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1.
Initiation of intestinal Na+-glucose cotransport results intransient cell swelling and sustained increases in tight junction permeability. Since Na+/H+ exchange has beenimplicated in volume regulation after physiological cell swelling, wehypothesized that Na+/H+ exchange might also berequired for Na+-glucose cotransport-dependent tightjunction regulation. In Caco-2 monolayers with activeNa+-glucose cotransport, inhibition ofNa+/H+ exchange with 200 µM5-(N,N-dimethyl)- amiloride induced 36 ± 2% increases in transepithelial resistance (TER). Evaluation using multiple Na+/H+ exchange inhibitors showed thatinhibition of the Na+/H+ exchanger 3 (NHE3)isoform was most closely related to TER increases. TER increases due toNHE3 inhibition were related to cytoplasmic acidification becausecytoplasmic alkalinization with 5 mM NH4Cl prevented bothcytoplasmic acidification and TER increases. However, NHE3 inhibitiondid not affect TER when Na+-glucose cotransport wasinhibited. Myosin II regulatory light chain (MLC) phosphorylationdecreased up to 43 ± 5% after inhibition ofNa+/H+ exchange, similar to previous studiesthat associate decreased MLC phosphorylation with increased TER afterinhibition of Na+-glucose cotransport. However, NHE3inhibitors did not diminish Na+-glucose cotransport. Thesedata demonstrate that inhibition of NHE3 results in decreased MLCphosphorylation and increased TER and suggest that NHE3 may participatein the signaling pathway of Na+-glucosecotransport-dependent tight junction regulation.

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2.
To examine theeffect of hyperosmolality on Na+/H+ exchanger(NHE) activity in mesangial cells (MCs), we used apH-sensitive dye,2',7'-bis(2-carboxyethyl)-5(6)-carboxyfluorescein-AM, to measure intracellular pH (pHi) in a single MC from ratglomeruli. All the experiments were performed inCO2/HCO3-free HEPESsolutions. Exposure of MCs to hyperosmotic HEPES solutions (500 mosmol/kgH2O) treated with mannitol caused cellalkalinization. The hyperosmolality-induced cell alkalinization wasinhibited by 100 µM ethylisopropylamiloride, a specific NHEinhibitor, and was dependent on extracellular Na+. Thehyperosmolality shifted the Na+-dependent acid extrusionrate vs. pHi by 0.15-0.3 pH units in thealkaline direction. Removal of extracellular Cl byreplacement with gluconate completely abolished the rate of cellalkalinization induced by hyperosmolality and inhibited the Na+-dependent acid extrusion rate, whereas, under isosmoticconditions, it caused no effect on Na+-dependentpHi recovery rate or Na+-dependent acidextrusion rate. The Cl-dependent cell alkalinizationrate under hyperosmotic conditions was partially inhibited bypretreatment with 5-nitro-2-(3-phenylpropylamino)benzoic acid, DIDS,and colchicine. We conclude: 1) in MCs, hyperosmolality activates NHE to cause cell alkalinization, 2) the acidextrusion rate via NHE is greater under hyperosmotic conditions thanunder isosmotic conditions at a wide range of pHi,3) the NHE activation under hyperosmotic conditions, but notunder isosmotic conditions, requires extracellularCl, and 4) theCl-dependent NHE activation under hyperosmoticconditions partly occurs via Cl channel andmicrotubule-dependent processes.

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3.
Chronichypokalemia increases the activity of proximal tubule apical membraneNa+/H+antiporter NHE3. The present study examined the effect ofthe incubation of OKP cells (an opossum kidney, clone P cell line) incontrol medium {K+ concn([K+]) = 5.4 mM} or low-K+ medium([K+] = 2.7 mM) onNHE3. The activity of an ethylisopropyl amiloride-resistant Na+/H+antiporter, whose characteristics were consistent with those ofNHE3, was increased inlow-K+ cells beginning at 8 h.NHE3 mRNA and NHE3 protein abundance were increased 2.2-fold and 62%,respectively, at 24 h but not at 8 h. After incubation inlow-K+ medium, intracellular pH(pHi) decreased by 0.27 pH units(maximum at 27 min) and then recovered to the control level.Intracellular acidosis induced by 5 mM sodium propionate increasedNa+/H+antiporter activity at 8 and 24 h. Herbimycin A, a tyrosine kinase inhibitor, blocked low-K+- andsodium propionate-induced activation of theNa+/H+antiporter at 8 and 24 h. Our results demonstrate thatlow-K+ medium causes an earlydecrease in pHi, which leads to anincrease in NHE3 activity via a tyrosine kinase pathway.  相似文献   

