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1.
To examine the effect of aldosterone on sarcolemmalNa+ transport, we measuredouabain-sensitive electrogenicNa+-K+pump current(Ip) involtage-clamped ventricular myocytes and intracellularNa+ activity(aiNa) in right ventricularpapillary muscles. Aldosterone (10 nM) induced an increase in bothIp and the rateof rise of aiNa duringNa+-K+pump blockade with the fast-acting cardiac steroid dihydroouabain. Thealdosterone-induced increase inIp and rate ofrise of aiNa was eliminated bybumetanide, suggesting that aldosterone activates Na+ influx through theNa+-K+-2Clcotransporter. To obtain independent support for this, theNa+,K+, andCl concentrations in thesuperfusate and solution of pipettes used to voltage clamp myocyteswere set at levels designed to abolish the inward electrochemicaldriving force for theNa+-K+-2Clcotransporter. This eliminated the aldosterone-induced increase inIp. We concludethat in vitro exposure of cardiac myocytes to aldosterone activates theNa+-K+-2Clcotransporter to enhance Na+influx and stimulate theNa+-K+pump.

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2.
In this study, we have investigated the dependence of Na+ transport regulation on membrane cholesterol content in A6 renal epithelia. We continuously monitored short-circuit current (Isc), transepithelial conductance (GT), and transepithelial capacitance (CT) to evaluate the effects of cholesterol extraction from the apical and basolateral membranes in steady-state conditions and during activation with hyposmotic shock, oxytocin, and adenosine. Cholesterol extraction was achieved by perfusing the epithelia with methyl--cyclodextrin (mCD) for 1 h. In steady-state conditions, apical membrane cholesterol extraction did not significantly affect the electrophysiological parameters; in contrast, marked reductions were observed during basolateral mCD treatment. However, apical mCD application hampered the responses of Isc and GT to hypotonicity, oxytocin, and adenosine. Analysis of the blocker-induced fluctuation in Isc demonstrated that apical mCD treatment decreased the epithelial Na+ channel (ENaC) open probability (Po) in the steady state as well as after activation of Na+ transport by adenosine, whereas the density of conducting channels was not significantly changed as confirmed by CT measurements. Na+ transport activation by hypotonicity was abolished during basolateral mCD treatment as a result of reduced Na+/K+ pump activity. On the basis of the findings in this study, we conclude that basolateral membrane cholesterol extraction reduces Na+/K+ pump activity, whereas the reduced cholesterol content of the apical membranes affects the activation of Na+ transport by reducing ENaC Po. epithelial Na+ channel; Na+-K+-ATPase activity; short-circuit current; methyl--cyclodextrin; channel open probability  相似文献   

3.
Previous studies showed the presence of a significant fraction of Na+-K+-ATPase -subunits in cardiac myocyte caveolae, suggesting the caveolar interactions of Na+-K+-ATPase with its signaling partners. Because both - and -subunits are required for ATPase activity, to clarify the status of the pumping function of caveolar Na+-K+-ATPase, we have examined the relative distribution of two major subunit isoforms (1 and 1) in caveolar and noncaveolar membranes of adult rat cardiac myocytes. When cell lysates treated with high salt (Na2CO3 or KCl) concentrations were fractionated by a standard density gradient procedure, the resulting light caveolar membranes contained 30–40% of 1-subunits and 80–90% of 1-subunits. Use of Na2CO3 was shown to inactivate Na+-K+-ATPase; however, caveolar membranes obtained by the KCl procedure were not denatured and contained 75% of total myocyte Na+-K+-ATPase activity. Sealed isolated caveolae exhibited active Na+ transport. Confocal microscopy supported the presence of ,-subunits in caveolae, and immunoprecipitation showed the association of the subunits with caveolin oligomers. The findings indicate that cardiac caveolar inpocketings are the primary portals for active Na+-K+ fluxes, and the sites where the pumping and signaling functions of Na+-K+-ATPase are integrated. Preferential concentration of 1-subunit in caveolae was cell specific; it was also noted in neonatal cardiac myocytes but not in fibroblasts and A7r5 cells. Uneven distributions of 1 and 1 in early and late endosomes of myocytes suggested different internalization routes of two subunits as a source of selective localization of active Na+-K+-ATPase in cardiac caveolae. cardiac myocyte; caveolin; oligomer; ouabain; sodium pump  相似文献   

