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1.
Role of HERG-like K+ currents in opossum esophageal circular smooth muscle   总被引:4,自引:0,他引:4  
An inwardlyrectifying K+ conductance closelyresembling the human ether-a-go-go-related gene (HERG) current wasidentified in single smooth muscle cells of opossum esophageal circularmuscle. When cells were voltage clamped at 0 mV, in isotonicK+ solution (140 mM), stephyperpolarizations to 120 mV in 10-mV increments resulted inlarge inward currents that activated rapidly and then declined slowly(inactivated) during the test pulse in a time- and voltage- dependentfashion. The HERG K+ channelblockers E-4031 (1 µM), cisapride (1 µM), andLa3+ (100 µM) strongly inhibitedthese currents as did millimolar concentrations ofBa2+. Immunoflourescence stainingwith anti-HERG antibody in single cells resulted in punctate stainingat the sarcolemma. At membrane potentials near the resting membranepotential (50 to 70 mV), thisK+ conductance did not inactivatecompletely. In conventional microelectrode recordings, both E-4031 andcisapride depolarized tissue strips by 10 mV and also induced phasiccontractions. In combination, these results provide direct experimentalevidence for expression of HERG-likeK+ currents in gastrointestinalsmooth muscle cells and suggest that HERG plays an important role inmodulating the resting membrane potential.

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2.
Ion channels encoded byether-à-go-go-related genes (ERG) have been implicatedin repolarization of the cardiac action potential and also ascomponents of the resting membrane conductance in various cells. Theaim of the present study was to determine whether ERG channels wereexpressed in smooth muscle cells isolated from portal vein. RT-PCRdemonstrated the expression of murine ERG (mERG), and real-timequantitative PCR showed that the mERG1b isoform predominated over themERG1a, mERG2, and mERG3 in portal vein. Single myocytes from portalvein displayed membrane staining with an ERG1-specific antibody. Wholecell voltage-clamp experiments were performed to determine whetherportal vein myocytes expressed functional ERG channels. Large inwardcurrents with distinctive kinetics were elicited that were inhibitedrapidly by E-4031 (mean amplitude of the E-4031-sensitive current at120 mV was 205 ± 24 pA; n = 14). Deactivationof the E-4031-sensitive current was voltage dependent (mean timeconstants at 80 and 120 mV were 103 ± 9 and 33 ± 2 ms,respectively; n = 13). Because of the rapid kinetics ofmERG currents at more negative potentials, there was a substantialnoninactivating "window" current that reached a maximum of66 ± 10 pA at 70 mV. Complete portal veins exhibitedspontaneous contractile activity in isometric tension experiments, andthis activity was modified significantly by E-4031. These data showthat ERG channels are expressed in murine portal vein myocytes that maycontribute to the resting membrane conductance.

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3.
Stimulation of -adrenoceptors contributes to the relaxation of urinary bladder smooth muscle (UBSM) through activation of large-conductance Ca2+-activated K+ (BK) channels. We examined the mechanisms by which -adrenoceptor stimulation leads to an elevation of the activity of BK channels in UBSM. Depolarization from –70 to +10 mV evokes an inward L-type dihydropyridine-sensitive voltage-dependent Ca2+ channel (VDCC) current, followed by outward steady-state and transient BK current. In the presence of ryanodine, which blocks the transient BK currents, isoproterenol, a nonselective -adrenoceptor agonist, increased the VDCC current by 25% and the steady-state BK current by 30%. In the presence of the BK channel inhibitor iberiotoxin, isoproterenol did not cause activation of the remaining steady-state K+ current component. Decreasing Ca2+ influx through VDCC by nifedipine or depolarization to +80 mV suppressed the isoproterenol-induced activation of the steady-state BK current. Unlike forskolin, isoproterenol did not change significantly the open probability of single BK channels in the absence of Ca2+ sparks and with VDCC inhibited by nifedipine. Isoproterenol elevated Ca2+ spark (local intracellular Ca2+ release through ryanodine receptors of the sarcoplasmic reticulum) frequency and associated transient BK currents by 1.4-fold. The data support the concept that in UBSM -adrenoceptor stimulation activates BK channels by elevating Ca2+ influx through VDCC and by increasing Ca2+ sparks, but not through a Ca2+-independent mechanism. This study reveals key regulatory molecular and cellular mechanisms of -adrenergic regulation of BK channels in UBSM that could provide new targets for drugs in the treatment of bladder dysfunction. Ca2+ sparks; voltage-dependent Ca2+ channel; ryanodine receptor  相似文献   

