Inhibition of ATP Hydrolysis by Thermoalkaliphilic F 1 F o -ATP Synthase Is Controlled by the C Terminus of the ε Subunit

Author:

Keis Stefanie1,Stocker Achim2,Dimroth Peter2,Cook Gregory M.1

Affiliation:

1. Department of Microbiology and Immunology, Otago School of Medical Sciences, University of Otago, P.O. Box 56, Dunedin, New Zealand

2. Institut für Mikrobiologie, ETH-Hönggerberg, CH-8093 Zürich, Switzerland

Abstract

ABSTRACT The F 1 F o -ATP synthases of alkaliphilic bacteria exhibit latent ATPase activity, and for the thermoalkaliphile Bacillus sp. strain TA2.A1, this activity is intrinsic to the F 1 moiety. To study the mechanism of ATPase inhibition, we developed a heterologous expression system in Escherichia coli to produce TA2F 1 complexes from this thermoalkaliphile. Like the native F 1 F o -ATP synthase, the recombinant TA2F 1 was blocked in ATP hydrolysis activity, and this activity was stimulated by the detergent lauryldimethylamine oxide. To determine if the C-terminal domain of the ε subunit acts as an inhibitor of ATPase activity and if an electrostatic interaction plays a role, a TA2F 1 mutant with either a truncated ε subunit [i.e., TA2F 1ΔC )] or substitution of basic residues in the second α-helix of ε with nonpolar alanines [i.e., TA2F 16A )] was constructed. Both mutants showed ATP hydrolysis activity at low and high concentrations of ATP. Treatment of the purified F 1 F o -ATP synthase and TA2F 1WT ) complex with proteases revealed that the ε subunit was resistant to proteolytic digestion. In contrast, the ε subunit of TA2F 16A ) was completely degraded by trypsin, indicating that the C-terminal arm was in a conformation where it was no longer protected from proteolytic digestion. In addition, ATPase activity was not further activated by protease treatment when compared to the untreated control, supporting the observation that ε was responsible for inhibition of ATPase activity. To study the effect of the alanine substitutions in the ε subunit in the entire holoenzyme, we reconstituted recombinant TA2F 1 complexes with F 1 -stripped native membranes of strain TA2.A1. The reconstituted TA2F o F 1WT ) was blocked in ATP hydrolysis and exhibited low levels of ATP-driven proton pumping consistent with the F 1 F o -ATP synthase in native membranes. Reconstituted TA2F o F 16A ) exhibited ATPase activity that correlated with increased ATP-driven proton pumping, confirming that the ε subunit also inhibits ATPase activity of TA2F o F 1 .

Publisher

American Society for Microbiology

Subject

Molecular Biology,Microbiology

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