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Crystal structure of the DNA polymerase III β subunit (β-clamp) from the extremophile Deinococcus radiodurans

BACKGROUND: Deinococcus radiodurans is an extremely radiation and desiccation resistant bacterium which can tolerate radiation doses up to 5,000 Grays without losing viability. We are studying the role of DNA repair and replication proteins for this unusual phenotype by a structural biology approach...

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Autores principales: Niiranen, Laila, Lian, Kjersti, Johnson, Kenneth A, Moe, Elin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4350885/
https://www.ncbi.nlm.nih.gov/pubmed/25886944
http://dx.doi.org/10.1186/s12900-015-0032-6
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author Niiranen, Laila
Lian, Kjersti
Johnson, Kenneth A
Moe, Elin
author_facet Niiranen, Laila
Lian, Kjersti
Johnson, Kenneth A
Moe, Elin
author_sort Niiranen, Laila
collection PubMed
description BACKGROUND: Deinococcus radiodurans is an extremely radiation and desiccation resistant bacterium which can tolerate radiation doses up to 5,000 Grays without losing viability. We are studying the role of DNA repair and replication proteins for this unusual phenotype by a structural biology approach. The DNA polymerase III β subunit (β-clamp) acts as a sliding clamp on DNA, promoting the binding and processivity of many DNA-acting proteins, and here we report the crystal structure of D. radiodurans β-clamp (Drβ-clamp) at 2.0 Å resolution. RESULTS: The sequence verification process revealed that at the time of the study the gene encoding Drβ-clamp was wrongly annotated in the genome database, encoding a protein of 393 instead of 362 amino acids. The short protein was successfully expressed, purified and used for crystallisation purposes in complex with Cy5-labeled DNA. The structure, which was obtained from blue crystals, shows a typical ring-shaped bacterial β-clamp formed of two monomers, each with three domains of identical topology, but with no visible DNA in electron density. A visualisation of the electrostatic surface potential reveals a highly negatively charged outer surface while the inner surface and the dimer forming interface have a more even charge distribution. CONCLUSIONS: The structure of Drβ-clamp was determined to 2.0 Å resolution and shows an evenly distributed electrostatic surface charge on the DNA interacting side. We hypothesise that this charge distribution may facilitate efficient movement on encircled DNA and help ensure efficient DNA metabolism in D. radiodurans upon exposure to high doses of ionizing irradiation or desiccation.
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spelling pubmed-43508852015-03-06 Crystal structure of the DNA polymerase III β subunit (β-clamp) from the extremophile Deinococcus radiodurans Niiranen, Laila Lian, Kjersti Johnson, Kenneth A Moe, Elin BMC Struct Biol Research Article BACKGROUND: Deinococcus radiodurans is an extremely radiation and desiccation resistant bacterium which can tolerate radiation doses up to 5,000 Grays without losing viability. We are studying the role of DNA repair and replication proteins for this unusual phenotype by a structural biology approach. The DNA polymerase III β subunit (β-clamp) acts as a sliding clamp on DNA, promoting the binding and processivity of many DNA-acting proteins, and here we report the crystal structure of D. radiodurans β-clamp (Drβ-clamp) at 2.0 Å resolution. RESULTS: The sequence verification process revealed that at the time of the study the gene encoding Drβ-clamp was wrongly annotated in the genome database, encoding a protein of 393 instead of 362 amino acids. The short protein was successfully expressed, purified and used for crystallisation purposes in complex with Cy5-labeled DNA. The structure, which was obtained from blue crystals, shows a typical ring-shaped bacterial β-clamp formed of two monomers, each with three domains of identical topology, but with no visible DNA in electron density. A visualisation of the electrostatic surface potential reveals a highly negatively charged outer surface while the inner surface and the dimer forming interface have a more even charge distribution. CONCLUSIONS: The structure of Drβ-clamp was determined to 2.0 Å resolution and shows an evenly distributed electrostatic surface charge on the DNA interacting side. We hypothesise that this charge distribution may facilitate efficient movement on encircled DNA and help ensure efficient DNA metabolism in D. radiodurans upon exposure to high doses of ionizing irradiation or desiccation. BioMed Central 2015-02-27 /pmc/articles/PMC4350885/ /pubmed/25886944 http://dx.doi.org/10.1186/s12900-015-0032-6 Text en © Niiranen et al.; licensee BioMed Central. 2015 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly credited. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research Article
Niiranen, Laila
Lian, Kjersti
Johnson, Kenneth A
Moe, Elin
Crystal structure of the DNA polymerase III β subunit (β-clamp) from the extremophile Deinococcus radiodurans
title Crystal structure of the DNA polymerase III β subunit (β-clamp) from the extremophile Deinococcus radiodurans
title_full Crystal structure of the DNA polymerase III β subunit (β-clamp) from the extremophile Deinococcus radiodurans
title_fullStr Crystal structure of the DNA polymerase III β subunit (β-clamp) from the extremophile Deinococcus radiodurans
title_full_unstemmed Crystal structure of the DNA polymerase III β subunit (β-clamp) from the extremophile Deinococcus radiodurans
title_short Crystal structure of the DNA polymerase III β subunit (β-clamp) from the extremophile Deinococcus radiodurans
title_sort crystal structure of the dna polymerase iii β subunit (β-clamp) from the extremophile deinococcus radiodurans
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4350885/
https://www.ncbi.nlm.nih.gov/pubmed/25886944
http://dx.doi.org/10.1186/s12900-015-0032-6
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