Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Sodium-Calcium Exchanger”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Sodium-calcium exchange and calcium-calcium exchange in internally dialyzed squid giant axons.

The influx and efflux of calcium (as 45Ca) and influx of sodium (as 24Na) were studied in internally dialyzed squid giant axons. The axons were poisoned with cyanide and ATP was omitted from the dialysis fluid. The internal ionized Ca2+ concentration ([Ca2+]i) was controlled with Ca-EGTA buffers. With [Ca2+]i greater than 0.5 muM, 45Ca efflux was largely dependent upon external Na and Ca. The Nao-dependent Ca efflux into Ca-free media appeared to saturate as [Ca2+]i was increased to 160 muM; the half-saturation concentration was about 8 muM Ca2+. In two experiments 24Na influx was measured; when [Ca2+]i was decreased from 160 muM to less than 0.5 muM, Na influx declined by about 5 pmoles/cm2 sec. The Nao-dependent Ca efflux averaged 1.6 pmoles/cm2 sec in axons with a [Ca2+]i of 160 muM, and was negligible in axons with a [Ca2+]i of less than 0.5 muM. Taken together, the Na influx and Ca efflux data may indicate that the fluxes are coupled with a stoichiometry of about 3 Na+-to-1 Ca2+. Ca efflux into Na-free media required the presence of both Ca and an alkali metal ion (but not Cs) in the external medium. Ca influx from Li-containing media was greatly reduced when [Ca2+]i was decreased from 160 to 0.23 muM, or when external Li was replaced by choline. These data provide evidence for a Ca-Ca exchange mechanism which is activated by certain alkali metal ions. The observations are consistent with a mobile carrier mechanism which can exchange Ca2+ ions from the axoplasm for either 3 Na+ ions, or one Ca2+ and an alkali metal ion (but not Cs) from the external medium. This mechanism may utilize energy from the Na electrochemical gradient to help extrude Ca against an electrochemical gradient.

Animals↗

Sodium-calcium exchange in regulation of cardiac contractility. Evidence for an electrogenic, voltage-dependent mechanism.

The origin and regulatory mechanisms of tonic tension (Ca current-independent component of contractility) were investigated in frog atrial muscle under voltage-clamp conditions. Tonic tension was elicited by depolarizing pulses of 160 mV (Em = +90 mV, i.e., close to E ca) and 400--600 ms long. An application of Na-free (LiCl) or Ca-free Ringer's solutions resulted in a fast (less than 120 s), almost complete abolition of tonic tension. When [Na]o was reduced (with LiCl or sucrose as the substitutes), the peak tonic tension increased transiently and then decreased below the control level. The transient changes in tonic tension were prevented by using low-Na, low-Ca solutions where the ratios [Ca]0/[Na]40 to [Ca]o/[Na]4o were kept constant (1.1 X 10(-8) mM-3 to 8.7 X 10(-13) mM-5). Na-free (LiCl) solution elicited contractures accompanied by a membrane hyperpolarization or by an outward current even when the Na-K pump was inhibited. 15 mM MnCl2 (or 3 mM LaCl3) inhibited the development of the Na-free contracture and the related part of hyperpolarization or the outward current. In conclusion, our results indicate that tonic tension is regulated by a Na-Ca exchange mechanism. Furthermore, they suggest that this exchange could be electrogenic (exchanging three or more Na ions for one Ca ion) and thus voltage dependent. The possible contribution of an electrogenic Na-Ca exchange in the maintenance of cardiac membrane potential is discussed.

Animals↗

Calcium-induced increase in membrane permeability in the guinea-pig taenia coli: evidence for involvement of a sodium-calcium exchange mechanism.

1. High-Na tissues exposed to a Na-free solution with dimethyldiethanol ammonium chloride (DDA) or sucrose replacing Na, develop an increase in membrane permeability to small ions and molecules such as Na, K, sucrose and CoEDTA. 2. The increase in permeability only occurs when the Na gradient across the cell membrane is reversed, and is not due to damaging effects of the Na-free solution. It does not occur in normal or high-K tissues, and 15 mM-[Na]0 is enough to prevent the permeability change in high-Na tissues. 3. Tissues with increased permeability maintain high levels of Ca and the increased permeability does not occur in Ca-free solutions, or in solutions containing 5 mM-La3+. The rate of development of membrane leakiness depends on the level of extracellular Ca. 4. Tissues exposed to iodoacetic acid (IAA) and dinitrophenol (DNP) also develop a membrane leakiness, dependent on extracellular Ca and blocked by La3+. 5. The time taken for development of the increase in membrane permeability in metabolically inhibited tissues can be affected by the Na gradient. With no gradient, or a slightly reversed gradient the membrane break-down occurs more rapidly. 6. It is concluded that the increase in permeability is caused by an increase in internal Ca ions, and that the Na gradient as well as the levels of ATP are important in controlling Ca movements. 7. Tension recordings also support the some form of Na--Ca exchange mechanism operating in the taenia, and this mechanism is not completely blocked by La3+ ions, although they suppress the break-down in membrane permeability.

