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1.
Hong, S. J., and C. C. Chang.Trauma-induced changes of skeletal muscle membrane: decreasedK+ and increasedNa+ permeability.J. Appl. Physiol. 83(4):1096-1103, 1997.Trauma of skeletal muscle causes membranedepolarization and reduces membrane resistance. The underlyingmechanisms were studied in isolated mouse phrenic nerve diaphragmssubject to sharp transections of muscle. Depolarization was most markedat the vicinity (~1 mm) of trauma, where the membrane potentialdropped rapidly from about 80 mV to zero and repolarized toabout 25 mV. At the end-plate region (located ~3 mm away fromthe cut end), the membrane gradually attained a plateau potentialaround 45 mV. The magnitude of depolarization was not reduced byinhibition of Na+,Ca2+, orCl channel, whereas theprogress of depolarization was delayed in low-Na+ medium. Activation of theK+ channel with lemakalim inducedsome hyperpolarization at damaged site but produced aglybenclamide-sensitive outward current and hyperpolarization ofend-plate region to the levels before trauma, as if there was nodiminution of transmembrane K+gradient in this area. Appropriate elevation of extracellular K+ to stimulateK+ conductance also hyperpolarizedthe end-plate region. The results suggest that depolarization atregions remote from trauma is related to decreasedK+ and increasedNa+ permeability. The cytoplasmacompartmentalization and permeability changes may protect muscle fiberfrom trauma.

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2.
Bundgaard, Henning, Thomas A. Schmidt, Jim S. Larsen, andKeld Kjeldsen. K+supplementation increases muscle[Na+-K+-ATPase]and improves extrarenal K+homeostasis in rats. J. Appl. Physiol.82(4): 1136-1144, 1997.Effects ofK+ supplementation (~200 mmolKCl/100 g chow) on plasma K+,K+ content, andNa+-K+-adeonsinetriphosphatase(ATPase) concentration([Na+-K+-ATPase])in skeletal muscles as well as on extrarenalK+ clearance were evaluated inrats. After 2 days of K+supplementation, hyperkalemia prevailed(K+-supplemented vs.weight-matched control animals) [5.1 ± 0.2 (SE) vs. 3.2 ± 0.1 mmol/l, P < 0.05, n = 5-6], and after 4 daysa significant increase in K+content was observed in gastrocnemius muscle (104 ± 2 vs. 97 ± 1 µmol/g wet wt, P < 0.05, n = 5-6). After 7 days ofK+ supplementation, a significantincrease in[3H]ouabain bindingsite concentration (344 ± 5 vs. 239 ± 8 pmol/g wet wt,P < 0.05, n = 4) was observed in gastrocnemiusmuscle. After 2 wk, increases in plasmaK+,K+ content, and[3H]ouabain bindingsite concentration in gastrocnemius muscle amounted to 40, 8, and 68%(P < 0.05) above values observed inweight-matched control animals, respectively. The latter change wasconfirmed by K+-dependentp-nitrophenyl phosphatase activitymeasurements. Fasting for 1 day reduced plasmaK+ andK+ content in gastrocnemius musclein rats that had been K+supplemented for 2 wk by 3.1 ± 0.3 mmol/l(P < 0.05, n = 5) and 15 ± 2 µmol/g wet wt(P < 0.05, n = 5), respectively. After induction of anesthesia, arterial plasma K+was measured during intravenous KCl infusion (0.75 mmolKCl · 100 g bodywt1 · h1).The K+-supplemented fasted groupdemonstrated a 42% (P < 0.05) lower plasma K+ rise, associated with asignificantly higher increase inK+ content in gastrocnemius muscleof 7 µmol/g wet wt (P < 0.05, n = 5) compared with their controlanimals. In conclusion, K+supplementation increases plasmaK+,K+ content, and[Na+-K+-ATPase]in skeletal muscles and improves extrarenalK+ clearance capacity.

