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Magnesium influences the discrimination and release of ADP by human RAD51
Kang-Sup Shim1, Gregory Tombline, Christopher D Heinen
1Department of Molecular Virology, Immunology, and Medical Genetics, Human Cancer, Genetics, The Ohio State University College of Medicine, The Ohio State University, Comprehensive Cancer Center, Columbus, OH 43102, USA. shim55@osu.edu
Abstract:
hRAD51 lacks cooperative DNA-dependent ATPase activity and appears to function with 5-10-fold less Mg2+ compared to RecA. We have further explored the effect of Mg2+ on adenosine nucleotide binding, ATPase, and DNA strand exchange activities. hRAD51 was saturated with the poorly hydrolyzable analog of ATP, ATPgammaS, at approximately 0.08 mM Mg2+. In contrast, > 0.5 mM Mg2+ was required to saturate hRAD51 with ADP. We found ADP to be a significantly less effective competitive inhibitor of the hRAD51 ATPase at low Mg2+ concentrations (0.08 mM). Mg2+ did not appear to affect the ability of ATPgammaS to competitively inhibit the hRAD51 ATPase. Low Mg2+ (0.08-0.12 mM) enhanced the steady-state ATPase of hRAD51 while higher Mg2+ concentration (> 0.3 mM) was inhibitory. At low Mg2+, hRAD51 appeared capable of nearly complete hydrolysis of available ATP, suggesting a lack of ADP product inhibition. There was a strong correlation between the amount of Mg2+ required for stable ADP binding and the inhibition of hRad51 strand exchange activity. Simultaneous inclusion of exogenous ATP and chelation of Mg2+ with EDTA significantly enhanced ADP-->ATP exchange by hRAD51. These studies are consistent with the hypothesis that Mg2+ influences the discrimination and release of ADP, which may sequentially impose an important regulatory step in the hRAD51 ATPase cycle.
Insights
Magnesium ions (Mg2+) are crucial for human RAD51 (hRAD51) function, influencing its ATPase activity and DNA strand exchange. Low Mg2+ enhances ATP hydrolysis, while higher concentrations inhibit activity and ADP release.
Area of Science:
- Biochemistry
- Molecular Biology
- DNA Repair
Background:
- Human RAD51 (hRAD51) is vital for DNA repair and recombination.
- hRAD51's ATPase activity and DNA binding differ from RecA, particularly concerning Mg2+ requirements.
- Understanding Mg2+ effects on hRAD51 is key to elucidating its regulatory mechanisms.
Purpose of the Study:
- To investigate the impact of Mg2+ on adenosine nucleotide binding, ATPase activity, and DNA strand exchange by hRAD51.
- To determine the role of Mg2+ in ADP discrimination and release during the hRAD51 ATPase cycle.
Main Methods:
- Enzyme kinetics assays to measure ATPase activity with varying Mg2+ concentrations.
- Analysis of ATP analog (ATPgammaS) and ADP binding affinities.
- DNA strand exchange assays under different Mg2+ conditions.
Main Results:
- hRAD51 saturation with ATPgammaS occurred at ~0.08 mM Mg2+, while ADP saturation required >0.5 mM Mg2+.
- Low Mg2+ (0.08-0.12 mM) enhanced hRAD51 ATPase activity, whereas higher concentrations (>0.3 mM) were inhibitory.
- Mg2+ concentration correlated with ADP binding stability and inhibition of DNA strand exchange, suggesting Mg2+ regulates ADP release.
Conclusions:
- Mg2+ plays a critical regulatory role in the hRAD51 ATPase cycle, particularly in ADP discrimination and release.
- The Mg2+-dependent regulation of ADP release may be a key step controlling hRAD51's DNA repair functions.