4.
The effect of glucose on the intracellular pH (pHi) recovery rate (dpHi/dt) and Na+-glucose transporter (SGLT) localization was investigated in HEK-293 cells, a cell line that expresses endogenous NHE1, NHE3, SGLT1, and SGLT2 proteins. The activity of the Na+/H+ exchangers (NHEs) was evaluated by using fluorescence microscopy. The total and membrane protein expression levels were analyzed by immunoblotting. In cells cultivated in 5 mM glucose, the pHi recovery rate was 0.169 ± 0.020 (n = 6). This value did not change in response to the acute presence of glucose at 2 or 10 mM, but decreased with 25 mM glucose, an effect that was not observed with 25 mM mannitol. Conversely, the chronic effect of high glucose (25 mM) increased the pHi recovery rate (~40%, P < 0.05), without changes in the total levels of NHE1, NHE3, or SGLT1 expression, but increasing the total cellular (~50%, P < 0.05) and the plasma membrane (~100%, P < 0.01) content of SGLT2. Treatment with H-89 (10−6 M) prevented the stimulatory effect of chronic glucose treatment on the pHi recovery rate and SGLT2 expression in the plasma membrane. Our results indicate that the effect of chronic treatment with a high glucose concentration is associated with increased NHEs activity and plasma membrane expression of SGLT2 in a protein kinase A-dependent way. The present results reveal mechanisms of glucotoxicity and may contribute to understanding the diabetes-induced damage of this renal epithelial cell.  相似文献   

5.
Role of Na(+)/H(+) exchanger during O(2) deprivation in mouse CA1 neurons   总被引:1,自引:0,他引:1  
To determine the role ofmembrane transporters in intracellular pH (pHi) regulationunder conditions of low microenvironmental O2, we monitoredpHi in isolated single CA1 neurons using the fluorescentindicator carboxyseminaphthorhodafluor-1 and confocal microscopy. Aftertotal O2 deprivation or anoxia (PO2 0 Torr), a large increase in pHi was seen in CA1neurons in HEPES buffer, but a drop in pHi, albeit small,was observed in the presence of HCO. Ionicsubstitution and pharmacological experiments showed that the largeanoxia-induced pHi increase in HEPES buffer was totallyNa+ dependent and was blocked by HOE-694, stronglysuggesting the activation of the Na+/H+exchanger (NHE). Also, this pHi increase in HEPES bufferwas significantly smaller in Na+/H+ exchangerisoform 1 (NHE1) null mutant CA1 neurons than in wild-type neurons,demonstrating that NHE1 is responsible for part of the pHiincrease following anoxia. Both chelerythrine and H-89 partly blocked,and H-7 totally eliminated, this anoxia-induced pHiincrease in the absence of HCO. We conclude that1) O2 deprivation activatesNa+/H+ exchange by enhancing protein kinaseactivity and 2) membrane proteins, such as NHE, activelyparticipate in regulating pHi during low-O2states in neurons.

