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1.
Cytoplasmic pH (pHi) was evaluated duringNa+-glucose cotransport in Caco-2 intestinal epithelialcell monolayers. The pHi increased by 0.069 ± 0.002 within 150 s after initiation of Na+-glucosecotransport. This increase occurred in parallel with glucose uptake andrequired expression of the intestinal Na+-glucosecotransporter SGLT1. S-3226, a preferential inhibitor ofNa+/H+ exchanger (NHE) isoform 3 (NHE3),prevented cytoplasmic alkalinization after initiation ofNa+-glucose cotransport with an ED50 of 0.35 µM, consistent with inhibition of NHE3, but not NHE1 or NHE2. Incontrast, HOE-694, a poor NHE3 inhibitor, failed to significantlyinhibit pHi increases at <500 µM.Na+-glucose cotransport was also associated with activationof p38 mitogen-activated protein (MAP) kinase, and the p38 MAP kinase inhibitors PD-169316 and SB-202190 prevented pHi increasesby 100 ± 0.1 and 86 ± 0.1%, respectively. Conversely,activation of p38 MAP kinase with anisomycin induced NHE3-dependentcytoplasmic alkalinization in the absence of Na+-glucosecotransport. These data show that NHE3-dependent cytoplasmic alkalinization occurs after initiation of SGLT1-mediatedNa+-glucose cotransport and that the mechanism of this NHE3activation requires p38 MAP kinase activity. This coordinatedregulation of glucose (SGLT1) and Na+ (NHE3) absorptiveprocesses may represent a functional activation of absorptiveenterocytes by luminal nutrients.

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2.
Cell-attached and cell-free configurations of the patch-clamptechnique were used to investigate the conductive properties andregulation of the major K+channels in the basolateral membrane of outer hair cells freshly isolated from the guinea pig cochlea. There were two majorvoltage-dependent K+ channels. ACa2+-activatedK+ channel with a high conductance(220 pS,PK/PNa = 8) was found in almost 20% of the patches. The inside-out activityof the channel was increased by depolarizations above 0 mV andincreasing the intracellular Ca2+concentration. External ATP or adenosine did not alter thecell-attached activity of the channel. The open probability of theexcised channel remained stable for several minutes without rundown andwas not altered by the catalytic subunit of protein kinase A (PKA)applied internally. The most frequentK+ channel had a low conductanceand a small outward rectification in symmetricalK+ conditions (10 pS for inwardcurrents and 20 pS for outward currents, PK/PNa = 28). It was found significantly more frequently in cell-attached andinside-out patches when the pipette contained 100 µM acetylcholine. It was not sensitive to internalCa2+, was inhibited by4-aminopyridine, was activated by depolarization above 30 mV,and exhibited a rundown after excision. It also had a slow inactivationon ensemble-averaged sweeps in response to depolarizing pulses. Thecell-attached activity of the channel was increased when adenosine wassuperfused outside the pipette. This effect also occurred with permeantanalogs of cAMP and internally applied catalytic subunit of PKA. Bothchannels could control the cell membrane voltage of outer hair cells.

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3.
Rapamycin and FK-506 are immunosuppressive drugs thatbind a ubiquitous immunophilin, FKBP12, but immunosuppressivemechanisms and side effects appear to be different. Rapamycin bindsrenal FKBP12 to change renal transport. We used cell-attached patch clamp to examine rapamycin's effect on Na+ channels in A6cells. Channel NPo was 0.5 ± 0.08 (n = 6)during the first 5 min but fell close to zero after 20 min. Application of 1 µM rapamycin reactivated Na+ channels(NPo = 0.47 ± 0.1; n=6), but 1 µMFK-506 did not. Also, GF-109203X, a protein kinase C (PKC) inhibitor,mimicked the rapamycin-induced reactivation in a nonadditive manner.However, rapamycin did not reactivate Na+ channels if cellswere exposed to 1 µM FK-506 before rapamycin. In PKC assays,rapamycin was as effective as the PKC inhibitor; however, epithelialNa+ channel (ENaC) phosphorylation was low under baselineconditions and was not altered by PKC inhibitors or activators. Theseresults suggest that rapamycin activates Na+ channels bybinding FKBP12 and inhibiting PKC, and, in renal cells, despite bindingthe same immunophilin, rapamycin and FK-506 activate differentintracellular signaling pathways.

