| Literature DB >> 27013734 |
Salome Veshaguri1, Sune M Christensen1, Gerdi C Kemmer2, Garima Ghale1, Mads P Møller1, Christina Lohr1, Andreas L Christensen1, Bo H Justesen2, Ida L Jørgensen2, Jürgen Schiller3, Nikos S Hatzakis1, Michael Grabe4, Thomas Günther Pomorski2, Dimitrios Stamou1.
Abstract
In eukaryotes, P-type adenosine triphosphatases (ATPases) generate the plasma membrane potential and drive secondary transport systems; however, despite their importance, their regulation remains poorly understood. We monitored at the single-molecule level the activity of the prototypic proton-pumping P-type ATPase Arabidopsis thaliana isoform 2 (AHA2). Our measurements, combined with a physical nonequilibrium model of vesicle acidification, revealed that pumping is stochastically interrupted by long-lived (~100 seconds) inactive or leaky states. Allosteric regulation by pH gradients modulated the switch between these states but not the pumping or leakage rates. The autoinhibitory regulatory domain of AHA2 reduced the intrinsic pumping rates but increased the dwell time in the active pumping state. We anticipate that similar functional dynamics underlie the operation and regulation of many other active transporters.Entities:
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Year: 2016 PMID: 27013734 PMCID: PMC5023152 DOI: 10.1126/science.aad6429
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728