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3.
The application of D-glucose to solutions bathing excised maize,wheat, pea and bean roots causes a rapid depolarization of theelectrical potentials between the cut tops of the roots andthe bathing solutions. Similar effects are observed for theplasma membrane potentials of maize lateral roots. A flow cell apparatus was used to demonstrate qualitative andquantitative relations between glucose induced H+ influx andthe transient decrease in current through the root. The currentchanges appear to be due entirely to H+ fluxes. Current andH+ fluxes are strongly influenced by external pH, the optimumpH for glucose induced current change being about 4.0. A similarpH optimum was found for 3-O-methyl-D-glucopyranoside but 1-O-methyl--D-glucopyranosidedid not significantly affect the trans-root potential at anypH, suggesting a significant role for the anomeric hydroxylgroup of glucose. Compounds which depolarize the trans-root potential also inhibitthe glucose induced depolarization. Surface -SH groups are probablynot involved in the glucose/H+ cotransport. Eadie-Hofstee plots relating the depolarization of trans-rootpotential to the concentrations of D-glucose or 3-O-methyl-D-glucopyranosidehave shown that Km values increase with increasing monosaccharideconcentration and are very similar to reported values of 3-O-methyl-D-glucopyranosideuptake in maize root segments. Km values for a similar rangeof D-glucose concentrations do not vary significantly with pHor with membrane depolarization due to a 10-fold increase ofKCl concentration. However, Vmax is lowered by an increase inexternal pH or a decrease in trans-root potential. It appearsthat both proton and electrical gradients can affect glucoseinduced H+ influx. The auxin herbicide, 2, 4-dichlorophenoxyethanoic acid (0.01mM) stimulates the glucose induced depolarizations in a mannerconsistent with an increase in cytoplasmic pH. This is discussedin relation to the reported action of indole-3-acetic acid andfusicoccin on maize root tissue.  相似文献   

4.
Calcium dependence of C-type natriuretic peptide-formed fast K+ channel   总被引:2,自引:0,他引:2  
The lipid bilayertechnique was used to characterize theCa2+ dependence of a fastK+ channel formed by a synthetic17-amino acid segment [OaCNP-39-(1-17)] ofa 39-amino acid C-type natriuretic peptide (OaCNP-39) found in platypus (Ornithorhynchusanatinus) venom (OaV). TheOaCNP-39-(1-17)-formed K+ channel was reversiblydependent on1,2-bis(2-aminophenoxy)ethane-N,N,N',N'-tetraacetic acid-buffered cis (cytoplasmic)Ca2+ concentration([Ca2+]cis).The channel was fully active when[Ca2+]ciswas >104 M andtrans (luminal)Ca2+ concentration was 1.0 mM, butnot at low[Ca2+]cis.The open probability of single channels increased from zero at1 × 106 McisCa2+ to 0.73 ± 0.17 (n = 22) at103 McisCa2+. Channel openings to themaximum conductance of 38 pS were rapidly and reversibly activated when[Ca2+]cis,but not transCa2+ concentration(n = 5), was increased to >5 × 104 M(n = 14). Channel openings to thesubmaximal conductance of 10.5 pS were dominant at5 × 104 MCa2+.K+ channels did not open whencisMg2+ orSr2+ concentrations were increasedfrom zero to 103 M or when[Ca2+]ciswas maintained at 106 M(n = 3 and 2). The Hill coefficientand the inhibition constant were 1 and 0.8 × 104 McisCa2+, respectively. Thisdependence of the channel on high[Ca2+]cissuggests that it may become active under1) physiological conditions whereCa2+ levels are high, e.g., duringcardiac and skeletal muscle contractions, and2) pathological conditions that leadto a Ca2+ overload, e.g., ischemicheart and muscle fatigue. The channel could modify a cascade ofphysiological functions that are dependent on theCa2+-activatedK+ channels, e.g., vasodilationand salt secretion.