4.
Insulin increases the turnover rate of Na+-K+-ATPase in human fibroblasts   总被引:1,自引:0,他引:1  
Insulin stimulates K+ transport by theNa+-K+-ATPase in human fibroblasts. In othercell systems, this action represents an automatic response to increasedintracellular [Na+] or results from translocation oftransporters from an intracellular site to the plasma membrane. Here weevaluate whether these mechanisms are operative in human fibroblasts.Human fibroblasts expressed the 1 but not the2 and 3 isoforms ofNa+-K+-ATPase. Insulin increased the influx ofRb+, used to trace K+ entry, but did not modifythe total intracellular content of K+, Rb+, andNa+ over a 3-h incubation period. Ouabain increasedintracellular Na+ more rapidly in cells incubated withinsulin, but this increase followed insulin stimulation ofRb+ transport. Bumetanide did not prevent the increasedNa+ influx or stimulation ofNa+-K+-ATPase. Stimulation of theNa+-K+- ATPase by insulin did not produce anymeasurable change in membrane potential. Insulin did not affect theaffinity of the pump toward internal Na+ or the number ofmembrane-bound Na+-K+-ATPases, as assessed byouabain binding. By contrast, insulin slightly increased the affinityof Na+-K+-ATPase toward ouabain. Phorbol estersdid not mimic insulin action on Na+-K+-ATPaseand inhibited, rather than stimulated, Rb+ transport. Theseresults indicate that insulin increases the turnover rate ofNa+-K+-ATPases of human fibroblasts withoutaffecting their number on the plasma membrane or modifying theirdependence on intracellular [Na+].

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5.
Mammary epithelia produce an isotonic, low-Na+ fluid that is rich in nutrients. Mechanisms that account for the low electrolyte concentration have not been elucidated, although amiloride-sensitive ion transport has been reported in some situations. We hypothesized that corticosteroid exposure modulates epithelial Na+ channel (ENaC) expression and/or activity in bovine mammary epithelial cells. BME-UV cells were grown to confluent monolayers on permeable supports with a standard basolateral medium and apical medium of low-electrolyte, high-lactose composition that resembles the ionic composition of milk. Ion transport was assessed in modified Ussing flux chambers. Exposure to glucocorticoids (dexamethasone, cortisol, or prednisolone), but not aldosterone, increased short-circuit current (Isc), a sensitive measure of net ion transport, whereas apical exposure to amiloride or benzamil reduced corticosteroid-induced Isc close to basal levels. Quantitative RT-PCR indicated a glucocorticoid-induced increase in mRNA for - and -ENaC, whereas -ENaC mRNA expression was only mildly affected. Exposure to mifepristone (a glucocorticoid receptor antagonist), but not spironolactone (a mineralocorticoid receptor antagonist), precluded both the corticosteroid-induced elevation in amiloride-sensitive Isc and the induced changes in - and -ENaC mRNA. We conclude that Na+ movement across mammary epithelia is modulated by corticosteroids via a glucocorticoid receptor-mediated mechanism that regulates the expression of the - and -subunits of ENaC. ENaC expression and activity could account for the low Na+ concentration that is typical of milk. short-circuit current; apical cation concentration; corticosteroids; mastitis; epithelial Na+ channel subunits  相似文献   

