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1.
The renopericardial complex of Littorina is capable of glucose reabsorption in vivo, as the glucose concentration of the urine may be markedly lower than that of the haemolymph. Glucose influx in vitro was estimated for the kidney (dorsal wall and nephridial gland) and heart, using [3H]glucose as tracer. Glucose influx to both dorsal wall and nephridial gland of the kidney was sensitive to phloridzin, and appeared to reflect net inward transport by a saturable, Na+-dependent carrier mechanism believed to be responsible for reabsorption in vivo. There was some intrarenal metabolism of transported glucose. The mechanism and rôle of glucose reabsorption in Littorina are discussed, and the limitations of the investigative techniques are considered.  相似文献   

2.
High concentrations of cytosolic Na+ ions induce the time-dependent formation of an inactive state of the Na+/Ca2+ exchanger (NCX), a process known as Na+-dependent inactivation. NCX activity was measured as Ca2+ uptake in fura 2-loaded Chinese hamster ovary (CHO) cells expressing the wild-type (WT) NCX or mutants that are hypersensitive (F223E) or resistant (K229Q) to Na+-dependent inactivation. As expected, 1) Na+-dependent inactivation was promoted by high cytosolic Na+ concentration, 2) the F223E mutant was more susceptible than the WT exchanger to inactivation, whereas the K229Q mutant was resistant, and 3) inactivation was enhanced by cytosolic acidification. However, in contrast to expectations from excised patch studies, 1) the WT exchanger was resistant to Na+-dependent inactivation unless cytosolic pH was reduced, 2) reducing cellular phosphatidylinositol-4,5-bisphosphate levels did not induce Na+-dependent inactivation in the WT exchanger, 3) Na+-dependent inactivation did not increase the half-maximal cytosolic Ca2+ concentration for allosteric Ca2+ activation, 4) Na+-dependent inactivation was not reversed by high cytosolic Ca2+ concentrations, and 5) Na+-dependent inactivation was partially, but transiently, reversed by an increase in extracellular Ca2+ concentration. Thus Na+-dependent inactivation of NCX expressed in CHO cells differs in several respects from the inactivation process measured in excised patches. The refractoriness of the WT exchanger to Na+-dependent inactivation suggests that this type of inactivation is unlikely to be a strong regulator of exchange activity under physiological conditions but would probably act to inhibit NCX-mediated Ca2+ influx during ischemia. ischemia; cytosolic calcium concentration; cytosolic sodium concentration; cellular phosphatidylinositol-4,5-bisphosphate  相似文献   

3.
The uptake, transport and accumulation of sodium were comparedin two grasses: Pappophorum pappifervm (Lam.) O. Kuntze, a glycophyteand P. philippianum L. R. Parodi, a facultative halophyte. Atlow salinity levels, (50 mM NaCl) shoots of salt-treated P.pappiferum accumulated lower Na+ concentrations than the otherspecies. This difference does not seem to be related to Na+uptake, as in short-time experiments (< I h), whole plantsof both species showed similar rates of Na+ uptake and transport Sodium recirculation was assessed in split-root experiments.It was similar in control (previously non-salinized) plantsof both species, but in salt-treated plants it was more significantin P. pappiferum. This mechanism, along with increased lossof recently acquired Na+, could contribute to keep Na+ levelslower in shoots of P. pappiferum than in P. philippianum. Pappophorum, Gramineae, sodium recirculation, salinity  相似文献   

4.
Characterization of inorganic phosphate transport in osteoclast-like cells   总被引:1,自引:0,他引:1  
Osteoclasts possess inorganic phosphate (Pi) transport systems to take up external Pi during bone resorption. In the present study, we characterized Pi transport in mouse osteoclast-like cells that were obtained by differentiation of macrophage RAW264.7 cells with receptor activator of NF-B ligand (RANKL). In undifferentiated RAW264.7 cells, Pi transport into the cells was Na+ dependent, but after treatment with RANKL, Na+-independent Pi transport was significantly increased. In addition, compared with neutral pH, the activity of the Na+-independent Pi transport system in the osteoclast-like cells was markedly enhanced at pH 5.5. The Na+-independent system consisted of two components with Km of 0.35 mM and 7.5 mM. The inhibitors of Pi transport, phosphonoformic acid, and arsenate substantially decreased Pi transport. The proton ionophores nigericin and carbonyl cyanide p-trifluoromethoxyphenylhydrazone as well as a K+ ionophore, valinomycin, significantly suppressed Pi transport activity. Analysis of BCECF fluorescence indicated that Pi transport in osteoclast-like cells is coupled to a proton transport system. In addition, elevation of extracellular K+ ion stimulated Pi transport, suggesting that membrane voltage is involved in the regulation of Pi transport activity. Finally, bone particles significantly increased Na+-independent Pi transport activity in osteoclast-like cells. Thus, osteoclast-like cells have a Pi transport system with characteristics that are different from those of other Na+-dependent Pi transporters. We conclude that stimulation of Pi transport at acidic pH is necessary for bone resorption or for production of the large amounts of energy necessary for acidification of the extracellular environment. Na+-dependent phosphate cotransporter; RAW264.7; phosphate uptake  相似文献   

