Abstract
In response to osmotic perturbation, the Amphiuma red blood cell regulates volume back to "normal" levels. After osmotic swelling, the cells lose K, Cl, and osmotically obliged H2O (regulatory volume decrease [RVD] ). After osmotic shrinkage, cell volume is regulated as a result of Na, Cl, and H2O uptake (regulatory volume increase [RVI] ). As previously shown (Cala, 1980 alpha), ion fluxes responsible for volume regulation are electroneutral, with alkali metal ions obligatorily counter-coupled to H, whereas net Cl flux is in exchange for HCO3. When they were exposed to the Ca ionophore A23187, Amphiuma red blood cells lost K, Cl, and H2O with kinetics (time course) similar to those observed during RVD. In contrast, when cells were osmotically swollen in Ca-free media, net K loss during RVD was inhibited by approximately 60%. A role for Ca in the activation of K/H exchange during RVD was suggested from these experiments, but interpretation was complicated by the fact that an increase in cellular Ca resulted in an increase in the membrane conductance to K (GK). To determine the relative contributions of conductive K flux and K/H exchange to total K flux, electrical studies were performed and the correspondence of net K flux to thermodynamic models for conductive vs. K/H exchange was evaluated. These studies led to the conclusion that although Ca activates both conductive and electroneutral K flux pathways, only the latter pathways contribute significantly to net K flux. On the basis of observations that A23187 did not activate K loss from cells during RVI (when the Na/H exchange was functioning) and that amiloride inhibited K/H exchange by swollen cells only when cells had previously been shrunk in the presence of amiloride, I concluded that Na/H and K/H exchange are mediated by the same membrane transport moiety.
MeSH Terms
Amiloride
Animals
Calcimycin/pharmacology
Calcium/physiology
Chlorides/metabolism
Electric Conductivity
Erythrocyte Volume
Erythrocytes/metabolism,physiology
Hydrogen/metabolism
Membrane Potentials/drug effects
Metals, Alkali/metabolism
Potassium/metabolism
Urodela/blood
Chemicals
Chlorides
Metals, Alkali
Calcimycin
Amiloride
Hydrogen
Potassium
Calcium
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Cala P M
References (27)
27 references, click to expand
-
Volume regulation by Amphiuma red blood cells. The membrane potential and its implications regarding the nature of the ion-flux pathways.
J Gen Physiol. 1980 Dec;76(6):683-708
PMID: 10822499
-
Regulation of cell volume in flounder (Pleuronectes flesus) erythrocytes accompanying a decrease in plasma osmolarity.
Comp Biochem Physiol. 1967 Jul;22(1):253-60
PMID: 6049989
-
Increased chloride conductance as the proximate cause of hydrogen ion concentration effects in Aplysia neurons.
J Gen Physiol. 1970 Nov;56(5):559-82
PMID: 5475996
-
The response of duck erythrocytes to nonhemolytic hypotonic media. Evidence for a volume-controlling mechanism.
J Gen Physiol. 1971 Oct;58(4):372-95
PMID: 5112657
-
The response of duck erythrocytes to hypertonic media. Further evidence for a volume-controlling mechanism.
J Gen Physiol. 1971 Oct;58(4):396-412
PMID: 5112658
-
Dog red blood cells. Adjustment of density in vivo.
J Gen Physiol. 1973 Feb;61(2):146-57
PMID: 4265872
-
Regulation of renal tubule cell volume in hypotonic media.
Am J Physiol. 1973 Jun;224(6):1288-94
PMID: 4712139
-
Dog red blood cells. Adjustment of salt and water content in vitro.
J Gen Physiol. 1973 Aug;62(2):147-56
PMID: 4722565
-
Adaptation of mouse leukemic cells (L5178Y) to anisotonic media. I. Cell volume regulation.
Exp Cell Res. 1973 Jun;79(2):295-310
PMID: 4798702
-
Cell volume regulation in Ehrlich ascites tumor cells.
J Cell Physiol. 1974 Aug;84(1):115-25
PMID: 4858521
-
Calcium-related hyperpolarization of the Amphiuma red cell membrane following micropuncture.
J Membr Biol. 1974;18(2):125-44
PMID: 4472868
-
Effect of osmolality and salinity adaptation on cellular composition and on potassium uptake, of erythrocytes from the euryhaline toad, Bufo viridis.
Comp Biochem Physiol A Comp Physiol. 1975 Sep 1;52(1):165-9
PMID: 240543
-
Effect of calcium on the membrane potential of Amphiuma red cells.
J Membr Biol. 1976 Feb 17;26(1):51-70
PMID: 3652
-
Effect of antihistamines and chlorpromazine on the calcium-induced hyperpolarization of the Amphiuma red cell membrane.
Biochim Biophys Acta. 1976 Nov 2;448(4):599-606
PMID: 788791
-
Volume regulation by flounder red blood cells in anisotonic media.
J Gen Physiol. 1977 May;69(5):537-52
PMID: 864431
-
Ouabain-insensitive salt and water movements in duck red cells. I. Kinetics of cation transport under hypertonic conditions.
J Gen Physiol. 1977 Jul;70(1):59-79
PMID: 894251
-
Chloride conductance of the amphiuma red cell membrane.
J Membr Biol. 1978 Feb 6;39(1):27-48
PMID: 24748
-
Unmasking the mitochondrial K/H exchanger: swelling-induced K+-loss.
Biochem Biophys Res Commun. 1978 Aug 29;83(4):1450-5
PMID: 29633
-
Specific cation modulation of anion transport across the human erythrocyte membrane.
Biochim Biophys Acta. 1978 Dec 19;514(2):264-73
PMID: 32903
-
The Na:K pump in red cells is electrogenic.
Fed Proc. 1979 Oct;38(11):2440-1
PMID: 488369
-
A single-cell technique for the measurement of membrane potential, membrane conductance, and the efflux of rapidly penetrating solutes in Amphiuma erythrocytes.
J Gen Physiol. 1980 Oct;76(4):455-78
PMID: 7441192
-
Osmoregulatory salt transporting mechanisms: control of cell volume in anisotonic media.
Annu Rev Physiol. 1981;43:493-505
PMID: 7011197
-
Epithelial cell volume regulation: bicarbonate dependence.
Science. 1981 Dec 18;214(4527):1357-9
PMID: 7313695
-
Volume regulation by human lymphocytes. Role of calcium.
J Gen Physiol. 1982 May;79(5):849-68
PMID: 6808083
-
Anion exchange and anion-cation co-transport systems in mammalian cells.
Philos Trans R Soc Lond B Biol Sci. 1982 Dec 1;299(1097):519-35
PMID: 6130544
-
The permeability of human erythrocytes to potassium.
Acta Physiol Hung. 1956;10(2-4):185-9
PMID: 13372335
-
The function of calcium in the potassium permeability of human erythrocytes.
Biochim Biophys Acta. 1958 Dec;30(3):653-4
PMID: 13618284