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4.
Na+/H+ exchangers (NHE) are ubiquitous transporters participating in regulation of cell volume and pH. Cell shrinkage, acidification, and growth factors activate NHE by increasing its sensitivity to intracellular H+ concentration. In this study, the kinetics were studied in dog red blood cells of Na+ influx through NHE as a function of external Na+ concentration ([Na+]o). In cells in isotonic media, [Na+]o inhibited Na+ influx >40 mM. Osmotic shrinkage activated NHE by reducing this inhibition. In cells in isotonic media + 120 mM sucrose, there was no inhibition, and influx was a hyperbolic function of [Na+]o. The kinetics of Na+-inhibited Na+ influx were analyzed at various extents of osmotic shrinkage. The curves for inhibited Na+ fluxes were sigmoid, indicating more than one Na+ inhibitory site associated with each transporter. Shrinkage significantly increased the Na+ concentration at half-maximal velocity of Na+-inhibited Na+ influx, the mechanism by which shrinkage activates NHE. erythrocytes; cell volume regulation; amiloride; kinetics of sodium ion influx  相似文献   

5.
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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6.
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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7.
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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8.
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   

9.
Secretin stimulates ductal secretion by activation of cAMP PKA CFTR Cl/HCO3 exchanger in cholangiocytes. We evaluated the expression of 2A-, 2B-, and 2C-adrenergic receptors in cholangiocytes and the effects of the selective 2-adrenergic agonist UK 14,304, on basal and secretin-stimulated ductal secretion. In normal rats, we evaluated the effect of UK 14,304 on bile and bicarbonate secretion. In bile duct-ligated (BDL) rats, we evaluated the effect of UK 14,304 on basal and secretin-stimulated 1) bile and bicarbonate secretion; 2) duct secretion in intrahepatic bile duct units (IBDU) in the absence or presence of 5-(N-ethyl-N-isopropyl)amiloride (EIPA), an inhibitor of the Na+/H+ exchanger isoform NHE3; and 3) cAMP levels, PKA activity, Cl efflux, and Cl/HCO3 exchanger activity in purified cholangiocytes. 2-Adrenergic receptors were expressed by all cholangiocytes in normal and BDL liver sections. UK 14,304 did not change bile and bicarbonate secretion of normal rats. In BDL rats, UK 14,304 inhibited secretin-stimulated 1) bile and bicarbonate secretion, 2) expansion of IBDU luminal spaces, and 3) cAMP levels, PKA activity, Cl efflux, and Cl/HCO3 exchanger activity in cholangiocytes. There was decreased lumen size after removal of secretin in IBDU pretreated with UK 14,304. In IBDU pretreated with EIPA, there was no significant decrease in luminal space after removal of secretin in either the absence or presence of UK 14,304. The inhibitory effect of UK 14,304 on ductal secretion is not mediated by the apical cholangiocyte NHE3. 2-Adrenergic receptors play a role in counterregulating enhanced ductal secretion associated with cholangiocyte proliferation in chronic cholestatic liver diseases. bicarbonate secretion; chloride efflux; gastrointestinal hormones; intrahepatic biliary epithelium; protein kinase A  相似文献   

10.
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   

11.
We examined protein kinase C (PKC)-dependentregulation ofNa+-K+-ATPasein frog mucociliary cells. Activation of PKC by12-O-tetradecanoylphorbol-13-acetate (TPA) or 1,2-dioctanoyl-sn-glycerol(diC8) either in intact cells or isolated membranes resulted in aspecific inhibition ofNa+-K+-ATPaseactivity by ~25-45%. The inhibitory effects in membranes exhibited time dependence and dose dependence [half-maximalinhibition concentration (IC50) = 0.5 ± 0.1 nM and 2.4 ± 0.2 µM, respectively, for TPA anddiC8] and were not influenced byCa2+. Analysis of the ouabaininhibition pattern revealed the presence of twoNa+-K+-ATPaseisoforms with IC50 values forcardiac glycoside of 2.6 ± 0.8 nM and 409 ± 65 nM,respectively. Most importantly, the isoform possessing a higheraffinity for ouabain was almost completely inhibited by TPA, whereasits counterpart was hardly sensitive to the PKC activator. The resultssuggest that, in frog mucociliary cells, PKC regulatesNa+-K+-ATPaseand that this action is related to the specificNa+-K+-ATPaseisoform.