5.
The effect of Na+ on phosphate uptake was studied in four strainsof cyanobacteria: Synechococcus PCC 7942, Gloeothece PCC 6501,Phormidium sp. and Chlorogloeopsis PCC 6912. Phosphate uptakewas stimulated by Na+ in all cases. Li+ and K+ acted as partialanalogues for Na+. Half-saturation [K1/2(Na+)] of phosphateuptake was reached with Na+ concentrations ranging from 317µM in Chlorogloeopsis to 659 µM in Phormidium. Theconcentration of phosphate required to reach half-saturationof phosphate uptake [K1/2(Pi)]was not changed by the presenceof Na+. (Received April 11, 1994; Accepted July 5, 1994)  相似文献   

6.
Leaves of three C4 plants, Setaria italica, Pennisetum typhoides,and Amaranthus paniculatus possessed five- to ten-fold higheractivities of a (Na+-K+)-dependent ATPase than those of twoC3 plants, Oryza sativa and Rumex vesicarius. Na+-K+ ATPasefrom leaves of Amarathus exhibited an optimal pH of 7?5 andan optimal temperature of 35 ?C. It required 40 mM K+ and 80mM Na+ for maximal activity. Ouabain partially inhibited (Na+-K+)-dependentATPase activity in leaves of C4 plants. Ouabain also blockedthe movement of label from initially formed C4 acids into endproducts in leaves of only C4 plants, Setaria and Amaranthusbut not in a C3 plant, Rumex. We propose that Na+-K+ ATPasemay mediate transfer of energy during active transport of C4acids from mesophyll into the bundle sheath.  相似文献   

7.
Leaves of the wilty pepper mutant, scabrous diminutive, accumulatemore Na+ than those of the normal genotype, when both grow inmedium containing N+. It seems that the regulation of Na+ fluxin the mutant root was modified. Net uptake of Na+ was muchhigher and efflux of 22Na+ was lower in the mutant roots thanin the normal ones. Two possible explanations for these differencesbetween mutant and normal plants are discussed, namely (a) achange in membrane permeability and (b) a change in the mechanismof Na+ extrusion.  相似文献   

8.
Anabaena PCC 7119 showed higher rates of phosphate uptake whencells were under P-starvation. Phosphate uptake was energy-dependentas indicated the decrease observed when assays were performedin the dark or in the presence of inhibitors of photosyntheticelectron transport, energy transfer and adenosine triphosphataseactivity. Phosphate uptake was stimulated by Na+ both in P-sufficientcells and P-starved cells. Li+ and K+ acted as partial analoguesfor Na+. The Na+-stimulation of phosphate uptake followed Michaelis-Mentenkinetics, half-saturation (K) of phosphate uptake was reachedwith a Na+ concentration of 212 µM. The absence of Na+reduced the rates of phosphate uptake at all phosphate concentrationsassayed (1–20 µM). The maximum uptake rates (Vmax)decreased from 658 nmol P (mg dry wt)-1 h-1 in the presenceof Na+ to 149 nmol P (mg dry wt)-1 h-1 in the absence of Na+.The absence of Na+ did not change significantly the concentrationof phosphate required to reach half-saturation (K) (3.01 µMin the presence of Na+ vs 3.21 µM in the absence of Na+).In the presence of Na+ the rate of phosphate uptake was affectedby the pH; optimal rates were observed at pH 8. In the absenceof Na+ phosphate uptake was not affected by the pH; low rateswere observed in all cases. Monensin, an ionophore which collapsesNa+-gradients, reduced the rate of phosphate uptake in Na+-supplementedcells. These results indicated the existence of a Na+-dependentphosphate uptake in Anabaena PCC 7119. (Received September 8, 1992; Accepted November 17, 1992)  相似文献   