4.
Whole cell perforated patch-clampexperiments were performed with adult rat alveolar epithelial cells.The holding potential was 60 mV, and depolarizing voltage stepsactivated voltage-gated K+ (Kv) channels. Thevoltage-activated currents exhibited a mean reversal potential of 32mV. Complete activation was achieved at 10 mV. The currents exhibitedslow inactivation, with significant variability in the time coursebetween cells. Tail current analysis revealed cell-to-cell variabilityin K+ selectivity, suggesting contributions of multiple Kv-subunits to the whole cell current. The Kv channels also displayedsteady-state inactivation when the membrane potential was held atdepolarized voltages with a window current between 30 and 5 mV.Analysis of RNA isolated from these cells by RT-PCR revealed thepresence of eight Kv -subunits (Kv1.1, Kv1.3, Kv1.4, Kv2.2, Kv4.1,Kv4.2, Kv4.3, and Kv9.3), three -subunits (Kv1.1, Kv2.1, andKv3.1), and two K+ channel interacting protein (KChIP)isoforms (KChIP2 and KChIP3). Western blot analysis with available Kv-subunit antibodies (Kv1.1, Kv1.3, Kv1.4, Kv4.2, and Kv4.3) showedlabeling of 50-kDa proteins from alveolar epithelial cells grown inmonolayer culture. Immunocytochemical analysis of cells from monolayersshowed that Kv1.1, Kv1.3, Kv1.4, Kv4.2, and Kv4.3 were localized to theapical membrane. We conclude that expression of multiple Kv -, -,and KChIP subunits explains the variability in inactivation gating andK+ selectivity observed between cells and that Kv channelsin the apical membrane may contribute to basal K+ secretionacross the alveolar epithelium.

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5.
Chloride release from nonpigmented ciliary epithelial (NPE)cells is a final step in forming aqueous humor, and adenosine stimulates Cl transport by these cells. Whole cell patchclamping of cultured human NPE cells indicated that theA3-selective agonist1-deoxy-1-(6-[([3-iodophenyl]methyl)amino]-9H-purin-9-yl)-N-methyl--D-ribofuranuronamide (IB-MECA) stimulated currents (IIB-MECA) by~90% at +80 mV. Partial replacement of external Clwith aspartate reduced outward currents and shifted the reversal potential (Vrev) from 23 ± 2 mV to0.0 ± 0.7 mV. Nitrate substitution had little effect. Perfusionwith the Cl channel blockers5-nitro-2-(3-phenylpropylamino)benzoic acid (NPPB) and niflumic acidinhibited the currents. Partial Cl replacement withaspartate and NO3, and perfusion with NPPB, hadsimilar effects on the swelling-activated whole cell currents(ISwell). Partial cyclamate substitution for external Cl inhibited inward and outward currents of bothIIB-MECA and ISwell. Bothsets of currents also showed outward rectification and inactivation atlarge depolarizing potentials. The results are consistent with theconcept that A3-subtype adenosine agonists and swellingactivate a common population of Cl channels.

