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1.
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   

2.
Expression of TNF-, a pleiotropic cytokine, is elevated during stroke and cerebral ischemia. TNF- regulates arterial diameter, although mechanisms mediating this effect are unclear. In the present study, we tested the hypothesis that TNF- regulates the diameter of resistance-sized (150-µm diameter) cerebral arteries by modulating local and global intracellular Ca2+ signals in smooth muscle cells. Laser-scanning confocal imaging revealed that TNF- increased Ca2+ spark and Ca2+ wave frequency but reduced global intracellular Ca2+ concentration ([Ca2+]i) in smooth muscle cells of intact arteries. TNF- elevated reactive oxygen species (ROS) in smooth muscle cells of intact arteries, and this increase was prevented by apocynin or diphenyleneiodonium (DPI), both of which are NAD(P)H oxidase blockers, but was unaffected by inhibitors of other ROS-generating enzymes. In voltage-clamped (–40 mV) cells, TNF- increased the frequency and amplitude of Ca2+ spark-induced, large-conductance, Ca2+-activated K+ (KCa) channel transients 1.7- and 1.4-fold, respectively. TNF--induced transient KCa current activation was reversed by apocynin or by Mn(III)tetrakis(1-methyl-4-pyridyl)porphyrin (MnTMPyP), a membrane-permeant antioxidant, and was prevented by intracellular dialysis of catalase. TNF- induced reversible and similar amplitude dilations in either endothelium-intact or endothelium-denuded pressurized (60 mmHg) cerebral arteries. MnTMPyP, thapsigargin, a sarcoplasmic reticulum Ca2+-ATPase blocker that inhibits Ca2+ sparks, and iberiotoxin, a KCa channel blocker, reduced TNF--induced vasodilations to between 15 and 33% of control. In summary, our data indicate that TNF- activates NAD(P)H oxidase, resulting in an increase in intracellular H2O2 that stimulates Ca2+ sparks and transient KCa currents, leading to a reduction in global [Ca2+]i, and vasodilation. cerebrovascular circulation; ryanodine-sensitive Ca2+ release channel; Ca2+-activated K+ channel; reactive oxygen species; vasodilation  相似文献   

3.
A fluid streamthrough a microtube was applied to cultured human aortic endothelialcells to investigate the endothelial responses of both the ioniccurrents and intracellular Ca2+concentration([Ca2+]i)to mechanical stimulation. The fluid stream induced an increase in[Ca2+]ithat was dependent on both the flow rate and the extracellular Ca2+ concentration.Gd3+ and niflumic acid inhibitedthe fluid stream-induced increase in[Ca2+]i,whereas Ba2+ andtetraethylammonium ion exhibited no effect. The fluid stream-induced [Ca2+]iincrease was accompanied by the activation of an inward current at52.8 mV. The reversal potential of the fluid stream-induced current shifted to positive potentials when the externalCl concentration wasreduced but was not affected by variation of the externalNa+ concentration. During theexposure to the fluid stream,[Ca2+]iwas voltage dependent, i.e., depolarization decreased[Ca2+]i.We therefore conclude that the fluid stream-induced current is largelycarried by Cl and that theCl current may thus play arole in modulating the Ca2+ influxby altering the membrane potential of endothelial cells.

