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1.
To study the effect of chronically elevated CO2 on the excitability and function of neurons, we exposed mice to 7.5–8% CO2 for 2 wk (starting at 2 days of age) and examined the properties of freshly dissociated hippocampal neurons. Neurons from control mice (CON) and from mice exposed to chronically elevated CO2 had similar resting membrane potentials and input resistances. CO2-exposed neurons, however, had a lower rheobase and a higher Na+ current density (580 ± 73 pA/pF; n = 27 neurons studied) than did CON neurons (280 ± 51 pA/pF, n = 34; P < 0.01). In addition, the conductance-voltage curve was shifted in a more negative direction in CO2-exposed than in CON neurons (midpoint of the curve was –46 ± 3 mV for CO2 exposed and –34 ± 3 mV for CON, P < 0.01), while the steady-state inactivation curve was shifted in a more positive direction in CO2-exposed than in CON neurons (midpoint of the curve was –59 ± 2 mV for CO2 exposed and –68 ± 3 mV for CON, P < 0.01). The time constant for deactivation at –100 mV was much smaller in CO2-exposed than in CON neurons (0.8 ± 0.1 ms for CO2 exposed and 1.9 ± 0.3 ms for CON, P < 0.01). Immunoblotting for Na+ channel proteins (subtypes I, II, and III) was performed on the hippocampus. Our data indicate that Na+ channel subtype I, rather than subtype II or III, was significantly increased (43%, n = 4; P < 0.05) in the hippocampi of CO2-exposed mice. We conclude that in mice exposed to elevated CO2, 1) increased neuronal excitability is due to alterations in Na+ current and Na+ channel characteristics, and 2) the upregulation of Na+ channel subtype I contributes, at least in part, to the increase in Na+ current density. sodium ion channels; oxygen deprivation  相似文献   

2.
Effects of KCNQ channel blockers on K(+) currents in vestibular hair cells   总被引:2,自引:0,他引:2  
Linopirdine and XE991, selectiveblockers of K+ channels belonging to the KCNQ family, wereapplied to hair cells isolated from gerbil vestibular system and tohair cells in slices of pigeon crista. In type II hair cells, bothcompounds inhibited a slowly activating, slowly inactivating componentof the macroscopic current recruited at potentials above 60 mV. Thedissociation constants for linopirdine and XE991 block were <5µM. A similar component of the current was also blocked by 50 µMcapsaicin in gerbil type II hair cells. All three drugs blocked acurrent component that showed steady-state inactivation and abiexponential inactivation with time constants of ~300 ms and 4 s. Linopirdine (10 µM) reduced inward currents through thelow-voltage-activated K+ current in type I hair cells, butconcentrations up to 200 µM had little effect on steady-state outwardK+ current in these cells. These results suggest that KCNQchannels may be present in amniote vestibular hair cells.

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3.
To examine the effects of chronic cyclichypoxia on neuronal excitability and function in mice, we exposed miceto cyclic hypoxia for 8 h daily (9 cycles/h) for ~2 wk (startingat 2-3 days of age) and examined the properties of freshlydissociated hippocampal neurons obtained from slices. Compared withcontrol (Con) hippocampal CA1 neurons, exposed neurons (CYC) hadsimilar resting membrane potentials (Vm) andaction potentials (AP). CYC neurons, however, had a lower rheobase thanCon neurons. There was also an upregulation of the Na+current density (333 ± 84 pA/pF, n = 18) in CYCcompared with that of Con neurons (193 ± 20 pA/pF,n = 27, P < 0.03). Na+channel characteristics were significantly altered by hypoxia. Forexample, the steady-state inactivation curve was significantly morepositive in CYC than in Con (60 ± 6 mV, n = 8, for CYC and 71 ± 3 mV, n = 14, for Con,P < 0.04). The time constant for deactivation(d) was much shorter in CYC than in Con (at 100 mV,d=0.83 ± 0.23 ms in CYC neurons and 2.29 ± 0.38 ms in Con neurons, P = 0.004). We conclude thatthe increased neuronal excitability in mice neurons treated with cyclichypoxia is due to alterations in Na+ channelcharacteristics and/or Na+ channel expression. Wehypothesize from these and previous data from our laboratory (Gu XQ andHaddad GG. J Appl Physiol 91: 1245-1250, 2001) that thisincreased excitability is a reflection of an enhanced central nervoussystem maturation when exposed to low O2 conditions inearly postnatal life.