6.
We evaluated theeffects of acute hyperoxic exposure on alveolar epithelial cell (AEC)active ion transport and on expression ofNa+ pump(Na+-K+-ATPase)and rat epithelial Na+ channelsubunits. Rat AEC were cultivated in minimal defined serum-free medium(MDSF) on polycarbonate filters. Beginning on day5, confluent monolayers were exposedto either 95% air-5% CO2(normoxia) or 95% O2-5%CO2 (hyperoxia) for 48 h.Transepithelial resistance(Rt) andshort-circuit current(Isc) weredetermined before and after exposure.Na+ channel -, -, and-subunit andNa+-K+-ATPase1- and1-subunit mRNA levels werequantified by Northern analysis.Na+ pump1- and1-subunit protein abundance wasquantified by Western blotting. After hyperoxic exposure,Isc across AECmonolayers decreased by ~60% at 48 h relative to monolayersmaintained under normoxic conditions.Na+ channel -subunit mRNAexpression was reduced by hyperoxia, whereas - and -subunit mRNAexpression was unchanged. Na+ pump1-subunit mRNA was unchanged,whereas 1-subunit mRNA was decreased ~80% by hyperoxia in parallel with a reduction in1-subunit protein. Becausekeratinocyte growth factor (KGF) has recently been shown to upregulateAEC active ion transport and expression ofNa+-K+-ATPaseunder normoxic conditions, we assessed the ability of KGF to preventhyperoxia-induced changes in active ion transport by supplementingmedium with KGF (10 ng/ml) from day2. The presence of KGF prevented theeffects of hyperoxia on ion transport (as measured byIsc) relativeto normoxic controls. Levels of1 mRNA and protein wererelatively preserved in monolayers maintained in MDSF and KGF comparedwith those cultivated in MDSF alone. These results indicate that AECnet active ion transport is decreased after 48 h of hyperoxia, likelyas a result of a decrease in the number of functionalNa+ pumps per cell. KGF largelyprevents this decrease in active ion transport, at least in part, bypreserving Na+ pump expression.

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7.
Functional expression of the rat colonicH+-K+-ATPasewas obtained by coexpressing its catalytic -subunit and the1-subunit of theNa+-K+-ATPasein Xenopus laevis oocytes. We observedthat, in oocytes expressing the rat colonicH+-K+-ATPasebut not in control oocytes (expressing1 alone),NH4Cl induced a decrease in86Rb uptake and the initial rateof intracellular acidification induced by extracellularNH4Cl was enhanced, consistentwith NH+4 influx via the colonicH+-K+-ATPase.In the absence of extracellularK+, only oocytes expressing thecolonicH+-K+-ATPasewere able to acidify an extracellular medium supplemented withNH4Cl. In the absence ofextracellular K+ and in thepresence of extracellular NH+4, intracellular Na+ activity in oocytes expressingthe colonicH+-K+-ATPasewas lower than that in control oocytes. A kinetic analysis of86Rb uptake suggests thatNH+4 acts as a competitive inhibitor of thepump. Taken together, these results are consistent withNH+4 competition forK+ on the external site of thecolonicH+-K+-ATPaseand with NH+4 transport mediated by this pump.

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8.
Oxidative stress during pathological conditionssuch as ischemia-reperfusion is known to promote the formationof hypochlorous acid (HOCl) in the heart and to result in depression ofcardiac sarcolemmal (SL)Na+-K+-ATPaseactivity. In this study, we examined the direct effects of HOCl on SLNa+-K+-ATPasefrom porcine heart. HOCl decreased SLNa+-K+-ATPaseactivity in a concentration- and time-dependent manner. Characterization ofNa+-K+-ATPaseactivity in the presence of different concentrations of MgATP revealeda decrease in the maximal velocity(Vmax) value, without a change in affinity for MgATP on treatment of SL membranes with 0.1 mM HOCl. TheVmax value ofNa+-K+-ATPase,when determined in the presence of different concentrations ofNa+, was also decreased, butaffinity for Na+ was increasedwhen treated with HOCl. Formation of acylphosphate by SLNa+-K+-ATPasewas not affected by HOCl. Scatchard plot analysis of[3H]ouabain bindingdata indicated no significant change in the affinity or maximum bindingcapacity value for ouabain binding following treatment of SL membraneswith HOCl. Western blot analysis ofNa+-K+-ATPasesubunits in HOCl-treated SL membranes showed a decrease (34 ± 9%of control) in the 1-subunitwithout any change in the 1- or2-subunits. These data suggestthat the HOCl-induced decrease in SLNa+-K+-ATPaseactivity may be due to a depression in the1-subunit of the enzyme.