9.
The general phosphate need in mammalian cells is accommodated by members of the Pi transport (PiT) family (SLC20), which use either Na+ or H+ to mediate inorganic phosphate (Pi) symport. The mammalian PiT paralogs PiT1 and PiT2 are Na+-dependent Pi (NaPi) transporters and are exploited by a group of retroviruses for cell entry. Human PiT1 and PiT2 were characterized by expression in Xenopus laevis oocytes with 32Pi as a traceable Pi source. For PiT1, the Michaelis-Menten constant for Pi was determined as 322.5 ± 124.5 µM. PiT2 was analyzed for the first time and showed positive cooperativity in Pi uptake with a half-maximal activity constant for Pi of 163.5 ± 39.8 µM. PiT1- and PiT2-mediated Na+-dependent Pi uptake functions were not significantly affected by acidic and alkaline pH and displayed similar Na+ dependency patterns. However, only PiT2 was capable of Na+-independent Pi transport at acidic pH. Study of the impact of divalent cations Ca2+ and Mg2+ revealed that Ca2+ was important, but not critical, for NaPi transport function of PiT proteins. To gain insight into the NaPi cotransport function, we analyzed PiT2 and a PiT2 Pi transport knockout mutant using 22Na+ as a traceable Na+ source. Na+ was transported by PiT2 even without Pi in the uptake medium and also when Pi transport function was knocked out. This is the first time decoupling of Pi from Na+ transport has been demonstrated for a PiT family member. Moreover, the results imply that putative transmembrane amino acids E55 and E575 are responsible for linking Pi import to Na+ transport in PiT2. inorganic phosphate transport; retroviral receptor; SLC20  相似文献   

10.
Members of the SLC20 family or type III Na+-coupled Pi cotransporters (PiT-1, PiT-2) are ubiquitously expressed in mammalian tissue and are thought to perform a housekeeping function for intracellular Pi homeostasis. Previous studies have shown that PiT-1 and PiT-2 mediate electrogenic Pi cotransport when expressed in Xenopus oocytes, but only limited kinetic characterizations were made. To address this shortcoming, we performed a detailed analysis of SLC20 transport function. Three SLC20 clones (Xenopus PiT-1, human PiT-1, and human PiT-2) were expressed in Xenopus oocytes. Each clone gave robust Na+-dependent 32Pi uptake, but only Xenopus PiT-1 showed sufficient activity for complete kinetic characterization by using two-electrode voltage clamp and radionuclide uptake. Transport activity was also documented with Li+ substituted for Na+. The dependence of the Pi-induced current on Pi concentration was Michaelian, and the dependence on Na+ concentration indicated weak cooperativity. The dependence on external pH was unique: the apparent Pi affinity constant showed a minimum in the pH range 6.2–6.8 of 0.05 mM and increased to 0.2 mM at pH 5.0 and pH 8.0. Xenopus PiT-1 stoichiometry was determined by dual 22Na-32Pi uptake and suggested a 2:1 Na+:Pi stoichiometry. A correlation of 32Pi uptake and net charge movement indicated one charge translocation per Pi. Changes in oocyte surface pH were consistent with transport of monovalent Pi. On the basis of the kinetics of substrate interdependence, we propose an ordered binding scheme of Na+:H2PO4:Na+. Significantly, in contrast to type II Na+-Pi cotransporters, the transport inhibitor phosphonoformic acid did not inhibit PiT-1 or PiT-2 activity. Na+-Pi cotransport; two-electrode voltage clamp; surface pH electrode; SLC20; retroviral receptor  相似文献   

