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1.
Activity of the AE2/SLC4A2 anion exchanger is modulated acutely by pH, influencing the transporter's role in regulation of intracellular pH (pHi) and epithelial solute transport. In Xenopus oocytes, heterologous AE2-mediated Cl/Cl and Cl/HCO3 exchange are inhibited by acid pHi or extracellular pH (pHo). We have investigated the importance to pH sensitivity of the eight histidine (His) residues within the AE2 COOH-terminal transmembrane domain (TMD). Wild-type mouse AE2-mediated Cl/Cl exchange, measured as DIDS-sensitive 36Cl efflux from Xenopus oocytes, was experimentally altered by varying pHi at constant pHo or varying pHo. Pretreatment of oocytes with the His modifier diethylpyrocarbonate (DEPC) reduced basal 36Cl efflux at pHo 7.4 and acid shifted the pHo vs. activity profile of wild-type AE2, suggesting that His residues might be involved in pH sensing. Single His mutants of AE2 were generated and expressed in oocytes. Although mutation of H1029 to Ala severely reduced transport and surface expression, other individual His mutants exhibited wild-type or near-wild-type levels of Cl transport activity with retention of pHo sensitivity. In contrast to the effects of DEPC on wild-type AE2, pHo sensitivity was significantly alkaline shifted for mutants H1144Y and H1145A and the triple mutants H846/H849/H1145A and H846/H849/H1160A. Although all functional mutants retained sensitivity to pHi, pHi sensitivity was enhanced for AE2 H1145A. The simultaneous mutation of five or more His residues, however, greatly decreased basal AE2 activity, consistent with the inhibitory effects of DEPC modification. The results show that multiple TMD His residues contribute to basal AE2 activity and its sensitivity to pHi and pHo. pH regulation; histidine residues; Cl/HCO3 exchange  相似文献   

2.
Regulation of the epithelial Na(+) channel by extracellular acidification   总被引:2,自引:0,他引:2  
The effect of extracellular acidification wastested on the native epithelial Na+ channel (ENaC) in A6epithelia and on the cloned ENaC expressed in Xenopusoocytes. Channel activity was determined utilizing blocker-inducedfluctuation analysis in A6 epithelia and dual electrode voltage clampin oocytes. In A6 cells, a decrease of extracellular pH(pHo) from 7.4 to 6.4 caused a slow stimulation of theamiloride-sensitive short-circuit current (INa)by 68.4 ± 11% (n = 9) at 60 min. This increaseof INa was attributed to an increase of openchannel and total channel (NT) densities. Similar changes were observed with pHo 5.4. The effects ofpHo were blocked by buffering intracellularCa2+ with 5 µM1,2-bis(2-aminophenoxy)ethane-N,N,N',N'-tetraacetic acid. Inoocytes, pHo 6.4 elicited a small transient increase of theslope conductance of the cloned ENaC (11.4 ± 2.2% at 2 min)followed by a decrease to 83.7 ± 11.7% of control at 60 min (n = 6). Thus small decreases of pHostimulate the native ENaC by increasing NT butdo not appreciably affect ENaC expressed in Xenopus oocytes.These effects are distinct from those observed with decreasingintracellular pH with permeant buffers that are known to inhibit ENaC.

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3.
We report, for the epithelialNa+ channel (ENaC) in A6 cells,the modulation by cell pH (pHc)of the transepithelial Na+ current(INa), thecurrent through the individual Na+channel (i), the openNa+ channel density(No), and thekinetic parameters of the relationship betweenINa and theapical Na+ concentration. Thei andNo were evaluatedfrom the Lorentzian INa noise inducedby the apical Na+ channel blocker6-chloro-3,5-diaminopyrazine-2-carboxamide.pHc shifts were induced, understrict and volume-controlled experimental conditions, byapical/basolateral NH4Cl pulses orbasolateral arrest of theNa+/H+exchanger (Na+ removal; block byethylisopropylamiloride) and were measured with the pH-sensitive probe2',7'-bis(2-carboxyethyl)-5(6)-carboxyfluorescein. Thechanges in pHc were positivelycorrelated to changes inINa and theapically dominated transepithelial conductance. The sole pHc-sensitive parameter underlyingINa wasNo. Only thesaturation value of theINa kinetics wassubject to changes in pHc.pHc-dependent changes inNo may be causedby influencingPo, the ENaC openprobability, or/and the total channel number,NT = No/Po.