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4.
Previous studies have shown that inhibition of L-type Ca2+ current (ICa) by cytosolic free Mg2+ concentration ([Mg2+]i) is profoundly affected by activation of cAMP-dependent protein kinase pathways. To investigate the mechanism underlying this counterregulation of ICa, rat cardiac myocytes and tsA201 cells expressing L-type Ca2+ channels were whole cell voltage-clamped with patch pipettes in which [Mg2+] ([Mg2+]p) was buffered by citrate and ATP. In tsA201 cells expressing wild-type Ca2+ channels (1C/2A/2), increasing [Mg2+]p from 0.2 mM to 1.8 mM decreased peak ICa by 76 ± 4.5% (n = 7). Mg2+-dependent modulation of ICa was also observed in cells loaded with ATP--S. With 0.2 mM [Mg2+]p, manipulating phosphorylation conditions by pipette application of protein kinase A (PKA) or phosphatase 2A (PP2A) produced large changes in ICa amplitude; however, with 1.8 mM [Mg2+]p, these same manipulations had no significant effect on ICa. With mutant channels lacking principal PKA phosphorylation sites (1C/S1928A/2A/S478A/S479A/2), increasing [Mg2+]p had only small effects on ICa. However, when channel open probability was increased by 1C-subunit truncation (1C1905/2A/S478A/S479A/2), increasing [Mg2+]p greatly reduced peak ICa. Correspondingly, in myocytes voltage-clamped with pipette PP2A to minimize channel phosphorylation, increasing [Mg2+]p produced a much larger reduction in ICa when channel opening was promoted with BAY K8644. These data suggest that, around its physiological concentration range, cytosolic Mg2+ modulates the extent to which channel phosphorylation regulates ICa. This modulation does not necessarily involve changes in channel phosphorylation per se, but more generally appears to depend on the kinetics of gating induced by channel phosphorylation. voltage-gated Ca2+ channel; cardiac myocytes; human embryonic kidney cells; protein kinase A; protein phosphatase 2A  相似文献   

5.
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   

6.
The effect of -adrenergic stimulation on cardiac Na+/Ca2+ exchange has been controversial. To clarify the effect, we measured Na+/Ca2+ exchange current (INCX) in voltage-clamped guinea pig, mouse, and rat ventricular cells. When INCX was defined as a 5 mM Ni2+-sensitive current in guinea pig ventricular myocytes, 1 µM isoproterenol apparently augmented INCX by 32%. However, this increase was probably due to contamination of the cAMP-dependent Cl current (CFTR-Cl current, ICFTR-Cl), because Ni2+ inhibited the activation of ICFTR-Cl by 1 µM isoproterenol with a half-maximum concentration of 0.5 mM under conditions where INCX was suppressed. Five or ten millimolar Ni2+ did not inhibit ICFTR-Cl activated by 10 µM forskolin, an activator of adenylate cyclase, suggesting that Ni2+ acted upstream of adenylate cyclase in the -adrenergic signaling pathway. Furthermore, in a low-extracellular Cl bath solution, 1 µM isoproterenol did not significantly alter the amplitude of Ni2+-sensitive INCX at +50 mV, which is close to the reversal potential of ICFTR-Cl. No change in INCX amplitude was induced by 10 µM forskolin. When INCX was activated by extracellular Ca2+, it was not significantly affected by 1 µM isoproterenol in guinea pig, mouse, or rat ventricular cells. We concluded that -adrenergic stimulation does not have significant effects on INCX in guinea pig, mouse, or rat ventricular myocytes. cystic fibrosis transmembrane conductance regulator; nickel ion  相似文献   

7.
The role of the Na+ pump2-subunit in Ca2+ signaling was examined inprimary cultured astrocytes from wild-type(2+/+ = WT) mouse fetuses and thosewith a null mutation in one [2+/ = heterozygote (Het)] or both [2/ = knockout (KO)] 2 genes. Na+ pump catalytic() subunit expression was measured by immunoblot; cytosol[Na+] ([Na+]cyt) and[Ca2+] ([Ca2+]cyt) weremeasured with sodium-binding benzofuran isophthalate and fura 2 byusing digital imaging. Astrocytes express Na+ pumpswith both 1- (80% of total ) and2- (20% of total ) subunits. Het astrocytesexpress 50% of normal 2; those from KO express none.Expression of 1 is normal in both Het and KO cells.Resting [Na+]cyt = 6.5 mM in WT, 6.8 mMin Het (P > 0.05 vs. WT), and 8.0 mM in KO cells(P < 0.001); 500 nM ouabain (inhibits only2) equalized [Na+]cyt at 8 mMin all three cell types. Resting[Ca2+]cyt = 132 nM in WT, 162 nM in Het,and 196 nM in KO cells (both P < 0.001 vs. WT).Cyclopiazonic acid (CPA), which inhibits endoplasmic reticulum (ER)Ca2+ pumps and unloads the ER, induces transient (inCa2+-free media) or sustained (in Ca2+-repletemedia) elevation of [Ca2+]cyt. TheseCa2+ responses to 10 µM CPA were augmented in Het as wellas KO cells. When CPA was applied in Ca2+-free media, thereintroduction of Ca2+ induced significantly largertransient rises in [Ca2+]cyt (due toCa2+ entry through store-operated channels) in Het and KOcells than in WT cells. These results correlate with published evidencethat 2 Na+ pumps andNa+/Ca2+ exchangers are confined to plasmamembrane microdomains that overlie the ER. The data suggest thatselective reduction of 2 Na+ pump activitycan elevate local [Na+] and, viaNa+/Ca2+ exchange, [Ca2+] in thetiny volume of cytosol between the plasma membrane and ER. This, inturn, augments adjacent ER Ca2+ stores and therebyamplifies Ca2+ signaling without elevating bulk[Na+]cyt.

