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Do ATP4- and Mg2+ bind stepwise to the F1-ATPase of Halobacterium saccharovorum?

B Schobert1

  • 1Department of Physiology and Biophysics, University of California Irvine, 92697-4560, USA.

Insights

This study challenges the view of MgATP2- as the sole substrate for F1-ATPases, proposing an ordered-binding model where ATP4- binds first. This finding necessitates a re-evaluation of ATP hydrolysis mechanisms and nucleotide binding in F1-ATPases.

Area of Science:

  • Biochemistry
  • Enzymology
  • Molecular Biophysics

Background:

  • F1-ATPases are crucial enzymes for cellular energy production.
  • The precise substrate and binding mechanism of F1-ATPases remain debated.
  • Current models often assume MgATP2- as the direct substrate, with ATP4- as an inhibitor.

Purpose of the Study:

  • To investigate the kinetic mechanism of F1-ATPase from Halobacterium saccharovorum.
  • To differentiate between competitive inhibition and ordered-binding models for ATP hydrolysis.
  • To determine the binding affinities and constants for ATP and Mg2+.

Main Methods:

  • Enzyme kinetics assays measuring ATP hydrolysis rates.
  • Varying concentrations of free ATP4- and free Mg2+ were used.
  • Kinetic data were analyzed to determine apparent and actual dissociation constants.

Main Results:

  • Observed asymmetrical rates of hydrolysis with respect to increasing ATP4- and Mg2+ concentrations.
  • The ordered-binding model provided a consistent fit to the experimental data.
  • Determined actual binding constants: K(A) = 0.2 mM for ATP4-, K(B) = 0.0041 mM for Mg2+, and pKa = 8.2.
  • Competitive inhibition model yielded K(EAB) = 0.0016 mM for MgATP2- and K(EA) = 0.2 mM for ATP4-.

Conclusions:

  • Experimental evidence favors an ordered-binding mechanism over competitive inhibition for F1-ATPase.
  • In the ordered-binding model, ATP4- binds first, followed by Mg2+.
  • This suggests MgATP2- may not be the direct substrate, requiring revisions to current F1-ATPase mechanistic concepts.

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