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6.
Resting or basal intracellular pH (pHi) measured in cultured human syncytiotrophoblast cells was 7.26 ± 0.04 (without HCO3) or 7.24 ± 0.03 (with HCO3). Ion substitution and inhibitor experiments were performed to determine whether common H+-transporting species were operating to maintain basal pHi. Removal of extracellular Na+ or Cl or addition of amiloride or dihydro-4,4'-diisothiocyanatostilbene-2,2'-disulfonate (H2DIDS) had no effect. Acidification with the K+/H+ exchanger nigericin reduced pHi to 6.25 ± 0.15 (without HCO3) or 6.53 ± 0.10 (with HCO3). In the presence of extracellular Na+, recovery to basal pHi was prompt and occurred at similar rates in the absence and presence of HCO3. Ion substitution and inhibition experiments were also used to identify the species mediating the return to basal pHi after acidification. Recovery was inhibited by removal of Na+ or addition of amiloride, whereas removal of Cl and addition of H2DIDS were ineffective. Addition of the Na+/H+ exchanger monensin to cells that had returned to basal pHi elicited a further increase in pHi to 7.48 ± 0.07. Analysis of recovery data showed that there was a progressive decrease in pH per minute as pHi approached the basal level, despite the continued presence of a driving force for H+ extrusion. These data show that in cultured syncytial cells, in the absence of perturbation, basal pHi is preserved despite the absence of active, mediated pH maintenance. They also demonstrate that an Na+/H+ antiporter acts to defend the cells against acidification and that it is the sole transporter necessary for recovery from an intracellular acid load. sodium/hydrogen antiporter; pH regulation; fluorescence; 2',7'-bis(2-carboxyethyl)-5(6)-carboxyfluorescein  相似文献   

7.
The natriuretic peptides (NPs) atrial natriuretic peptide (ANP), brain natriuretic peptide (BNP), and C-type natriuretic peptide (CNP) display hypotensive effects in the mammalian eye by lowering the intraocular pressure (IOP), a function that is mediated by the bilayer ocular ciliary epithelium (CE), in conjunction with the trabecular meshwork. ANP regulates Na+/H+ exchanger (NHE) activity, and inhibitors of NHE have been shown to lower IOP. We examined whether NPs influence the NHE activity of the CE, which is comprised of pigmented (PE) and nonpigmented (NPE) epithelial cells, by directly recording the rate of intracellular pH (pHi) recovery from its inner NPE cell layer. NPs inhibited, in a dose-dependent manner (1–100 nM), the rate of pHi recovery with the order of potency CNP > ANP > BNP, indicative that this inhibition is mediated by the presence of NPR type B receptors. 8-Bromo-cGMP (8-BrcGMP), a nonhydrolyzable analog of cGMP, mimicked NPs in inhibiting the rate of Na+-dependent pHi recovery. In contrast, ethylisopropyl amiloride (EIPA, 100 nM) or amiloride (10 µM) completely abolished the pHi recovery by NHE. 18-Glycyrrhetinic acid (18-GA), a gap junction blocker, attenuated the inhibitory effect of CNP on the rate of pHi recovery, suggesting that NHE activity in both cell layers of the CE is coregulated. This interpretation was supported, in part, by the coexpression of NHE-1 isoform mRNA in both NPE and PE cells. The mechanism by which the inhibitory effect of NPs on NHE-1 activity might influence the net solute movement or fluid transport by the bilayer CE remains to be determined. Na+/H+ exchanger type 1; intracellular pH; aqueous humor  相似文献   

8.
In this study, we test the hypothesisthat in newborn hearts (as in adults) hypoxia and acidificationstimulate increased Na+ uptake, in part via pH-regulatoryNa+/H+ exchange. Resulting increases inintracellular Na+ (Nai) alter the force drivingthe Na+/Ca2+ exchanger and lead to increasedintracellular Ca2+. NMR spectroscopy measuredNai and cytosolic Ca2+ concentration([Ca2+]i) and pH (pHi) inisolated, Langendorff-perfused 4- to 7-day-old rabbit hearts. AfterNa+/K+ ATPase inhibition, hypoxic hearts gainedNa+, whereas normoxic controls did not [19 ± 3.4 to139 ± 14.6 vs. 22 ± 1.9 to 22 ± 2.5 (SE) meq/kg drywt, respectively]. In normoxic hearts acidified using theNH4Cl prepulse, pHi fell rapidly and recovered,whereas Nai rose from 31 ± 18.2 to 117.7 ± 20.5 meq/kg dry wt. Both protocols caused increases in [Ca]i;however, [Ca]i increased less in newborn hearts than inadults (P < 0.05). Increases in Nai and[Ca]i were inhibited by theNa+/H+ exchange inhibitormethylisobutylamiloride (MIA, 40 µM; P < 0.05), aswell as by increasing perfusate osmolarity (+30 mosM) immediately before and during hypoxia (P < 0.05). The data supportthe hypothesis that in newborn hearts, like adults, increases inNai and [Ca]i during hypoxia and afternormoxic acidification are in large part the result of increased uptakevia Na+/H+ and Na+/Ca2+exchange, respectively. However, for similar hypoxia and acidification protocols, this increase in [Ca]i is less in newborn thanadult hearts.