11.
Several studies suggest the involvement of Na+ and HCO3 transport in the formation of cerebrospinal fluid. Two Na+-dependent HCO3 transporters were recently localized to the epithelial cells of the rat choroid plexus (NBCn1 and NCBE), and the mRNA for a third protein was also detected (NBCe2) (Praetorius J, Nejsum LN, and Nielsen S. Am J Physiol Cell Physiol 286: C601–C610, 2004). Our goal was to immunolocalize the NBCe2 to the choroid plexus by immunohistochemistry and immunogold electronmicroscopy and to functionally characterize the bicarbonate transport in the isolated rat choroid plexus by measurements of intracellular pH (pHi) using a dual-excitation wavelength pH-sensitive dye (BCECF). Both antisera derived from COOH-terminal and NH2-terminal NBCe2 peptides localized NBCe2 to the brush-border membrane domain of choroid plexus epithelial cells. Steady-state pHi in choroidal cells increased from 7.03 ± 0.02 to 7.38 ± 0.02 (n = 41) after addition of CO2/HCO3 into the bath solution. This increase was Na+ dependent and inhibited by the Cl and HCO3 transport inhibitor DIDS (200 µM). This suggests the presence of Na+-dependent, partially DIDS-sensitive HCO3 uptake. The pHi recovery after acid loading revealed an initial Na+ and HCO3-dependent net base flux of 0.828 ± 0.116 mM/s (n = 8). The initial flux in the presence of CO2/HCO3 was unaffected by DIDS. Our data support the existence of both DIDS-sensitive and -insensitive Na+- and HCO3-dependent base loader uptake into the rat choroid plexus epithelial cells. This is consistent with the localization of the three base transporters NBCn1, Na+-driven Cl bicarbonate exchanger, and NBCe2 in this tissue. bicarbonate metabolism; BCECF; cerebrospinal fluid; acid/base transport; ammonium prepulse  相似文献   

12.
The extent to which Spartina alterniflora Loisel. excluded,secreted or accumulated the major seawater ions (Cl-, SO2-4,Na+, K+, Mg2+, and Ca2+) was investigated under varying salinitytreatments. From a quantitative viewpoint, ion exclusion wasmost prominent and accounted for 91–97% of the theoreticalmaximum ion uptake as a result of transpiration and growth.Of those ions taken up, approximately half was secreted fromthe shoots. Relative to K+, a disproportionate amount of Na+was excluded at the roots and secreted by the shoots. The concentrationwithin the tissues of S. alterniflora did not change with salinitytreatment for the majority of the ions examined, but Na+ wasmore than twice as concentrated at 40 g dm-3 than at lOgdm-3.Calculations of the flux of ions from salt marsh sediments tothe flood water via shoot secretion or stem/leaf turnover indicatethat these processes may be important to the ecology of S. alternifloraas mechanisms that limit the accumulation of salt within theroot zone.  相似文献   

13.
In manynonexcitable cells, hormones and neurotransmitters activateNa+ influx and mobilizeCa2+ from intracellular stores.The stores are replenished by Ca2+influx via "store-operated"Ca2+ channels (SOC). The mainroutes of Na+ entry in these cellsare unresolved, and no role forNa+ in signaling has beenrecognized. We demonstrate that the SOC are a majorNa+ entry route in arterialmyocytes. Unloading of the Ca2+stores with cyclopiazonic acid (a sarcoplasmic reticulumCa2+ pump inhibitor) and caffeineinduces a large externalNa+-dependent rise in thecytosolic Na+ concentration. Onecomponent of this rise in cytosolicNa+ concentration is likely due toNa+/Ca2+exchange; it depends on elevation of cytosolicCa2+ and is insensitive to 10 mMMg2+ and 10 µMLa3+. Another component isinhibited by Mg2+ andLa3+, blockers of SOC; thiscomponent persists in cells preloaded with1,2-bis(2-aminophenoxy)ethane-N,N,N',N'-tetraaceticacid to buffer Ca2+ transients andpreventNa+/Ca2+exchange-mediated Na+ entry. ThisNa+ entry apparently is mediatedby SOC. The Na+ entry influencesNa+ pump activity andNa+/Ca2+exchange and has unexpectedly large effects on cell-wideCa2+ signaling. The SOC pathwaymay be a general mechanism by which Na+ participates in signaling inmany types of cells.

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14.
K+Nutrition and Na+Toxicity: The Basis of Cellular K+/Na+Ratios   总被引:38,自引:0,他引:38  
The capacity of plants to maintain a high cytosolic K+/Na+ratiois likely to be one of the key determinants of plant salt tolerance.Important progress has been made in recent years regarding theidentification and characterization of genes and transportersthat contribute to the cytosolic K+/Na+ratio. For K+uptake,K+efflux and K+translocation to the shoot, genes have been isolatedthat encode K+uptake and K+release ion channels and K+carriersthat are coupled to either a H+or Na+gradient. Although thepicture is less clear for the movement of Na+, one pathway,in the form of non-selective ion channels, is likely to playa role in Na+uptake, whereas Na+efflux and compartmentationare likely to be mediated by H+-coupled antiport. In addition,several proteins have been characterized that play prominentroles in the regulation of K+and/or Na+fluxes. In this BotanicalBriefing we will discuss the functions and interactions of thesegenes and transporters in the broader context of K+nutritionand Na+toxicity. Copyright 1999 Annals of Botany Company Salinty, K+/N+ratio, transporter, membrane.  相似文献   