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12.
Squalamine, anendogenous molecule found in the liver and other tissues ofSqualus acanthias, hasantibiotic properties and causes changes in endothelial cell shape. Thelatter suggested that its potential targets might include transportproteins that control cell volume or cell shape. The effect of purifiedsqualamine was examined on clonedNa+/H+exchanger isoforms NHE1, NHE2, and NHE3 stably transfected in PS120fibroblasts. Squalamine (1-h pretreatment) decreased the maximalvelocity of rabbit NHE3 in a concentration-dependent manner (13, 47, and 57% inhibition with 3, 5, and 7 µg/ml, respectively) and alsoincreasedK'[H+]i.Squalamine did not affect rabbit NHE1 or NHE2 function. The inhibitoryeffect of squalamine was 1) timedependent, with no effect of immediate addition and maximum effect with1 h of exposure, and 2) fullyreversible. Squalamine pretreatment of the ileum for 60 min inhibitedbrush-border membrane vesicleNa+/H+activity by 51%. Further investigation into the mechanism of squalamine's effects showed that squalamine required the COOH-terminal 76 amino acids of NHE3. Squalamine had no cytotoxic effect at theconcentrations studied, as indicated by monitoring lactate dehydrogenase release. These results indicate that squalamine 1) is a specific inhibitor of thebrush-border NHE isoform NHE3 and not NHE1 or NHE2,2) acts in a nontoxic and fullyreversible manner, and 3) has adelayed effect, indicating that it may influence brush-borderNa+/H+exchanger function indirectly, through an intracellular signaling pathway or by acting as an intracellular modulator.

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13.
The response ofH+-ATPase to lethal acid stress isunknown. A mutant strain (called NHE2d) was derived from cultured inner medullary collecting duct cells (mIMCD-3 cells) following three cyclesof lethal acid stress. Cells were grown to confluence on coverslips,loaded with2',7'-bis(carboxyethyl)-5(6)-carboxyfluorescein, andmonitored for intracellular pH(pHi) recovery from an acid load. The rate of Na+-independentpHi recovery from an acid load inmutant cells was approximately fourfold higher than in parent cells(P < 0.001). TheNa+-independentH+ extrusion was ATP dependent and K+ independent and wascompletely inhibited in the presence of diethylstilbestrol, N, N'-dicyclohexylcarbodiimide,or N-ethylmaleimide. Theseresults indicate that theNa+-independentH+ extrusion in cultured medullarycells is mediated via H+-ATPaseand is upregulated in lethal acidosis. Northern hybridization experiments demonstrated that mRNA levels for the 16- and 31-kDa subunits of H+-ATPase remainedunchanged in mutant cells compared with parent cells. We propose thatlethal acid stress results in increased H+-ATPase activity in innermedullary collecting duct cells. Upregulation ofH+-ATPase could play a protectiverole against cell death in severe intracellular acidosis.

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14.
We examined the regulation of theNa+/H+exchangers (NHEs) NHE2 and NHE3 by expressing them in human intestinalC2/bbe cells, which spontaneously differentiate and have little basalapical NHE activity. Unidirectional apical membrane22Na+influxes were measured in NHE2-transfected (C2N2) and NHE3-transfected (C2N3) cells under basal and stimulated conditions, and their activities were distinguished as the HOE-642-sensitive and -insensitive components of5-(N,N-dimethyl)amiloride-inhibitableflux. Both C2N2 and C2N3 cells exhibited increased apical membrane NHEactivity under non-acid-loaded conditions compared with nontransfected control cells. NHE2 was inhibited by 8-(4-chlorophenylthio)adenosine 3',5'-cyclic monophosphate and thapsigargin, was stimulatedby serum, and was unaffected by cGMP- and protein kinase C-dependent pathways. In contrast, NHE3 was inhibited by all regulatory pathways examined. Under acid-loaded conditions (which increase apical Na+ influx), NHE2 and NHE3exhibited similar patterns of regulation, suggesting that the secondmessenger effects observed were not secondary to effects on cell pH.Thus, in contrast to their expression in nonepithelial cells, NHE2 andNHE3 expressed in an epithelial cell line behave similarly toendogenously expressed intestinal apical membrane NHEs. We concludethat physiological regulation and function of epithelium-specific NHEsare dependent on tissue-specific factors and/or conditionalrequirements.