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9.
Putative chemoreceptors in the solitary complex (SC) are sensitive to hypercapnia and oxidative stress. We tested the hypothesis that oxidative stress stimulates SC neurons by a mechanism independent of intracellular pH (pHi). pHi was measured by using ratiometric fluorescence imaging microscopy, utilizing either the pH-sensitive fluorescent dye BCECF or, during whole cell recordings, pyranine in SC neurons in brain stem slices from rat pups. Oxidative stress decreased pHi in 270 of 436 (62%) SC neurons tested. Chloramine-T (CT), N-chlorosuccinimide (NCS), dihydroxyfumaric acid, and H2O2 decreased pHi by 0.19 ± 0.007, 0.20 ± 0.015, 0.15 ± 0.013, and 0.08 ± 0.002 pH unit, respectively. Hypercapnia decreased pHi by 0.26 ± 0.006 pH unit (n = 95). The combination of hypercapnia and CT or NCS had an additive effect on pHi, causing a 0.42 ± 0.03 (n = 21) pH unit acidification. CT slowed pHi recovery mediated by Na+/H+ exchange (NHE) from NH4Cl-induced acidification by 53% (n = 20) in -buffered medium and by 58% (n = 10) in HEPES-buffered medium. CT increased firing rate in 14 of 16 SC neurons, and there was no difference in the firing rate response to CT with or without a corresponding change in pHi. These results indicate that oxidative stress 1) decreases pHi in some SC neurons, 2) together with hypercapnia has an additive effect on pHi, 3) partially inhibits NHE, and 4) directly affects excitability of CO2/H+-chemosensitive SC neurons independently of pHi changes. These findings suggest that oxidative stress acidifies SC neurons in part by inhibiting NHE, and this acidification may contribute ultimately to respiratory control dysfunction. hyperoxic hyperventilation; O2 toxicity; pH regulation; brain stem; reactive oxygen species  相似文献   

10.
Malignantgliomas exhibit alkaline intracellular pH (pHi) and acidicextracellular pH (pHe) compared with nontransformedastrocytes, despite increased metabolic H+ production. Theacidic pHe limits the availability ofHCO3, thereby reducing both passiveand dynamic HCO3-dependent buffering.This implies that gliomas are dependent upon dynamic HCO3-independent H+buffering pathways such as the type 1 Na+/H+exchanger (NHE1). In this study, four rapidly proliferating gliomas exhibited significantly more alkaline steady-state pHi(pHi = 7.31-7.48) than normal astrocytes(pHi = 6.98), and increased rates of recovery fromacidification, under nominallyCO2/HCO3-free conditions.Inhibition of NHE1 in the absence ofCO2/HCO3 resulted inpronounced acidification of gliomas, whereas normal astrocytes wereunaffected. When suspended inCO2/HCO3 medium astrocytepHi increased, yet glioma pHi unexpectedlyacidified, suggesting the presence of anHCO3-dependent acid loadingpathway. Nucleotide sequencing of NHE1 cDNA from the gliomasdemonstrated that genetic alterations were not responsible for thisaltered NHE1 function. The data suggest that NHE1 activity issignificantly elevated in gliomas and may provide a useful target forthe development of tumor-selective therapies.

