
author_facet | Jawaid, Safdar Seidle, Heather Zhou, Weidong Abdirahman, Hafsa Abadeer, Maher Hix, Joseph H. van Hoek, Monique L. Couch, Robin D. |
author_sort | Jawaid, Safdar |
collection | PubMed |
description | Deliberate and natural outbreaks of infectious disease underscore the necessity of effective vaccines and antimicrobial/antiviral therapeutics. The prevalence of antibiotic resistant strains and the ease by which antibiotic resistant bacteria can be intentionally engineered further highlights the need for continued development of novel antibiotics against new bacterial targets. Isoprenes are a class of molecules fundamentally involved in a variety of crucial biological functions. Mammalian cells utilize the mevalonic acid pathway for isoprene biosynthesis, whereas many bacteria utilize the methylerythritol phosphate (MEP) pathway, making the latter an attractive target for antibiotic development. In this report we describe the cloning and characterization of Francisella tularensis MEP synthase, a MEP pathway enzyme and potential target for antibiotic development. In vitro growth-inhibition assays using fosmidomycin, an inhibitor of MEP synthase, illustrates the effectiveness of MEP pathway inhibition with F. tularensis. To facilitate drug development, F. tularensis MEP synthase was cloned, expressed, purified, and characterized. Enzyme assays produced apparent kinetic constants (K(M)(DXP) = 104 µM, K(M)(NADPH) = 13 µM, k(cat)(DXP) = 2 s(−1), k(cat)(NADPH) = 1.3 s(−1)), an IC(50) for fosmidomycin of 247 nM, and a K(i) for fosmidomycin of 99 nM. The enzyme exhibits a preference for Mg(+2) as a divalent cation. Titanium dioxide chromatography-tandem mass spectrometry identified Ser177 as a site of phosphorylation. S177D and S177E site-directed mutants are inactive, suggesting a mechanism for post-translational control of metabolic flux through the F. tularensis MEP pathway. Overall, our study suggests that MEP synthase is an excellent target for the development of novel antibiotics against F. tularensis. |
format | Text |
id | pubmed-2788227 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2009 |
publisher | Public Library of Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-27882272009-12-14 Kinetic Characterization and Phosphoregulation of the Francisella tularensis 1-Deoxy-D-Xylulose 5-Phosphate Reductoisomerase (MEP Synthase) Jawaid, Safdar Seidle, Heather Zhou, Weidong Abdirahman, Hafsa Abadeer, Maher Hix, Joseph H. van Hoek, Monique L. Couch, Robin D. PLoS One Research Article Deliberate and natural outbreaks of infectious disease underscore the necessity of effective vaccines and antimicrobial/antiviral therapeutics. The prevalence of antibiotic resistant strains and the ease by which antibiotic resistant bacteria can be intentionally engineered further highlights the need for continued development of novel antibiotics against new bacterial targets. Isoprenes are a class of molecules fundamentally involved in a variety of crucial biological functions. Mammalian cells utilize the mevalonic acid pathway for isoprene biosynthesis, whereas many bacteria utilize the methylerythritol phosphate (MEP) pathway, making the latter an attractive target for antibiotic development. In this report we describe the cloning and characterization of Francisella tularensis MEP synthase, a MEP pathway enzyme and potential target for antibiotic development. In vitro growth-inhibition assays using fosmidomycin, an inhibitor of MEP synthase, illustrates the effectiveness of MEP pathway inhibition with F. tularensis. To facilitate drug development, F. tularensis MEP synthase was cloned, expressed, purified, and characterized. Enzyme assays produced apparent kinetic constants (K(M)(DXP) = 104 µM, K(M)(NADPH) = 13 µM, k(cat)(DXP) = 2 s(−1), k(cat)(NADPH) = 1.3 s(−1)), an IC(50) for fosmidomycin of 247 nM, and a K(i) for fosmidomycin of 99 nM. The enzyme exhibits a preference for Mg(+2) as a divalent cation. Titanium dioxide chromatography-tandem mass spectrometry identified Ser177 as a site of phosphorylation. S177D and S177E site-directed mutants are inactive, suggesting a mechanism for post-translational control of metabolic flux through the F. tularensis MEP pathway. Overall, our study suggests that MEP synthase is an excellent target for the development of novel antibiotics against F. tularensis. Public Library of Science 2009-12-14 /pmc/articles/PMC2788227/ /pubmed/20011597 http://dx.doi.org/10.1371/journal.pone.0008288 Text en Jawaid 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited. |
spellingShingle | Research Article Jawaid, Safdar Seidle, Heather Zhou, Weidong Abdirahman, Hafsa Abadeer, Maher Hix, Joseph H. van Hoek, Monique L. Couch, Robin D. Kinetic Characterization and Phosphoregulation of the Francisella tularensis 1-Deoxy-D-Xylulose 5-Phosphate Reductoisomerase (MEP Synthase) |
title | Kinetic Characterization and Phosphoregulation of the Francisella tularensis 1-Deoxy-D-Xylulose 5-Phosphate Reductoisomerase (MEP Synthase) |
title_full | Kinetic Characterization and Phosphoregulation of the Francisella tularensis 1-Deoxy-D-Xylulose 5-Phosphate Reductoisomerase (MEP Synthase) |
title_fullStr | Kinetic Characterization and Phosphoregulation of the Francisella tularensis 1-Deoxy-D-Xylulose 5-Phosphate Reductoisomerase (MEP Synthase) |
title_full_unstemmed | Kinetic Characterization and Phosphoregulation of the Francisella tularensis 1-Deoxy-D-Xylulose 5-Phosphate Reductoisomerase (MEP Synthase) |
title_short | Kinetic Characterization and Phosphoregulation of the Francisella tularensis 1-Deoxy-D-Xylulose 5-Phosphate Reductoisomerase (MEP Synthase) |
title_sort | kinetic characterization and phosphoregulation of the francisella tularensis 1-deoxy-d-xylulose 5-phosphate reductoisomerase (mep synthase) |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2788227/ https://www.ncbi.nlm.nih.gov/pubmed/20011597 http://dx.doi.org/10.1371/journal.pone.0008288 |
work_keys_str_mv | AT jawaidsafdar kineticcharacterizationandphosphoregulationofthefrancisellatularensis1deoxydxylulose5phosphatereductoisomerasemepsynthase AT seidleheather kineticcharacterizationandphosphoregulationofthefrancisellatularensis1deoxydxylulose5phosphatereductoisomerasemepsynthase AT zhouweidong kineticcharacterizationandphosphoregulationofthefrancisellatularensis1deoxydxylulose5phosphatereductoisomerasemepsynthase AT abdirahmanhafsa kineticcharacterizationandphosphoregulationofthefrancisellatularensis1deoxydxylulose5phosphatereductoisomerasemepsynthase AT abadeermaher kineticcharacterizationandphosphoregulationofthefrancisellatularensis1deoxydxylulose5phosphatereductoisomerasemepsynthase AT hixjosephh kineticcharacterizationandphosphoregulationofthefrancisellatularensis1deoxydxylulose5phosphatereductoisomerasemepsynthase AT vanhoekmoniquel kineticcharacterizationandphosphoregulationofthefrancisellatularensis1deoxydxylulose5phosphatereductoisomerasemepsynthase AT couchrobind kineticcharacterizationandphosphoregulationofthefrancisellatularensis1deoxydxylulose5phosphatereductoisomerasemepsynthase |