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Replicative DNA Polymerases Promote Active Displacement of SSB Proteins During Lagging Strand Synthesis

Overview
Specialty Biochemistry
Date 2019 Apr 11
PMID 30968132
Citations 16
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Abstract

Genome replication induces the generation of large stretches of single-stranded DNA (ssDNA) intermediates that are rapidly protected by single-stranded DNA-binding (SSB) proteins. To date, the mechanism by which tightly bound SSBs are removed from ssDNA by the lagging strand DNA polymerase without compromising the advance of the replication fork remains unresolved. Here, we aimed to address this question by measuring, with optical tweezers, the real-time replication kinetics of the human mitochondrial and bacteriophage T7 DNA polymerases on free-ssDNA, in comparison with ssDNA covered with homologous and non-homologous SSBs under mechanical tension. We find important differences between the force dependencies of the instantaneous replication rates of each polymerase on different substrates. Modeling of the data supports a mechanism in which strong, specific polymerase-SSB interactions, up to ∼12 kBT, are required for the polymerase to dislodge SSB from the template without compromising its instantaneous replication rate, even under stress conditions that may affect SSB-DNA organization and/or polymerase-SSB communication. Upon interaction, the elimination of template secondary structure by SSB binding facilitates the maximum replication rate of the lagging strand polymerase. In contrast, in the absence of polymerase-SSB interactions, SSB poses an effective barrier for the advance of the polymerase, slowing down DNA synthesis.

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References
1.
Johnson A, Johnson K . Exonuclease proofreading by human mitochondrial DNA polymerase. J Biol Chem. 2001; 276(41):38097-107. DOI: 10.1074/jbc.M106046200. View

2.
Morin J, Cerron F, Jarillo J, Beltran-Heredia E, Ciesielski G, Arias-Gonzalez J . DNA synthesis determines the binding mode of the human mitochondrial single-stranded DNA-binding protein. Nucleic Acids Res. 2017; 45(12):7237-7248. PMC: 5499585. DOI: 10.1093/nar/gkx395. View

3.
Graziewicz M, Longley M, Copeland W . DNA polymerase gamma in mitochondrial DNA replication and repair. Chem Rev. 2006; 106(2):383-405. DOI: 10.1021/cr040463d. View

4.
Brown T, Cecconi C, Tkachuk A, Bustamante C, Clayton D . Replication of mitochondrial DNA occurs by strand displacement with alternative light-strand origins, not via a strand-coupled mechanism. Genes Dev. 2005; 19(20):2466-76. PMC: 1257401. DOI: 10.1101/gad.1352105. View

5.
Oliveira M, Kaguni L . Reduced stimulation of recombinant DNA polymerase γ and mitochondrial DNA (mtDNA) helicase by variants of mitochondrial single-stranded DNA-binding protein (mtSSB) correlates with defects in mtDNA replication in animal cells. J Biol Chem. 2011; 286(47):40649-58. PMC: 3220507. DOI: 10.1074/jbc.M111.289983. View