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1.
Activation of K+ channels induces apoptosis in vascular smooth muscle cells   总被引:10,自引:0,他引:10  
Intracellular K+ playsan important role in controlling the cytoplasmic ion homeostasis formaintaining cell volume and inhibiting apoptotic enzymes in thecytosol and nucleus. Cytoplasmic K+ concentration is mainlyregulated by K+ uptake viaNa+-K+-ATPase and K+ efflux throughK+ channels in the plasma membrane. Carbonyl cyanidep-trifluoromethoxyphenylhydrazone (FCCP), a protonophorethat dissipates the H+ gradient across the inner membraneof mitochondria, induces apoptosis in many cell types. In ratand human pulmonary artery smooth muscle cells (PASMC), FCCP opened thelarge-conductance, voltage- and Ca2+-sensitiveK+ (maxi-K) channels, increased K+ currentsthrough maxi-K channels [IK(Ca)], and inducedapoptosis. Tetraethylammonia (1 mM) and iberiotoxin (100 nM)decreased IK(Ca) by blocking the sarcolemmalmaxi-K channels and inhibited the FCCP-induced apoptosis inPASMC cultured in media containing serum and growth factors.Furthermore, inhibition of K+ efflux by raisingextracellular K+ concentration from 5 to 40 mM alsoattenuated PASMC apoptosis induced by FCCP and theK+ ionophore valinomycin. These results suggest thatFCCP-mediated apoptosis in PASMC is partially due to anincrease of maxi-K channel activity. The resultant K+ lossthrough opened maxi-K channels may serve as a trigger for cellshrinkage and caspase activation, which are major characteristics ofapoptosis in pulmonary vascular smooth muscle cells.

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2.
Overexpression of human KCNA5 increases IK V and enhances apoptosis   总被引:1,自引:0,他引:1  
Apoptotic cell shrinkage, an early hallmark of apoptosis, is regulated by K+ efflux and K+ channel activity. Inhibited apoptosis and downregulated K+ channels in pulmonary artery smooth muscle cells (PASMC) have been implicated in development of pulmonary vascular medial hypertrophy and pulmonary hypertension. The objective of this study was to test the hypothesis that overexpression of KCNA5, which encodes a delayed-rectifier voltage-gated K+ (Kv) channel, increases K+ currents and enhances apoptosis. Transient transfection of KCNA5 caused 25- to 34-fold increase in KCNA5 channel protein level and 24- to 29-fold increase in Kv channel current (IK(V)) at +60 mV in COS-7 and rat PASMC, respectively. In KCNA5-transfected COS-7 cells, staurosporine (ST)-mediated increases in caspase-3 activity and the percentage of cells undergoing apoptosis were both enhanced, whereas basal apoptosis (without ST stimulation) was unchanged compared with cells transfected with an empty vector. In rat PASMC, however, transfection of KCNA5 alone caused marked increase in basal apoptosis, in addition to enhancing ST-mediated apoptosis. Furthermore, ST-induced apoptotic cell shrinkage was significantly accelerated in COS-7 cells and rat PASMC transfected with KCNA5, and blockade of KCNA5 channels with 4-aminopyridine (4-AP) reduced K+ currents through KCNA5 channels and inhibited ST-induced apoptosis in KCNA5-transfected COS-7 cells. Overexpression of the human KCNA5 gene increases K+ currents (i.e., K+ efflux or loss), accelerates apoptotic volume decrease (AVD), increases caspase-3 activity, and induces apoptosis. Induction of apoptosis in PASMC by KCNA5 gene transfer may serve as an important strategy for preventing the progression of pulmonary vascular wall thickening and for treating patients with idiopathic pulmonary arterial hypertension (IPAH). potassium ion channel; pulmonary hypertension  相似文献   