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

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9.
Ca+-induced Ca2+ release (CICR) in the heart involves local Ca2+ signaling between sarcolemmal L-type Ca2+ channels (dihydropyridine receptors, DHPRs) and type 2 ryanodine receptors (RyR2s) in the sarcoplasmic reticulum (SR). We reconstituted cardiac-like CICR by expressing a cardiac dihydropyridine-insensitive (T1066Y/Q1070M) 1-subunit (1CYM) and RyR2 in myotubes derived from RyR1-knockout (dyspedic) mice. Myotubes expressing 1CYM and RyR2 were vesiculated and exhibited spontaneous Ca2+ oscillations that resulted in chaotic and uncontrolled contractions. Coexpression of FKBP12.6 (but not FKBP12.0) with 1CYM and RyR2 eliminated vesiculations and reduced the percentage of myotubes exhibiting uncontrolled global Ca2+ oscillations (63% and 13% of cells exhibited oscillations in the absence and presence of FKBP12.6, respectively). 1CYM/RyR2/FKBP12.6-expressing myotubes exhibited robust and rapid electrically evoked Ca2+ transients that required extracellular Ca2+. Depolarization-induced Ca2+ release in 1CYM/RyR2/FKBP12.6-expressing myotubes exhibited a bell-shaped voltage dependence that was fourfold larger than that of myotubes expressing 1CYM alone (maximal fluorescence change was 2.10 ± 0.39 and 0.54 ± 0.07, respectively), despite similar Ca2+ current densities. In addition, the gain of CICR in 1CYM/RyR2/FKBP12.6-expressing myotubes exhibited a nonlinear voltage dependence, being considerably larger at threshold potentials. We used this molecular model of local 1C-RyR2 signaling to assess the ability of FKBP12.6 to inhibit spontaneous Ca2+ release via a phosphomimetic mutation in RyR2 (S2808D). Electrically evoked Ca2+ release and the incidence of spontaneous Ca2+ oscillations did not differ in wild-type RyR2- and S2808D-expressing myotubes over a wide range of FKBP12.6 expression. Thus a negative charge at S2808 does not alter in situ regulation of RyR2 by FKBP12.6. heart failure; dihydropyridine receptor; excitation-contraction coupling  相似文献   