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9.
A guinea pig cDNAencoding the putative colonicH+-K+-ATPase-subunit (T. Watanabe, M. Sato, K. Kaneko, T. Suzuki, T. Yoshida, and Y. Suzuki; GenBank accession no. D21854) was functionally expressed in HEK-293, a human kidney cell line. The cDNA for the putative colonicH+-K+-ATPasewas cotransfected with cDNA for either rabbit gastric H+-K+-ATPaseor TorpedoNa+-K+-ATPase-subunit. In both expressions,Na+-independent,K+-dependent ATPase(K+-ATPase) activity was detectedin the membrane fraction of the cells, with a Michaelis-Menten constantfor K+ of 0.68 mM. The expressedK+-ATPase activity was inhibitedby ouabain, with its IC50 value being 52 µM. However, the activity was resistant to Sch-28080, aninhibitor specific for gastricH+-K+-ATPase.The ATPase was not functionally expressed in the absence of the-subunits. Therefore, it is concluded that the cDNA encodes thecatalytic subunit (-subunit) of the colonicH+-K+-ATPase.Although the -subunit of the colonicH+-K+-ATPasehas not been identified yet, both gastricH+-K+-ATPaseandNa+-K+-ATPase-subunits were found to act as a surrogate for the colonic -subunit for the functional expression of the ATPase. The present colonicH+-K+-ATPasefirst expressed in mammalian cells showed the highest ouabainsensitivity in expressed colonicH+-K+-ATPasesso far reported (rat colonic inXenopus oocytes had an IC50 = 0.4-1mM; rat colonic in Sf9 cells had no ouabain sensitivity).

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10.
The Na+-K+-ATPase and the ERK1/2 pathway appear to be linked in some fashion in a variety of cells. The Na+-K+-ATPase inhibitor ouabain can promote ERK1/2 activation. This activation involves Src, intracellular Ca2+ concentration ([Ca2+]i) elevation, reactive oxygen species (ROS) generation, and EGF receptor (EGFR) transactivation. In contrast, ERK1/2 can mediate changes in Na+-K+-ATPase activity and/or expression. Thus signaling between ERK1/2 and Na+-K+-ATPase can occur from either direction. Whether such bidirectionality can occur within the same cell has not been reported. In the present study, we have demonstrated that while ouabain (1 mM) produces only a small (50%) increase in ERK1/2 phosphorylation in freshly isolated rat salivary (parotid acinar) epithelial cells, it potentiates the phosphorylation of ERK1/2 by submaximal concentrations of carbachol, a muscarinic receptor ligand that initiates fluid secretion. Although ERK1/2 is only modestly phosphorylated when cells are exposed to 1 mM ouabain or 10–6 M carbachol, the combination of these agents promotes ERK1/2 phosphorylation to near-maximal levels achieved by a log order carbachol concentration. These effects of ouabain are distinct from Na+-K+-ATPase inhibition by lowering extracellular K+, which promotes a rapid and large increase in ERK1/2 phosphorylation. ERK1/2 potentiation by ouabain (EC50 100 µM) involves PKC, Src, and alterations in [Ca2+]i but not ROS generation or EGFR transactivation. In addition, inhibition of ERK1/2 reduces Na+-K+-ATPase activity (measured as stimulation of QO2 by carbachol and the cationophore nystatin). These results suggest that ERK1/2 and Na+-K+-ATPase may signal to each other in each direction under defined conditions in a single cell type. protein kinase C; intracellular Ca2+ concentration; muscarinic receptor; 1-subunit; potassium removal  相似文献   