3.
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   

4.
Acute hypoxia causes pulmonary vasoconstriction in part by inhibiting voltage-gated K+ (Kv) channel activity in pulmonary artery smooth muscle cells (PASMC). The hypoxia-mediated decrease in Kv currents [IK(V)] is selective to PASMC; hypoxia has little effect on IK(V) in mesenteric artery smooth muscle cells (MASMC). Functional Kv channels are homo- and/or heterotetramers of pore-forming -subunits and regulatory -subunits. KCNA5 is a Kv channel -subunit that forms functional Kv channels in PASMC and regulates resting membrane potential. We have shown that acute hypoxia selectively inhibits IK(V) through KCNA5 channels in PASMC. Overexpression of the human KCNA5 gene increased IK(V) and caused membrane hyperpolarization in HEK-293, COS-7, and rat MASMC and PASMC. Acute hypoxia did not affect IK(V) in KCNA5-transfected HEK-293 and COS-7 cells. However, overexpression of KCNA5 in PASMC conferred its sensitivity to hypoxia. Reduction of PO2 from 145 to 35 mmHg reduced IK(V) by 40% in rat PASMC transfected with human KCNA5 but had no effect on IK(V) in KCNA5-transfected rat MASMC (or HEK and COS cells). These results indicate that KCNA5 is an important Kv channel that regulates resting membrane potential and that acute hypoxia selectively reduces KCNA5 channel activity in PASMC relative to MASMC and other cell types. Because Kv channels (including KCNA5) are ubiquitously expressed in PASMC and MASMC, the observation from this study indicates that a hypoxia-sensitive mechanism essential for inhibiting KCNA5 channel activity is exclusively present in PASMC. The divergent effect of hypoxia on IK(V) in PASMC and MASMC also may be due to different expression levels of KCNA5 channels. membrane potential; potassium channels; vascular smooth muscle  相似文献   

5.
Properties of ATP-dependent K(+) channels in adrenocortical cells   总被引:6,自引:0,他引:6  
Bovine adrenocortical zona fasciculata (AZF)cells express a novel ATP-dependent K+-permeable channel(IAC). Whole cell and single-channel recordings were used to characterize IAC channels withrespect to ionic selectivity, conductance, and modulation bynucleotides, inorganic phosphates, and angiotensin II (ANG II). Inoutside-out patch recordings, the activity of unitaryIAC channels is enhanced by ATP in the patchpipette. These channels were K+ selective with nomeasurable Na+ or Ca2+ conductance. Insymmetrical K+ solutions with physiological concentrationsof divalent cations (M2+), IACchannels were outwardly rectifying with outward and inward chordconductances of 94.5 and 27.0 pS, respectively. In the absence ofM2+, conductance was nearly ohmic. Hydrolysis-resistantnucleotides including AMP-PNP and NaUTP were more potent than MgATP asactivators of whole cell IAC currents. Inorganicpolytriphosphate (PPPi) dramatically enhancedIAC activity. In current-clamp recordings, nucleotides and PPPi produced resting potentials in AZFcells that correlated with their effectiveness in activatingIAC. ANG II (10 nM) inhibited whole cellIAC currents when patch pipettes contained 5 mMMgATP but was ineffective in the presence of 5 mM NaUTP and 1 mM MgATP.Inhibition by ANG II was not reduced by selective kinase antagonists.These results demonstrate that IAC is adistinctive K+-selective channel whose activity isincreased by nucleotide triphosphates and PPPi.Furthermore, they suggest a model for IAC gatingthat is controlled through a cycle of ATP binding and hydrolysis.

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6.
K+ channels are differentially expressed throughout oligodendrocyte (Olg) development. KV1 family voltage-sensitive K+ channels have been implicated in proliferation and migration of Olg progenitor cell (OPC) stage, and inward rectifier K+ channels (KIR)4.1 are required for OPC differentiation to myelin-forming Olg. In this report we have identified a Shaw family K+ channel, KV3.1, that is involved in proliferation and migration of OPC and axon myelination. Application of anti-KV3.1 antibody or knockout of Kv3.1 gene decreased the sustained K+ current component of OPC by 50% and 75%, respectively. In functional assays block of KV3.1-specific currents or knockout of Kv3.1 gene inhibited proliferation and migration of OPC. Adult Kv3.1 gene-knockout mice had decreased diameter of axons and decreased thickness of myelin in optic nerves compared with age-matched wild-type littermates. Additionally, KV3.1 was identified as an associated protein of Olg-specific protein (OSP)/claudin-11 via yeast two-hybrid analysis, which was confirmed by coimmunoprecipitation and coimmunohistochemistry. In summary, the KV3.1 K+ current accounts for a significant component of the total K+ current in cells of the Olg lineage and, in association with OSP/claudin-11, plays a significant role in OPC proliferation and migration and myelination of axons. membrane potential; tight junction; myelin; progenitor cell  相似文献   

7.
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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8.
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   

