| Home > Publications Database > Magnesium Concentration Modulates Replication Slippage of Mesophilic and Thermophilic DNA Polymerases In Vitro. |
| Journal Article | DZNE-2026-00881 |
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2026
Molecular Diversity Preservation International
Basel
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Please use a persistent id in citations: doi:10.3390/ijms27156600
Abstract: Replication slippage at repetitive DNA sequences generates insertions and deletions that drive genomic instability. Although magnesium ions are essential cofactors for DNA polymerase activity, their role in modulating slippage fidelity remains unclear. Using an in vitro primer extension assay on a single-stranded template carrying direct repeats flanking a hairpin-forming inverted repeat, we investigated the effect of Mg2+ concentration on slippage produced by mesophilic (T4 Pol, T7 Pol, E. coli pol I Klenow fragment, pol I KF exo-, and pol III holoenzyme) and thermophilic (Taq pol and Pfu pol) DNA polymerases. We show that Mg2+ modulates slippage frequency in a polymerase-dependent manner, as follows: low concentrations suppress slippage in T7 Pol, pol I KF, pol III HE, and Taq Pol, whereas T4 Pol and Pfu Pol slip at all productive concentrations. Mechanistically, Mg2+ modulates strand displacement activity, and polymerases that acquire enhanced strand displacement at intermediate concentrations show a corresponding reduction in slippage. Proofreading activity had no detectable effect on slippage frequency. These findings reinforce the inverse correlation between strand displacement activity and slippage propensity and suggest that physiological free Mg2+ levels may help suppress slippage in vivo.
Keyword(s): Magnesium: metabolism (MeSH) ; Magnesium: pharmacology (MeSH) ; DNA Replication: drug effects (MeSH) ; DNA-Directed DNA Polymerase: metabolism (MeSH) ; DNA-Directed DNA Polymerase: chemistry (MeSH) ; Escherichia coli: genetics (MeSH) ; Escherichia coli: enzymology (MeSH) ; DNA polymerase fidelity ; direct repeats ; hairpin structure ; magnesium effect ; replication slippage ; strand displacement activity ; Magnesium ; DNA-Directed DNA Polymerase
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