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1.
The patch-clamp technique was used to study and compare thecharacteristics of cation channels in the plasma membrane ofcultured lines of tobacco (Nicotiana tabacum L. cv. Bright Yellow-2)cells that were unadapted (NaCl-unadapted cells) and adaptedto 50 and 100 mM NaCl (Na50-adapted and Na100-adapted cells).In these three types of tobacco cell, the outward whole-cellcurrent activated by depolarization was dominated mainly bythe activity of the outward rectifying K+ channels with a single-channelconductance of 20 pS. The steady-state amplitude of the outwardwhole-cell currents at all the positive potentials examineddecreased in the following order: NaCl-unadapted cells>Na50-adaptedcells>Na100-adapted cells. There were no significant differencesbetween the NaCl-unadapted and the Na50-adapted cells in termsof the ratio of permeabilities of these channels to K+ and Na+ions. Furthermore, no significant differences in terms of thesingle-channel conductance of these channels were observed amongthe NaCl-unadapted, the Na50-adapted and the Na100-adapted cells.These observations suggest that adaptation to salinity of tobaccocells in suspension results in reduced permeability of the K+channels to both K+ and Na+ ions, without any change in theK+/Na+ selectivity and single-channel conductance of these channels. 1Present address: Research Laboratory of Applied Biochemistry,Tanabe Seiyaku Co., Ltd.16-89 Kashima 3-chome, Yodogawaku, Osaka,532 Japan  相似文献   

2.
In developing seed ofVicia faba L., solutes imported throughthe phloem of the coats move symplastically from the sieve elementsto a specialized set of cells (the thin-walled parenchyma transfercells) for release to the seed apoplast. Potassium (K+) is thepredominant cation released from the seed coats. To elucidatethe mechanisms of K+ efflux from seed coat to seed apoplast,whole-cell currents across the plasma membranes of protoplastsof thin-walled parenchyma transfer cells were measured usingthe whole-cell patch-clamp technique. Membrane depolarizationelicited a time-dependent and an instantaneous outward current.The reversal potential (ER of the time-dependent outward currentwas close to the potassium equilibrium potential (EK and itshifted in the same direction as EK upon changing the externalK+ concentration, indicating that this current was largely carriedby an efflux of K+. The activation of the time-dependent outwardK+ current could be well fitted by two exponential componentsplus a constant. The instantaneous outward current could alsobe carried by K+ efflux as suggested by ion substitution experiments.These K+ outward rectifier currents elicited by membrane depolarizationare probably too small to represent the mechanism for the normalK+ efflux from seed coat cells. Membrane hyperpolarization morenegative than –80 mV activated a time-dependent inwardcurrent. K+ influx was responsible for the inward current asthe current reversed at membrane voltage close to EK and shiftedin the same direction as EK when external [K+] was varied. Activationof this K+inward rectifier current was well fitted with twoexponential components plus a constant. A regulating functionfor this current is suggested. Key words: Potassium outward rectifier, potassium inward rectifier, transfer cell protoplast, seed coat, Vicia faba L  相似文献   

3.
Previous studies have shown that murine portal vein myocytes express ether-à-go-go related genes (ERGs) and exhibit distinctive currents when recorded under symmetrical K+ conditions. The aim of the present study was to characterize ERG channel currents evoked from a negative holding potential under conditions more pertinent to a physiological scenario to assess the possible functional impact of this conductance. Currents were recorded with ruptured or perforated patch variants of the whole cell technique from a holding potential of –60 mV. Application of three structurally distinct and selective ERG channel blockers, E-4031, dofetilide, and the peptide toxin BeKM-1, all inhibited a significant proportion of the outward current and abolished inward currents with distinctive "hooked" kinetics recorded on repolarization. Dofetilide-sensitive currents at negative potentials evoked by depolarization to +40 mV had a voltage-dependent time to peak and rate of decay characteristic of ERG channels. Application of the novel ERG channel activator PD-118057 (1–10 µM) markedly enhanced the hooked inward currents evoked by membrane depolarization and hyperpolarized the resting membrane potential recorded by current clamp and the perforated patch configuration by 20 mV. In contrast, ERG channel blockade by dofetilide (1 µM) depolarized the resting membrane potential by 8 mV. These data are the first record of ERG channel currents in smooth muscle cells under quasi-physiological conditions that suggest that ERG channels contribute to the resting membrane potential in these cells. vascular smooth muscle; voltage-dependent K+ current; membrane excitability  相似文献   