9.
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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10.
Pulmonary vasoconstriction and vascularmedial hypertrophy greatly contribute to the elevated pulmonaryvascular resistance in patients with pulmonary hypertension. A rise incytosolic free Ca2+ ([Ca2+]cyt)in pulmonary artery smooth muscle cells (PASMC) triggers vasoconstriction and stimulates cell growth. Membrane potential (Em) regulates[Ca2+]cyt by governing Ca2+influx through voltage-dependent Ca2+ channels. Thusintracellular Ca2+ may serve as a shared signaltransduction element that leads to pulmonary vasoconstriction andvascular remodeling. In PASMC, activity of voltage-gated K+(Kv) channels regulates resting Em. In thisstudy, we investigated whether changes of Kv currents[IK(V)], Em, and[Ca2+]cyt affect cell growth by comparingthese parameters in proliferating and growth-arrested PASMC. Serumdeprivation induced growth arrest of PASMC, whereas chelation ofextracellular Ca2+ abolished PASMC growth. Resting[Ca2+]cyt was significantly higher, andresting Em was more depolarized, inproliferating PASMC than in growth-arrested cells. Consistently, wholecell IK(V) was significantly attenuated in PASMCduring proliferation. Furthermore, Emdepolarization significantly increased resting[Ca2+]cyt and augmented agonist-mediatedrises in [Ca2+]cyt in the absence ofextracellular Ca2+. These results demonstrate that reducedIK(V), depolarized Em, and elevated [Ca2+]cyt may play a criticalrole in stimulating PASMC proliferation. Pulmonary vascular medialhypertrophy in patients with pulmonary hypertension may be partlycaused by a membrane depolarization-mediated increase in[Ca2+]cyt in PASMC.

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11.
To examine effects of cytosolicNa+, K+, and Cs+ on the voltagedependence of the Na+-K+ pump, we measuredNa+-K+ pump current (Ip)of ventricular myocytes voltage-clamped at potentials(Vm) from 100 to +60 mV. Superfusates weredesigned to eliminate voltage dependence at extracellular pump sites.The cytosolic compartment of myocytes was perfused with patch pipette solutions with a Na+ concentration ([Na]pip)of 80 mM and a K+ concentration from 0 to 80 mM or withsolutions containing Na+ in concentrations from 0.1 to 100 mM and K+ in a concentration of either 0 or 80 mM. When[Na]pip was 80 mM, K+ in pipette solutionshad a voltage-dependent inhibitory effect on Ipand induced a negative slope of theIp-Vm relationship. Cs+ in pipette solutions had an effect onIp qualitatively similar to that ofK+. Increases in Ip with increasesin [Na]pip were voltage dependent. The dielectriccoefficient derived from[Na]pip-Ip relationships at thedifferent test potentials was 0.15 when pipette solutions included 80 mM K+ and 0.06 when pipette solutions were K+ free.

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12.
Weinvestigated the contribution of sialic acid residues to theK+ currents involved in the repolarization of mouseventricular myocytes. Ventricular K+ currents had a rapidlyinactivating component followed by slowly decaying and sustainedcomponents. This current was produced by the summation of threedistinct currents: Ito, which contributed to thetransient component; Iss, which contributed tothe sustained component; and IK,slow, whichcontributed to both components. Incubation of ventricular myocytes withthe sialidase neuraminidase reduced the amplitude ofIto without alteringIK,slow and Iss. We foundthat the reduction in Ito amplitude resultedfrom a depolarizing shift in the voltage of activation and a reductionin the conductance of Ito. Expression of Kv4.3channels, a major contributor to Ito in theventricle, in a sialylation-deficient Chinese hamster ovary cell line(lec2) mimicked the effects of neuraminidase on the ventricularIto. Furthermore, we showed that sialylatedglycolipids have little effect on the voltage dependence ofIto. Finally, consistent with its actions onIto, neuraminidase produced an increase in theduration of the action potential of ventricular myocytes and thefrequency of early afterdepolarizations. We conclude that sialylationof the proteins forming Kv4 channels is important in determining thevoltage dependence and conductance of Ito and that incomplete glycosylation of these channels could lead to arrhythmias.

