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Calcium current activated by depletion of calcium stores in Xenopus oocytes
1Department of Pharmacology, University of California, San Diego, La Jolla 92093-0647, USA.
Abstract:
Ca(2+) currents activated by depletion of Ca(2+) stores in Xenopus oocytes were studied with a two-electrode voltage clamp. Buffering of cytosolic Ca(2+) with EGTA and MeBAPTA abolished I(Cl(Ca)) and unmasked a current in oocytes that was activated by InsP(3) or ionomycin in minutes and by thapsigargin or the chelators themselves over hours. At -60 mV in 10 mM extracellular CaCl(2), the current was typically around -90 or -160 nA in oocytes loaded with EGTA or MeBAPTA, respectively. This current was judged to be a Ca(2+)-selective current for the following reasons: (a) it was inwardly rectifying and reversed at membrane potentials usually more positive than +40 mV; (b) it was dependent on extracellular [CaCl(2)] with K(m) = 11.5 mM; (c) it was highly selective for Ca(2+) against monovalent cations Na(+) and K(+), because replacing Na(+) and K(+) by N-methyl-d-glucammonium did not reduce the amplitude or voltage dependence of the current significantly; and (d) Ca(2+), Sr(2+), and Ba(2+) currents had similar instantaneous conductances, but Sr(2+) and Ba(2+) currents appeared to inactivate more strongly than Ca(2+). This Ca(2+) current was blocked by metal ions with the following potency sequence: Mg(2+) << Ni(2+) approximately Co(2+) approximately Mn(2+) < Cd(2+) << Zn(2+) << La(3+). It was also inhibited by niflumic acid, which is commonly used to block I(Cl(Ca)). PMA partially inhibited the Ca(2+) current, and this effect was mostly abolished by calphostin C, indicating that the Ca(2+) current is sensitive to protein kinase C. These results are the first detailed electrophysiological characterization of depletion-activated Ca(2+) current in nondialyzed cells. Because exogenous molecules and channels are easy to introduce into oocytes and the distortions in measuring I(Cl(Ca)) can now be bypassed, oocytes are now a superior system in which to analyze the activation mechanisms of capacitative Ca(2+) influx.
Insights
Depletion of calcium stores in Xenopus oocytes unmasked a novel calcium current. This study provides the first electrophysiological characterization of this depletion-activated calcium influx.
Area of Science:
- Cellular Physiology
- Ion Channel Electrophysiology
- Calcium Signaling
Background:
- Capacitative calcium entry is a critical cellular process.
- Previous studies faced challenges in characterizing depletion-activated calcium currents.
- Xenopus oocytes offer a unique system for studying ion channel function.
Purpose of the Study:
- To electrophysiologically characterize the calcium current activated by depletion of intracellular calcium stores in Xenopus oocytes.
- To investigate the properties and selectivity of this novel calcium influx pathway.
- To establish Xenopus oocytes as a superior model for studying capacitative calcium entry mechanisms.
Main Methods:
- Two-electrode voltage clamp technique was employed in Xenopus oocytes.
- Cytosolic calcium buffering was performed using EGTA and MeBAPTA.
- Stimulation of store depletion was achieved using InsP3, ionomycin, thapsigargin, and calcium chelators.
Main Results:
- A novel, inwardly rectifying calcium-selective current was unmasked upon calcium store depletion.
- The current exhibited strong dependence on extracellular calcium concentration (Km = 11.5 mM) and selectivity for Ca2+ over monovalent cations.
- The current was inhibited by various metal ions (Ni2+, Co2+, Mn2+, Cd2+, Zn2+, La3+), niflumic acid, and protein kinase C activators (PMA).
Conclusions:
- This study presents the first detailed electrophysiological characterization of a depletion-activated calcium current in non-dialyzed cells.
- Xenopus oocytes provide an advantageous system for dissecting the activation mechanisms of capacitative calcium influx.
- The identified calcium current is sensitive to protein kinase C, suggesting a regulatory role.