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5.
Ca(2+)-activated Cl(-) current in sheep lymphatic smooth muscle   总被引:1,自引:0,他引:1  
Freshly dispersed sheep mesenteric lymphaticsmooth muscle cells were studied at 37°C using the perforatedpatch-clamp technique with Cs+- and K+-filledpipettes. Depolarizing steps evoked currents that consisted ofL-type Ca2+ [ICa(L)]current and a slowly developing current. The slow current reversed at1 ± 1.5 mV with symmetrical Cl concentrationscompared with 23.2 ± 1.2 mV (n = 5) and34.3 ± 3.5 mV (n = 4) when externalCl was substituted with either glutamate (86 mM) orI (125 mM). Nifedipine (1 µM) blocked and BAY K 8644 enhanced ICa(L), the slow-developing sustainedcurrent, and the tail current. The Cl channel blockeranthracene-9-carboxylic acid (9-AC) reduced only the slowly developinginward and tail currents. Application of caffeine (10 mM) tovoltage-clamped cells evoked currents that reversed close to theCl equilibrium potential and were sensitive to 9-AC.Small spontaneous transient depolarizations and larger actionpotentials were observed in current clamp, and these were blocked by9-AC. Evoked action potentials were triphasic and had a prominentplateau phase that was selectively blocked by 9-AC. Similarly, fluidoutput was reduced by 9-AC in doubly cannulated segments ofspontaneously pumping sheep lymphatics, suggesting that theCa2+-activated Cl current plays an importantrole in the electrical activity underlying spontaneous activity in this tissue.

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6.
We investigatedthe relationship between voltage-operatedCa2+ channel current and thecorresponding intracellular Ca2+concentration([Ca2+]i)change (Ca2+ transient) in guineapig gastric myocytes. Fluorescence microspectroscopy was combined withconventional whole cell patch-clamp technique, and fura 2 (80 µM) wasadded to CsCl-rich pipette solution. Step depolarization to 0 mVinduced inward Ca2+ current(ICa) andconcomitantly raised[Ca2+]i.Both responses were suppressed by nicardipine, an L-typeCa2+ channel blocker, and thevoltage dependence of Ca2+transient was similar to the current-voltage relation ofICa. When pulseduration was increased by up to 900 ms, peakCa2+ transient increased andreached a steady state when stimulation was for longer. The calculatedfast Ca2+ buffering capacity(B value), determined as the ratio ofthe time integral ofICa divided bythe amplitude of Ca2+ transient,was not significantly increased after depletion of Ca2+ stores by the cyclicapplication of caffeine (10 mM) in the presence of ryanodine (4 µM).The addition of cyclopiazonic acid (CPA, 10 µM), a sarco(endo)plasmicreticulum Ca2+-ATPase inhibitor,decreased B value by ~20% in areversible manner. When KCl pipette solution was used,Ca2+-activatedK+ current[IK(Ca)]was also recorded during step depolarization. CPA sensitivelysuppressed the initial peak and oscillations of IK(Ca) withirregular effects on Ca2+transients. The above results suggest that, in guinea pig gastric myocyte, Ca2+ transient is tightlycoupled to ICaduring depolarization, and global[Ca2+]iis not significantly affected byCa2+-inducedCa2+ release from sarcoplasmicreticulum during depolarization.

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7.
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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8.
To examine effects of cytosolicNa+, K+, and Cs+ on the voltagedependence of the Na+-K+ pump, we measuredNa+-K+ pump current (Ip)of ventricular myocytes voltage-clamped at potentials(Vm) from 100 to +60 mV. Superfusates weredesigned to eliminate voltage dependence at extracellular pump sites.The cytosolic compartment of myocytes was perfused with patch pipette solutions with a Na+ concentration ([Na]pip)of 80 mM and a K+ concentration from 0 to 80 mM or withsolutions containing Na+ in concentrations from 0.1 to 100 mM and K+ in a concentration of either 0 or 80 mM. When[Na]pip was 80 mM, K+ in pipette solutionshad a voltage-dependent inhibitory effect on Ipand induced a negative slope of theIp-Vm relationship. Cs+ in pipette solutions had an effect onIp qualitatively similar to that ofK+. Increases in Ip with increasesin [Na]pip were voltage dependent. The dielectriccoefficient derived from[Na]pip-Ip relationships at thedifferent test potentials was 0.15 when pipette solutions included 80 mM K+ and 0.06 when pipette solutions were K+ free.