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4.
Rabbit and human ClC-2GCl channels are voltagesensitive and activated by protein kinase A and low extracellular pH.The objective of the present study was to investigate the mechanism involved in acid activation of the ClC-2GCl channel and to determinewhich amino acid residues play a role in this acid activation. Channelopen probability(Po) at ±80 mV holding potentials increased fourfold in a concentration-dependent manner with extracellular H+concentration (that is, extracellular pH,pHtrans), with anapparent acidic dissociation constant of pH 4.95 ± 0.27. 1-Ethyl-3(3-dimethylaminopropyl)carbodiimide-catalyzed amidation of the channel with glycine methyl ester increasedPo threefold atpHtrans 7.4, at which the channelnormally exhibits lowPo. Withextracellular pH reduction (protonation) or amidation, increasedPo was due to asignificant increase in open time constants and a significant decreasein closed time constants of the channel gating, and this effect wasinsensitive to applied voltage. With the use of site-directedmutagenesis, the extracellular region EELE (amino acids416-419) was identified as the pH sensor and amino acid Glu-419was found to play the key or predominant role in activation of theClC-2G Cl channel byextracellular acid.

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5.
The role ofintracellular pH (pHi) in regulation of AE2 function inXenopus oocytes remains unclear. We therefore compared AE2-mediated 36Cl efflux fromXenopus oocytes during imposed variation of extracellular pH(pHo) or variation of pHi at constantpHo. Wild-type AE2-mediated 36Clefflux displayed a steep pHo vs. activity curve, withpHo(50) = 6.91 ± 0.04. SequentialNH2-terminal deletion of amino acid residues in tworegions, between amino acids 328 and 347 or between amino acids 391 and510, shifted pHo(50) to more acidic values by nearly 0.6 units. Permeant weak acids were then used to alter oocytepHi at constant pHo and were shown to beneither substrates nor inhibitors of AE2-mediated Cltransport. At constant pHo, AE2 was inhibited byintracellular acidification and activated by intracellularalkalinization. Our data define structure-function relationships withinthe AE2 NH2-terminal cytoplasmic domain, which demonstratesdistinct structural requirements for AE2 regulation by intracellularand extracellular protons.

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6.
Continuous measurements of cytoplasmic pH (pHc) in Sinapis roothairs have been carried out with double-barrelled pH-micro-electrodesin order to gain information on translocation of protons acrossthe plasmalemma and cytoplasmic pH control. (i) The cytoplasmicpH of Sinapis (7–33 ? 0–12, standard conditions)changes no more than 0.1 pHc, per pHo-unit, regardless of whethercyanide is present or not. (ii) Weak acids rapidly acidify pHcand hyperpolarize, while weak bases alkalize pHc and depolarizethe cells, (iii) 1.0 mol M,3 NaCN acidifies the cytoplasm by0.4 to 0.7 pH-units, but alkalizes the vacuole. (iv) 20 mmolm–3 CCCP has no significant effect on pHc, if added atpH 9.6 or 7.2, but acidifies pHc by 1.3 units at pH 4.3. Inthe presence of CCCP, cyanide acidifies the cytoplasm, (v) Chloridetransiently acidifies pHc, while K+, Na+, and have no significant effects, (vi) Cytoplasmic buffer capacityforms a bell-shaped curve versus pHc with an optimum of about50 mol m–3 H+pHc-unit. The modes of proton re-entry and the effects of active and passiveproton transport on cellular pH control are critically discussed.It is suggested that the proton leak, consisting of H+-cotransport(e.g. H+/Cl) rather than H+-uniport, is no threat topHc. The proton export pump, although itself reacting to changesin pHc, influences pHc only to a minor extent. It is concludedthat buffer capacity and membrane transport play moderate rolesin pHc control in Sinapis, while the interlocked H+-producingand -consuming reactions of cellular metabolism are the mainregulating factors. This makes pH control in Sinapis quite differentfrom bacterial and animal cells. Key words: Cytoplasmic pH, double-barrelled pH micro-electrode, pH control, proton transport, Sinapis  相似文献   

