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Published on: September 7, 2012
Interaction of Mg2+ with F0.F1 mitochondrial ATPase as related to its slow active/inactive transition
1Department of Biochemistry, School of Biology, Moscow State University, U.S.S.R.
Abstract:
Bovine heart submitochondrial particles incubated with a low concentration of ADP in the presence of Mg2+ and passed through a Sephadex column equilibrated with EDTA exhibit sensitivity of their initial ATPase activity to preincubation with Mg2+. By using particles thus prepared, several characteristics of a Mg(2+)-specific inhibitory site on F0.F1 ATPase were studied. The inhibition was shown to be both time- and Mg(2+)-concentration-dependent, with an equilibrium constant (at infinite time) of 2 x 10(-6) M (25 degrees C, pH 7.5). The dependence of the pseudo-first-order rate constant for the inhibition process on Mg2+ concentration suggests the presence of a single Mg(2+)-binding site with K8 = 1.1 x 10(-4) M. The data obtained are consistent with a two-step mechanism of Mg(2+)-F0.F1 interaction which results in a loss of the ATPase activity; it includes rapid pH-dependent binding of Mg2+ at the site with K8 = 1.1 x 10(-4) M, followed by a slow interconversion of the Mg(2+)-F1 complex into inactive ATPase (kin. = 0.65 min-1, kact. = 0.01 min-1). The Mg(2+)-inhibited ATPase is very slowly (t1/2 approximately 90 min) re-activated in the presence of EDTA. The rate of EDTA-induced re-activation is pH-independent and can be dramatically increased by added ATP, Pi and sulphite. The dissociation constants for free ATP and P1 (5 x 10(-7) M and 1 x 10(-3) M respectively) and the maximal activation rates were determined by measuring the hyperbolic dependencies of the EDTA-induced re-activation of Mg(2+)-de-activated ATPase on the concentrations of the accelerating ligands. Taken together, the data obtained show two functionally detectable free nucleotide-specific binding sites, one site for Pi and one Mg(2+)-specific ATPase-inhibitory site on the F0.F1 mitochondrial ATP synthase complex.
Insights
This study reveals a specific Mg2+-binding site on F0.F1 ATPase that inhibits its activity. The research details the binding characteristics and a mechanism for ATPase inhibition and reactivation, identifying multiple binding sites on the mitochondrial ATP synthase complex.
Area of Science:
- Biochemistry
- Mitochondrial Physiology
- Enzyme Kinetics
Background:
- Bovine heart submitochondrial particles contain the F0.F1 ATPase enzyme complex.
- Understanding the regulation of mitochondrial ATP synthase is crucial for cellular energy production.
Purpose of the Study:
- To characterize the Mg2+-specific inhibitory site on F0.F1 ATPase.
- To elucidate the mechanism of Mg2+ -induced inhibition and subsequent reactivation of ATPase activity.
Main Methods:
- Incubation of submitochondrial particles with ADP and Mg2+, followed by Sephadex column chromatography.
- Kinetic analysis of ATPase activity inhibition and reactivation under varying conditions (Mg2+ concentration, pH, ligands).
- Determination of binding constants and rate constants for enzyme-ligand interactions.
Main Results:
- A Mg2+-specific inhibitory site on F0.F1 ATPase was identified, with an equilibrium constant of 2 x 10(-6) M.
- A two-step inhibition mechanism was proposed, involving Mg2+ binding (K8 = 1.1 x 10(-4) M) and subsequent inactivation.
- Reactivation of inhibited ATPase by EDTA was accelerated by ATP, Pi, and sulfite, indicating specific binding sites for these molecules.
Conclusions:
- The F0.F1 mitochondrial ATP synthase complex possesses a Mg2+-specific inhibitory site.
- The enzyme complex features two nucleotide-specific binding sites and one Pi-binding site, in addition to the Mg2+-inhibitory site.
- These findings contribute to understanding the intricate regulatory mechanisms of mitochondrial ATP synthesis.
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