11.
Several studies have shown that nitric oxide (NO) inhibits Na+ transport in renal and alveolar monolayers. However, the mechanisms by which NO alters epithelial Na+ channel (ENaC) activity is unclear. Therefore, we examined the effect of applying the NO donor drug L-propanamine 3,2-hydroxy-2-nitroso-1-propylhidrazino (PAPA-NONOate) to cultured renal epithelial cells. A6 and M1 cells were maintained on permeable supports in medium containing 1.5 µM dexamethasone and 10% bovine serum. After 1.5 µM PAPA-NONOate was applied, amiloride-sensitive short-circuit current measurements decreased 29% in A6 cells and 44% in M1 cells. This differed significantly from the 3% and 19% decreases in A6 and M1 cells, respectively, treated with control donor compound (P < 0.0005). Subsequent application of PAPA-NONOate to amiloride-treated control (no NONOate) A6 and M1 cells did not further decrease transepithelial current. In single-channel patch-clamp studies, NONOate significantly decreased ENaC open probability (Po) from 0.186 ± 0.043 to 0.045 ± 0.009 (n = 7; P < 0.05) without changing the unitary current. We also showed that aldosterone significantly decreased NO production in primary cultures of alveolar type II (ATII) epithelial cells. Because inducible nitric oxide synthase (iNOS) coimmunoprecipitated with the serum- and glucocorticoid-inducible kinase (SGK1) and both proteins colocalized in the cytoplasm (as shown in our studies in mouse ATII cells), SGK1 may also be important in regulating NO production in the alveolar epithelium. Our study also identified iNOS as a novel SGK1 phosphorylated protein (at S733 and S903 residues in miNOS) suggesting that one way in which SGK1 could increase Na+ transport is by altering iNOS production of NO. aldosterone; epithelial sodium channel; serum- and glycocorticoid-inducible kinase  相似文献   

12.
Insulin stimulates K+ uptake andNa+ efflux via the Na+-K+ pump inkidney, skeletal muscle, and brain. The mechanism of insulin action inthese tissues differs, in part, because of differences in the isoformcomplement of the catalytic -subunit of theNa+-K+ pump. To analyze specifically the effectof insulin on the 1-isoform of the pump, we have studiedhuman embryonic kidney (HEK)-293 cells stably transfected with the ratNa+-K+ pump 1-isoform tagged onits first exofacial loop with a hemagglutinin (HA) epitope. The plasmamembrane content of 1-subunits was quantitated bybinding a specific HA antibody to intact cells. Insulin rapidly increased the number of 1-subunits at the cell surface.This gain was sensitive to the phosphatidylinositol (PI) 3-kinaseinhibitor wortmannin and to the protein kinase C (PKC) inhibitorbisindolylmaleimide. Furthermore, the insulin-stimulated gain insurface -subunits correlated with an increase in the binding of anantibody that recognizes only the nonphosphorylated form of1 (at serine-18). These results suggest that insulinregulates the Na+-K+ pump in HEK-293 cells, atleast in part, by decreasing serine phosphorylation and increasingplasma membrane content of 1-subunits via a signalingpathway involving PI 3-kinase and PKC.

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13.
Interaction of reactive oxygen species with ion transport mechanisms   总被引:22,自引:0,他引:22  
The use ofelectrophysiological and molecular biology techniques has shed light onreactive oxygen species (ROS)-induced impairment of surface andinternal membranes that control cellular signaling. These deleteriouseffects of ROS are due to their interaction with various ion transportproteins underlying the transmembrane signal transduction, namely,1) ion channels, such asCa2+ channels (includingvoltage-sensitive L-type Ca2+currents, dihydropyridine receptor voltage sensors, ryanodine receptorCa2+-release channels, andD-myo-inositol1,4,5-trisphosphate receptor Ca2+-release channels),K+ channels (such asCa2+-activatedK+ channels, inward and outwardK+ currents, and ATP-sensitiveK+ channels),Na+ channels, andCl channels;2) ion pumps, such as sarcoplasmicreticulum and sarcolemmal Ca2+pumps,Na+-K+-ATPase(Na+ pump), andH+-ATPase(H+ pump);3) ion exchangers such as theNa+/Ca2+exchanger andNa+/H+exchanger; and 4) ion cotransporterssuch asK+-Cl,Na+-K+-Cl,andPi-Na+cotransporters. The mechanism of ROS-induced modificationsin ion transport pathways involves1) oxidation of sulfhydryl groups located on the ion transport proteins,2) peroxidation of membrane phospholipids, and 3) inhibition ofmembrane-bound regulatory enzymes and modification of the oxidativephosphorylation and ATP levels. Alterations in the ion transportmechanisms lead to changes in a second messenger system, primarilyCa2+ homeostasis, which furtheraugment the abnormal electrical activity and distortion of signaltransduction, causing cell dysfunction, which underlies pathologicalconditions.