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4.
We have clonedand functionally characterized the human Na+-dependenthigh-affinity dicarboxylate transporter (hNaDC3) from placenta. ThehNaDC3 cDNA codes for a protein of 602 amino acids with 12 transmembrane domains. When expressed in mammalian cells, the clonedtransporter mediates the transport of succinate in the presence ofNa+ [concentration of substrate necessary for half-maximaltransport (Kt) for succinate = 20 ± 1 µM]. Dimethylsuccinate also interacts with hNaDC3. TheNa+-to-succinate stoichiometry is 3:1 and concentration ofNa+ necessary for half-maximal transport(KNa+0.5) is 49 ± 1 mM as determined by uptake studies withradiolabeled succinate. When expressed in Xenopuslaevis oocytes, hNaDC3 induces Na+-dependent inwardcurrents in the presence of succinate and dimethylsuccinate. At amembrane potential of 50 mV,KSuc0.5 is 102 ± 20 µM andKNa+0.5 is 22 ± 4 mM as determined by the electrophysiological approach. Simultaneous measurements of succinate-evoked charge transfer andradiolabeled succinate uptake in hNaDC3-expressing oocytes indicate acharge-to-succinate ratio of 1:1 for the transport process, suggestinga Na+-to-succinate stoichiometry of 3:1. pH titration ofcitrate-induced currents shows that hNaDC3 accepts preferentially thedivalent anionic form of citrate as a substrate. Li+inhibits succinate-induced currents in the presence of Na+.Functional analysis of rat-human and human-rat NaDC3 chimeric transporters indicates that the catalytic domain of the transporter lies in the carboxy-terminal half of the protein. The humanNaDC3 gene is located on chromosome20q12-13.1, as evidenced by fluorescent in situ hybridization. Thegene is >80 kbp long and consists of 13 exons and 12 introns.

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5.
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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6.
Dietary polyunsaturated fatty acids (PUFAs) have been reported to exhibit antiarrhythmic properties, which have been attributed to their availability to modulate Na+, Ca2+, and several K+ channels. However, their effects on human ether-a-go-go-related gene (HERG) channels are unknown. In this study we have analyzed the effects of arachidonic acid (AA, -6) and docosahexaenoic acid (DHA, -3) on HERG channels stably expressed in Chinese hamster ovary cells by using the whole cell patch-clamp technique. At 10 µM, AA and DHA blocked HERG channels, at the end of 5-s pulses to –10 mV, to a similar extent (37.7 ± 2.4% vs. 50.2 ± 8.1%, n = 7–10, P > 0.05). 5,6,11,14-Eicosatetrayenoic acid, a nonmetabolizable AA analog, induced effects similar to those of AA on HERG current. Both PUFAs shifted the midpoint of activation curves of HERG channels by –5.1 ± 1.8 mV (n = 10, P < 0.05) and –11.2 ± 1.1 mV (n = 7, P < 0.01). Also, AA and DHA shifted the midpoint of inactivation curves by +12.0 ± 3.9 mV (n = 4; P < 0.05) and +15.8 ± 4.3 mV (n = 4; P < 0.05), respectively. DHA and AA accelerated the deactivation kinetics and slowed the inactivation kinetics at potentials positive to +40 mV. Block induced by DHA, but not that produced by AA, was higher when measured after applying a pulse to –120 mV (IO). Finally, both AA and DHA induced a use-dependent inhibition of HERG channels. In summary, block induced by AA and DHA was time, voltage, and use dependent. The results obtained suggest that both PUFAs bind preferentially to the open state of the channel, although an interaction with inactivated HERG channels cannot be ruled out for AA. K+ channel; membrane currents; ion channels; arrhythmia; antiarrhythmics  相似文献   