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13.
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   

14.
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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15.
Inwardlyrectifying K+ current(IKir) infreshly isolated bovine retinal pigment epithelial (RPE) cells wasstudied in the whole cell recording configuration of the patch-clamptechnique. When cells were dialyzed with pipette solution containing noATP, IKir randown completely in <10 min [half time(t1/2) = 1.9 min]. In contrast, dialysis with 2 mM ATP sustainedIKir for 10 min or more. Rundown was also prevented with 4 mM GTP or ADP. When 0.5 mMATP was used,IKir ran down by~71%. Mg2+ was a criticalcofactor because rundown occurred when the pipette solution contained 4 mM ATP but no Mg2+(t1/2 = 1.8 min).IKir also randown when the pipette solution contained 4 mMMg2+ + 4 mM5'-adenylylimidodiphosphate(t1/2 = 2.7 min)or 4 mM adenosine 5'-O-(3-thiotriphosphate)(t1/2 = 1.9 min),nonhydrolyzable and poorly hydrolyzable ATP analogs, respectively. Weconclude that the sustained activity ofIKirin bovine RPE requires intracellular MgATP and that the underlyingmechanism may involve ATP hydrolysis.

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16.
In the brain,astrocytes represent a major target for endothelins (ETs), a family ofpeptides that can be released by several cell types and that havepotent and multiple effects on astrocytic functions. Four types ofK+ currents (IK) were detected invarious proportions by patch-clamp recordings of cultured striatalastrocytes, including the A-type IK, theinwardly rectifying IK IR, theCa2+-dependent IK(IK Ca), and the delayed-rectifiedIK (IK DR). Variationsin the shape of current-voltage relationships were related mainly todifferences in the proportion of these currents. ET-1 was found toregulate with opposite effects the two more frequently recorded outwardK+ currents in striatal astrocytes. Indeed, this peptideinduced an initial activation of IK Ca(composed of SK and BK channels) and a delayed long-lasting inhibitionof IK DR. In current-clamp recordings, theactivation of IK Ca correlated with a transient hyperpolarization, whereas the inhibition ofIK DR correlated with a sustaineddepolarization. These ET-1-induced sequential changes inmembrane potential in astrocytes may be important for the regulation ofvoltage gradients in astrocytic networks and the maintenance ofK+ homeostasis in the brain microenvironment.

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17.
Earlymucosal restitution occurs by epithelial cell migration to resealsuperficial wounds after injury. Differentiated intestinal epithelialcells induced by forced expression of the Cdx2 gene migrateover the wounded edge much faster than undifferentiated parental cellsin an in vitro model. This study determined whether thesedifferentiated intestinal epithelial cells exhibit increased migrationby altering voltage-gated K+ (Kv) channel expression andcytosolic free Ca2+ concentration([Ca2+]cyt). StableCdx2-transfected IEC-6 cells (IEC-Cdx2L1) with highly differentiated phenotype expressed higher basal levels of Kv1.1 andKv1.5 mRNAs and proteins than parental IEC-6 cells. Neither IEC-Cdx2L1cells nor parental IEC-6 cells expressed voltage-dependent Ca2+ channels. The increased expression of Kv channels indifferentiated IEC-Cdx2L1 cells was associated with an increase inwhole cell K+ currents, membrane hyperpolarization, and arise in [Ca2+]cyt. The migration rates indifferentiated IEC-Cdx2L1 cells were about four times those of parentalIEC-6 cells. Inhibition of Kv channel expression by polyamine depletiondecreased [Ca2+]cyt, reduced myosin stressfibers, and inhibited cell migration. Elevation of[Ca2+]cyt by ionomycin promoted myosin IIstress fiber formation and increased cell migration. These resultssuggest that increased migration of differentiated intestinalepithelial cells is mediated, at least partially, by increasing Kvchannel activity and Ca2+ influx during restitution.

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18.
Voltage-clamp studies offreshly isolated smooth muscle cells from rabbit portal veinrevealed the existence of a time-dependent cation current evoked bymembrane hyperpolarization (termed Ih). Both therate of activation and the amplitude of Ih wereenhanced by membrane hyperpolarization. Half-maximal activation ofIh was about 105 mV with conventional wholecell and 80 mV when the perforated patch technique was used. Incurrent clamp, injection of hyperpolarizing current produced a markeddepolarizing "sag" followed by rebound depolarization. Activationof Ih was augmented by an increase in theextracellular K+ concentration and was blocked rapidly byexternally applied Cs+ (1-5 mM). The bradycardic agentZD-7288 (10 µM), a selective inhibitor of Ih,produced a characteristically slow inhibition of the portal veinIh. The depolarizing sag recorded in current clamp was also abolished by application of 5 mM Cs+.Cs+ significantly decreased the frequency of spontaneouscontractions in both whole rat portal vein and rabbit portal veinsegments. Multiplex RT-PCR of rabbit portal vein myocytes using primers derived from existing genes for hyperpolarization-activated cation channels (HCN1-4) revealed the existence of cDNA clonescorresponding to HCN2, 3, and 4. The present study shows that portalvein myocytes contain genes shown to encode forhyperpolarization-activated channels and exhibit an endogenous currentwith characteristics similar to Ih in other celltypes. This conductance appears to determine, in part, the rhythmicityof this vessel.

