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Measurement of Vacuolar and Cytosolic pH In Vivo in Yeast Cell Suspensions
Published on: April 19, 2013
Inhibition of the yeast V-type ATPase by cytosolic ADP
Carsten Kettner1, Gerhard Obermeyer, Adam Bertl
1Botanisches Institut I, Universität Karlsruhe (TH), Kaiserstrasse 12, 76128 Karlsruhe, Germany. ckettner@beilstein-institut.de
Abstract:
The activity of the vacuolar H(+)-ATPase has been characterized in isolated vacuoles of the yeast Saccharomyces cerevisiae by means of the patch-clamp technique. With cytosolic calcium at virtually zero (<10(-9) M), Mg-ATP induced a transient, bafilomycin A(1)-sensitive current corresponding to the flow of positive charges from the cytoplasmic surface to the vacuolar lumen. The Mg-ATP-dependent current reached its maximum amplitude (30+/-8 mA m(-2) with 5 mM Mg-ATP, n=34) within 15-20 s and declined slowly over a period of about 15-20 min even in the continuous presence of Mg-ATP. This decline of pumping activity was independent of the cytosolic KCl concentration, suggesting an inhibitory mechanism different from the high salt-induced dissociation of V(0) and V(1) reported for the V-ATPase of plants and fungi. Cytosolic ADP was found to modulate the pump activity since Mg-ATP-induced pump current was smaller if monitored in the presence of 5 mM ADP and addition of 5 mM ADP in the presence of 5 mM Mg-ATP reduced the pump current by more than 50%. Furthermore, reduction of the cytosolic ADP concentration by the ATP-regenerating system creatine phosphate/creatine kinase partially relieved the endogenous inhibition of the V-ATPase, confirming that interaction of cytosolic ADP with the V-ATPase is the reason for the transient nature of the pump current in yeast vacuoles.
Insights
The vacuolar H(+)-ATPase in yeast exhibits transient activity, inhibited by cytosolic ADP. This ADP-mediated inhibition regulates the pump
Area of Science:
- Cellular Biology
- Biochemistry
- Membrane Transport
Background:
- The vacuolar H(+)-ATPase (V-ATPase) is crucial for maintaining cellular homeostasis.
- Understanding V-ATPase regulation is key to comprehending cellular functions in yeast.
Purpose of the Study:
- To characterize the activity of the vacuolar H(+)-ATPase in Saccharomyces cerevisiae.
- To investigate the factors influencing the transient nature of V-ATPase activity.
Main Methods:
- Utilized the patch-clamp technique for electrophysiological measurements.
- Isolated vacuoles from yeast Saccharomyces cerevisiae for experimental analysis.
- Employed Mg-ATP and varying ADP concentrations to probe V-ATPase function.
Main Results:
- Mg-ATP induced a bafilomycin A(1)-sensitive current, indicating V-ATPase proton pumping.
- The Mg-ATP-dependent current showed transient behavior, declining over time.
- Cytosolic ADP significantly inhibited V-ATPase activity, reducing pump current by over 50%.
Conclusions:
- Cytosolic ADP plays a critical role in the transient inhibition of yeast V-ATPase.
- The observed inhibition mechanism differs from high salt-induced dissociation in other organisms.
- ADP interaction with V-ATPase explains the pump's transient current in yeast vacuoles.
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