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6.
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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7.
Freshly dispersedinterstitial cells from the rabbit urethra were studied by using theperforated-patch technique. When cells were voltage clamped at 60 mVand exposed to 10 µM norepinephrine (NE) at 80-s intervals, eitherlarge single inward currents or a series of oscillatory inward currentsof diminishing amplitude were evoked. These currents were blocked byeither phentolamine (1 µM) or prazosin (1 µM), suggesting that theeffects of NE were mediated via 1-adrenoceptors.NE-evoked currents were depressed by the blockers ofCa2+-activated Cl currents, niflumic acid (10 µM), and 9-anthracenecarboxylic acid (9-AC, 1 mM). The reversalpotential of the above currents changed in a predictable manner whenthe Cl equilibrium potential was altered, againsuggesting that they were due to activation of a Clconductance. NE-evoked currents were decreased by 10 µM cyclopiazonic acid, suggesting that they were dependent on store-releasedCa2+. Inhibition of NE-evoked currents by the phospholipaseC inhibitor 2-nitro-4-carboxyphenyl-N,N-diphenylcarbamate(100 µM) suggested that NE releases Ca2+ via an inositol1,4,5-trisphosphate (IP3)-dependent mechanism. Theseresults support the idea that stimulation of1-adrenoceptors releases Ca2+ from anIP3-sensitive store, which in turn activatesCa2+-activated Cl current in freshlydispersed interstitial cells of the rabbit urethra. This elevates slowwave frequency in these cells and may underlie the mechanismresponsible for increased urethral tone during nerve stimulation.

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8.
G protein-coupled receptors (GPCRs) control neuronal functions via ion channel modulation. For voltage-gated ion channels, gating charge movement precedes and underlies channel opening. Therefore, we sought to investigate the effects of G protein activation on gating charge movement. Nonlinear capacitive currents were recorded using the whole cell patch-clamp technique in cultured rat sympathetic neurons. Our results show that gating charge movement depends on voltage with average Boltzmann parameters: maximum charge per unit of linear capacitance (Qmax) = 6.1 ± 0.6 nC/µF, midpoint (Vh) = –29.2 ± 0.5 mV, and measure of steepness (k) = 8.4 ± 0.4 mV. Intracellular dialysis with GTPS produces a nonreversible 34% decrease in Qmax, a 10 mV shift in Vh, and a 63% increase in k with respect to the control. Norepinephrine induces a 7 mV shift in Vh and 40% increase in k. Overexpression of G protein 14 subunits produces a 13% decrease in Qmax, a 9 mV shift in Vh, and a 28% increase in k. We correlate charge movement modulation with the modulated behavior of voltage-gated channels. Concurrently, G protein activation by transmitters and GTPS also inhibit both Na+ and N-type Ca2+ channels. These results reveal an inhibition of gating charge movement by G protein activation that parallels the inhibition of both Na+ and N-type Ca2+ currents. We propose that gating charge movement decrement may precede or accompany some forms of GPCR-mediated channel current inhibition or downregulation. This may be a common step in the GPCR-mediated inhibition of distinct populations of voltage-gated ion channels. ion channel modulation; G protein-coupled receptors; charge movement  相似文献   

9.
Depolarization elicited outwardK+ currents from canine loweresophageal sphincter (LES) muscle cells, primarily through iberiotoxin (IbTX)- and tetraethylammonium-sensitiveCa2+-dependentK+ channels. Current magnitudesvaried with pipette Ca2+concentration (EC50 = 108.5 nM).NG-nitro-L-arginine(L-NNA,104 M), IbTX(108 M), or bufferingintracellular Ca2+ to 8 nMdecreased outward currents >80%. Sodium nitroprusside (NaNP,104 M) restoredL-NNA-inhibited or lowintracellular Ca2+ concentration(not IbTX)-inhibited currents.L-NNA or IbTXapplication depolarized LES cells from 43 to 35 mV. NaNPrestored the membrane potential to 46 mV afterL-NNA but not after IbTXapplication. Nifedipine (30 µM) reduced outward currents andabolished or reduced L-NNA orNaNP effects, respectively. Immunocytochemistry revealed the presenceof both argininosuccinate synthetase and argininosuccinate lyase in LESmuscle cells. L-Citrulline, likeL-arginine, reversed L-NNA inhibition of outwardcurrents; only L-argininereversed inhibition of outward currents by an antibody toargininosuccinate synthetase. Therefore, endogenous nitric oxideproduction, activated by Ca2+entrance involving L-typeCa2+ channels, may continuouslyenhance outward currents to modulate LES muscle cell membrane potentialand excitability.