10.
Certain angina and coronary artery disease forms do not respond to Ca2+ channel blockers, and a role for vasoactive eicosanoids such as PGF2 in Ca2+ antagonist-insensitive coronary vasospasm is suggested; however, the signaling mechanisms are unclear. We investigated whether PGF2-induced coronary smooth muscle contraction is Ca2+ antagonist insensitive and involves activation of a PKC-dependent pathway. We measured contraction in single porcine coronary artery smooth muscle cells and intracellular free Ca2+ concentration ([Ca2+]i) in fura 2-loaded cells and examined cytosolic and particulate fractions for PKC activity and reactivity with isoform-specific PKC antibodies. In Hanks' solution (1 mM Ca2+), PGF2 (10-5 M) caused transient [Ca2+]i increase followed by maintained [Ca2+]i increase and 34% cell contraction. Ca2+ channel blockers verapamil and diltiazem (10-6 M) abolished maintained PGF2-induced [Ca2+]i increase but only partially inhibited PGF2-induced cell contraction to 17%. Verapamil-insensitive PGF2 contraction was inhibited by PKC inhibitors GF-109203X, calphostin C, and -PKC V1-2. PGF2 caused Ca2+-dependent -PKC and Ca2+-independent -PKC translocation from cytosolic to particulate fractions that was inhibited by calphostin C. Verapamil abolished PGF2-induced -but not -PKC translocation. PMA (10-6 M), a direct activator of PKC, caused 21% contraction with no significant [Ca2+]i increase and -PKC translocation that were inhibited by calphostin C but not verapamil. Membrane depolarization by 51 mM KCl, which stimulates Ca2+ influx, caused 36% cell contraction and [Ca2+]i increase that were inhibited by verapamil but not GF-109203X or calphostin C and did not cause - or -PKC translocation. Thus a significant component of PGF2-induced contraction of coronary smooth muscle is Ca2+ antagonist insensitive, involves Ca2+-independent -PKC activation and translocation, and may represent a signaling mechanism of Ca2+ antagonist-resistant coronary vasospasm. eicosanoids; calcium; vascular smooth muscle  相似文献   

11.
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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12.
Toxin- (T)from the Brazilian scorpion Tityusserrulatus venom caused a concentration- andtime-dependent increase in the release of norepinephrine andepinephrine from bovine adrenal medullary chromaffin cells. T was~200-fold more potent than veratridine judged fromEC50 values, although the maximalsecretory efficacy of veratridine was 10-fold greater than that of T(1.2 vs. 12 µg/ml of catecholamine release). The combination of both toxins produced a synergistic effect that was particularly drastic at 5 mM extracellular Ca2+concentration([Ca2+]o),when 30 µM veratridine plus 0.45 µM T were used. T (0.45 µM) doubled the basal uptake of45Ca2+,whereas veratridine (100 µM) tripled it. Again, a drastic synergism in enhancing Ca2+ entry was seenwhen T and veratridine were combined; this was particularlypronounced at 5 mM[Ca2+]o.Veratridine induced oscillations of cytosolicCa2+ concentration([Ca2+]i)in single fura 2-loaded cells without elevation of basal levels. Incontrast, T elevated basal[Ca2+]ilevels, causing only small oscillations. When added together, T andveratridine elevated the basal levels of[Ca2+]iwithout causing large oscillations. T shifted the current-voltage (I-V) curve forNa+ channel current to the left.The combination of T with veratridine increased the shift of theI-V curve to the left, resulting in agreater recruitment of Na+channels at more hyperpolarizing potentials. This led to enhanced andmore rapid accumulation of Na+ inthe cell, causing cell depolarization, the opening of voltage-dependent Ca2+ channels, andCa2+ entry and secretion.