15.
This study characterized theNa+-dependent transport of L-glutamine by ahuman neuroblastoma cell line, SK-N-SH. The Na+-dependentcomponent represented >95% of the total glutamine uptake. Kineticstudies showed a single saturable high-affinity carrier with aMichaelis constant (Km) of 163 ± 23 µMand a maximum transport velocity (Vmax) of13,713 ± 803 pmol · mgprotein1 · min1. Glutamine uptakewas markedly inhibited in the presence of L-alanine, L-asparagine, and L-serine. Li+ didnot substitute for Na+. These data show thatL-glutamine is predominantly taken up through systemASC. Glutamine deprivation resulted in the decrease of glutamine transport by a mechanism that decreasedVmax without affectingKm. The expression of the system ASC subtypeASCT2 decreased in the glutamine-deprived group, whereas glutaminedeprivation did not induce changes in system ASC subtype ASCT1 mRNAexpression. Adaptive increases in Na+-dependent glutamate,Na+-dependent 2-(methylamino)isobutyric acid, andNa+-independent leucine transport were observed underglutamine-deprived conditions, which were completely blocked byactinomycin D and cycloheximide. These mechanisms may allow cells tosurvive and even grow under nutrient-deprived conditions.

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16.
We report, for the epithelialNa+ channel (ENaC) in A6 cells,the modulation by cell pH (pHc)of the transepithelial Na+ current(INa), thecurrent through the individual Na+channel (i), the openNa+ channel density(No), and thekinetic parameters of the relationship betweenINa and theapical Na+ concentration. Thei andNo were evaluatedfrom the Lorentzian INa noise inducedby the apical Na+ channel blocker6-chloro-3,5-diaminopyrazine-2-carboxamide.pHc shifts were induced, understrict and volume-controlled experimental conditions, byapical/basolateral NH4Cl pulses orbasolateral arrest of theNa+/H+exchanger (Na+ removal; block byethylisopropylamiloride) and were measured with the pH-sensitive probe2',7'-bis(2-carboxyethyl)-5(6)-carboxyfluorescein. Thechanges in pHc were positivelycorrelated to changes inINa and theapically dominated transepithelial conductance. The sole pHc-sensitive parameter underlyingINa wasNo. Only thesaturation value of theINa kinetics wassubject to changes in pHc.pHc-dependent changes inNo may be causedby influencingPo, the ENaC openprobability, or/and the total channel number,NT = No/Po.

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17.
A modest diet-induced increase in serum cholesterol in rabbits increases the sensitivity of the sarcolemmal Na+/K+ pump to intracellular Na+, whereas a large increase in cholesterol levels decreases the sensitivity to Na+. To examine the mechanisms, we isolated cardiac myocytes from controls and from rabbits with diet-induced increases in serum cholesterol. The myocytes were voltage clamped with the use of patch pipettes that contained osmotically balanced solutions with Na+ in a concentration of 10 mM and K+ in concentrations ([K+]pip) ranging from 0 to 140 mM. There was no effect of dietary cholesterol on electrogenic Na+/K+ current (Ip) when pipette solutions were K+ free. A modest increase in serum cholesterol caused a [K+]pip-dependent increase in Ip, whereas a large increase caused a [K+]pip-dependent decrease in Ip. Modeling suggested that pump stimulation with a modest increase in serum cholesterol can be explained by a decrease in the microscopic association constant KK describing the backward reaction E1 + 2K+ E2(K+)2, whereas pump inhibition with a large increase in serum cholesterol can be explained by an increase in KK. Because hypercholesterolemia upregulates angiotensin II receptors and because angiotensin II regulates the Na+/K+ pump in cardiac myocytes in a [K+]pip-dependent manner, we blocked angiotensin synthesis or angiotensin II receptors in vivo in cholesterol-fed rabbits. This abolished cholesterol-induced pump inhibition. Because the -isoform of protein kinase C (PKC) mediates effects of angiotensin II on the pump, we included specific PKC-blocking peptide in patch pipette filling solutions. The peptide reversed cholesterol-induced pump inhibition. partial reactions; protein kinase C; angiotensin converting enzyme inhibitors; arteriosclerosis; insulin resistance  相似文献   