7.
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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8.
Developmental changes in electrocardiogram (ECG) andresponse to selective K+ channelblockers were assessed in conscious, unsedated neonatal (days 1, 7, 14) and adult male mice(>60 days of age). Mean sinus R-R interval decreased from 120 ± 3 ms in day 1 to 110 ± 3 ms inday 7, 97 ± 3 ms inday 14, and 81 ± 1 ms in adultmice (P < 0.001 by ANOVA; all 3 groups different from day 1). Inparallel, the mean P-R interval progressively decreased duringdevelopment. Similarly, the mean Q-T interval decreased from 62 ± 2 ms in day 1 to 50 ± 2 ms inday 7, 47 ± 8 ms inday 14 neonatal mice, and 46 ± 2 ms in adult mice (P < 0.001 byANOVA; all 3 groups are significantly different fromday 1).Q-Tc was calculated asQ- interval.Q-Tc significantly shortened from179 ± 4 ms in day 1 to 149 ± 5 ms in day 7 mice(P < 0.001). In addition, the J junction-S-T segment elevation observed in day1 neonatal mice resolved by day14. Dofetilide (0.5 mg/kg), the selective blocker ofthe rapid component of the delayed rectifier(IKr) abolished S-T segment elevation and prolonged Q-T andQ-Tc intervals in day 1 neonates but not in adult mice.In contrast, 4-aminopyridine (4-AP, 2.5 mg/kg) had no effect onday 1 neonates but in adults prolongedQ-T and Q-Tc intervals andspecifically decreased the amplitude of a transiently repolarizingwave, which appears as an r' wave at the end of the apparent QRSin adult mice. In conclusion, ECG intervals and configuration changeduring normal postnatal development in the mouse.K+ channel blockers affect themouse ECG differently depending on age. These data are consistent withthe previous findings that the dofetilide-sensitiveIKr is dominantin day 1 mice, whereas 4-AP-sensitivecurrents, the transiently repolarizingK+ current, and the rapidlyactivating, slowly inactivating K+current are the dominant K+currents in adult mice. This study provides background information useful for assessing abnormal development in transgenic mice.

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9.
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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10.
Epidermal-cell protoplasts from rye (Secale cereale L.) rootswere voltage-clamped in both the whole-cell and outside-outmembrane-patch modes. Time-dependent inwardly-rectified (IR)and outwardly-rectified (OR) K+-currents were recorded, as wellas a ubiquitous, timeindependent (instantaneous) K+-current. The IR current activated at voltages more negative than —100mVwith two exponentially rising components. The time-constantof the shorter component was voltage-independent, whereas thetime-constant of the longer component was voltage-dependent,increasing as the activating voltage became more negative. TheIR current showed no inactivation. The IR current deactivatedwith a single exponential timecourse. The steady-state IR currentcould be fitted to a Boltzmann function with —135 mV asthe voltage at which the current was half-maximal and a minimalgating charge of 1.93. These parameters were insensitive tochanges in EK. One component of the IR current was K + , butother ions were also permeable. The IR current was inhibitedby extracellular Ca2+ , Ba2+ , Cs+, and TEA+, but was insensitiveto quinine. Single channels with unitary conductances of 56pS and 110 pS (in c.100 mM K+) were recorded at negative voltages. Two OR currents were observed. One had sigmoidal activationkinetics and activated at low positive voltages. The other activatedmore rapidly, with apparently exponential kinetics, at voltages50–100 mV more positive than the first. Neither currentshowed inactivation and deactivation of OR currents followeda double exponential time-course. Unitary-conductances of thechannels mediating these OR currents were 24 pS and 57 pS (inc.100 mM K+), respectively. Only the first type of OR currentwas studied in detail. This current activated with a sigmoidaltime-course, which could be described using a Hodgkin-Huxleyfunction with the activation variable raised to the second power.Its voltage-dependence was modulated in response to changesin EK and analysis of single-channel recordings indicated thatthe channel was K+-selective. The current was inhibited by Ba2+and TEA+, but not Ca2+, Cs+ or quinine. The instantaneous current was selective for monovalent cationsand K+ , Na+ and Cs+ were all permeant. It was inhibited byextracellular quinine and the instantaneous inward K+-currentwas reduced by extracellular Ca2+, Ba2+ and TEA+, as well asby competing permeant monovalent cations. The kinetics and pharmacology of these currents are comparedwith K+-currents across the plasma membrane of protoplasts fromother root-derived cells and with K+ channels in the plasmamembrane of rye roots studied following incorporation into artificial,planar lipid bilayers. Key words: Ionic currents, patch-clamp, pharmacology, potassium, K+, rye, Secale cereale L  相似文献   