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15.
Properties of ATP-dependent K(+) channels in adrenocortical cells   总被引:6,自引:0,他引:6  
Bovine adrenocortical zona fasciculata (AZF)cells express a novel ATP-dependent K+-permeable channel(IAC). Whole cell and single-channel recordings were used to characterize IAC channels withrespect to ionic selectivity, conductance, and modulation bynucleotides, inorganic phosphates, and angiotensin II (ANG II). Inoutside-out patch recordings, the activity of unitaryIAC channels is enhanced by ATP in the patchpipette. These channels were K+ selective with nomeasurable Na+ or Ca2+ conductance. Insymmetrical K+ solutions with physiological concentrationsof divalent cations (M2+), IACchannels were outwardly rectifying with outward and inward chordconductances of 94.5 and 27.0 pS, respectively. In the absence ofM2+, conductance was nearly ohmic. Hydrolysis-resistantnucleotides including AMP-PNP and NaUTP were more potent than MgATP asactivators of whole cell IAC currents. Inorganicpolytriphosphate (PPPi) dramatically enhancedIAC activity. In current-clamp recordings, nucleotides and PPPi produced resting potentials in AZFcells that correlated with their effectiveness in activatingIAC. ANG II (10 nM) inhibited whole cellIAC currents when patch pipettes contained 5 mMMgATP but was ineffective in the presence of 5 mM NaUTP and 1 mM MgATP.Inhibition by ANG II was not reduced by selective kinase antagonists.These results demonstrate that IAC is adistinctive K+-selective channel whose activity isincreased by nucleotide triphosphates and PPPi.Furthermore, they suggest a model for IAC gatingthat is controlled through a cycle of ATP binding and hydrolysis.

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16.
The intestinal brush border (BB) Na+/H+ exchanger isoform 3 (NHE3) is acutely inhibited by elevation in the concentration of free intracellular Ca2+ ([Ca2+]i) by the cholinergic agonist carbachol and Ca2+ ionophores in a protein kinase C (PKC)-dependent manner. We previously showed that elevating [Ca2+]i with ionomycin rapidly inhibited NHE3 activity and decreased the amount of NHE3 on the plasma membrane in a manner that depended on the presence of the PDZ domain-containing protein E3KARP (NHE3 kinase A regulatory protein, also called NHERF2). The current studies were performed in PS120 fibroblasts (NHE-null cell line) stably transfected with NHE3 and E3KARP to probe the mechanism of PKC involvement in Ca2+ regulation of NHE3. Pretreatment with the general PKC inhibitor, GF109203X prevented ionomycin inhibition of NHE3 without altering basal NHE3 activity. Similarly, the Ca2+-mediated inhibition of NHE3 activity was blocked after pretreatment with the conventional PKC inhibitor Gö-6976 and a specific PKC pseudosubstrate-derived inhibitor peptide. [Ca2+]i elevation caused translocation of PKC from cytosol to membrane. PKC bound to the PDZ1 domain of GST-E3KARP in vitro in a Ca2+-dependent manner. PKC and E3KARP coimmunoprecipitated from cell lysates; this occurred to a lesser extent at basal [Ca2+]i and was increased with ionomycin exposure. Biotinylation studies demonstrated that [Ca2+]i elevation induced oligomerization of NHE3 in total lysates and decreased the amount of plasma membrane NHE3. Treatment with PKC inhibitors did not affect the oligomerization of NHE3 but did prevent the decrease in surface amount of NHE3. These results suggest that PKC is not necessary for the Ca2+-dependent formation of the NHE3 plasma membrane complex, although it is necessary for decreasing the membrane amounts of NHE3, probably by stimulating NHE3 endocytosis. Na absorption; PDZ domains; signal complex  相似文献   