7.
We studied the K+-selective conductances in primary cultures of rat renal inner medullary collecting duct (IMCD) using perforated-patch and conventional whole cell techniques. Depolarizations above –20 mV induced a time-dependent outward K+ current (Ivto) similar to a delayed rectifier. Ivto showed a half-maximal activation around 5.6 mV with a slope factor of 6.8 mV. Its K+/Na+ selectivity ratio was 11.7. It was inhibited by tetraethylammonium, quinidine, 4-aminopyridine, and Ba2+ and was not Ca2+ dependent. The delayed rectifying characteristics of Ivto prompted us to screen the expression of Kv1 and Kv3 families by RT-PCR. Analysis of RNA isolated from cell cultures revealed the presence of three Kv -subunits (Kv1.1, Kv1.3, and Kv1.6). Western blot analysis with Kv -subunit antibodies for Kv1.1 and Kv1.3 showed labeling of 70-kDa proteins from inner medulla plasmatic and microsome membranes. Immunocytochemical analysis of cell culture and kidney inner medulla showed that Kv1.3 is colocalized with the Na+-K+-ATPase at the basolateral membrane, although it is also in the cytoplasm. This is the first evidence of recording, protein expression, and localization of a voltage-gated Kv1 in the kidney IMCD cells. kidney; Kv1.3; potassium channel; potassium transport; whole cell clamp; immunocytochemistry; confocal microscopy  相似文献   

8.
The effects of light on the pH in the vacuole and the electricpotential difference across the plasmalemma and the tonoplastof Nitellopsis obtusa were investigated by means of conventionaland H+-specific glass or antimony microelectrodes. Illuminationis found to bring about a decrease in the pH of the vacuolarsap by 0.1–0.5 units concomitant with a depolarizationof the cell. The light-induced changes of the potential differenceand the vacuolar pH depend in different ways on the pH of theexternal medium (pHo). At pHo 9.0 cells exhibit great light-inducedpotential changes (up to 100 mV), but only small pH changesof the vacuolar sap. At neutral or slightly acidic pHo valuesthe amplitude of the light-induced pH changes in the vacuoleincreases up to 0.3–0.5 pH units, but the amplitudes ofthe potential changes at the plasmalemma are relatively small.At pHo 9.0 a transient acidification of the medium is observedupon illumination whereas at lower pH values light-induced alkalinizationwas only seen. Transfer of the cells from pHo 9.0 to pHo 7.5results in a cell hyperpolarization by 60–80 mV and adecrease of the vacuolar pH by 0.4–0.5 units under lightconditions but has no significant effect on the potential andthe vacuolar pH in the darkness. It is proposed that mechanismsof active H+ extrusion from the cytoplasm are located both inthe plasmalemma and the tonoplast. The observed acidificationin the vacuole appears to be determined by a light-induced increaseof the concentration of H+ in the cytoplasm. The H+ conductionof the plasmalemma seems to increase on illumination. The patternof the light-induced H+ fluxes across the tonoplast and theplasmalemma depends crucially on the extent of the light-inducedchanges in the H+ conductance and on the electrochemical gradientfor H+ at the plasmalemma.  相似文献   

9.
Cytoplasmic pH (pHc) in Chara corallina was measured (from [14C]stribution)as a function of external pH (pH0)and temperature. With pH0near 7, pHc at 25?C is 7.80; pHcincreases by 0.005 pH units?C–1 temperature decrease, i.e. pHc at 5 ?C is 7.90. WithpH? near 5.5, the increase in pHc with decreasing temperatureis 0.015 units ?C–1 between 25 and 15?C, but 0.005 units?C–1 between 15 and 5?C. This implies a more precise regulationof pHc with variations in pHo at 5 or 15 ?C compared with 25?C. The observed dp Hc/dT is generally smaller than the –0.017units ?C–1 needed to maintain a constant H+/OH–1,or a constant fractional ionization of histidine in protein,with variation in temperature. It is closer to that needed tomaintain the fractional ionization of phosphorylated compoundsor of CO2–HCO3 The value of dpHc/dT has importantimplications for several regulatory aspects of cell metabolism.These include (all as a function of temperature) the rates ofenzyme reactions, the H+ at the plasmalemma(and hence the energy available for cotransport processes),and the mechanism for pHc regulation by the control of bidirectionalH+ fluxes at the plasmalemma.  相似文献   