11.
Mice are useful animal models to study pathogenic mechanisms involved in pulmonary vascular disease. Altered expression and function of voltage-gated K+ (KV) channels in pulmonary artery smooth muscle cells (PASMCs) have been implicated in the development of pulmonary arterial hypertension. KV currents (IK(V)) in mouse PASMCs have not been comprehensively characterized. The main focus of this study was to determine the biophysical and pharmacological properties of IK(V) in freshly dissociated mouse PASMCs with the patch-clamp technique. Three distinct whole cell IK(V) were identified based on the kinetics of activation and inactivation: rapidly activating and noninactivating currents (in 58% of the cells tested), rapidly activating and slowly inactivating currents (23%), and slowly activating and noninactivating currents (17%). Of the cells that demonstrated the rapidly activating noninactivating current, 69% showed IK(V) inhibition with 4-aminopyridine (4-AP), while 31% were unaffected. Whole cell IK(V) were very sensitive to tetraethylammonium (TEA), as 1 mM TEA decreased the current amplitude by 32% while it took 10 mM 4-AP to decrease IK(V) by a similar amount (37%). Contribution of Ca2+-activated K+ (KCa) channels to whole cell IK(V) was minimal, as neither pharmacological inhibition with charybdotoxin or iberiotoxin nor perfusion with Ca2+-free solution had an effect on the whole cell IK(V). Steady-state activation and inactivation curves revealed a window K+ current between –40 and –10 mV with a peak at –31.5 mV. Single-channel recordings revealed large-, intermediate-, and small-amplitude currents, with an averaged slope conductance of 119.4 ± 2.7, 79.8 ± 2.8, 46.0 ± 2.2, and 23.6 ± 0.6 pS, respectively. These studies provide detailed electrophysiological and pharmacological profiles of the native KV currents in mouse PASMCs. KV channels  相似文献   

12.
We examined theability of local anesthetics to correct altered inactivation propertiesof rat skeletal muscle Na+channels containing the equine hyperkalemic periodic paralysis (eqHPP)mutation when expressed in Xenopusoocytes. Increased time constants of current decay in eqHPP channelscompared with wild-type channels were restored by 1 mM benzocaine butwere not altered by lidocaine or mexiletine. Inactivation curves, which were determined by measuring the dependence of the relative peak current amplitude after depolarization to 10 mV on conditioning prepulse voltages, could be shifted in eqHPP channels back toward thatobserved for wild-type (WT) channels using selected concentrations ofbenzocaine, lidocaine, and mexiletine. Recovery from inactivation at80 mV (50-ms conditioning pulse) in eqHPP channels followed amonoexponential time course and was markedly accelerated compared withwild-type channels (WT = 10.8 ± 0.9 ms; eqHPP = 2.9 ± 0.4 ms). Benzocaine slowed the time course of recovery(eqHPP,ben = 9.6 ± 0.4 msat 1 mM) in a concentration-dependent manner. In contrast, the recoveryfrom inactivation with lidocaine and mexiletine had a fast component(fast,lid = 3.2 ± 0.2 ms;fast,mex = 3.1 ± 0.2 ms),which was identical to the recovery in eqHPP channels without drug, anda slow component (slow,lid = 1,688 ± 180 ms; slow,mex = 2,323 ± 328 ms). The time constant of the slow component of therecovery from inactivation was independent of the drug concentration,whereas the fraction of current recovering slowly depended on drugconcentrations and conditioning pulse durations. Our results show thatlocal anesthetics are generally incapable of fully restoring normal WTbehavior in inactivation-deficient eqHPP channels.