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11.
Infection withhuman cytomegalovirus (HCMV) causes an enlargement (cytomegaly) ofhuman fibroblasts (MRC-5). As a first step toward determining whethersolute uptake, mediated in part by Na+/H+exchange, is responsible for the development of cytomegaly, we studiedthe effects of HCMV infection on intracellular pH(pHi) regulation (nominalCO2/concn = 0) by comparing cytomegalic cells with mock-infected cells.Seventy-two hours after HCMV infection of MRC-5 cells we observed thefollowing changes relative to mock-infected cells: restingpHi is 0.1-0.2 pH unit morealkaline; the intrinsic buffering power of the cytoplasm was reduced by~40-50%; acid-loadingH+-equivalent fluxes were reduced;and there were alterations of Na+/H+exchanger (NHE) properties, including an alkaline shift of the pHi dependence of activity, areduction of the apparent affinity for extracellularNa+, and an increase of theapparent maximum velocity and a large increase in stimulation by ahyperosmotic challenge. These results indicate that HCMV infectionexerts a profound effect on functional properties of the NHE, onacid-loading mechanisms, and on intrinsic cellular buffering power.These effects are consistent with a role for the NHE in the developmentof cytomegaly.

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12.
Using thepH-sensitive dye2',7'-bis(2-carboxyethyl)-5(6)-carboxyfluorescein (BCECF),we examined the effect of hyperosmolar solutions, which presumablycaused cell shrinkage, on intracellular pH(pHi) regulation in mesangialcells (single cells or populations) cultured from the rat kidney. Thecalibration of BCECF is identical in shrunken and unshrunken mesangialcells if the extracellular K+concentration ([K+])is adjusted to match the predicted intracellular[K+]. ForpHi values between ~6.7 and~7.4, the intrinsic buffering power in shrunken cells (600 mosmol/kgH2O) is threefold larger than in unshrunken cells (~300mosmol/kgH2O). In the nominalabsence ofCO2/HCO3,exposing cell populations to a HEPES-buffered solution supplementedwith ~300 mM mannitol (600 mosmol/kgH2O) causes steady-statepHi to increase by ~0.4. The pHi increase is due to activationofNa+/H+exchange because, in single cells, it is blocked in the absence ofexternal Na+ or in the presence of50 µM ethylisopropylamiloride (EIPA). Preincubating cells in aCl-free solution for atleast 14 min inhibits the shrinkage-induced pHi increase by 80%. Wecalculated the pHi dependence oftheNa+/H+exchange rate in cell populations under normosmolar and hyperosmolar conditions by summing 1) thepHi dependence of the totalacid-extrusion rate and 2) thepHi dependence of theEIPA-insensitive acid-loading rate. Shrinkage alkali shifts thepHi dependence ofNa+/H+exchange by ~0.7 pH units.  相似文献   

13.
Protein kinase D inhibits plasma membrane Na+/H+ exchanger activity   总被引:3,自引:0,他引:3  
The regulation of plasma membraneNa+/H+exchanger (NHE) activity by protein kinase D (PKD), a novel proteinkinase C- and phorbol ester-regulated kinase, was investigated. Todetermine the effect of PKD on NHE activity in vivo, intracellular pH(pHi) measurements were made inCOS-7 cells by microepifluorescence using the pH indicator cSNARF-1.Cells were transfected with empty vector (control), wild-type PKD, orits kinase-deficient mutant PKD-K618M, together with green fluorescentprotein (GFP). NHE activity, as reflected by the rate of acid efflux(JH), wasdetermined in single GFP-positive cells following intracellularacidification. Overexpression of wild-type PKD had no significanteffect on JH(3.48 ± 0.25 vs. 3.78 ± 0.24 mM/min in control atpHi 7.0). In contrast,overexpression of PKD-K618M increasedJH (5.31 ± 0.57 mM/min at pHi 7.0;P < 0.05 vs. control). Transfectionwith these constructs produced similar effects also in A-10 cells,indicating that native PKD may have an inhibitory effect on NHE in bothcell types, which is relieved by a dominant-negative action ofPKD-K618M. Exposure of COS-7 cells to phorbol ester significantlyincreased JH in control cells but failed to do so in cells overexpressing either wild-type PKD (due to inhibition by the overexpressed PKD) or PKD-K618M(because basal JHwas already near maximal). A fusion protein containing the cytosolicregulatory domain (amino acids 637-815) of NHE1 (the ubiquitousNHE isoform) was phosphorylated in vitro by wild-type PKD, but with lowstoichiometry. These data suggest that PKD inhibits NHE activity,probably through an indirect mechanism, and represents a novel pathwayin the regulation of the exchanger.