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14.
Ouabain, aspecific inhibitor ofNa+-K+-ATPase,was coupled to epoxy agarose via a 13-atom spacer to make an affinitycolumn that specifically bindsNa+-K+-ATPase.Na+-K+-ATPasefrom rat and dog kidney was bound to the column and was eluted as afunction of enzyme conformation, altered by adding specificcombinations of ligands.Na+-K+-ATPasefrom both sources bound to the column in the presence of Na + ATP + Mgand in solutions containing 30 mM K. No binding was observed in thepresence of Na or Na + ATP. These experiments suggest thatNa+-K+-ATPasebinds to the column under the same conditions that it binds tountethered ouabain.Na+-K+-ATPasealready bound to the column was competitively eluted with excess freeNa + ouabain or with Na + ATP. The latter eluted active enzyme. Forcomparable amounts of boundNa+-K+-ATPase,Na + ouabain and Na + ATP eluted more rat than dogNa+-K+-ATPase,consistent with the lower affinity of the ratNa+-K+-ATPasefor ouabain. The ouabain-affinity column was used to purify activeNa+-K+-ATPasefrom rat kidney microsomes and rat adrenal glomerulosa cells. Thespecific activity of the kidney enzyme was increased from ~2 to 15 µmolPi · mg1 · min1.Na+-K+-ATPasepurified from glomerulosa cells that were prelabeled with [32P]orthophosphatewas phosphorylated on the -subunit, suggesting that these cellscontain a kinase that phosphorylatesNa+-K+-ATPase.

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15.
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   

16.
Cochlear endolymph has a highly positive potential of approximately +80 mV known as the endocochlear potential (EP). The EP is essential for hearing and is maintained by K+ circulation from perilymph to endolymph through the cochlear lateral wall. Various K+ transport apparatuses such as the Na+,K+-ATPase, the Na+-K+-2Cl cotransporter, and the K+ channels Kir4.1 and KCNQ1/KCNE1 are expressed in the lateral wall and are known to play indispensable roles in cochlear K+ circulation. The gastric type of the H+,K+-ATPase was also shown to be expressed in the cochlear lateral wall (Lecain E, Robert JC, Thomas A, and Tran Ba Huy P. Hear Res 149: 147–154, 2000), but its functional role has not been well studied. In this study we examined the precise localization of H+,K+-ATPase in the cochlea and its involvement in formation of EP. RT-PCR analysis showed that the cochlea expressed mRNAs of gastric 1-, but not colonic 2-, and -subunits of H+,K+-ATPase. Immunolabeling of an antibody specific to the 1 subunit was detected in type II, IV, and V fibrocytes distributed in the spiral ligament of the lateral wall and in the spiral limbus. Strong immunoreactivity was also found in the stria vascularis. Immunoelectron microscopic examination exhibited that the H+,K+-ATPase was localized exclusively at the basolateral site of strial marginal cells. Application of Sch-28080, a specific inhibitor of gastric H+,K+-ATPase, to the spiral ligament as well as to the stria vascularis caused prominent reduction of EP. These results may imply that the H+,K+-ATPase in the cochlear lateral wall is crucial for K+ circulation and thus plays a critical role in generation of EP. hydrogen, potassium-adenosine triphosphatase; stria vascularis; spiral ligament  相似文献   

17.
A reduction in angiotensinII (ANG II) in vivo by treatment of rabbits with theangiotensin-converting enzyme inhibitor, captopril, increasesNa+-K+ pump current (Ip)of cardiac myocytes. This increase is abolished by exposure of myocytesto ANG II in vitro. Because ANG II induces translocation of the-isoform of protein kinase C (PKC), we examined whether thisisozyme regulates the pump. We treated rabbits with captopril, isolatedmyocytes, and measured Ip of myocytes voltageclamped with wide-tipped patch pipettes. Ip ofmyocytes from captopril-treated rabbits was larger thanIp of myocytes from controls. ANG II superfusionof myocytes from captopril-treated rabbits decreasedIp to levels similar to controls. Inclusion ofPKC-specific blocking peptide in pipette solutions used to perfusethe intracellular compartment abolished the effect of ANG II. Inclusionof RACK, a PKC-specific activating peptide, in pipettesolutions had an effect on Ip that was similarto that of ANG II. There was no additive effect of ANG II andRACK. We conclude that PKC regulates the sarcolemmalNa+-K+ pump.