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13.
ANa+ current is present in human jejunal circular smoothmuscle cells. The aim of the present study was to determine the role ofthe cytoskeleton in the regulation of the Na+ current.Whole cell currents were recorded by using standard patch-clamptechniques with Cs+ in the pipette to block K+currents. Cytochalasin D and gelsolin were used to disrupt the actincytoskeleton and phalloidin to stabilize it. Colchicine was used todisassemble the microtubule cytoskeleton (and intermediate filaments)and paclitaxel to stabilize it. Acrylamide was used to disrupt theintermediate filament cytoskeleton. Perfusion of the recording chamberat 10 ml/min increased peak Na+ current recorded fromjejunal smooth muscle cells by 27 ± 3%. Cytochalasin D andgelsolin abolished the perfusion-induced increase in Na+current, whereas incubation with phalloidin, colchicine, paclitaxel, oracrylamide had no effect. In conclusion, the Na+ currentexpressed in human jejunal circular smooth muscle cells appears to beregulated by the cytoskeleton. An intact actin cytoskeleton is requiredfor perfusion-induced activation of the Na+ current.

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14.
A methodinvolving surgical exposure of the colonic mucosa, fluorescent dyeaddition, and confocal microscopy has been developed for monitoringcolonic crypt function in vivo in mice. Na+ concentrationin the extracellular pericryptal space of descending colon was measuredusing a low-affinity Na+-sensitive fluorescent indicatorconsisting of an Na+-sensitive chromophore (sodium red) andan Na+-insensitive chromophore (Bodipy-fl) immobilized on200-nm-diameter polystyrene beads. The Na+ indicator beadsaccumulated in the pericryptal spaces surrounding the colonic cryptsafter a 1-h exposure of the colonic luminal surface to the beadsuspension. Na+ concentration ([Na+]) in thepericryptal space was 491 ± 62 mM (n = 4). Aftera 70-min exposure to amiloride (0.25 mM), pericryptal[Na+] was reduced to 152 ± 21 mM. Blockage of thecrypt lumen with mineral oil droplets reduced pericryptal[Na+] to 204 ± 44 mM. Exposure of the colonicmucosa to FITC-dextran (4.5 kDa) led to rapid accumulation of the dyeinto the crypt lumen with a half time of 19.8 ± 1.0 s, whichwas increased to 77.9 ± 6.0 s after amiloride treatment.These results establish an in vivo fluorescence method to measurecolonic crypt function and provide direct evidence for accumulation ofa hypertonic absorbate in the pericryptal space of descending colon.The pericryptal space represents the first example of a hypertonicextracellular compartment in mammals that is not created by acountercurrent amplification mechanism.

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15.
The hypothesis that the intracellularNa+ concentration([Na+]i)is a regulator of the epithelialNa+ channel (ENaC) was tested withthe Xenopus oocyte expression systemby utilizing a dual-electrode voltage clamp.[Na+]iaveraged 48.1 ± 2.2 meq (n = 27)and was estimated from the amiloride-sensitive reversal potential.[Na+]iwas increased by direct injection of 27.6 nl of 0.25 or 0.5 MNa2SO4.Within minutes of injection,[Na+]istabilized and remained elevated at 97.8 ± 6.5 meq(n = 9) and 64.9 ± 4.4 (n = 5) meq 30 min after theinitial injection of 0.5 and 0.25 MNa2SO4,respectively. This increase of[Na+]icaused a biphasic inhibition of ENaC currents. In oocytes injected with0.5 MNa2SO4(n = 9), a rapid decrease of inwardamiloride-sensitive slope conductance(gNa) to 0.681 ± 0.030 of control within the first 3 min and a secondary, slowerdecrease to 0.304 ± 0.043 of control at 30 min were observed.Similar but smaller inhibitions were also observed with the injectionof 0.25 MNa2SO4.Injection of isotonicK2SO4(70 mM) or isotonicK2SO4made hypertonic with sucrose (70 mMK2SO4-1.2M sucrose) was without effect. Injection of a 0.5 M concentration ofeitherK2SO4,N-methyl-D-glucamine (NMDG) sulfate, or 0.75 M NMDG gluconate resulted in a much smaller initial inhibition (<14%) and little or no secondary decrease. Thusincreases of[Na+]ihave multiple specific inhibitory effects on ENaC that can betemporally separated into a rapid phase that was complete within 2-3 min and a delayed slow phase that was observed between 5 and 30 min.