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10.
We investigated the regulation ofATP-sensitive K+ (KATP) currents in murinecolonic myocytes with patch-clamp techniques. Pinacidil(105 M) activated inward currents in the presence of highexternal K+ (90 mM) at a holding potential of 80 mV indialyzed cells. Glibenclamide (105 M) suppressedpinacidil-activated current. Phorbol 12,13-dibutyrate (PDBu; 2 × 107 M) inhibited pinacidil-activated current.4--Phorbol ester (5 × 107 M), an inactive formof PDBu, had no effect on pinacidil-activated current. In cell-attachedpatches, the open probability of KATP channels wasincreased by pinacidil, and PDBu suppressed openings ofKATP channels. When cells were pretreated withchelerythrine (106 M) or calphostin C (107M), inhibition of the pinacidil-activated whole cell currents by PDBuwas significantly reduced. In cells studied with the perforated patchtechnique, PDBu also inhibited pinacidil-activated current, and thisinhibition was reduced by chelerythrine (106 M).Acetylcholine (ACh; 105 M) inhibited pinacidil-activatedcurrents, and preincubation of cells with calphostin C(107 M) decreased the effect of ACh. Cells dialyzed withprotein kinase C -isoform (PKC) antibody had normal responses topinacidil, but the effects of PDBu and ACh on KATP wereblocked in these cells. Immunofluorescence and Western blots showedexpression of PKC in intact muscles and isolated smooth muscle cellsof the murine proximal colon. These data suggest that PKC regulates KATP in colonic muscle cells and that the effects of ACh onKATP are largely mediated by PKC. PKC appears to be themajor isozyme that regulates KATP in murine colonic myocytes.

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11.
The patch-clamp technique was used to study the effects ofcarbachol (CCh) on HT-29 cells. During CCh exposure, the cells (n = 23) depolarized close to theequilibrium potential forCl(;48 mV) and the membrane potential then started to oscillate(16/23 cells). In voltage-clamp experiments, similar oscillations inwhole cell currents could be demonstrated. The whole cell conductanceincreased from 225 ± 25 pS in control solution to 6,728 ± 1,165 pS (means ± SE, n = 17). Insubstitution experiments (22 mMCl in bath solution, = 0 mV), the reversal potential changed from 41.6 ± 2.2 mV(means ± SE, n = 9) to 3.2 ± 2.0 mV (means ± SE, n = 7).When the cells were loaded with the calcium-sensitive fluorescent dye,fluo 3, and simultaneously patch clamped, CCh caused a synchronousoscillating pattern of fluorescence and membrane potential. Incell-attached patches, the CCh-activated currents reversed at arelative membrane potential of 1.9 ± 3.7 mV (means ± SE,n = 11) with control solution in thepipette and at 46.2 ± 5.3 mV (means ± SE,n = 10) with a 15 mMCl solution in the pipette.High K+ (144 mM) did not changethe reversal potential significantly (P  0.05, n = 8). In inside-out patches,calcium-dependent Clchannels could be demonstrated with a conductance of 19 pS(n = 7). It is concluded that CChcauses oscillations in membrane potential that involvecalcium-dependent Clchannels and a K+ permeability.