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14.
We have used the recombinantNH2-terminalmyc-tagged rabbitNa+-glucose transporter (SGLT1) tostudy the regulation of this carrier expressed in COS-7 cells.Treatment of cells with a protein kinase C (PKC) agonist, phorbol12-myristate 13-acetate (PMA), caused a significant decrease (38.03 ± 0.05%) in methyl-D-glucopyranoside transportactivity that could not be emulated by 4-phorbol 12,13-didecanoate. The decrease in sugar uptake stimulated by PMA was reversed by the PKCinhibitor bisindolylmaleimide I. The maximal rate ofNa+-glucose cotransport activity(Vmax) wasdecreased from 1.29 ± 0.09 to 0.85 ± 0.04 nmol · min1 · mgprotein1 after PMAexposure. However, measurement of high-affinityNa+-dependent phloridzin bindingrevealed that there was no difference in the number of cell surfacetransporters after PMA treatment; maximal binding capacities were 1.54 ± 0.34 and 1.64 ± 0.21 pmol/mg protein for untreated andtreated cells, respectively. The apparent sugar binding affinity(Michaelis-Menten constant) and phloridzin binding affinity(dissociation constant) were not affected by PMA. Because PKC reducedVmax withoutaffecting the number of cell surface SGLT1 transporters, we concludethat PKC has a direct effect on the carrier, resulting in a lowering ofthe transporter turnover rate by a factor of two.  相似文献   

15.
The relevance of nongenomic pathways to regulation of epithelial function by aldosterone is poorly understood. Recently, we demonstrated that aldosterone inhibits transepithelial HCO3 absorption in the renal medullary thick ascending limb (MTAL) through a nongenomic pathway. Here, we examined the transport mechanism(s) responsible for this regulation, focusing on Na+/H+ exchangers (NHE). In the MTAL, apical NHE3 mediates H+ secretion necessary for HCO3 absorption; basolateral NHE1 influences HCO3 absorption by regulating apical NHE3 activity. In microperfused rat MTALs, the addition of 1 nM aldosterone rapidly decreased HCO3 absorption by 30%. This inhibition was unaffected by three maneuvers that inhibit basolateral Na+/H+ exchange and was preserved in MTALs from NHE1 knockout mice, ruling out the involvement of NHE1. In contrast, exposure to aldosterone for 15 min caused a 30% decrease in apical Na+/H+ exchange activity over the intracellular pH range from 6.5 to 7.7, due to a decrease in Vmax. Inhibition of HCO3 absorption by aldosterone was not affected by 0.1 mM lumen Zn2+ or 1 mM lumen DIDS, arguing against the involvement of an apical H+ conductance or apical K+-HCO3 cotransport. These results demonstrate that aldosterone inhibits HCO3 absorption in the MTAL through inhibition of apical NHE3, and identify NHE3 as a target for nongenomic regulation by aldosterone. Aldosterone may influence a broad range of epithelial transport functions important for extracellular fluid volume and acid-base homeostasis through direct regulation of this exchanger. thick ascending limb; acid-base transport; epithelial Na+ transport; kidney  相似文献   