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16.
The eye’s aqueous humor is secreted by a bilayered ciliary epithelium comprising pigmented (PE) and nonpigmented (NPE) epithelial cell layers. Stromal Cl enters the PE cells and crosses gap junctions to the NPE cells for release into the aqueous humor. Maxi-Cl channels are expressed in PE cells, but their physiological significance is unclear. To address this question, excised patches and whole native bovine PE cells were patch clamped, and volume was monitored by calcein fluorescence. In symmetrical 130 mM NaCl, cAMP at the cytoplasmic surface of inside-out patches produced concentration-dependent activation of maxi-Cl channels with a unitary conductance of 272 ± 2 pS (n = 80). Voltage steps from 0 to ±80 mV, but not to ±40 mV, produced rapid channel inactivation consistent with the typical characteristics of maxi-Cl channels. cAMP also activated the maxi-Cl channels in outside-out patches. In both cases, maxi-Cl channels were reversibly inhibited by SITS and 5-nitro-2-(phenylpropylamino)benzoate (NPPB). Decreasing cytoplasmic Cl concentration reduced both open-channel probability and unitary conductance. Similarly, the membrane-permeant 8-bromo-cAMP stimulated outward and inward whole cell currents; the stimulation was larger at higher intracellular Cl concentration. As with unitary currents, cAMP-triggered whole cell currents displayed inactivation at ±80 but not at ±40 mV. Moreover, cAMP triggered NPPB-sensitive shrinkage of PE cells. The results suggest that cAMP directly activates maxi-Cl channels of native PE cells that contribute to Cl release particularly from Cl-loaded cells. These cAMP-activated channels provide a potential mechanism for reducing and modulating net aqueous humor secretion by facilitating Cl reabsorption into the ciliary stroma. cell volume; chloride secretion; aqueous humor formation  相似文献   

17.
Aldosterone induces ras methylation in A6 epithelia   总被引:1,自引:0,他引:1  
Aldosterone increases Na+ reabsorption by renalepithelial cells: the acute actions (<4 h) appear to be promoted byprotein methylation. This paper describes the relationship betweenprotein methylation and aldosterone's action and describesaldosterone-mediated targets for methylation in cultured renal cells(A6). Aldosterone increases protein methylation from 7.90 ± 0.60 to 20.1 ± 0.80 methyl ester cpm/µg protein. Aldosteronestimulates protein methylation by increasing methyltransferase activityfrom 14.0 ± 0.64 in aldosterone-depleted cells to 31.8 ± 2.60 methyl ester cpm/µg protein per hour in aldosterone-treated cells. Three known methyltransferase inhibitors reduce thealdosterone-induced increase in methyltransferase activity. One ofthese inhibitors, the isoprenyl-cysteine methyltransferase-specificinhibitor,S-trans,trans-farnesylthiosalicylic acid, completely blocks aldosterone-induced protein methylation and also aldosterone-induced short-circuit current. Aldosterone inducesprotein methylation in two molecular weight ranges: near 90 kDa andaround 20 kDa. The lower molecular weight range is the weight of smallG proteins, and aldosterone does increase both Ras protein 1.6-fold andRas methylation almost 12-fold. Also, Ras antisense oligonucleotidesreduce the activity of Na+ channels by about fivefold. Weconclude that 1) protein methylation is essential foraldosterone-induced increases in Na+ transport;2) one target for methylation is p21ras; and3) inhibition of Ras expression or Ras methylation inhibits Na+ channel activity.