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12.
Whole cell patch-clamprecordings were made from cultured myenteric neurons taken from murineproximal colon. The micropipette contained Cs+ to removeK+ currents. Depolarization elicited a slowly activatingtime-dependent outward current (Itdo), whereasrepolarization was followed by a slowly deactivating tail current(Itail). Itdo andItail were present in ~70% of neurons. Weidentified these currents as Cl currents(ICl), because changing the transmembraneCl gradient altered the measured reversal potential(Erev) of both Itdo andItail with that for Itailshifted close to the calculated Cl equilibrium potential(ECl). ICl areCa2+-activated Cl current[ICl(Ca)] because they were Ca2+dependent. ECl, which was measured from theErev of ICl(Ca) using agramicidin perforated patch, was 33 mV. This value is more positivethan the resting membrane potential (56.3 ± 2.7 mV), suggestingmyenteric neurons accumulate intracellular Cl.-Conotoxin GIVA [0.3 µM; N-type Ca2+ channelblocker] and niflumic acid [10 µM; knownICl(Ca) blocker], decreased theICl(Ca). In conclusion, these neurons haveICl(Ca) that are activated by Ca2+entry through N-type Ca2+ channels. These currents likelyregulate postspike frequency adaptation.

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13.
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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14.
In theXenopus oocyte heterologous expressionsystem, the electrophysiological characteristics of rabbit ClC-2current and its contribution to volume regulation were examined.Expressed currents on oocytes were recorded with a two-electrodevoltage-clamp technique. Oocyte volume was assessed by taking picturesof oocytes with a magnification of ×40. Rabbit ClC-2 currentsexhibited inward rectification and had a halide anion permeabilitysequence of Cl  Br  I  F. ClC-2 currents wereinhibited by 5-nitro-2-(3-phenylpropylamino)benzoic acid (NPPB),diphenylamine-2-carboxylic acid (DPC), and anthracene-9-carboxylic acid(9-AC), with a potency order of NPPB > DPC = 9-AC, but were resistant to stilbene disulfonates. These characteristics are similarto those of rat ClC-2, suggesting rabbit ClC-2 as a counterpart of ratClC-2. During a 30-min perfusion with hyposmolar solution, currentamplitude at 160 mV and oocyte diameter were compared amongthree groups: oocytes injected with distilled water, oocytes injectedwith ClC-2 cRNA, and oocytes injected with ClC-2NT cRNA (an openchannel mutant with NH2-terminaltruncation). Maximum inward current was largest in ClC-2NT-injectedoocytes (5.9 ± 0.4 µA), followed by ClC-2-injected oocytes(4.3 ± 0.6 µA), and smallest in water-injected oocytes(0.2 ± 0.2 µA), whereas the order of increase in oocytediameter was as follows: water-injected oocytes (9.0 ± 0.2%) > ClC-2-injected oocytes (5.3 ± 0.5%) > ClC-2NT-injected oocytes (1.1 ± 0.2%). The findings that oocyte swelling wassmallest in oocytes with the largest expressed currents suggest thatClC-2 currents expressed in Xenopusoocytes appear to act for volume regulation when exposed to ahyposmolar environment.

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15.
In isolated rat pancreatic -cells, hypotonic stimulation elicited an increase in cytosolic Ca2+ concentration ([Ca2+]c) at 2.8 mM glucose. The hypotonically induced [Ca2+]c elevation was significantly suppressed by nicardipine, a voltage-dependent Ca2+ channel blocker, and by Gd3+, amiloride, 2-aminoethoxydiphenylborate, and ruthenium red, all cation channel blockers. In contrast, the [Ca2+]c elevation was not inhibited by suramin, a P2 purinoceptor antagonist. Whole cell patch-clamp analyses showed that hypotonic stimulation induced membrane depolarization of -cells and produced outwardly rectifying cation currents; Gd3+ inhibited both responses. Hypotonic stimulation also increased insulin secretion from isolated rat islets, and Gd3+ significantly suppressed this secretion. Together, these results suggest that osmotic cell swelling activates cation channels in rat pancreatic -cells, thereby causing membrane depolarization and subsequent activation of voltage-dependent Ca2+ channels and thus elevating insulin secretion. calcium ion; swelling; patch-clamp; gadolinium  相似文献   