Animals↗

Sodium-calcium exchange in regulation of cardiac contraction.

The origin and possible regulatory mechanism of tonic tension (ICa-independent component of active contractile activity) were investigated in frog antrial muscle under voltage-clamp conditions. Replacement of NaCl by LiCl resulted in a fast decrease in tonic tension; a similar fast decrease of this contractile component was induced by Ca-free solution. When low Na Ringer's solution was applied, tonic tension increased transiently and then decreased to a steady amplitude; at return to normal Ringer's, a further, substantial decrease in tonic tension occurred before the original level was reached. Similar behavior of tonic tension was observed when both [Na] o and [Ca]o were lowered, but the ratio [Ca]o/[Na]o2 remained constant; the transient changes were prevented by using low Ca and Na solutions and keeping the ratio of [Ca]o/[Na]o5 constant. The significance of Na-Ca exchange in regulating tonic tension and the possibility that this exchange may be electrogenic are discussed.

Animals↗

Stoichiometry of sodium-calcium exchange in cardiac sarcolemmal vesicles. Coupling to the sodium pump.

Vesicles isolated from cardiac muscle exhibited Na,Ca exchange activity which can be measured by 45Ca influx or efflux of by 22Na efflux. The stoichiometry of Na,Ca exchange was 3 Na:1 Ca. These vesicles also exhibited ATP-dependent 22Na transport which was inhibited by ouabain indicating that this activity is due to the sodium pump, an activity which is thought to reside only in the sarcolemma. The addition of calcium caused rapid efflux of 22Na from vesicles loaded by ATP-dependent 22Na uptake indicating that the Na,Ca exchange is located in the same vesicles as the sodium pump and is thus also a sarcolemmal activity.

Animals↗

Sodium-calcium ion exchange in cardiac membrane vesicles.

Membrane vesicles isolated from rabbit ventricular tissue rapidly accumulated Ca2+ when an outwardly directed Na+ gradient was formed across the vesicle membrane. Vesicles loaded internally with K+ showed only 10% of the Ca2+ uptake activity observed with Na+-loaded vesicles. Dissipation of the Na+ gradient with the monovalent cation exchange ionophores nigericin or narasin caused a rapid decline in Ca2+ uptake activity. The Ca2+-ionophore A23187 inhibited Ca2+ uptake by Na+-loaded vesicles and enhanced the rate of Ca2+ loss from the vesicles after uptake. Efflux of preaccumulated Ca2+ from the vesicles was stimulated 30-fold by the presence of 50 mM Na+ in the external medium. Na+-dependent uptake and efflux of Ca2+ were both inhibited by La3+. The results indicate that cardiac membrane vesicles exhibit Na+-Ca2+ exchange activity. Fractionation of the vesicles by density gradient centrifugation revealed a close correspondence between Na+-Ca2+ exchange activity and specific ouabain-binding activity among the various fractions. This relationship suggests that the observed Na+-Ca2+ exchange activity derives from the sarcolemmal membranes within the vesicle preparation.

Animals↗

Uptake and release of calcium by rat brain synaptosomes.