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19.
pH-dependent modulation of Kv1.3 inactivation: role of His399   总被引:2,自引:0,他引:2  
The Kv1.3 K+ channel lacks N-type inactivation, but during prolonged depolarized periods it inactivates via the slow (P/C type) mechanism. It bears a titratable histidine residue in position 399 (equivalent of Shaker 449), a site known to influence the rate of slow inactivation. As opposed to several other voltage-gated K+ channels, slow inactivation of Kv1.3 is slowed when extracellular pH (pHo) is lowered under physiological conditions. Our findings are as follows. First, when His399 was mutated to a lysine, arginine, leucine, valine or tyrosine, extracellular acidification (pH 5.5) accelerated inactivation reminiscent of other Kv channels. Second, inactivation of the wild-type channel was accelerated by low pHo when the ionic strength of the external solution was raised. Inactivation of the H399K mutant was also accelerated by high ionic strength at pH 7.35 but not the inactivation of H399L. Third, after the external application of blocking barium ions, recovery of the wild-type current during washout was slower in low pHo. Fourth, the dissociation rate of Ba2+ was pH insensitive for both H399K and H399L. Furthermore, Ba2+ dissociation rates were equal for H399K and the wild type at pH 5.5 and were equal for H399L and the wild type at pH 7.35. These observations support a model in which the electric field of the protonated histidines creates a potential barrier for potassium ions just outside the external mouth of the pore that hinders their exit from the binding site controlling inactivation. In Kv1.3, this effect overrides the generally observed speeding of slow inactivation when pHo is reduced. extracellular pH; potassium channel; histidine; barium; high ionic strength  相似文献   

20.
The cellular mechanism for Cl and K+ secretion in the colonic epithelium requires K+ channels in the basolateral and apical membranes. Colonic mucosa from guinea pig and rat were fixed, sectioned, and then probed with antibodies to the K+ channel proteins KVLQT1 (Kcnq1) and minK-related peptide 2 (MiRP2, Kcne3). Immunofluorescence labeling for Kcnq1 was most prominent in the lateral membrane of crypt cells in rat colon. The guinea pig distal colon had distinct lateral membrane immunoreactivity for Kcnq1 in crypt and surface cells. In addition, Kcne3, an auxiliary subunit for Kcnq1, was detected in the lateral membrane of crypt and surface cells in guinea pig distal colon. Transepithelial short-circuit current (Isc) and transepithelial conductance (Gt) were measured for colonic mucosa during secretory activation by epinephrine (EPI), prostaglandin E2 (PGE2), and carbachol (CCh). HMR1556 (10 µM), an inhibitor of Kcnq1 channels (Gerlach U, Brendel J, Lang HJ, Paulus EF, Weidmann K, Brüggemann A, Busch A, Suessbrich H, Bleich M, and Greger R. J Med Chem 44: 3831–3837, 2001), partially (50%) inhibited Cl secretory Isc and Gt activated by PGE2 and CCh in rat colon with an IC50 of 55 nM, but in guinea pig distal colon Cl secretory Isc and Gt were unaltered. EPI-activated K+-secretory Isc and Gt also were essentially unaltered by HMR1556 in both rat and guinea pig colon. Although immunofluorescence labeling with a Kcnq1 antibody supported the basolateral membrane presence in colonic epithelium of the guinea pig as well as the rat, the Kcnq1 K+ channel is not an essential component for producing Cl secretion. Other K+ channels present in the basolateral membrane presumably must also contribute directly to the K+ conductance necessary for K+ exit during activation of Cl secretion in the colonic mucosa. HMR1556; K+ secretion; epinephrine; prostaglandin E2; cholinergic  相似文献   

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