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9.
K+ released from exercisingmuscle via K+ channels needs to beremoved from the interstitium into the blood to maintain high musclecell membrane potential and allow normal muscle contractility. Uptakeby red blood cells has been discussed as one mechanism that would alsoserve to regulate red blood cell volume, which was found to be constantdespite increased plasma osmolality and K+ concentration([K+pl]). We evaluatedexercise-related changes in[K+pl], pH, osmolality, meancellular Hb concentration, cell water, and red blood cellK+ concentration during exhaustivehandgrip exercise. Unidirectional 86Rb+(K+) uptake by red blood cellswas measured in media with elevated extracellularK+, osmolarity, andcatecholamines to simulate particularly those exercise-related changesin plasma composition that are known to stimulateK+ uptake. During exercise[K+pl] increased from 4.4 ± 0.7 to 7.1 ± 0.5 mmol/l plasma water and red blood cell K+ concentration increased from137.2 ± 6.0 to 144.6 ± 4.6 mmol/l cell water(P  0.05), but the intracellularK+-to-mean cellularHb concentration ratio did not change.86Rb+uptake by red blood cells was increased by ~20% on stimulation, caused by activation of theNa+-K+pump andNa+-K+-2Clcotransport. Results indicate theK+ content of red blood cells didnot change as cells passed the exhaustively exercising forearm muscledespite the elevated [K+pl]. The tendency for an increase in intracellularK+ concentration was due to aslight, although statistically not significant, decrease in red bloodcell volume. K+ uptake, althoughelevated, was too small to move significant amounts ofK+ into red blood cells. Ourresults suggest that red blood cells do not contribute to the removalof K+ released from muscle and donot regulate their volume by K+uptake during exhaustive forearm exercise.

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10.
Enterochromaffin-like (ECL) cells are histamine-containingendocrine cells in the gastric mucosa that maintain a negative membranepotential of about 50 mV, largely due to voltage-gated K+ currents [D. F. Loo, G. Sachs, and C. Prinz. Am. J. Physiol. 270 (Gastrointest Liver Physiol. 33):G739-G745, 1996]. The current study investigated thepresence of voltage-gated Ca2+channels in single ECL cells. ECL cells were isolated from rat fundicmucosa by elutriation, density gradient centrifugation, and primaryculture to a purity >90%. Voltage-gatedCa2+ currents were measured insingle ECL cells using the whole cell configuration of the patch-clamptechnique. Depolarization-activated currents were recorded in thepresence of Na+ orK+ blocking solutions and additionof 20 mM extracellular Ca2+. ECLcells showed inward currents in response to voltage steps that wereactivated at a test potential of around 20 mV with maximalinward currents observed at +20 mV and 20 mM extracellular Ca2+. The inactivation rate of thecurrent decreased with increasingly negative holding potentials and wastotally abolished at a holding potential of 30 mV. Addition ofextracellular 20 mM Ba2+ insteadof 20 mM Ca2+ increased thedepolarization-induced current and decreased the inactivation rate. Theinward current was fully inhibited by the specific L-typeCa2+ channel inhibitor verapamil(0.2 mM) and was augmented by the L-typeCa2+ channel activator BAY K 8644 (0.07 mM). We conclude that depolarization activateshigh-voltage-activated Ca2+channels in ECL cells. Activation characteristics,Ba2+ effects, and pharmacologicalresults imply the presence of L-type Ca2+ channels, whereasinactivation kinetics suggest the presence of additional N-typechannels in rat gastric ECL cells.

