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Do ATP4- and Mg2+ bind stepwise to the F1-ATPase of Halobacterium saccharovorum?
1Department of Physiology and Biophysics, University of California Irvine, 92697-4560, USA.
Abstract:
It is commonly believed that MgATP2- is the substrate of F1-ATPases and ATP4- acts as a competitive inhibitor. However, the velocity equation for such competitive inhibition is equivalent to that for a rapid equilibrium ordered binding mechanism in which ATP4- adds first and the binding of Mg2+ is dependent on the formation of the E x ATP4- complex. According to this ordered-binding model, solution formed MgATP2- is not recognized by the ATPase as a direct substrate, and the high-affinity binding of Mg2+ to the E x ATP4- complex is the key reaction towards the formation of the ternary complex. These models (and others) were tested with an F1- ATPase, isolated from Halobacterium saccharovorum, by evaluating the rate of ATP hydrolysis as a function of free [ATP4-] or free [Mg2+]. The rates were asymmetrical with respect to increasing [ATP4-] versus increasing [Mg2+]. For the ordered-binding alternative, a series of apparent dissociation constants were obtained for ATP4-(K(A)aPP), which decreased as [Mg2+] increased. From this family of K(A)aPP the true K(A) was retrieved by extrapolation to [Mg2+] = 0 and was found to be 0.2 mM. The dissociation constants for Mg2+, established from these experiments, were also apparent (K(B)aPP) and dependent on [ATP4-] as well as on the pH. The actual K(B) was established from a series of K(B)aPP by extrapolating to [ATP4-] = infinity and to the absence of competing protons, and was found to be 0.0041 mM. The pKa of the protonable group for Mg2+ binding is 8.2. For the competitive inhibition alternative, rearrangement of the constants and fitting to the velocity equation gave an actual binding constant for MgATP2- (K(EAB)) of 0.0016 mM and for ATP4- (K(EA)) of 0.2 mM. Decision between the two models has far-reaching mechanistic implications. In the competitive inhibition model MgATP2- binds with high affinity, but Mg2+ cannot bind once the E x ATP4- complex is formed, while in the ordered-binding model binding of Mg2+ requires that ATP4- adds first. The steric constraints evident in the diffraction structure of the ATP binding site in the bovine mitochondrial F-ATPase [Abrahams, J. P., Leslie, A. G. W., Lutter, R. & Walker, J. E. (1994) Nature 370, 621-628] tend to favor the ordered-binding model, but the final decision as to which kinetic model is valid has to be from further structural studies. If the ordered-binding model gains more experimental support, a revision of the current concepts of unisite catalysis and negative cooperativity of nucleotide binding will be necessary.
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.