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13.
To study the effects of -opioid receptor stimulation onintracellular Ca2+ concentration([Ca2+]i)homeostasis during extracellular acidosis, we determined the effects of-opioid receptor stimulation on[Ca2+]iresponses during extracellular acidosis in isolated single ratventricular myocytes, by a spectrofluorometric method. U-50488H (10-30 µM), a selective -opioid receptor agonist, dosedependently decreased the electrically induced[Ca2+]itransient, which results from the influx ofCa2+ and the subsequentmobilization of Ca2+ from thesarcoplasmic reticulum (SR). U-50488H (30 µM) also increased theresting[Ca2+]iand inhibited the[Ca2+]itransient induced by caffeine, which mobilizesCa2+ from the SR, indicating thatthe effects of the -opioid receptor agonist involved mobilization ofCa2+ from its intracellular poolinto the cytoplasm. The Ca2+responses to 30 µM U-50488H were abolished by 5 µMnor-binaltorphimine, a selective -opioid receptorantagonist, indicating that the event was mediated by the -opioidreceptor. The effects of the agonist on[Ca2+]iand the electrically induced[Ca2+]itransient were significantly attenuated when the extracellular pH(pHe) was loweredto 6.8, which itself reduced intracellular pH(pHi) and increased[Ca2+]i.The inhibitory effects of U-50488H were restored during extracellular acidosis in the presence of 10 µM ethylisopropyl amiloride, a potentNa+/H+exchange blocker, or 0.2 mM Ni2+,a putativeNa+/Ca2+exchange blocker. The observations indicate that acidosismay antagonize the effects of -opioid receptor stimulation viaNa+/H+andNa+/Ca2+exchanges. When glucose at 50 mM, known to activate theNa+/H+exchange, was added, both the resting[Ca2+]iand pHi increased. Interestingly,the effects of U-50488H on [Ca2+]iand the electrically induced[Ca2+]itransient during superfusion with glucose were significantly attenuated; this mimicked the responses during extracellular acidosis. When a high-Ca2+ (3 mM) solutionwas superfused, the resting[Ca2+]iincreased; the increase was abolished by 0.2 mMNi2+, but thepHi remained unchanged. Like theresponses to superfusion with high-concentration glucose andextracellular acidosis, the responses of the[Ca2+]iand electrically induced[Ca2+]itransients to 30 µM U-50488H were also significantly attenuated. Results from the present study demonstrated for the first time thatextracellular acidosis antagonizes the effects of -opioid receptorstimulation on the mobilization ofCa2+ from SR. Activation of bothNa+/H+andNa+/Ca2+exchanges, leading to an elevation of[Ca2+]i,may be responsible for the antagonistic action of extracellular acidosis against -opioid receptor stimulation.

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14.
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   

15.
We previously reported that uniaxial continuous stretch in human umbilical vein endothelial cells (HUVECs) induced interleukin-6 (IL-6) secretion via IB kinase (IKK)/nuclear factor-B (NF-B) activation. The aim of the present study was to clarify the upstream signaling mechanism responsible for this phenomenon. Stretch-induced IKK activation and IL-6 secretion were inhibited by application of 51 integrin-inhibitory peptide (GRGDNP), phosphatidylinositol 3-kinase inhibitor (LY-294002), phospholipase C- inhibitor (U-73122), or protein kinase C inhibitor (H7). Although depletion of intra- or extracellular Ca2+ pool using thapsigargin (TG) or EGTA, respectively, showed little effect, a TG-EGTA mixture significantly inhibited stretch-induced IKK activation and IL-6 secretion. An increase in the intracellular Ca2+ concentration ([Ca2+]i) upon continuous stretch was observed even in the presence of TG, EGTA, or GRGDNP, but not in a solution containing the TG-EGTA mixture, indicating that both integrin activation and [Ca2+]i rise are crucial factors for stretch-induced IKK activation and after IL-6 secretion in HUVECs. Furthermore, while PKC activity was inhibited by the TG-EGTA mixture, GRGDNP, LY-294002, or U-73122, PLC- activity was retarded by GRGDNP or LY-294002. These results indicate that continuous stretch-induced IL-6 secretion in HUVECs depends on outside-in signaling via integrins followed by a PI3-K-PLC--PKC-IKK-NF-B signaling cascade. Another crucial factor, [Ca2+]i increase, may at least be required to activate PKC needed for NF-B activation. nuclear factor-B; phosphatidylinositol 3-kinase; phospholipase C-; protein kinase C; intracellular Ca2+ concentration  相似文献   

