Abstract
The non-selective slow vacuolar (SV) channel can dominate tonoplast conductance, making it necessary to tightly control its activity. Applying the patch-clamp technique to vacuoles from sugar beet (Beta vulgaris L.) taproots we studied the effect of divalent cations on the vacuolar side of the SV channel. Our results show that the SV channel has two independent binding sites for vacuolar divalent cations, (i) a less selective one, inside the channel pore, binding to which impedes channel conductance, and (ii) a Ca(2+)-selective one outside the membrane-spanning part of the channel protein, binding to which stabilizes the channel's closed conformations. Vacuolar Ca2+ and Mg2+ almost indiscriminately blocked ion fluxes through the open channel pore, decreasing measured single-channel current amplitudes. This low-affinity block displays marked voltage dependence, characteristic of a 'permeable blocker'. Vacuolar Ca(2+)-with a much higher affinity than Mg(2+)-slows down SV channel activation and shifts the voltage dependence to more (cytosol) positive potentials. A quantitative analysis results in a model that exactly describes the Ca(2+)-specific effects on the SV channel activation kinetics and voltage gating. According to this model, multiple (approximately three) divalent cations bind with a high affinity at the luminal interface of the membrane to the channel protein, favoring the occupancy of one of the SV channel's closed states (C2). Transition to another closed state (C1) diminishes the effective number of bound cations, probably due to mutual repulsion, and channel opening is accompanied by a decrease of binding affinity. Hence, the open state (O) is destabilized with respect to the two closed states, C1 and C2, in the presence of Ca2+ at the vacuolar side. The specificity for Ca2+ compared to Mg2+ is explained in terms of different binding affinities for these cations. In this study we demonstrate that vacuolar Ca2+ is a crucial regulator to restrict SV channel activity to a physiologically meaningful range, which is less than 0.1% of maximum SV channel activity.
MeSH Terms
Beta vulgaris/metabolism,ultrastructure
Calcium/metabolism,physiology
Electrophysiology
Ion Channel Gating/physiology
Ion Channels/metabolism
Kinetics
Magnesium/metabolism,physiology
Models, Biological
Patch-Clamp Techniques
Vacuoles/metabolism
Chemicals
Ion Channels
Magnesium
Calcium
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Pottosin Igor I
Centro Universitario de Investigaciones Biomédicas, Universidad de Colima, 28047 Colima, Col., México. pottosin@cgic.ucol.mx
Martínez-Estévez Manuel
Dobrovinskaya Oxana R
Muñiz Jesús
Schönknecht Gerald
References (24)
24 references, click to expand
-
Improved patch-clamp techniques for high-resolution current recording from cells and cell-free membrane patches.
Pflugers Arch. 1981 Aug;391(2):85-100
PMID: 6270629
-
Redox agents regulate ion channel activity in vacuoles from higher plant cells.
FEBS Lett. 1999 Jan 15;442(2-3):129-32
PMID: 9928987
-
Magnesium Sensitizes Slow Vacuolar Channels to Physiological Cytosolic Calcium and Inhibits Fast Vacuolar Channels in Fava Bean Guard Cell Vacuoles.
Plant Physiol. 1999 Nov;121(3):977-986
PMID: 10557247
-
Calcium-Activated K+ Channels and Calcium-Induced Calcium Release by Slow Vacuolar Ion Channels in Guard Cell Vacuoles Implicated in the Control of Stomatal Closure.
Plant Cell. 1994 May;6(5):669-683
PMID: 12244253
-
Surface charge effects on ion conduction in ion channels.
Methods Enzymol. 1992;207:471-501
PMID: 1382198
-
Calcium-induced calcium release mediated by a voltage-activated cation channel in vacuolar vesicles from red beet.
FEBS Lett. 1999 Sep 10;458(1):41-4
PMID: 10518930
-
Control of ionic currents in guard cell vacuoles by cytosolic and luminal calcium.
Plant J. 1996 Dec;10(6):1055-69
PMID: 9011087
-
Fast and slow activation of voltage-dependent ion channels in radish vacuoles.
Biophys J. 1993 Nov;65(5):1837-43
PMID: 7507716
-
Voltage- and Ca(2+)-dependence of the K+ channel in the vacuolar membrane of Chenopodium rubrum L. suspension cells.
Biochim Biophys Acta. 1994 Jun 1;1192(1):79-87
PMID: 8204654
-
Inhibition of inward rectifying tonoplast channels by a vacuolar factor: physiological and kinetic implications.
J Membr Biol. 1991 Jun;122(3):251-8
PMID: 1717691
-
Magnesium transport and function in plants: the tip of the iceberg.
Biometals. 2002 Sep;15(3):309-23
PMID: 12206396
-
Calcineurin, a Type 2B Protein Phosphatase, Modulates the Ca2+-Permeable Slow Vacuolar Ion Channel of Stomatal Guard Cells.
Plant Cell. 1995 Sep;7(9):1473-1483
PMID: 12242407
-
Electrical measurements on endomembranes.
Science. 1992 Nov 6;258(5084):873-4
PMID: 1439795
-
Ion channels in the vacuoles of the seagrass Posidonia oceanica.
FEBS Lett. 1997 Jul 21;412(1):236-40
PMID: 9257727
-
Ca2+-Calmodulin Modulates Ion Channel Activity in Storage Protein Vacuoles of Barley Aleurone Cells.
Plant Cell. 1994 Feb;6(2):277-285
PMID: 12244238
-
Calmodulin regulates the Ca(2+)-dependent slow-vacuolar ion channel in the tonoplast of Chenopodium rubrum suspension cells.
Planta. 1991 Oct;185(3):440-2
PMID: 24186430
-
Asymmetric block of the plant vacuolar Ca(2+)-permeable channel by organic cations.
Eur Biophys J. 1999;28(7):552-63
PMID: 10541793
-
Cytoplasmic free calcium in Riccia fluitans L. and Zea mays L.: Interaction of Ca(2+) and pH?
Planta. 1988 Nov;176(2):248-55
PMID: 24220780
-
Conduction of monovalent and divalent cations in the slow vacuolar channel.
J Membr Biol. 2001 May 1;181(1):55-65
PMID: 11331938
-
Effects of cytoplasmic Mg2+ on slowly activating channels in isolated vacuoles of Beta vulgaris.
Planta. 2001 Jul;213(3):457-68
PMID: 11506369
-
Inhibition of vacuolar ion channels by polyamines.
J Membr Biol. 1999 Jan 15;167(2):127-40
PMID: 9916144
-
Electrochemical Potential Gradients of H+, K+, Ca2+, and Cl- across the Tonoplast of the Green Alga Eremosphaera Viridis.
Plant Physiol. 1995 Dec;109(4):1317-1326
PMID: 12228672
-
Negative surface charge near sodium channels of nerve: divalent ions, monovalent ions, and pH.
Philos Trans R Soc Lond B Biol Sci. 1975 Jun 10;270(908):301-18
PMID: 238230
-
Nickel inhibits the slowly activating channels of radish vacuoles.
Eur Biophys J. 2003 Mar;32(1):60-6
PMID: 12632208