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Substitution of Glutamate Residue by Lysine in the Dimerization Domain Affects DNA Binding Ability of HapR by Inducing Structural Deformity in the DNA Binding Domain

HapR has been given the status of a high cell density master regulatory protein in Vibrio cholerae. Though many facts are known regarding its structural and functional aspects, much still can be learnt from natural variants of the wild type protein. This work aims at investigating the nature of func...

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Autores principales: Singh, Richa, Rathore, Yogendra Singh, Singh, Naorem Santa, Peddada, Nagesh, Ashish, Raychaudhuri, Saumya
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3796514/
https://www.ncbi.nlm.nih.gov/pubmed/24155884
http://dx.doi.org/10.1371/journal.pone.0076033
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author Singh, Richa
Rathore, Yogendra Singh
Singh, Naorem Santa
Peddada, Nagesh
Ashish,
Raychaudhuri, Saumya
author_facet Singh, Richa
Rathore, Yogendra Singh
Singh, Naorem Santa
Peddada, Nagesh
Ashish,
Raychaudhuri, Saumya
author_sort Singh, Richa
collection PubMed
description HapR has been given the status of a high cell density master regulatory protein in Vibrio cholerae. Though many facts are known regarding its structural and functional aspects, much still can be learnt from natural variants of the wild type protein. This work aims at investigating the nature of functional inertness of a HapR natural variant harboring a substitution of a conserved glutamate residue at position 117 which participates in forming a salt bridge by lysine (HapR(V2G)-E(117)K). Experimental evidence presented here reveals the inability of this variant to interact with various cognate promoters by in vitro gel shift assay. Furthermore, the elution profiles of HapR(V2G)-E(117)K protein along with the wild type functional HapR(V2G) in size-exclusion chromatography as well as circular dichroism spectra did not reflect any significant differences in its structure, thereby indicating the intactness of dimer in the variant protein. To gain further insight into the global shape of the proteins, small angle X-ray scattering analysis (SAXS) was performed. Intriguingly, increased radius of gyration of HapR(V2G)-E(117)K of 27.5 Å in comparison to the wild type protein from SAXS data analyses implied a significant alteration in the global shape of the dimeric HapR(V2G)-E(117)K protein. Structure reconstruction brought forth that the DNA binding domains were substantially “parted away” in this variant. Taken together, our data illustrates that substitution of the conserved glutamate residue by lysine in the dimerization domain induces separation of the two DNA binding domains from their native-like positioning without altering the dimeric status of HapR variant.
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spelling pubmed-37965142013-10-23 Substitution of Glutamate Residue by Lysine in the Dimerization Domain Affects DNA Binding Ability of HapR by Inducing Structural Deformity in the DNA Binding Domain Singh, Richa Rathore, Yogendra Singh Singh, Naorem Santa Peddada, Nagesh Ashish, Raychaudhuri, Saumya PLoS One Research Article HapR has been given the status of a high cell density master regulatory protein in Vibrio cholerae. Though many facts are known regarding its structural and functional aspects, much still can be learnt from natural variants of the wild type protein. This work aims at investigating the nature of functional inertness of a HapR natural variant harboring a substitution of a conserved glutamate residue at position 117 which participates in forming a salt bridge by lysine (HapR(V2G)-E(117)K). Experimental evidence presented here reveals the inability of this variant to interact with various cognate promoters by in vitro gel shift assay. Furthermore, the elution profiles of HapR(V2G)-E(117)K protein along with the wild type functional HapR(V2G) in size-exclusion chromatography as well as circular dichroism spectra did not reflect any significant differences in its structure, thereby indicating the intactness of dimer in the variant protein. To gain further insight into the global shape of the proteins, small angle X-ray scattering analysis (SAXS) was performed. Intriguingly, increased radius of gyration of HapR(V2G)-E(117)K of 27.5 Å in comparison to the wild type protein from SAXS data analyses implied a significant alteration in the global shape of the dimeric HapR(V2G)-E(117)K protein. Structure reconstruction brought forth that the DNA binding domains were substantially “parted away” in this variant. Taken together, our data illustrates that substitution of the conserved glutamate residue by lysine in the dimerization domain induces separation of the two DNA binding domains from their native-like positioning without altering the dimeric status of HapR variant. Public Library of Science 2013-10-14 /pmc/articles/PMC3796514/ /pubmed/24155884 http://dx.doi.org/10.1371/journal.pone.0076033 Text en © 2013 Singh 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
Singh, Richa
Rathore, Yogendra Singh
Singh, Naorem Santa
Peddada, Nagesh
Ashish,
Raychaudhuri, Saumya
Substitution of Glutamate Residue by Lysine in the Dimerization Domain Affects DNA Binding Ability of HapR by Inducing Structural Deformity in the DNA Binding Domain
title Substitution of Glutamate Residue by Lysine in the Dimerization Domain Affects DNA Binding Ability of HapR by Inducing Structural Deformity in the DNA Binding Domain
title_full Substitution of Glutamate Residue by Lysine in the Dimerization Domain Affects DNA Binding Ability of HapR by Inducing Structural Deformity in the DNA Binding Domain
title_fullStr Substitution of Glutamate Residue by Lysine in the Dimerization Domain Affects DNA Binding Ability of HapR by Inducing Structural Deformity in the DNA Binding Domain
title_full_unstemmed Substitution of Glutamate Residue by Lysine in the Dimerization Domain Affects DNA Binding Ability of HapR by Inducing Structural Deformity in the DNA Binding Domain
title_short Substitution of Glutamate Residue by Lysine in the Dimerization Domain Affects DNA Binding Ability of HapR by Inducing Structural Deformity in the DNA Binding Domain
title_sort substitution of glutamate residue by lysine in the dimerization domain affects dna binding ability of hapr by inducing structural deformity in the dna binding domain
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3796514/
https://www.ncbi.nlm.nih.gov/pubmed/24155884
http://dx.doi.org/10.1371/journal.pone.0076033
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