16.
Glutamate transporters (also called excitatory amino acid transporters, EAAT) are important in extracellular homeostasis of glutamate, a major excitatory neurotransmitter. EAAT4, a neuronally expressed EAAT in cerebellum, has a large portion (95% of the total L-aspartate-induced currents in human EAAT4) of substrate-gated Cl currents, a distinct feature of this EAAT. We cloned EAAT4 from rat cerebellum. This molecule was predicted to have eight putative transmembrane domains. L-Glutamate induced an inward current in oocytes expressing this EAAT4 at a holding potential –60 mV. Phorbol 12-myristate 13-acetate (PMA), a protein kinase C (PKC) activator, significantly increased the magnitude of L-glutamate-induced currents but did not affect the apparent affinity of EAAT4 for L-glutamate. This PMA-enhanced current had a reversal potential –17 mV at extracellular Cl concentration ([Cl]o) 104 mM with an 60-mV shift per 10-fold change in [Cl]o, properties consistent with Cl-selective conductance. However, PMA did not change EAAT4 transport activity as measured by [3H]-L-glutamate. Thus PMA-enhanced Cl currents via EAAT4 were not thermodynamically coupled to substrate transport. These PMA-enhanced Cl currents were partially blocked by staurosporine, chelerythrine, and calphostin C, the three PKC inhibitors. Ro-31-8425, a PKC inhibitor that inhibits conventional PKC isozymes at low concentrations (nM level), partially inhibited the PMA-enhanced Cl currents only at a high concentration (1 µM). Intracellular injection of BAPTA, a Ca2+-chelating agent, did not affect the PMA-enhanced Cl currents. 4-Phorbol-12,13-didecanoate, an inactive analog of PMA, did not enhance glutamate-induced currents. These data suggest that PKC, possibly isozymes other than conventional ones, modulates the substrate-gated Cl currents via rat EAAT4. Our results also suggest that substrate-gated ion channel activity and glutamate transport activity, two EAAT4 properties that could modulate neuronal excitability, can be regulated independently. oocytes; protein kinase C  相似文献   

17.
Patch-clampexperiments were conducted to study the effects of basal lamina(basement membrane) of preovulatory chicken ovarian follicle onmembrane currents in differentiated chicken granulosa cells in ahomologous system. The membrane capacitance (measure of total membranearea) was smaller in cells cultured on intact basal lamina than that ofcontrol cells. The granulosa cells expressed outward and two inwardcurrents. A small fraction of the cells (3%) expressed only atransient fast-activating and -inactivating inward current carried byCa2+. The majority of the cells, however, expressed aslowly activating and inactivating inward current (carried byCl) that was superimposed on the transientCa2+ current. All cells expressed an outward currentcharacteristic of the delayed-rectifier K+ current. Theremoval of extracellular Ca2+ led to elimination of theslow inward Cl current, indicating that it is aCa2+-dependent Cl current. Both peakamplitude and current density of the inward Cl currentwere significantly lower in cells cultured on freshly isolated intactbasal lamina (or basal lamina stored at 4°C for 12 mo) than those ofcontrol cells; however, basal lamina had no significant effect on thedensity of the outward current. Similar to the observations made forintact basal lamina, solubilized basal lamina suppressed the inwardCl current in differentiated granulosa cells. These datashow that homologous basal lamina modulates aCa2+-dependent Cl current in differentiatedgranulosa cells. These findings provide a partial explanation for themechanisms that subserve the reported effects of basal lamina (basementmembrane) on the metabolic functions of differentiated granulosa cells.