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11.
These experiments were performed to determine the effects ofreducing Ca2+ influx(Cain) onK+ currents(IK) inmyocytes from rat small mesenteric arteries by1) adding externalCd2+ or2) lowering externalCa2+ to 0.2 mM. When measured froma holding potential (HP) of 20 mV(IK20),decreasing Cain decreasedIK at voltageswhere it was active (>0 mV). When measured from a HP of 60 mV(IK60),decreasing Cain increasedIK at voltagesbetween 30 and +20 mV but decreased IK at voltagesabove +40 mV. Difference currents(IK) weredetermined by digital subtraction of currents recorded under controlconditions from those obtained whenCain was decreased. At testvoltages up to 0 mV,IK60 exhibitedkinetics similar to controlIK60, with rapidactivation to a peak followed by slow inactivation. At 0 mV, peakIK60 averaged75 ± 13 pA (n = 8) withCd2+ and 120 ± 20 pA(n = 9) with lowCa2+ concentration. At testvoltages from 0 to +60 mV,IK60 always had an early positive peak phase, but its apparent "inactivation" increased with voltage and its steady value became negative above +20mV. At +60 mV, the initial peakIK60 averaged115 ± 18 pA with Cd2+ and 187 ± 34 pA with low Ca2+. With 10 mM pipette BAPTA, Cd2+ produced asmall inhibition ofIK20 but stillincreased IK60 between 30 and +10 mV. InCa2+-free external solution,Cd2+ only decreased bothIK20 andIK60. In thepresence of iberiotoxin (100 nM) to inhibitCa2+-activatedK+ channels(KCa),Cd2+ increasedIK60 at allvoltages positive to 30 mV while BAY K 8644 (1 µM) decreasedIK60. Theseresults suggest that Cain, through L-type Ca2+ channels and perhapsother pathways, increases KCa(i.e., IK20) and decreases voltage-dependent K+currents in this tissue. This effect could contribute to membrane depolarization and force maintenance.

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12.
Patch-clampstudies of mammalian skeletal muscleNa+ channels are commonly done atsubphysiological temperatures, usually room temperature. However, atsubphysiological temperatures, mostNa+ channels are inactivated atthe cell resting potential. This study examined the effects oftemperature on fast and slow inactivation ofNa+ channels to determine iftemperature changed the fraction of Na+ channels that were excitableat resting potential. The loose patch voltage clamp recordedNa+ currents(INa) in vitroat 19, 25, 31, and 37°C from the sarcolemma of rat type IIbfast-twitch omohyoid skeletal muscle fibers. Temperature affected thefraction of Na+ channels that wereexcitable at the resting potential. At 19°C, only 30% of channelswere excitable at the resting potential. In contrast, at 37°C, 93%of Na+ channels were excitable atthe resting potential. Temperature did not alter the resting potentialor the voltage dependencies of activation or fast inactivation.INa available atthe resting potential increased with temperature because thesteady-state voltage dependence of slow inactivation shifted in adepolarizing direction with increasing temperature. The membranepotential at which half of the Na+channels were in the slow inactivated state was shifted by +16 mV at37°C compared with 19°C. Consequently, the low availability ofexcitable Na+ channels atsubphysiological temperatures resulted from channels being in the slow,inactivated state at the resting potential.

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13.
We investigated the effect ofinhibiting Na+-K+-ATPase on the basolateral18-pS K+ channel in the cortical collecting duct (CCD) ofthe rat kidney. Inhibiting Na+-K+-ATPase withstrophanthidin decreased the activity of the 18-pS K+channel and increased the intracellular Ca2+ to 420 nM.Removal of extracellular Ca2+ abolished the effect ofstrophanthidin. When intracellular Ca2+ was raised with 5 µM ionomycin or A-23187 to 300, 400, and 500 nM, the activity of the18-pS K+ channel in cell-attached patches fell by 40, 85, and 96%, respectively. To explore the mechanism ofCa2+-induced inhibition, the effect of 400 nMCa2+ on channel activity was studied in the presence ofcalphostin C, an inhibitor of protein kinase C, or KN-93 and KN-62,inhibitors of calmodulin-dependent kinase II. Addition of calphostin Cor KN-93 or KN-62 failed to block the inhibitory effect of highconcentrations of Ca2+. This suggested that the inhibitoryeffect of high concentrations of Ca2+ was not mediated byprotein kinase C or calmodulin-dependent kinase II pathways. To examinethe possibility that the inhibitory effect of high concentrations ofCa2+ was mediated by the interaction of nitric oxide withsuperoxide, we investigated the effect of 400 nM Ca2+ onchannel activity in the presence of 4,5-dihydroxy-1,3-benzenedisulfonic acid (Tiron) orN-nitro-L-arginine methyl ester.Pretreatment of the tubules with 4,5-dihydroxy-1,3-benzenedisulfonicacid or N-nitro-L-arginine methylester completely abolished the inhibitory effect of 400 nMCa2+ on channel activity. Moreover, application of4,5-dihydroxy-1,3-benzenedisulfonic acid reversed the inhibitory effectof strophanthidin. We conclude that the effect of inhibitingNa+-K+-ATPase is mediated by intracellularCa2+ and the inhibitory effect of high concentrations ofCa2+ is the result of interaction of nitric oxide with superoxide.