10.
Using glass capillary microelectrodes for the measurement ofpotential differences (PD) and antimony microelectrodes forthe measurement of pH, we investigated the light-induced changesof PD between the central vacuole and the external medium, ofpH in the vacuole (pHv), as well as of pH in the external medium(pHo) of the green marine alga Valonia ventricosa. PD in thedark was about +30 to +40 mV (vacuole positive), pHv 6.3, andthe resistance of the protoplast (cell wall-plasmalemma-tonoplast)17.8 kOhm cm2. Illumination caused an increase of the positivePD (after a few oscillations) up to +80 to +100 mV, acidificationof the vacuolar sap, alkalinization of the external medium,and a decrease in the resistance of the protoplast to 7.6 kOhmcm2. The kinetics of the changes of PD, pHv, and pHo were similarto each other. It is concluded that a light-stimulated activeH+ flow occurs from the external medium into the central vacuoleof Valonia ventricosa as a result of the onset of photosyntheticactivity.  相似文献   

11.
Phosphate Uptake in the Cyanobacterium Synechococcus R-2 PCC 7942   总被引:4,自引:0,他引:4  
Phosphate uptake rates in Synechococcus R-2 in BG-11 media (anitrate-based medium, not phosphate limited) were measured usingcells grown semi-continuously and in continuous culture. Netuptake of phosphate is proportional to external concentration.Growing cells at pHo 10 have a net uptake rate of about 600pmol m–2 s–1 phosphate, but the isotopic flux for32P phosphate was about 4 nmol m–2 s–1. There appearsto be a constitutive over-capacity for phosphate uptake. TheKm and Vmax, of the saturable component were not significantlydifferent at pHo 7.5 and 10, hence the transport system probablyrecognizes both H2PO4and HPO2–4. The intracellularinorganic phosphate concentration is about 3 to 10 mol m–3,but there is an intracellular polyphosphate store of about 400mol m–3. Intracellular inorganic phosphate is 25 to 50kJ mol–1 from electrochemical equilibrium in both thelight and dark and at pHo 7.5 and 10. Phosphate uptake is veryslow in the dark ( 100 pmol m–2 s–1) and is light-activated(pHo 7.51.3 nmol m–2 s–1, pHo 10600 pmol m–2s–1). Uptake has an irreversible requirement for Mg2+in the medium. Uptake in the light is strongly Na+-dependent.Phosphate uptake was negatively electrogenic (net negative chargetaken up when transporting phosphate) at pHo 7.5, but positivelyelectrogenic at pHo 10. This seems to exclude a sodium motiveforce driven mechanism. An ATP-driven phosphate uptake mechanismneeds to have a stoichiometry of one phosphate taken up perATP (1 PO4 in/ATP) to be thermodynamically possible under allthe conditions tested in the present study. (Received June 16, 1997; Accepted September 4, 1997)  相似文献   

12.
The action of cytochalasins, actin-disrupting agents on human Kv1.5 channel (hKv1.5) stably expressed in Ltk cells was investigated using the whole cell patch-clamp technique. Cytochalasin B inhibited hKv1.5 currents rapidly and reversibly at +60 mV in a concentration-dependent manner with an IC50 of 4.2 µM. Cytochalasin A, which has a structure very similar to cytochalasin B, inhibited hKv1.5 (IC50 of 1.4 µM at +60 mV). Pretreatment with other actin filament disruptors cytochalasin D and cytochalasin J, and an actin filament stabilizing agent phalloidin had no effect on the cytochalasin B-induced inhibition of hKv1.5 currents. Cytochalasin B accelerated the decay rate of inactivation for the hKv1.5 currents. Cytochalasin B-induced inhibition of the hKv1.5 channels was voltage dependent with a steep increase over the voltage range of the channel's opening. However, the inhibition exhibited voltage independence over the voltage range in which channels are fully activated. Cytochalasin B produced no significant effect on the steady-state activation or inactivation curves. The rate constants for association and dissociation of cytochalasin B were 3.7 µM/s and 7.5 s–1, respectively. Cytochalasin B produced a use-dependent inhibition of hKv1.5 current that was consistent with the slow recovery from inactivation in the presence of the drug. Cytochalasin B (10 µM) also inhibited an ultrarapid delayed rectifier K+ current (IK,ur) in human atrial myocytes. These results indicate that cytochalasin B primarily blocks activated hKv1.5 channels and endogenous IK,ur in a cytoskeleton-independent manner as an open-channel blocker. voltage-gated K+ channel; heart; open channel block  相似文献   

