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

DNA Repair
|April 21, 2006
PubMed

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.

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