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14.
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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15.
The purpose ofthe current experiments was 1) toassess basolateralNa+-K+-2Clcotransporter (NKCC1) expression and2) to ascertain the role of cysticfibrosis transmembrane conductance regulator (CFTR) in the regulationof this transporter in a prototypical pancreatic duct epithelial cellline. Previously validated human pancreatic duct celllines (CFPAC-1), which exhibit physiological features prototypical ofcystic fibrosis, and normal pancreatic duct epithelia (stablerecombinant CFTR-bearing CFPAC-1 cells, termed CFPAC-WT) were grown toconfluence before molecular and functional studies. High-stringencyNorthern blot hybridization, utilizing specific cDNA probes, confirmedthat NKCC1 was expressed in both cell lines and its mRNA levels weretwofold higher in CFPAC-WT cells than in CFPAC-1 cells(P < 0.01, n = 3).Na+-K+-2Clcotransporter activity, assayed as the bumetanide-sensitive, Na+- andCl-dependentNH+4 entry into the cell (withNH+4 acting as a substitute forK+), increased by ~115% inCFPAC-WT cells compared with CFPAC-1 cells(P < 0.01, n = 6). Reducing the intracellularCl by incubating the cellsin a Cl-free mediumincreasedNa+-K+-2Clcotransporter activity by twofold (P < 0.01, n = 4) only in CFPAC-WT cells. We concluded that NKCC1 is expressed in pancreatic duct cellsand mediates the entry ofCl. NKCC1 activity isenhanced in the presence of an inwardCl gradient. The resultsfurther indicate that the presence of functional CFTR enhances theexpression of NKCC1. We speculate that CFTR regulates this process in aCl-dependent manner.

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16.
The patch-clamptechnique was used to determine the ionic conductances activated by ATPin murine colonic smooth muscle cells. Extracellular ATP, UTP, and2-methylthioadenosine 5'-triphosphate (2-MeS-ATP) increasedoutward currents in cells with amphotericin B-perforated patches. ATP(0.5-1 mM) did not affect whole cell currents of cells dialyzedwith solutions containing ethylene glycol-bis(-aminoethylether)-N,N,N',N'-tetraaceticacid. Apamin (3 × 107M) reduced the outward current activated by ATP by 32 ± 5%. Single channel recordings from cell-attached patches showed that ATP, UTP, and2-MeS-ATP increased the open probability of small-conductance, Ca2+-dependentK+ channels with a slopeconductance of 5.3 ± 0.02 pS. Caffeine (500 µM) enhanced the openprobability of the small-conductance K+ channels, and ATP had no effectafter caffeine. Pyridoxal phosphate 6-azophenyl-2',4'-disulfonic acid tetrasodium (PPADS,104 M), a nonselectiveP2 receptor antagonist, preventedthe increase in open probability caused by ATP and 2-MeS-ATP. PPADS hadno effect on the response to caffeine. ATP-induced hyperpolarization inthe murine colon may be mediated byP2y-induced release of Ca2+ from intracellular stores andactivation of the 5.3-pSCa2+-activatedK+ channels.