13.
Previously, we showed that the peakdensity of the transient outward K+ current(Ito) expressed in GH3 cells was different inthe S phase than in other phases of the cell cycle. Using cellsynchronization, we show here that Ito dropsprecisely at the quiescent (G0 phase)/proliferating transition. This change is not due to a modification in the voltage dependence of Ito, but rather to a modificationin its inactivation kinetics. Molecular determination of K+channel subunits showed that Ito required theexpression of Kv1.4, Kv4.1, and Kv4.3. We found that the increase inIto density during the quiescent state wasaccompanied by an increase in Kv1.4 protein expression, whereas Kv4.3expression remained unchanged. We further demonstrate that the linkbetween Ito expression and cell proliferation isnot mediated by variations in cell excitability. These results providenew evidence for the cell cycle dependence ofIto expression, which could be relevant inunderstanding the mechanisms leading to pituitary adenomas.

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14.
The possiblerole of altered extracellular Ca2+concentration([Ca2+]o)in skeletal muscle fatigue was tested on isolated slow-twitch soleusand fast-twitch extensor digitorum longus muscles of the mouse. Thefollowing findings were made. 1) Achange from the control solution (1.3 mM[Ca2+]o)to 10 mM[Ca2+]o,or to nominally Ca2+-freesolutions, had little effect on tetanic force in nonfatigued muscle.2) Almost complete restoration oftetanic force was induced by 10 mM[Ca2+]oin severely K+-depressed muscle(extracellular K+ concentration of10-12 mM). This effect was attributed to a 5-mV reversal of theK+-induced depolarization andsubsequent restoration of ability to generate action potentials(inferred by using the twitch force-stimulation strength relationship).3) Tetanic force depressed bylowered extracellular Na+concentration (40 mM) was further reduced with 10 mM[Ca2+]o.4) Tetanic force loss at elevatedextracellular K+ concentration (8 mM) and lowered extracellular Na+concentration (100 mM) was partially reversed with 10 mM[Ca2+]oor markedly exacerbated with low[Ca2+]o.5) Fatigue induced by using repeatedtetani in soleus was attenuated at 10 mM[Ca2+]o(due to increased resting and evoked forces) and exacerbated at low[Ca2+]o.These combined results suggest, first, that raised[Ca2+]oprotects against fatigue rather than inducing it and, second, that aconsiderable depletion of[Ca2+]oin the transverse tubules may contribute to fatigue.

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15.
Polyamines are essential for cell migrationduring early mucosal restitution after wounding in the gastrointestinaltract. Activity of voltage-gated K+ channels (Kv) controlsmembrane potential (Em) that regulates cytoplasmicfree Ca2+ concentration([Ca2+]cyt) by governing thedriving force for Ca2+ influx. This study determinedwhether polyamines are required for the stimulation of cell migrationby altering K+ channel gene expression,Em, and[Ca2+]cyt in intestinal epithelialcells (IEC-6). The specific inhibitor of polyamine synthesis,-difluoromethylornithine (DFMO, 5 mM), depleted cellularpolyamines (putrescine, spermidine, and spermine), selectivelyinhibited Kv1.1 channel (a delayed-rectifier Kv channel) expression,and resulted in membrane depolarization. Because IEC-6 cells did notexpress voltage-gated Ca2+ channels, the depolarizedEm in DFMO-treated cells decreased [Ca2+]cyt as a result of reduceddriving force for Ca2+ influx through capacitativeCa2+ entry. Migration was reduced by 80% in thepolyamine-deficient cells. Exogenous spermidine not only reversed theeffects of DFMO on Kv1.1 channel expression, Em,and [Ca2+]cyt but also restoredcell migration to normal. Removal of extracellular Ca2+ orblockade of Kv channels (by 4-aminopyridine, 1-5 mM) significantly inhibited normal cell migration and prevented the restoration of cellmigration by exogenous spermidine in polyamine-deficient cells. Theseresults suggest that polyamine-dependent intestinal epithelial cellmigration may be due partially to an increase of Kv1.1 channelexpression. The subsequent membrane hyperpolarization raises[Ca2+]cyt by increasing the drivingforce (the electrochemical gradient) for Ca2+ influx andthus stimulates cell migration.