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18.
TheNa+/Ca2+ exchanger participates inCa2+ homeostasis in a variety of cells and has a key rolein cardiac muscle physiology. We studied in this work the exchanger ofamphibian skeletal muscle, using both isolated inside-out transversetubule vesicles and single muscle fibers. In vesicles, increasingextravesicular (intracellular) Na+ concentrationcooperatively stimulated Ca2+ efflux (reverse mode), withthe Hill number equal to 2.8. In contrast to the stimulation of thecardiac exchanger, increasing extravesicular (cytoplasmic)Ca2+ concentration ([Ca2+]) inhibited thisreverse activity with an IC50 of 91 nM. Exchanger-mediated currents were measured at 15°C in single fibers voltage clamped at90 mV. Photolysis of a cytoplasmic caged Ca2+ compoundactivated an inward current (forward mode) of 23 ± 10 nA(n = 3), with an average current density of 0.6 µA/µF. External Na+ withdrawal generated an outwardcurrent (reverse mode) with an average current density of 0.36 ± 0.17 µA/µF (n = 6) but produced a minimal increasein cytosolic [Ca2+]. These results suggest that, inskeletal muscle, the main function of the exchanger is to removeCa2+ from the cells after stimulation.

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19.
A voltage-gated, small, persistent Na+ current (INa) has been shown in mammalian cardiomyocytes. Hypoxia potentiates the persistent INa that may cause arrhythmias. In the present study, we investigated the effects of n-3 polyunsaturated fatty acids (PUFAs) on INa in HEK-293t cells transfected with an inactivation-deficient mutant (L409C/A410W) of the -subunit (hH1) of human cardiac Na+ channels (hNav1.5) plus 1-subunits. Extracellular application of 5 µM eicosapentaenoic acid (EPA; C20:5n-3) significantly inhibited INa. The late portion of INa (INa late, measured near the end of each pulse) was almost completely suppressed. INa returned to the pretreated level after washout of EPA. The inhibitory effect of EPA on INa was concentration dependent, with IC50 values of 4.0 ± 0.4 µM for INa peak (INa peak) and 0.9 ± 0.1 µM for INa late. EPA shifted the steady-state inactivation of INa peak by –19 mV in the hyperpolarizing direction. EPA accelerated the process of resting inactivation of the mutant channel and delayed the recovery of the mutated Na+ channel from resting inactivation. Other polyunsaturated fatty acids, docosahexaenoic acid, linolenic acid, arachidonic acid, and linoleic acid, all at 5 µM concentration, also significantly inhibited INa. In contrast, the monounsaturated fatty acid oleic acid or the saturated fatty acids stearic acid and palmitic acid at 5 µM concentration had no effect on INa. Our data demonstrate that the double mutations at the 409 and 410 sites in the D1–S6 region of hH1 induce inactivation-deficient INa and that n-3 PUFAs inhibit mutant INa. human cardiac sodium channel  相似文献   

20.
Whole-cell patch-clamp analysis revealed a resting membrane potential of −60 mV in primary osteoblasts and in the MG-63 osteoblast-like cells. Depolarization-induced action potentials were characterized by duration of 60 ms, a minimal peak-to-peak distance of 180 ms, a threshold value of −20 mV and a repolarization between the spikes to −45 mV. Expressed channels were characterized by application of voltage pulses between −150 mV and 90 mV in 10 mV steps, from a holding potential of −40 mV. Voltages below −60 mV induced an inward current. Depolarizing voltages above −30 mV evoked two currents: (a) a fast activated and inactivated inward current at voltages between −30 and 30 mV, and (b) a delayed-activated outward current that was induced by voltages above −30 mV. Electrophysiological and pharmacological parameters indicated that hyperpolarization activated strongly rectifying K+ (Kir) channels, whereas depolarization activated tetrodotoxin sensitive voltage gated Na+ (Nav) channels as well as delayed, slowly activated, non-inactivating, and tetraethylammonium sensitive voltage gated K+ (Kv) channels. In addition, RT-PCR showed expression of Nav1.3, Nav1.4, Nav1.5, Nav1.6, Nav1.7, and Kir2.1, Kir2.3, and Kir2.4 as well as Kv2.1. We conclude that osteoblasts express channels that allow firing of action potentials.  相似文献   

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