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18.
Glibenclamide blocks volume-sensitive Cl- channels by dual mechanisms   总被引:6,自引:0,他引:6  
To study the mechanisms of glibenclamide actions onvolume-sensitive Clchannels, whole cell patch-clamp studies were performed at various pHlevels in human epithelial Intestine 407 cells. Extracellular application of glibenclamide reversibly suppressed volume-sensitive Cl currents in the entirerange of voltage examined (100 to +100 mV) and accelerated thedepolarization-induced inactivation at pH 7.5. When glibenclamide wasapplied from the intracellular side, in contrast, no effect wasobserved. At acidic pH, at which the weak acid glibenclamide existslargely in the uncharged form, the instantaneous current was, in avoltage-independent manner, suppressed by the extracellular drug atmicromolar concentrations without significantly affecting thedepolarization-induced inactivation. At alkaline pH, at which almostall of the drug is in the charged form, glibenclamide speeded theinactivation time course and induced a leftward shift of thesteady-state inactivation curve at much higher concentrations. Thus itis concluded that glibenclamide exerts inhibiting actions onswelling-activated Clchannels from the extracellular side and that the uncharged form ismainly responsible for voltage-independent inhibition of instantaneous currents, whereas the anionic form facilitates voltage-dependent channel inactivation in human epithelial Intestine 407 cells.

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19.
This study uses genetically altered mice to examine the contribution of the Na+-K+-ATPase 2 catalytic subunit to resting potential, excitability, and contractility of the perinatal diaphragm. The 2 protein is reduced by 38% in 2-heterozygous and absent in 2-knockout mice, and 1-isoform is upregulated 1.9-fold in 2-knockout. Resting potentials are depolarized by 0.8–4.0 mV in heterozygous and knockout mice. Action potential threshold, overshoot, and duration are normal. Spontaneous firing, a developmental function, is impaired in knockout diaphragm, but this does not compromise its ability to fire evoked action potential trains, the dominant mode of activation near birth. Maximum tetanic force, rate of activation, force-frequency and force-voltage relationships, and onset and magnitude of fatigue are not changed. The major phenotypic consequence of reduced 2 content is that relaxation from contraction is 1.7-fold faster. This finding reveals a distinct cellular role of the 2-isoform at a step after membrane excitation, which cannot be restored simply by increasing 1 content. Na+/Ca2+ exchanger expression decreases in parallel with 2-isoform, suggesting that Ca2+ extrusion is affected by the altered 2 genotype. There are no major compensatory changes in expression of sarcoplasmic reticulum Ca2+-ATPase, phospholamban, or plasma membrane Ca2+-ATPase. These results demonstrate that the Na+-K+-ATPase 1-isoform alone is able to maintain equilibrium K+ and Na+ gradients and to substitute for 2-isoform in most cellular functions related to excitability and force. They further indicate that the 2-isoform contributes significantly less at rest than expected from its proportional content but can modulate contractility during muscle contraction. Na+-K+-ATPase 2 catalytic subunit; heterozygous mice; knockout mice; resting potential  相似文献   

20.
Ca2+-activatedCl currents (ICl,Ca) wereexamined using fluorescence confocal microscopy to monitorintracellular Ca2+ liberation evoked by flash photolysis ofcaged inositol 1,4,5-trisphosphate (InsP3) involtage-clamped Xenopus oocytes. Currents at +40 mV exhibited asteep dependence on InsP3 concentration([InsP3]), whereas currents at140 mV exhibited a higher threshold and more graded relationshipwith [InsP3]. Ca2+ levelsrequired to half-maximally activate ICl,Ca wereabout 50% larger at 140 mV than at +40 mV, and currents evokedby small Ca2+ elevations were reduced >25-fold. Thehalf-decay time of Ca2+ signals shortened at increasinglypositive potentials, whereas the decay of ICl,Calengthened. The steady-state current-voltage (I-V) relationshipfor ICl,Ca exhibited outward rectification withweak photolysis flashes but became more linear with stronger stimuli.Instantaneous I-V relationships were linear with both strongand weak stimuli. Current relaxations following voltage steps duringactivation of ICl,Ca decayed with half-times that shortened from about 100 ms at +10 mV to 20 ms at 160 mV. We conclude that InsP3-mediated Ca2+liberation activates a single population of Clchannels, which exhibit voltage-dependent Ca2+ activationand voltage-independent instantaneous conductance.

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