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Genetic and Biochemical Identification of a Novel Single-Stranded DNA-Binding Complex in Haloferax volcanii
Amy Stroud1, Susan Liddell, Thorsten Allers
1School of Biology, Queen's Medical Centre, University of Nottingham Nottingham, UK.
Abstract:
Single-stranded DNA (ssDNA)-binding proteins play an essential role in DNA replication and repair. They use oligonucleotide/oligosaccharide-binding (OB)-folds, a five-stranded β-sheet coiled into a closed barrel, to bind to ssDNA thereby protecting and stabilizing the DNA. In eukaryotes the ssDNA-binding protein (SSB) is known as replication protein A (RPA) and consists of three distinct subunits that function as a heterotrimer. The bacterial homolog is termed 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 OB-folds, suggesting that they might cooperate with RPA in binding to ssDNA. Our genetic analysis showed that rpa1 and rpa3 deletion mutants have differing phenotypes; only Δrpa3 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 (RPAPs). 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.
Insights
Novel RPA-associated proteins (RPAPs) unique to Euryarchaeota were identified. These RPAPs interact with replication protein A (RPA) subunits, forming a new ssDNA-binding complex crucial for DNA repair.
Area of Science:
- Molecular Biology
- Archaeal Genetics
- DNA Replication and Repair
Background:
- Single-stranded DNA (ssDNA)-binding proteins, like eukaryotic Replication Protein A (RPA) and bacterial SSB, are vital for DNA metabolism.
- These proteins utilize oligonucleotide/oligosaccharide-binding (OB)-folds to bind and stabilize ssDNA.
- Archaea possess RPA homologs, but their associated proteins and complexes remain largely uncharacterized.
Purpose of the Study:
- To investigate the function of novel RPA-associated proteins (RPAPs) found in the archaeon Haloferax volcanii.
- To determine the interaction between RPAPs and RPA subunits.
- To elucidate the role of these novel complexes in DNA repair pathways.
Main Methods:
- Genetic analysis of deletion mutants for rpa and rpap genes in Haloferax volcanii.
- Phenotypic analysis of mutant strains, including sensitivity to DNA damaging agents.
- Biochemical assays, such as co-purification using recombinant hexahistidine-tagged proteins.
Main Results:
- Two RPA homologs (RPA1, RPA3) and their associated proteins (RPAP1, RPAP3) were identified in H. volcanii.
- Deletion of rpa3 and rpap3 resulted in hypersensitivity to DNA damaging agents, indicating a shared pathway.
- RPA3 specifically co-purified with RPAP3, and RPA1 with RPAP1, confirming specific interactions and forming novel Euryarchaeota-specific complexes.
Conclusions:
- RPA-associated proteins (RPAPs) are essential components of ssDNA-binding complexes in Euryarchaeota.
- RPAPs interact specifically with their cognate RPA subunits, forming functional units.
- This study reveals a novel ssDNA-binding complex unique to Euryarchaeota, expanding our understanding of DNA repair mechanisms.
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