18.
We have clonedand functionally characterized the human Na+-dependenthigh-affinity dicarboxylate transporter (hNaDC3) from placenta. ThehNaDC3 cDNA codes for a protein of 602 amino acids with 12 transmembrane domains. When expressed in mammalian cells, the clonedtransporter mediates the transport of succinate in the presence ofNa+ [concentration of substrate necessary for half-maximaltransport (Kt) for succinate = 20 ± 1 µM]. Dimethylsuccinate also interacts with hNaDC3. TheNa+-to-succinate stoichiometry is 3:1 and concentration ofNa+ necessary for half-maximal transport(KNa+0.5) is 49 ± 1 mM as determined by uptake studies withradiolabeled succinate. When expressed in Xenopuslaevis oocytes, hNaDC3 induces Na+-dependent inwardcurrents in the presence of succinate and dimethylsuccinate. At amembrane potential of 50 mV,KSuc0.5 is 102 ± 20 µM andKNa+0.5 is 22 ± 4 mM as determined by the electrophysiological approach. Simultaneous measurements of succinate-evoked charge transfer andradiolabeled succinate uptake in hNaDC3-expressing oocytes indicate acharge-to-succinate ratio of 1:1 for the transport process, suggestinga Na+-to-succinate stoichiometry of 3:1. pH titration ofcitrate-induced currents shows that hNaDC3 accepts preferentially thedivalent anionic form of citrate as a substrate. Li+inhibits succinate-induced currents in the presence of Na+.Functional analysis of rat-human and human-rat NaDC3 chimeric transporters indicates that the catalytic domain of the transporter lies in the carboxy-terminal half of the protein. The humanNaDC3 gene is located on chromosome20q12-13.1, as evidenced by fluorescent in situ hybridization. Thegene is >80 kbp long and consists of 13 exons and 12 introns.

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19.
JUNG  K.-D.; BALL  E.; LUTTGE  U. 《Annals of botany》1980,45(3):351-356
The amino acid analog p-fluorophenylalanine (FPA) inhibitedsugar and K+ secretion by nectary glands. FPA specifically reducedthe net excretion of Na+ and Cl by the salt glands ofthe halophyte Limonium vulgare and 36Clexcretion by theglands of the pitcher walls of the carnivorous plant Nepenthes.Net uptake and net accumulation of Na+ and Cl by Limoniumleaf tissue and 36Cl accumulation in Nepenthes pitchertissue were much less inhibited than excretion. The resultsare discussed in relation to literature reporting similar specificeffects of FPA on transport of ions from the symplast of barleyroots into the dead xylem elements. Limonium vulgare, Nepenthes hookeriana, salt-glands, excretion, p-fluorophenylalanine  相似文献   

20.
The effect of elevated Na+ concentration on Na+ permeability(PNa) and Na+ influx in the presence of two levels of externaldivalent cations was determined in Chara corallina and freshwater-culturedChara buckellii. When Na+ in the medium was increased from 1.0to 70 mol m–3, Na+ influx increased in both species ifCa2+ was low (0.1 mol m–3). If Ca2+ was increased to 7.0mol m–3 when Na+ was increased, Na+ influx remained atthe low control level in C. corallina, and showed only a temporaryincrease in C. buckellii. Mg2+ was a better substitute for Ca2+in C. buckellii than in C. corallina. Na+ permeability data suggest that when the external Ca2+ concentrationis low, PNa does not increase in the presence of elevated NaCl;the increase in Na+ influx appears to be due to the increasein external Na+ concentration alone. Ca2 + supplementation appearsto decrease PNa whereas supplemental Mg2+ has no effect. Na+ effluxes were computed from previously determined net fluxesand the influxes. It was found that for both species, fluxesin both directions were stimulated in response to all experimentaltreatments, but Na+ influx always exceeded efflux. This resultedin net Na+ accumulation in the vacuoles of both species. The results are discussed with reference to net flux and electrophysiologicaldata obtained previously under identical conditions, as wellas the comparative salinity tolerance of both species and theNa+/divalent cation ratio. Key words: Na+ influx, Na+ tolerance, membrane potential, permeability, Chara  相似文献   

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