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17.
The electromotive force E and the conductance G of the Characorallina plasmalemma were measured under voltage clamp conditions.In the depolarized voltage range less negative than –60mV, E changed according to the Nerhst equation for K+, and Gincreased with the external K+ concentration [K+]o and alsowith the depolarization of the membrane potential. This is attributedto the voltage-dependent opening of the K+ channels in the largelydepolarized voltage region. The voltage-dependent increase ofG was due to the increase of the number of open K+ channelsper unit area. The density of the total K+ channels in the C. corallina plasmalemmawas estimated to be about 6.50/(10 µm)2. The single K+channel conductance K changed with the external [K+]o; it was79.3, 86.1, 105.9, 119.0 pS for external [K+]o of 0.2, 0.5,2.0 and 5.0 mu respectively. (Received May 22, 1986; Accepted August 22, 1986)  相似文献   

18.
In Aplysia intestine,stimulation of Na+ absorption withluminal alanine increases apical membraneK+ conductance(GK,a), whichpresumably regulates enterocyte volume during stimulatedNa+ absorption. However, themechanism responsible for the sustained increase in plasma membraneK+ conductance is not known forany nutrient-absorbing epithelium. In the present study, we have begunto test the hypothesis that the alanine-induced increase inGK,a inAplysia enterocytes results fromexocytic insertion of K+ channelsinto the apical membrane. We used the fluid-phase marker horseradishperoxidase to assess the effect of alanine on apical membraneexocytosis and conventional microelectrode techniques to assess theeffect of alanine on fractional capacitance of the apical membrane(fCa). Luminalalanine significantly increased apical membrane exocytosis from 1.04 ± 0.30 to 1.39 ± 0.38 ng · min1 · cm2.To measure fCa,we modeled the Aplysia enterocyte as adouble resistance-capacitance (RC) electric circuit arranged in series. Several criteria were tested to confirm application of the model to theenterocytes, and all satisfied the model. When added to the luminalsurface, alanine significantly increasedfCa from 0.27 ± 0.02 to 0.33 ± 0.04 (n = 10)after 4 min. There are two possible explanations for our findings:1) the increase in exocytosis, whichadds membrane to the apical plasma membrane, prevents plasma membranefracture, and 2) the increase inexocytosis delivers K+ channels tothe apical membrane by exocytic insertion. After the alanine-induceddepolarization of apical membrane potential (Va), there isa strong correlation (r = 0.96)between repolarization ofVa, whichreflects the increase inGK,a, andincrease in fCa. This correlation supports the exocytic insertion hypothesis for activation ofGK,a.

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19.
The rubidium efflux from hypothermic rat hearts perfused by theLangendorff method at 20°C was studied. At thistemperature 87Rb-NMR efflux experiments showed theexistence of two 87Rb pools: cytoplasmic and mitochondrial.Rat heart mitochondria showed a very slow exchange of mitochondrialRb+ for cytoplasmic K+. After washout ofcytosolic Rb+, mitochondria kept a stable Rb+level for >30 min. Rb+ efflux from mitochondria wasstimulated with 0.1 mM 2,4-dinitrophenol (DNP), by sarcolemmalpermeabilization and concomitant cellular energy depletion by saponin(0.01 mg/ml for 4 min) in the presence of a perfusate mimickingintracellular conditions, or by ATP-sensitive K (KATP)channel openers. DNP, a mitochondrial uncoupler, caused the onset ofmitochondrial Rb+ exchange; however, the washout was notcomplete (80 vs. 56% in control). Energy deprivation by saponin, whichpermeabilizes the sarcolemma, resulted in a rapid and completeRb+ efflux. The mitochondrial Rb+ efflux rateconstant (k) decreased in the presence of glibenclamide, aKATP channel inhibitor (5 µM;k = 0.204 ± 0.065 min1; n = 8),or in the presence of ATP plus phosphocreatine (1.0 and 5.0 mM,respectively; k = 0.134 ± 0.021 min1;n = 4) in the saponin experiments (saponin only;k = 0.321 ± 0.079 min1; n = 3),indicating the inhibition of mitochondrial KATP channels. Thus hypothermia in combination with 87Rb-NMR allowed theprobing of the mitochondrial K+ pool in whole heartswithout mitochondrial isolation.

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20.
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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