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M. tuberculosis Sliding β-Clamp Does Not Interact Directly with the NAD(+) -Dependent DNA Ligase

The sliding β-clamp, an important component of the DNA replication and repair machinery, is drawing increasing attention as a therapeutic target. We report the crystal structure of the M. tuberculosis β-clamp (Mtbβ-clamp) to 3.0 Å resolution. The protein crystallized in the space group C222(1) with...

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Autores principales: Kukshal, Vandna, Khanam, Taran, Chopra, Deepti, Singh, Nidhi, Sanyal, Sabyasachi, Ramachandran, Ravishankar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3335792/
https://www.ncbi.nlm.nih.gov/pubmed/22545130
http://dx.doi.org/10.1371/journal.pone.0035702
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author Kukshal, Vandna
Khanam, Taran
Chopra, Deepti
Singh, Nidhi
Sanyal, Sabyasachi
Ramachandran, Ravishankar
author_facet Kukshal, Vandna
Khanam, Taran
Chopra, Deepti
Singh, Nidhi
Sanyal, Sabyasachi
Ramachandran, Ravishankar
author_sort Kukshal, Vandna
collection PubMed
description The sliding β-clamp, an important component of the DNA replication and repair machinery, is drawing increasing attention as a therapeutic target. We report the crystal structure of the M. tuberculosis β-clamp (Mtbβ-clamp) to 3.0 Å resolution. The protein crystallized in the space group C222(1) with cell-dimensions a = 72.7, b = 234.9 & c = 125.1 Å respectively. Mtbβ-clamp is a dimer, and exhibits head-to-tail association similar to other bacterial clamps. Each monomer folds into three domains with similar structures respectively and associates with its dimeric partner through 6 salt-bridges and about 21 polar interactions. Affinity experiments involving a blunt DNA duplex, primed-DNA and nicked DNA respectively show that Mtbβ-clamp binds specifically to primed DNA about 1.8 times stronger compared to the other two substrates and with an apparent K(d) of 300 nM. In bacteria like E. coli, the β-clamp is known to interact with subunits of the clamp loader, NAD(+) -dependent DNA ligase (LigA) and other partners. We tested the interactions of the Mtbβ-clamp with MtbLigA and the γ-clamp loader subunit through radioactive gel shift assays, size exclusion chromatography, yeast-two hybrid experiments and also functionally. Intriguingly while Mtbβ-clamp interacts in vitro with the γ-clamp loader, it does not interact with MtbLigA unlike in bacteria like E. coli where it does. Modeling studies involving earlier peptide complexes reveal that the peptide-binding site is largely conserved despite lower sequence identity between bacterial clamps. Overall the results suggest that other as-yet-unidentified factors may mediate interactions between the clamp, LigA and DNA in mycobacteria.
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spelling pubmed-33357922012-04-27 M. tuberculosis Sliding β-Clamp Does Not Interact Directly with the NAD(+) -Dependent DNA Ligase Kukshal, Vandna Khanam, Taran Chopra, Deepti Singh, Nidhi Sanyal, Sabyasachi Ramachandran, Ravishankar PLoS One Research Article The sliding β-clamp, an important component of the DNA replication and repair machinery, is drawing increasing attention as a therapeutic target. We report the crystal structure of the M. tuberculosis β-clamp (Mtbβ-clamp) to 3.0 Å resolution. The protein crystallized in the space group C222(1) with cell-dimensions a = 72.7, b = 234.9 & c = 125.1 Å respectively. Mtbβ-clamp is a dimer, and exhibits head-to-tail association similar to other bacterial clamps. Each monomer folds into three domains with similar structures respectively and associates with its dimeric partner through 6 salt-bridges and about 21 polar interactions. Affinity experiments involving a blunt DNA duplex, primed-DNA and nicked DNA respectively show that Mtbβ-clamp binds specifically to primed DNA about 1.8 times stronger compared to the other two substrates and with an apparent K(d) of 300 nM. In bacteria like E. coli, the β-clamp is known to interact with subunits of the clamp loader, NAD(+) -dependent DNA ligase (LigA) and other partners. We tested the interactions of the Mtbβ-clamp with MtbLigA and the γ-clamp loader subunit through radioactive gel shift assays, size exclusion chromatography, yeast-two hybrid experiments and also functionally. Intriguingly while Mtbβ-clamp interacts in vitro with the γ-clamp loader, it does not interact with MtbLigA unlike in bacteria like E. coli where it does. Modeling studies involving earlier peptide complexes reveal that the peptide-binding site is largely conserved despite lower sequence identity between bacterial clamps. Overall the results suggest that other as-yet-unidentified factors may mediate interactions between the clamp, LigA and DNA in mycobacteria. Public Library of Science 2012-04-24 /pmc/articles/PMC3335792/ /pubmed/22545130 http://dx.doi.org/10.1371/journal.pone.0035702 Text en Kukshal 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
Kukshal, Vandna
Khanam, Taran
Chopra, Deepti
Singh, Nidhi
Sanyal, Sabyasachi
Ramachandran, Ravishankar
M. tuberculosis Sliding β-Clamp Does Not Interact Directly with the NAD(+) -Dependent DNA Ligase
title M. tuberculosis Sliding β-Clamp Does Not Interact Directly with the NAD(+) -Dependent DNA Ligase
title_full M. tuberculosis Sliding β-Clamp Does Not Interact Directly with the NAD(+) -Dependent DNA Ligase
title_fullStr M. tuberculosis Sliding β-Clamp Does Not Interact Directly with the NAD(+) -Dependent DNA Ligase
title_full_unstemmed M. tuberculosis Sliding β-Clamp Does Not Interact Directly with the NAD(+) -Dependent DNA Ligase
title_short M. tuberculosis Sliding β-Clamp Does Not Interact Directly with the NAD(+) -Dependent DNA Ligase
title_sort m. tuberculosis sliding β-clamp does not interact directly with the nad(+) -dependent dna ligase
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3335792/
https://www.ncbi.nlm.nih.gov/pubmed/22545130
http://dx.doi.org/10.1371/journal.pone.0035702
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