16.
Modulation of the L-type current by sarcoplasmicreticulum (SR) Ca2+ release hasbeen examined in patch-clamped mouse myotubes. Inhibition of SRCa2+ release by inclusion ofryanodine in the internal solution shifted the half-activating voltage(V0.5) of theL-type current from 1.1 ± 2.1 to 7.7 ± 1.7 mV. Rutheniumred in the internal solution shiftedV0.5 from 5.4 ± 1.9 to 3.2 ± 4.1 mV. Chelation of myoplasmic Ca2+ with1,2-bis(2-aminophenoxy)ethane-N,N,N',N'-tetraaceticacid perfusion shiftedV0.5 from 4.4 ± 1.7 to 3.5 ± 3.3 mV and increased the peak current.Extracellular caffeine (1 mM), which should enhance SRCa2+ release, significantlydecreased the peak Ca2+ current.In low (0.1 mM) internal EGTA, myotube contraction was abolished byinternal perfusion with ryanodine or ruthenium red, whereas addition ofcaffeine to the extracellular solution lowered the contractilethreshold, indicating that these modulators of SRCa2+ release had the expectedeffects on contraction. Therefore, SR Ca2+ release appears to modulatethe sarcolemmal L-type current, suggesting a retrograde communicationfrom the SR to the sarcolemmal L-type channels inexcitation-contraction coupling.

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17.
The mitochondrial membrane potential (m) underlies many mitochondrial functions, including Ca2+ influx into the mitochondria, which allows them to serve as buffers of intracellular Ca2+. Spontaneous depolarizations of m, flickers, have been observed in isolated mitochondria and intact cells using the fluorescent cationic lipophile tetramethylrhodamine ethyl ester (TMRE), which distributes across the inner mitochondrial membrane in accordance with the Nernst equation. Flickers in cardiomyocytes have been attributed to uptake of Ca2+ released from the sarcoplasmic reticulum (SR) via ryanodine receptors in focal transients called Ca2+ sparks. We have shown previously that an increase in global Ca2+ in smooth muscle cells causes an increase in mitochondrial Ca2+ and depolarization of m. Here we sought to determine whether flickers in smooth muscle cells are caused by uptake of Ca2+ released focally in Ca2+ sparks. High-speed three-dimensional imaging was used to monitor m in freshly dissociated myocytes from toad stomach that were simultaneously voltage clamped at 0 mV to ensure the cytosolic TMRE concentration was constant and equal to the low level in the bath (2.5 nM). This approach allows quantitative analysis of flickers as we have previously demonstrated. Depletion of SR Ca2+ not only failed to eliminate flickers but rather increased their magnitude and frequency somewhat. Flickers were not altered in magnitude or frequency by ryanodine or xestospongin C, inhibitors of intracellular Ca2+ release, or by cyclosporin A, an inhibitor of the permeability transition pore. Focal Ca2+ release from the SR does not cause flickers in the cells employed here. mitochondria; mitochondrial membrane potential; intracellular calcium; permeability transition pore; sarcoplasmic reticulum  相似文献   

18.
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   

19.
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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20.
We have examined theinteraction between muscarinic and 2-adrenergic receptoractivation on inositol phosphate (IP) formation in the nonpigmentedcells of the ciliary body epithelium (NPE cells) of the rabbit. We havecompared these changes with those previously observed in theintracellular free Ca2+ concentration. Whereas muscarinicreceptor activation causes an increase in intracellularCa2+ and IP formation, activation of2-receptors does not significantly increase eitherintracellular Ca2+ or IPs over basal levels. However,simultaneous activation of muscarinic and 2-adrenergicreceptors with the specific agonists carbachol and UK-14304 producesmassive Ca2+ increases and results in a synergisticincrease in IP formation. This synergistic IP formation is inhibited byboth muscarinic and 2-adrenergic receptor antagonists aswell as by pertussis toxin and an inhibitor of phospholipase C. IPformation is predominantly independent of intracellularCa2+, because it is decreased but not prevented by blockingthe entry of Ca2+ with LaCl3 or chelatingintracellular Ca2+ with1,2-bis(2-aminophenoxy)ethane-N,N,N',N'-tetraacetic acid. Thus synergistic IP formation underlies, at least in part, the synergistic increase in intracellular Ca2+ resulting fromsimultaneous activation of muscarinic and 2-adrenergic receptors.

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