Genetic and biochemical identification of a novel single-stranded DNA binding complex in Haloferax volcanii

Single-stranded DNA binding proteins play an essential role in DNA replication and repair. They use oligosaccharide-binding folds, a five-stranded ß-sheet coiled into a closed barrel, to bind to single-stranded DNA thereby protecting and stabilizing the DNA. In eukaryotes the single-strande...

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Main Authors: Amy eStroud, Susan eLiddell, Thorsten eAllers
Format: Article
Language:English
Published: Frontiers Media S.A. 2012-06-01
Series:Frontiers in Microbiology
Subjects:
Online Access:http://journal.frontiersin.org/Journal/10.3389/fmicb.2012.00224/full
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spelling doaj-cc4ba47c8812423687e24c965c7825902020-11-24T22:58:34ZengFrontiers Media S.A.Frontiers in Microbiology1664-302X2012-06-01310.3389/fmicb.2012.0022425663Genetic and biochemical identification of a novel single-stranded DNA binding complex in Haloferax volcaniiAmy eStroud0Susan eLiddell1Thorsten eAllers2University of NottinghamUniversity of NottinghamUniversity of NottinghamSingle-stranded DNA binding proteins play an essential role in DNA replication and repair. They use oligosaccharide-binding folds, a five-stranded ß-sheet coiled into a closed barrel, to bind to single-stranded DNA thereby protecting and stabilizing the DNA. In eukaryotes the single-stranded DNA binding protein is known as replication protein A (RPA) and consists of three distinct subunits that function as a heterotrimer. The bacterial homolog is termed single-stranded DNA-binding protein (SSB) and functions as a homotetramer. In the archaeon Haloferax volcanii there are three genes encoding homologs of RPA. Two of the rpa genes (rpa1 and rpa3) exist in operons with a novel gene specific to Euryarchaeota, this gene encodes a protein that we have termed rpa-associated protein (RPAP). The rpap genes encode proteins belonging to COG3390 group and feature oligosaccharide-binding folds, suggesting that they might cooperate with RPA in binding to single-stranded DNA. Our genetic analysis showed that rpa1 and rpa3 deletion mutants have differing phenotypes; only ∆rpa3 strains are hypersensitive to DNA damaging agents. Deletion of the rpa3-associated gene rpap3 led to similar levels of DNA damage sensitivity, as did deletion of the rpa3 operon, suggesting that RPA3 and RPAP3 function in the same pathway. Protein pull-downs involving recombinant hexahistidine-tagged RPAs showed that RPA3 co-purifies with RPAP3, and RPA1 co-purifies with RPAP1. This indicates that the RPAs interact only with their respective associated proteins; this was corroborated by the inability to construct rpa1 rpap3 and rpa3 rpap1 double mutants. This is the first report investigating the individual function of the archaeal COG3390 RPA-associated proteins. We have shown genetically and biochemically that the RPAPs interact with their respective RPAs, and have uncovered a novel single-stranded DNA binding complex that is unique to Euryarchaeota.http://journal.frontiersin.org/Journal/10.3389/fmicb.2012.00224/fullArchaeaDNA RepairHaloferax volcaniiCdc48dCOG3390 RPA-associated proteinProtein overexpression
collection DOAJ
language English
format Article
sources DOAJ
author Amy eStroud
Susan eLiddell
Thorsten eAllers
spellingShingle Amy eStroud
Susan eLiddell
Thorsten eAllers
Genetic and biochemical identification of a novel single-stranded DNA binding complex in Haloferax volcanii
Frontiers in Microbiology
Archaea
DNA Repair
Haloferax volcanii
Cdc48d
COG3390 RPA-associated protein
Protein overexpression
author_facet Amy eStroud
Susan eLiddell
Thorsten eAllers
author_sort Amy eStroud
title Genetic and biochemical identification of a novel single-stranded DNA binding complex in Haloferax volcanii
title_short Genetic and biochemical identification of a novel single-stranded DNA binding complex in Haloferax volcanii
title_full Genetic and biochemical identification of a novel single-stranded DNA binding complex in Haloferax volcanii
title_fullStr Genetic and biochemical identification of a novel single-stranded DNA binding complex in Haloferax volcanii
title_full_unstemmed Genetic and biochemical identification of a novel single-stranded DNA binding complex in Haloferax volcanii
title_sort genetic and biochemical identification of a novel single-stranded dna binding complex in haloferax volcanii
publisher Frontiers Media S.A.
series Frontiers in Microbiology
issn 1664-302X
publishDate 2012-06-01
description Single-stranded DNA binding proteins play an essential role in DNA replication and repair. They use oligosaccharide-binding folds, a five-stranded ß-sheet coiled into a closed barrel, to bind to single-stranded DNA thereby protecting and stabilizing the DNA. In eukaryotes the single-stranded DNA binding protein is known as replication protein A (RPA) and consists of three distinct subunits that function as a heterotrimer. The bacterial homolog is termed single-stranded DNA-binding protein (SSB) and functions as a homotetramer. In the archaeon Haloferax volcanii there are three genes encoding homologs of RPA. Two of the rpa genes (rpa1 and rpa3) exist in operons with a novel gene specific to Euryarchaeota, this gene encodes a protein that we have termed rpa-associated protein (RPAP). The rpap genes encode proteins belonging to COG3390 group and feature oligosaccharide-binding folds, suggesting that they might cooperate with RPA in binding to single-stranded DNA. Our genetic analysis showed that rpa1 and rpa3 deletion mutants have differing phenotypes; only ∆rpa3 strains are hypersensitive to DNA damaging agents. Deletion of the rpa3-associated gene rpap3 led to similar levels of DNA damage sensitivity, as did deletion of the rpa3 operon, suggesting that RPA3 and RPAP3 function in the same pathway. Protein pull-downs involving recombinant hexahistidine-tagged RPAs showed that RPA3 co-purifies with RPAP3, and RPA1 co-purifies with RPAP1. This indicates that the RPAs interact only with their respective associated proteins; this was corroborated by the inability to construct rpa1 rpap3 and rpa3 rpap1 double mutants. This is the first report investigating the individual function of the archaeal COG3390 RPA-associated proteins. We have shown genetically and biochemically that the RPAPs interact with their respective RPAs, and have uncovered a novel single-stranded DNA binding complex that is unique to Euryarchaeota.
topic Archaea
DNA Repair
Haloferax volcanii
Cdc48d
COG3390 RPA-associated protein
Protein overexpression
url http://journal.frontiersin.org/Journal/10.3389/fmicb.2012.00224/full
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