Rat brain synaptosomes, prepared by discontinuous Ficoll density gradient centrifugation, accumulated 45Ca during brief incubations in modified Krebs-Ringer media. Uptake of 45Ca was increased by 5 mM glutamate and 50 mM KCl, conditions that depolarize nerve cells; uptake of 22Na was also increased by these agents. With 0.2 mM diphenylhydantoin, the increased 45Ca uptake due to KCl was diminished, whereas that due to glutamate was less affected; conversely, with 0.15 muM tetrodotoxin the increased 45Ca uptake due to glutamate was diminished, whereas that due to KCl was less affected. Both diphenylhydantoin and tetrodotoxin diminished the augmented uptake of 22Na due to KCl and glutamate; thus the increased uptake of 45Ca under depolarizing conditions may be dissociated from the increased influx of sodium. Ruthenium red decreased the uptake of 45Ca under all conditions, as did procaine and the lanthanide Pr3+. Neither 5 mM glutamate nor 50 mM KCl increased 45Ca uptake by brain mitochondria under comparable experimental conditions, whereas ATP increased the uptake by mitochondria but not that by these synaptosomes. Altering the sodium gradient by equimolar substitution of lithium or choline for sodium in the medium increased 45Ca uptake, whereas 22Na uptake was decreased. Inhibiting the sodium pump by ouabain or strophanthidin also increased 45Ca uptake, and increased 22Na uptake as well. The increased uptake of 45Ca induced by ouabain was inhibited by diphenylhydantoin and tetrodotoxin. Measurements of the total calcium content showed that conditions producing an increased uptake of 45Ca also produced a net uptake of calcium, rather than merely accelerating a 45Ca-40Ca exchange. Experiments measuring the loss of previously accumulated 45Ca showed that directly decreasing the sodium gradient or inhibiting the sodium pump slowed the loss of 45Ca. These data are considered in terms of calcium influx through 'leak' pathways and gated channels (sensitive to membrane depolarization) and of net efflux dependent on a coupled sodium-calcium exchange mechanism.

Acetylcholinesterase↗

Chemical Imaging of Retinal Pigment Epithelium in Frozen Sections of Zebrafish Larvae Using ToF-SIMS.

Variants of the SLC24A5 gene, which encodes a putative potassium-dependent sodium-calcium exchanger (NCKX5) that most likely resides in the melanosome or its precursor, affect pigmentation in both humans and zebrafish (Danio rerio). This finding suggests that genetic variations influencing human skin pigmentation alter melanosome biogenesis via ionic changes. Gaining an understanding of how changes in the ionic environment of organelles impact melanosome morphogenesis and pigmentation will require a spatially resolved way to characterize the chemical environment of melanosomes in pigmented tissue such as retinal pigment epithelium (RPE). The imaging mass spectrometry technique most suited for this type of cell and tissue analysis is time-of-flight secondary ion mass spectrometry (ToF-SIMS) because it is able to detect many biochemical species with high sensitivity and with submicron spatial resolution. Here, we describe chemical imaging of the RPE in frozen-hydrated sections of larval zebrafish using cryo-ToF-SIMS. To facilitate the data interpretation, positive and negative polarity ToF-SIMS image data were transformed into a single hyperspectral data set and analyzed using principal component analysis. The combination of a novel protocol and the use of multivariate data analysis allowed us to discover new marker ions that are attributable to leucodopachrome, a metabolite specific to the biosynthesis of eumelanin. The described methodology may be adapted for the investigation of other classes of molecules in frozen tissues from zebrafish and other organisms.

Animals↗

Ouabain enhancement of compound 48/80 induced histamine secretion from rat peritoneal mast cells: dependence on extracellular sodium.

Purified populations of rat peritoneal mast cells were used to study the effect of ouabain on compound 48/80-induced histamine secretion and on 86Rb+ uptake. 86Rb+ was used as a tracer for extracellular K+. The calculated value of the ouabain-sensitive uptake of K+ and 86Rb+ was considered a measure of the Na(+)-K+ pump activity of the cells. Ouabain caused an immediate inhibition of the pump activity and a time-dependent increase in histamine secretion in the absence of extracellular calcium. No effect on the secretion was observed in the presence of calcium. The effect of ouabain on the secretion occurs in the presence of sodium but not when sodium was replaced by lithium. Preservation by ouabain of a high intracellular sodium content in sodium-loaded cells was associated with preservation of the secretory response in a calcium-free medium. In the presence of lanthanum in a calcium-free medium, the pump activity was inhibited and the enhancement by ouabain of the secretion of histamine was blocked. A less marked inhibition of the pump was found in a calcium-free medium containing magnesium. The inhibition exerted by magnesium was concentration-dependent (0-5 mM) as was the counteraction of magnesium of the enhancement of ouabain of the secretion of histamine. These observations indicate that the enhancement by ouabain of the secretory response of mast cells preincubated in a calcium-free medium is associated with accumulation of sodium inside the cell. In addition to a decreased rate of sodium-calcium exchange caused by a decreased inward directed sodium gradient, the mechanism by which ouabain enhances the secretory response is likely to involve an increased binding of calcium to membrane binding sites.

Animals↗

Sodium requirement for the positive inotropic action of isoproterenol on guinea pig atria.

