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The Dimerization Domain in DapE Enzymes Is required for Catalysis

The emergence of antibiotic-resistant bacterial strains underscores the importance of identifying new drug targets and developing new antimicrobial compounds. Lysine and meso-diaminopimelic acid are essential for protein production and bacterial peptidoglycan cell wall remodeling and are synthesized...

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Autores principales: Nocek, Boguslaw, Starus, Anna, Makowska-Grzyska, Magdalena, Gutierrez, Blanca, Sanchez, Stephen, Jedrzejczak, Robert, Mack, Jamey C., Olsen, Kenneth W., Joachimiak, Andrzej, Holz, Richard C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4012986/
https://www.ncbi.nlm.nih.gov/pubmed/24806882
http://dx.doi.org/10.1371/journal.pone.0093593
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author Nocek, Boguslaw
Starus, Anna
Makowska-Grzyska, Magdalena
Gutierrez, Blanca
Sanchez, Stephen
Jedrzejczak, Robert
Mack, Jamey C.
Olsen, Kenneth W.
Joachimiak, Andrzej
Holz, Richard C.
author_facet Nocek, Boguslaw
Starus, Anna
Makowska-Grzyska, Magdalena
Gutierrez, Blanca
Sanchez, Stephen
Jedrzejczak, Robert
Mack, Jamey C.
Olsen, Kenneth W.
Joachimiak, Andrzej
Holz, Richard C.
author_sort Nocek, Boguslaw
collection PubMed
description The emergence of antibiotic-resistant bacterial strains underscores the importance of identifying new drug targets and developing new antimicrobial compounds. Lysine and meso-diaminopimelic acid are essential for protein production and bacterial peptidoglycan cell wall remodeling and are synthesized in bacteria by enzymes encoded within dap operon. Therefore dap enzymes may serve as excellent targets for developing a new class of antimicrobial agents. The dapE-encoded N-succinyl-L,L-diaminopimelic acid desuccinylase (DapE) converts N-succinyl-L,L-diaminopimelic acid to L,L-diaminopimelic acid and succinate. The enzyme is composed of catalytic and dimerization domains, and belongs to the M20 peptidase family. To understand the specific role of each domain of the enzyme we engineered dimerization domain deletion mutants of DapEs from Haemophilus influenzae and Vibrio cholerae, and characterized these proteins structurally and biochemically. No activity was observed for all deletion mutants. Structural comparisons of wild-type, inactive monomeric DapE enzymes with other M20 peptidases suggest that the dimerization domain is essential for DapE enzymatic activity. Structural analysis and molecular dynamics simulations indicate that removal of the dimerization domain increased the flexibility of a conserved active site loop that may provide critical interactions with the substrate.
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spelling pubmed-40129862014-05-09 The Dimerization Domain in DapE Enzymes Is required for Catalysis Nocek, Boguslaw Starus, Anna Makowska-Grzyska, Magdalena Gutierrez, Blanca Sanchez, Stephen Jedrzejczak, Robert Mack, Jamey C. Olsen, Kenneth W. Joachimiak, Andrzej Holz, Richard C. PLoS One Research Article The emergence of antibiotic-resistant bacterial strains underscores the importance of identifying new drug targets and developing new antimicrobial compounds. Lysine and meso-diaminopimelic acid are essential for protein production and bacterial peptidoglycan cell wall remodeling and are synthesized in bacteria by enzymes encoded within dap operon. Therefore dap enzymes may serve as excellent targets for developing a new class of antimicrobial agents. The dapE-encoded N-succinyl-L,L-diaminopimelic acid desuccinylase (DapE) converts N-succinyl-L,L-diaminopimelic acid to L,L-diaminopimelic acid and succinate. The enzyme is composed of catalytic and dimerization domains, and belongs to the M20 peptidase family. To understand the specific role of each domain of the enzyme we engineered dimerization domain deletion mutants of DapEs from Haemophilus influenzae and Vibrio cholerae, and characterized these proteins structurally and biochemically. No activity was observed for all deletion mutants. Structural comparisons of wild-type, inactive monomeric DapE enzymes with other M20 peptidases suggest that the dimerization domain is essential for DapE enzymatic activity. Structural analysis and molecular dynamics simulations indicate that removal of the dimerization domain increased the flexibility of a conserved active site loop that may provide critical interactions with the substrate. Public Library of Science 2014-05-07 /pmc/articles/PMC4012986/ /pubmed/24806882 http://dx.doi.org/10.1371/journal.pone.0093593 Text en © 2014 Nocek 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
Nocek, Boguslaw
Starus, Anna
Makowska-Grzyska, Magdalena
Gutierrez, Blanca
Sanchez, Stephen
Jedrzejczak, Robert
Mack, Jamey C.
Olsen, Kenneth W.
Joachimiak, Andrzej
Holz, Richard C.
The Dimerization Domain in DapE Enzymes Is required for Catalysis
title The Dimerization Domain in DapE Enzymes Is required for Catalysis
title_full The Dimerization Domain in DapE Enzymes Is required for Catalysis
title_fullStr The Dimerization Domain in DapE Enzymes Is required for Catalysis
title_full_unstemmed The Dimerization Domain in DapE Enzymes Is required for Catalysis
title_short The Dimerization Domain in DapE Enzymes Is required for Catalysis
title_sort dimerization domain in dape enzymes is required for catalysis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4012986/
https://www.ncbi.nlm.nih.gov/pubmed/24806882
http://dx.doi.org/10.1371/journal.pone.0093593
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