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16.
The choroid plexuses secrete, and maintain the composition of, the cerebrospinal fluid. K+ channels play an important role in these processes. In this study the molecular identity and properties of the delayed-rectifying K+ (Kv) conductance in rat choroid plexus epithelial cells were investigated. Whole cell K+ currents were significantly reduced by 10 nM dendrotoxin-K and 1 nM margatoxin, which are specific inhibitors of Kv1.1 and Kv1.3 channels, respectively. A combination of dendrotoxin-K and margatoxin caused a depolarization of the membrane potential in current-clamp experiments. Western blot analysis indicated the presence of Kv1.1 and Kv1.3 proteins in the choroid plexus. Furthermore, the Kv1.3 and Kv1.1 proteins appear to be expressed in the apical membrane of the epithelial cells in immunocytochemical studies. The Kv conductance was inhibited by 1 µM serotonin (5-HT), with maximum inhibition to 48% of control occurring in 8 min (P < 0.05 by Student's t-test for paired data). Channel inhibition by 5-HT was prevented by the 5-HT2C antagonist mesulergine (300 nM). It was also attenuated in the presence of calphostin C (a protein kinase C inhibitor). The conductance was partially inhibited by 1,2-dioctanoyl-sn-glycerol and phorbol 12-myristate 13-acetate, both of which activate protein kinase C. These data suggest that 5-HT acts at 5-HT2C receptors to activate protein kinase C, which inhibits the Kv channels. In conclusion, Kv1.1 and Kv1.3 channels make a significant contribution to K+ efflux at the apical membrane of the choroid plexus. delayed-rectifying potassium channel; serotonin  相似文献   

17.
The electrical conductance of the plasmalemma of cells of Charainflata, due to the diffusion of ions, consists predominantlyof K+, Cl and leak components. When the membrane electricalpotential difference is stepped in a negative direction witha voltage-clamp, the resulting inward current has componentsIK, ICl and IL (leak). During such voltage-clamp steps IK isinactivated, and Ic activated with voltage-dependent half-times.Increases in the external NaCl concentration reduce the magnitudeof IK and increase the magnitude of Ic, but reduce the half-timeof inactivation or activation. The NaCl-induced changes in Ikand ICl and their kinetics were more pronounced at pH0 =6.5than at pH0 =9.5. When the concentration of external CaCl2 wasincreased, Ik, ICl and the half-time of inactivation, (T1/2),of Ik were all reduced. The half-time of activation of ICl wasincreased. The NaCI-induced changes could result from increases in bothexternal ion concentration and osmotic pressure. Previous experimentshave shown that an increase in external osmotic pressure alonealters the properties of the conductances. In this paper weattempt to separate the purely ionic effects from the osmoticones. Key words: Chara inflata, ionic effects, K+ and Cl currents  相似文献   