Isoproterenol doses not elicit its characteristic positive inotropic action in contracting guinea pig atria suspended in sodium-free media. However, the ability of isoproterenol to decrease the time to peak tension development during an individual contraction cycle is still present in sodium-free solutions. Removal of sodium diminished but did not eliminate the tissues' ability to elevate adenosine 3',5'-monophosphate in response to isoproterenol. The striking absence of an inotropic action by isoproterenol on atria in sodium-free media suggests that sodium (and possibly a sodium-calcium exchange across the sarcolemma) plays an important role in the inotropic action of catecholamines.

Animals↗

The effects of batrachotoxin on cat papillary muscle.

The effects of batrachotoxin (BTX) upon the contraction and transmembrane potential of cat right ventricular papillary muscles were studied in vitro at 37 degrees C. BTX (2.0 x 10(-9) M) increased isometric contractile force by about 50% from control force, decreased the potential difference across the cell membrane to approximate -50 mV and produced spontaneous contractions of the papillary muscles. Each BTX-induced spontaneous contraction was accompanied by a spontaneous action potential which was generated when an oscillation in membrane potential reached threshold level. Spontaneous activity ovvurred only in muscles which were previously stimulated electrically. The positive inotropic effect of BTX was accompanied by an increase in the rate of force development. Papillary muscles from cats pretreated with reserpine did not differ from normal muscles in their responses to BTX treatment. Tetrodotoxin (2.0 x 10(-7) M) antagonized the effects of BTX, a finding which suggests that the actions of BTX are mediated by a selective increase in membrane permeability to sodium ions. The resultant BTX-elicited increase in the intracellular sodium ion concentration may increase the force of contraction through an augmentation of calcium influx via the sodium-calcium exchange system.

Action Potentials↗

The guanine nucleotide-binding protein Gs activates a novel calcium transporter in Xenopus oocytes.

Calcium influx is an important aspect of receptor-mediated signal transduction, yet limited information is available regarding the pathways of calcium influx into nonexcitable cells. We show that treatment of oocytes from Xenopus laevis with cholera toxin, a potent activator of the guanine nucleotide-binding protein Gs, specifically stimulates a sustained inward whole cell flux of calcium through a novel membrane transporter. The calcium is distributed into a mobilizable pool. The flux is voltage-independent and is completely and specifically blocked by microinjection of oocytes with an antiserum directed against Gs alpha. The flux is not activated by treatment of the cells with forskolin or 8-bromo-cyclic adenosine monophosphate indicating that the effect of Gs alpha on the transporter occurs independently of adenylylcyclase activation. Transporter activity is insensitive to benzyl amiloride, does not require a sodium gradient, and is not stimulated by external calcium, indicating that it is not a sodium-calcium exchanger. The Gs-activated flux is dramatically potentiated by lanthanum ion and other trivalent cations but not by any of six divalent cations that were tested; all other known calcium channels and exchangers are, in contrast, potently blocked by lanthanum. The divalent cation cadmium inhibited transporter activity in a concentration-dependent manner. This novel calcium transporter may be important for receptor-mediated calcium influx in the oocyte and perhaps other cell types.

Animals↗

Cell membrane Na+, K+-ATPase and sarcoplasmic reticulum: possible regulators of intracellular ion activity.

Cardiac muscle requires an external source of calcium for contraction, but current evidence supports an intracellular pool of bound calcium as the primary activator of contraction. The size of this intracellular pool modulates the amount of calcium released to troponin during systole and the resultant contractile response. Proposed mechanisms for modulation of activator calcium include: 1) an alteration in phase II "slow current" allowing increased electrogenic calcium flux; 2) a glycoside independent sodium-calcium exchange across the sarcolemma that can be modulated by changes in the sodium gradient; 3) potassium-calcium exchange system during cardiac repolarization; 4) an augmentation of calcium accumulation by cardiac sarcoplasmic reticulum related to various phosphorylation mechanisms; and 5) an alteration in phospholipid affinity effected by cardiac glycoside at sarcolemmal sites related to the Na+, K+-ATPase.

Adenosine Triphosphatases↗

Ionic mechanisms of anoxic injury in mammalian CNS white matter: role of Na+ channels and Na(+)-Ca2+ exchanger.