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18.
Mercury alters thefunction of proteins by reacting with cysteinyl sulfhydryl(SH) groups. Theinorganic form (Hg2+) is toxicto epithelial tissues and interacts with various transport proteinsincluding the Na+ pump andCl channels. In this study,we determined whether theNa+-K+-Clcotransporter type 1 (NKCC1), a major ion pathway in secretory tissues,is also affected by mercurial substrates. To characterize theinteraction, we measured the effect ofHg2+ on ion transport by thesecretory shark and human cotransporters expressed in HEK-293 cells.Our studies show that Hg2+inhibitsNa+-K+-Clcotransport, with inhibitor constant(Ki) values of25 µM for the shark carrier (sNKCC1) and 43 µM for thehuman carrier. In further studies, we took advantage of speciesdifferences in Hg2+ affinity toidentify residues involved in the interaction. An analysis ofhuman-shark chimeras and of an sNKCC1 mutant(Cys-697Leu) reveals that transmembrane domain 11 plays an essential role in Hg2+binding. We also show that modification of additionalSH groups by thiol-reactingcompounds brings about inhibition and that the binding sites are notexposed on the extracellular face of the membrane.

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19.
The effect of diabetes on sarcolemmal Na+-K+ pump function is important for our understanding of heart disease associated with diabetes and design of its treatment. We induced diabetes characterized by hyperglycemia but no other major metabolic disturbances in rabbits. Ventricular myocytes isolated from diabetic rabbits and controls were voltage clamped and internally perfused with the whole cell patch-clamp technique. Electrogenic Na+-K+ pump current (Ip, arising from the 3:2 Na+-to-K+ exchange ratio) was identified as the shift in holding current induced by Na+-K+ pump blockade with 100 µmol/l ouabain in most experiments. There was no effect of diabetes on Ip recorded when myocytes were perfused with pipette solutions containing 80 mmol/l Na+ to nearly saturate intracellular Na+-K+ pump sites. However, diabetes was associated with a significant decrease in Ip measured when pipette solutions contained 10 mmol/l Na+. The decrease was independent of membrane voltage but dependent on the intracellular concentration of K+. There was no effect of diabetes on the sensitivity of Ip to extracellular K+. Pump inhibition was abolished by restoration of euglycemia or by in vivo angiotensin II receptor blockade with losartan. We conclude that diabetes induces sarcolemmal Na+-K+ pump inhibition that can be reversed with pharmacological intervention. sodium transport; insulin; angiotensin II; cardiomyopathy; hyperglycemia  相似文献   

20.
We investigated theeffects of epidermal growth factor (EGF) on activeNa+ absorption by alveolarepithelium. Rat alveolar epithelial cells (AEC) were isolated andcultivated in serum-free medium on tissue culture-treated polycarbonatefilters. mRNA for rat epithelial Na+ channel (rENaC) -, -,and -subunits and Na+ pump1- and1-subunits were detected inday 4 monolayers by Northern analysisand were unchanged in abundance in day5 monolayers in the absence of EGF. Monolayerscultivated in the presence of EGF (20 ng/ml) for 24 h fromday 4 to day5 showed an increase in both1 and1Na+ pump subunit mRNA but noincrease in rENaC subunit mRNA. EGF-treated monolayers showed parallelincreases in Na+ pump1- and1-subunit protein by immunoblotrelative to untreated monolayers. Fixed AEC monolayers demonstratedpredominantly membrane-associated immunofluorescent labeling withanti-Na+ pump1- and1-subunit antibodies, withincreased intensity of cell labeling for both subunits seen at 24 hfollowing exposure to EGF. These changes inNa+ pump mRNA and protein precededa delayed (>12 h) increase in short-current circuit (measure ofactive transepithelial Na+transport) across monolayers treated with EGF compared with untreated monolayers. We conclude that EGF increases activeNa+ resorption across AECmonolayers primarily via direct effects onNa+ pump subunit mRNA expressionand protein synthesis, leading to increased numbers of functionalNa+ pumps in the basolateralmembranes.

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