18.
The Kv1.3 channel inactivates via the P/C-type mechanism, which is influenced by a histidine residue in the pore region (H399, equivalent of Shaker 449). Previously we showed that the electric field of the protonated histidines at low extracellular pH (pHe) creates a potential barrier for K+ ions just outside the pore that hinders their exit from the binding site controlling inactivation (control site) thereby slowing inactivation kinetics. Here we examined the effects of extracellular potassium [K+]e and pHe on the rate of inactivation of Kv1.3 using whole-cell patch-clamp. We found that in 150 mM [K+]e inactivation was accelerated upon switching to pHe 5.5 as opposed to the slowing at 5 mM [K+]e. The transition from slowing to acceleration occurred at 40 mM [K+]e, whereas this "turning point" was at 20 mM [K+]e for inward currents. The rate of entry of Ba(2+) ions from the extracellular space to the control site was significantly slowed by low pHe in wild-type hKv1.3, but it was insensitive to pH(e) in H399K and H399L mutants. Based on these observations we expanded our model and propose that the potential barrier created by the protonated histidines impedes the passage of K+ ions between the extracellular medium and the control site in both directions and the effect on inactivation rate (acceleration or slowing) depends on the relative contribution of filling from the extracellular and intracellular sides.  相似文献   

19.
This study examines whether fluid pressure (FP) modulates the L-type Ca2+ channel in cardiomyocytes and investigates the underlying cellular mechanism(s) involved. A flow of pressurized (16 dyn/cm2) fluid, identical to that bathing the myocytes, was applied onto single rat ventricular myocytes using a microperfusion method. The Ca2+ current (ICa) and cytosolic Ca2+ signals were measured using a whole cell patch-clamp and confocal imaging, respectively. It was found that the FP reversibly suppressed ICa (by 25%) without altering the current-voltage relationships, and it accelerated the inactivation of ICa. The level of ICa suppression by FP depended on the level and duration of pressure. The Ba2+ current through the Ca2+ channel was only slightly decreased by the FP (5%), suggesting an indirect inhibition of the Ca2+ channel during FP stimulation. The cytosolic Ca2+ transients and the basal Ca2+ in field-stimulated ventricular myocytes were significantly increased by the FP. The effects of the FP on the ICa and on the Ca2+ transient were resistant to the stretch-activated channel inhibitors, GsMTx-4 and streptomycin. Dialysis of myocytes with high concentrations of BAPTA, the Ca2+ buffer, eliminated the FP-induced acceleration of ICa inactivation and reduced the inhibitory effect of the FP on ICa by 80%. Ryanodine and thapsigargin, abolishing sarcoplasmic reticulum Ca2+ release, eliminated the accelerating effect of FP on the ICa inactivation, and they reduced the inhibitory effect of FP on the ICa. These results suggest that the fluid pressure indirectly suppresses the Ca2+ channel by enhancing the Ca2+-induced intracellular Ca2+ release in rat ventricular myocytes. L-type Ca2+ current; fluid pressure; ventricular myocytes; cytosolic Ca2+ transient  相似文献   

20.
We usedsingle-channel recording techniques to identify and characterize alarge-conductance,Ca2+-independentK+ channel in the colonicsecretory cell line T84. In symmetric potassium gluconate, this channelhad a linear current-voltage relationship with a single-channelconductance of 161 pS. Channel open probability(Po) wasincreased at depolarizing potentials. Partial substitution of bathK+ withNa+ indicated a permeability ratioof K+ toNa+ of 25:1. ChannelPo was reduced byextracellular Ba2+. Event-durationanalysis suggested a linear kinetic model for channel gating having asingle open state and three closed states: C3C2C1O.Arachidonic acid (AA) increased thePo of thechannel, with an apparent stimulatory constant(Ks)of 1.39 µM. Neither channel open time (O) nor the fast closed time(C1) was affected by AA. Incontrast, AA dramatically reduced mean closed time by decreasing bothC3 andC2. Thecis-unsaturated fatty acid linoleate increased Poalso, whereas the saturated fatty acid myristate and thetrans-unsaturated fatty acid elaidatedid not affectPo. This channelis activated also by negative pressure applied to the pipette duringinside-out recording. Thus we determined the effect of thestretch-activated channel blockers amiloride and Gd3+ on theK+ channel after activation by AA.Amiloride (2 mM) on the extracellular side reduced single-channelamplitude in a voltage-dependent manner, whereasGd3+ (100 µM) had no effect onchannel activity. Activation of this K+ channel may be important duringstimulation of Cl secretionby agonists that use AA as a second messenger (e.g., vasoactiveintestinal polypeptide, adenosine) or during the volume regulatoryresponse to cell swelling.

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