White matter of the mammalian CNS suffers irreversible injury when subjected to anoxia/ischemia. However, the mechanisms of anoxic injury in central myelinated tracts are not well understood. Although white matter injury depends on the presence of extracellular Ca2+, the mode of entry of Ca2+ into cells has not been fully characterized. We studied the mechanisms of anoxic injury using the in vitro rat optic nerve, a representative central white matter tract. Functional integrity of the nerves was monitored electrophysiologically by quantitatively measuring the area under the compound action potential, which recovered to 33.5 +/- 9.3% of control after a standard 60 min anoxic insult. Reducing Na+ influx through voltage-gated Na+ channels during anoxia by applying Na+ channel blockers (TTX, saxitoxin) substantially improved recovery; TTX was protective even at concentrations that had little effect on the control compound action potential. Conversely, increasing Na+ channel permeability during anoxia with veratridine resulted in greater injury. Manipulating the transmembrane Na+ gradient at various times before or during anoxia greatly affected the degree of resulting injury; applying zero-Na+ solution (choline or Li+ substituted) before anoxia significantly improved recovery; paradoxically, the same solution applied after the start of anoxia resulted in more injury than control. Thus, ionic conditions that favored reversal of the normal transmembrane Na+ gradient during anoxia promoted injury, suggesting that Ca2+ loading might occur via reverse operation of the Na+)-Ca2+ exchanger. Na(+)-Ca2+ exchanger blockers (bepridil, benzamil, dichlorobenzamil) significantly protected the optic nerve from anoxic injury. Together, these results suggest the following sequence of events leading to anoxic injury in the rat optic nerve: anoxia causes rapid depletion of ATP and membrane depolarization leading to Na+ influx through incompletely inactivated Na+ channels. The resulting rise in the intracellular [Na+], coupled with membrane depolarization, causes damaging levels of Ca2+ to be admitted into the intracellular compartment through reverse operation of the Na(+)-Ca2+ exchanger. These observations emphasize that differences in the pathophysiology of gray and white matter anoxic injury are likely to necessitate multiple strategies for optimal CNS protection.

Amiloride↗

Effects of internal and external cations and of ATP on sodium-calcium and calcium-calcium exchange in squid axons.

Calcium-45 efflux was measured in squid axons whose internal solute concentration was controlled by internal dialysis. Most of the Ca efflux requires either external Na (Na-Ca exchange) or external Ca plus in alkali metal ion (Ca-Ca exchange; cf. Blaustein & Russell, 1975). Both Na-Ca and Ca-Ca exchange are apparently mediated by a single mechanism because both are inhibited by Sr and Mn, and because addition of Na to an external medium optimal for Ca-Ca exchange inhibits Ca efflux. The transport involves simultaneous (as opposed to sequential) ion counterflow because the fractional saturation by internal Ca (Cai) does not affect the external Na (Nao) activation kinetics; also, Nao promotes Ca efflux whether or not an alkali metal ion is present inside, whereas Ca-Ca exchange requires alkali metal ions both internally and externally (i.e., internal and external sites must be appropriately loaded simultaneously). ATP increases the affinity of the transport mechanism for both Cai and Nao, but it does not affect the maximal transport rate at saturating [Ca2+]i and [Na+]o; this suggest that ATP may be acting as a catalyst of modulator, and not as an energy source. Hill plots of the Nao activation data yield slopes congruent to 3 for both ATP-depleted and ATP-fueled axons, compatible with a 3 Na+-for-1 Ca2+ exchange. With this stoichiometry, the Na electrochemical gradient alone could provide sufficient energy to maintain ionized [Ca2+]i in the physiological range (about 10(-7) M).

Adenosine Triphosphate↗

[Mechanism of excitation and contraction uncoupling in frog and guinea pig myocardial fibers during block of slow sodium-calcium channels by compound D-600].

In the experiments performed on the strips of frog's atria and ventricle it was found that rhythmic stimulation facilitated the dissociation of excitation--contraction coupling caused by D-600 compound through the block of calcium channels, i.e. D-600 prevented the increase of tension in the series of contractions or even converted positive staircase into negative one. The first contraction was affected by D-600 to a lesser degree than the subsequent ones. Guinea pig's left auriculus depressing action of D-600 was found to be strongly dependent on the frequency of stimulation. The data obtained were analysed by the model of excitation--contraction coupling. It was concluded that in amphibians as well as in mammalians tension amplitude during rhythmic activity of myocardial cells is determined mainly by Ca inflow through the excitable calcium channels. On the other hand the amplitude of the first contraction depends on the storage content determined by Ca inflow through the Ca channels open at rest. These latter channels have low sensitivity to D-600 and are better presented in atrium than in ventriculum. An increase of contraction tension observed in low sodium medium took place also under the action of D-600; in this case Ca storage was replenished by the Na-Ca exchange diffusion.

Action Potentials↗