Purification and Biochemical Characterization of the F 1 F o -ATP Synthase from Thermoalkaliphilic Bacillus sp. Strain TA2.A1

Author:

Cook Gregory M.1,Keis Stefanie1,Morgan Hugh W.2,von Ballmoos Christoph3,Matthey Ulrich3,Kaim Georg3,Dimroth Peter3

Affiliation:

1. Department of Microbiology, Otago School of Medical Sciences, University of Otago, Dunedin

2. Thermophile Research Unit, University of Waikato, Hamilton, New Zealand

3. Institut für Mikrobiologie, Eidgenössische Technische Hochschule, ETH-Zentrum, CH-8092 Zürich, Switzerland

Abstract

ABSTRACT We describe here purification and biochemical characterization of the F 1 F o -ATP synthase from the thermoalkaliphilic organism Bacillus sp. strain TA2.A1. The purified enzyme produced the typical subunit pattern of an F 1 F o -ATP synthase on a sodium dodecyl sulfate-polyacrylamide gel, with F 1 subunits α, β, γ, δ, and ε and F o subunits a, b, and c. The subunits were identified by N-terminal protein sequencing and mass spectroscopy. A notable feature of the ATP synthase from strain TA2.A1 was its specific blockage in ATP hydrolysis activity. ATPase activity was unmasked by using the detergent lauryldimethylamine oxide (LDAO), which activated ATP hydrolysis >15-fold. This activation was the same for either the F 1 F o holoenzyme or the isolated F 1 moiety, and therefore latent ATP hydrolysis activity is an intrinsic property of F 1 . After reconstitution into proteoliposomes, the enzyme catalyzed ATP synthesis driven by an artificially induced transmembrane electrical potential (Δψ). A transmembrane proton gradient or sodium ion gradient in the absence of Δψ was not sufficient to drive ATP synthesis. ATP synthesis was eliminated by the electrogenic protonophore carbonyl cyanide m -chlorophenylhydrazone, while the electroneutral Na + /H + antiporter monensin had no effect. Neither ATP synthesis nor ATP hydrolysis was stimulated by Na + ions, suggesting that protons are the coupling ions of the ATP synthase from strain TA2.A1, as documented previously for mesophilic alkaliphilic Bacillus species. The ATP synthase was specifically modified at its c subunits by N , N ′-dicyclohexylcarbodiimide, and this modification inhibited ATP synthesis.

Publisher

American Society for Microbiology

Subject

Molecular Biology,Microbiology

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