16.
Evidence suggests that 1) ischemia-reperfusion injury is due largely to cytosolic Ca2+ accumulation resulting from functional coupling of Na+/Ca2+ exchange (NCE) with stimulated Na+/H+ exchange (NHE1) and 2) 17-estradiol (E2) stimulates release of NO, which inhibits NHE1. Thus we tested the hypothesis that acute E2 limits myocardial Na+ and therefore Ca2+ accumulation, thereby limiting ischemia-reperfusion injury. NMR was used to measure cytosolic pH (pHi), Na+ (Na), and calcium concentration ([Ca2+]i) in Krebs-Henseleit (KH)-perfused hearts from ovariectomized rats (OVX). Left ventricular developed pressure (LVDP) and lactate dehydrogenase (LDH) release were also measured. Control ischemia-reperfusion was 20 min of baseline perfusion, 40 min of global ischemia, and 40 min of reperfusion. The E2 protocol was identical, except that 1 nM E2 was included in the perfusate before ischemia and during reperfusion. E2 significantly limited the changes in pHi, Na and [Ca2+]i during ischemia (P < 0.05). In control OVX vs. OVX+E2, pHi fell from 6.93 ± 0.03 to 5.98 ± 0.04 vs. 6.96 ± 0.04 to 6.68 ± 0.07; Na rose from 25 ± 6 to 109 ± 14 meq/kg dry wt vs. 25 ± 1 to 76 ± 3; [Ca2+]i changed from 365 ± 69 to 1,248 ± 180 nM vs. 293 ± 66 to 202 ± 64 nM. E2 also improved recovery of LVDP and diminished release of LDH during reperfusion. Effects of E2 were diminished by 1 µM N-nitro-L-arginine methyl ester. Thus the data are consistent with the hypothesis. However, E2 limitation of increases in [Ca2+]i is greater than can be accounted for by the thermodynamic effect of reduced Na accumulation on NCE. myocardial ischemia; Na+/H+ exchange; Na+/Ca2+ exchange; nuclear magnetic resonance; ischemic biology; ion channels/membrane transport; transplantation  相似文献   

17.
Akt2 phosphorylates ezrin to trigger NHE3 translocation and activation   总被引:3,自引:0,他引:3  
Initiation of Na(+)-glucose cotransport in intestinal absorptive epithelia causes NHE3 to be translocated to the apical plasma membrane, leading to cytoplasmic alkalinization. We reported recently that this NHE3 translocation requires ezrin phosphorylation. However, the kinase that phosphorylates ezrin in this process has not been identified. Because Akt has also been implicated in NHE3 translocation, we investigated the hypothesis that Akt phosphorylates ezrin. After initiation of Na(+)-glucose cotransport, Akt is activated with kinetics that parallel those of ezrin phosphorylation. Inhibition of p38 MAP kinase, which blocks ezrin phosphorylation, also prevents Akt activation. Purified Akt directly phosphorylates recombinant ezrin at threonine 567 in vitro in an ATP-dependent manner. This in vitro phosphorylation can be prevented by Akt inhibitors. In intact cells, inhibition of either phosphoinositide 3-kinase, an upstream regulator of Akt, or inhibition of Akt itself using inhibitors validated in vitro prevents ezrin phosphorylation after initiation of Na(+)-glucose cotransport. Specific small interfering RNA knockdown of Akt2 prevented ezrin phosphorylation in intact cells. Pharmacological Akt inhibition or Akt2 knockdown also prevented NHE3 translocation and activation after initiation of Na(+)-glucose cotransport, confirming the functional role of Akt2. These studies therefore identify Akt2 as a critical kinase that regulates ezrin phosphorylation and activation. This Akt2-dependent ezrin phosphorylation leads to NHE3 translocation and activation.  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.
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   

20.
ETB receptor activation leads to activation and phosphorylation of NHE3   总被引:1,自引:0,他引:1  
In OKP cellsexpressing ETB endothelinreceptors, activation ofNa+/H+antiporter activity by endothelin-1 (ET-1) was resistant to low concentrations of ethylisopropyl amiloride, indicating regulation ofNa+/H+exchanger isoform 3 (NHE3). ET-1 increased NHE3 phosphorylation incells expressing ETB receptors butnot in cells expressing ETAreceptors. Receptor specificity was not due to demonstrable differencesin receptor-specific activation of tyrosine phosphorylation pathways orinhibition of adenylyl cyclase. Phosphorylation was associated with adecrease in mobility on SDS-PAGE, which was reversed by treatingimmunoprecipitated NHE3 with alkaline phosphatase. Phosphorylation wasfirst seen at 5 min and was maximal at 15-30 min. Phosphorylationwas maximal with 109 MET-1. Phosphorylation occurred on threonine and serine residues atmultiple sites. In summary, ET-1 induces NHE3 phosphorylation in OKPcells on multiple threonine and serine residues.ETB receptor specificity, timecourse, and concentration dependence are all similar betweenET-1-induced increases in NHE3 activity and phosphorylation, suggestingthat phosphorylation plays a key role in activation.  相似文献   

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