17.
NHE1, NHE2, andNHE3 are well-characterized cloned members of the mammalianNa+/H+exchanger (NHE) gene family. Given the specialized function and regulation of NHE1, NHE2, and NHE3, we compared basal turnover numbersof NHE1, NHE2, and NHE3 measured in the same cell system: PS120fibroblasts lacking endogenous NHEs. NHE1, NHE2, and NHE3 were epitopetagged with vesicular stomatitis virus glycoprotein (VSVG). Thefollowing characteristics were determined on the same passage of cellstransfected with NHE1V, NHE2V, or NHE3V:1) maximal reaction velocity(Vmax) by22Na+uptake and fluorometery, 2) totalamount of NHE protein by quantitative Western analysis with internalstandards of VSVG-tagged maltose-binding protein, and3) cell surface expression by cellsurface biotinylation. Cell surface expression (percentage of totalNHE) was 88.8 ± 3.5, 64.6 ± 3.3, 20.0 ± 2.6, and 14.0 ± 1.3 for NHE1V, 85- and 75-kDa NHE2V, and NHE3V, respectively. Despitethese divergent cell surface expression levels, turnover numbers forNHE1, NHE2, and NHE3 were similar (80.3 ± 9.6, 92.1 ± 8.6, and99.2 ± 9.1 s1, whenVmax wasdetermined using 22Na uptake at22°C and 742 ± 47, 459 ± 16, and 609 ± 39 s1 whenVmax wasdetermined using fluorometry at 37°C). These data indicate that, inthe same cell system, intrinsic properties that determine turnovernumber are conserved among NHE1, NHE2, and NHE3.

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18.
Tg737orpk mice have defects in cilia assembly and develop hydrocephalus in the perinatal period of life. Hydrocephalus is progressive and is thought to be initiated by abnormal ion and water transport across the choroid plexus epithelium. The pathology is further aggravated by the slow and disorganized beating of motile cilia on ependymal cells that contribute to decreased cerebrospinal fluid movement through the ventricles. Previously, we demonstrated that the hydrocephalus phenotype is associated with a marked increase in intracellular cAMP levels in choroid plexus epithelium, which is known to have regulatory effects on ion and fluid movement in many secretory epithelia. To evaluate whether the hydrocephalus in Tg737orpk mutants is associated with defects in ion transport, we compared the steady-state pHi and Na+-dependent transport activities of isolated choroid plexus epithelium tissue from Tg737orpk mutant and wild-type mice. The data indicate that Tg737orpk mutant choroid plexus epithelium have lower pHi and higher Na+-dependent HCO3 transport activity compared with wild-type choroid plexus epithelium. In addition, wild-type choroid plexus epithelium could be converted to a mutant phenotype with regard to the activity of Na+-dependent HCO3 transport by addition of dibutyryl-cAMP and mutant choroid plexus epithelium toward the wild-type phenotype by inhibiting PKA activity with H-89. Together, these data suggest that cilia have an important role in regulating normal physiology of choroid plexus epithelium and that ciliary dysfunction in Tg737orpk mutants disrupts a signaling pathway leading to elevated intracellular cAMP levels and aberrant regulation of pHi and ion transport activity. cAMP; ion transport  相似文献   

19.
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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20.
Previous studies showed that the normal microflora of the largeintestine synthesizes biotin and that the colon is capable of absorbingintraluminally introduced free biotin. Nothing, however, is known aboutthe mechanism of biotin absorption in the large intestine and itsregulation. To address these issues, we used the human-derived,nontransformed colonic epithelial cell line NCM460. Theinitial rate of biotin uptake was found to be1) temperature and energy dependent,2)Na+ dependent (coupling ratio of1:1), 3) saturable as a function ofconcentration [apparent Michaelis constant(Km) of 19.7 µM], 4) inhibited bystructural analogs with a free carboxyl group at the valeric acidmoiety, and 5) competitivelyinhibited by the vitamin pantothenic acid (inhibitionconstant of 14.4 µM). Pretreatment with the protein kinase C (PKC)activators phorbol 12-myristate 13-acetate (PMA) and1,2-dioctanoyl-sn-glycerolsignificantly inhibited biotin uptake. In contrast, pretreatment withthe PKC inhibitors staurosporine and chelerythrine led to a slight, but significant, increase in biotin uptake. The effect of PMA was mediatedvia a marked decrease in maximal uptake velocity and aslight increase in apparentKm. Pretreatmentof cells with modulators of the protein kinase A-mediated pathway, onthe other hand, showed no significant effect on biotin uptake. Theseresults demonstrate, for the first time, the functional existence of aNa+-dependent, specializedcarrier-mediated system for biotin uptake in colonic epithelial cells.This system is shared with pantothenic acid and appears to be under theregulation of an intracellular PKC-mediated pathway.

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