4.
The electromotive force E and the conductance G of the Characorallina plasmalemma were measured under voltage clamp conditions.In the depolarized voltage range less negative than –60mV, E changed according to the Nerhst equation for K+, and Gincreased with the external K+ concentration [K+]o and alsowith the depolarization of the membrane potential. This is attributedto the voltage-dependent opening of the K+ channels in the largelydepolarized voltage region. The voltage-dependent increase ofG was due to the increase of the number of open K+ channelsper unit area. The density of the total K+ channels in the C. corallina plasmalemmawas estimated to be about 6.50/(10 µm)2. The single K+channel conductance K changed with the external [K+]o; it was79.3, 86.1, 105.9, 119.0 pS for external [K+]o of 0.2, 0.5,2.0 and 5.0 mu respectively. (Received May 22, 1986; Accepted August 22, 1986)  相似文献   

5.
The patch-clamp technique was used to study effect of the Ca2+on K+ channels in the plasma membrane of protoplasts isolatedfrom tobacco (Nicotiana tabacum L., cv. Bright Yellow) culturedcells in suspension. The outward rectifying whole-cell K+ currentswere not affected by in-tracellular Ca2+, but they were reducedwith increasing extracellular Ca2+. Neither extracellular norintracellular Ca2+ affected the permeability ratios (pK+/PNa+)of the plasma membrane. These results suggest that the inhibitionof outward-rectifying K+ channels by extracellular Ca2+may partiallycontribute towards the mitigation of detrimental effects ofsalinity on growth by extracellular Ca2+. (Received January 19, 1998; Accepted July 30, 1998)  相似文献   

6.
Hong, S. J., and C. C. Chang.Trauma-induced changes of skeletal muscle membrane: decreasedK+ and increasedNa+ permeability.J. Appl. Physiol. 83(4):1096-1103, 1997.Trauma of skeletal muscle causes membranedepolarization and reduces membrane resistance. The underlyingmechanisms were studied in isolated mouse phrenic nerve diaphragmssubject to sharp transections of muscle. Depolarization was most markedat the vicinity (~1 mm) of trauma, where the membrane potentialdropped rapidly from about 80 mV to zero and repolarized toabout 25 mV. At the end-plate region (located ~3 mm away fromthe cut end), the membrane gradually attained a plateau potentialaround 45 mV. The magnitude of depolarization was not reduced byinhibition of Na+,Ca2+, orCl channel, whereas theprogress of depolarization was delayed in low-Na+ medium. Activation of theK+ channel with lemakalim inducedsome hyperpolarization at damaged site but produced aglybenclamide-sensitive outward current and hyperpolarization ofend-plate region to the levels before trauma, as if there was nodiminution of transmembrane K+gradient in this area. Appropriate elevation of extracellular K+ to stimulateK+ conductance also hyperpolarizedthe end-plate region. The results suggest that depolarization atregions remote from trauma is related to decreasedK+ and increasedNa+ permeability. The cytoplasmacompartmentalization and permeability changes may protect muscle fiberfrom trauma.

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7.
K+Nutrition and Na+Toxicity: The Basis of Cellular K+/Na+Ratios   总被引:38,自引:0,他引:38  
The capacity of plants to maintain a high cytosolic K+/Na+ratiois likely to be one of the key determinants of plant salt tolerance.Important progress has been made in recent years regarding theidentification and characterization of genes and transportersthat contribute to the cytosolic K+/Na+ratio. For K+uptake,K+efflux and K+translocation to the shoot, genes have been isolatedthat encode K+uptake and K+release ion channels and K+carriersthat are coupled to either a H+or Na+gradient. Although thepicture is less clear for the movement of Na+, one pathway,in the form of non-selective ion channels, is likely to playa role in Na+uptake, whereas Na+efflux and compartmentationare likely to be mediated by H+-coupled antiport. In addition,several proteins have been characterized that play prominentroles in the regulation of K+and/or Na+fluxes. In this BotanicalBriefing we will discuss the functions and interactions of thesegenes and transporters in the broader context of K+nutritionand Na+toxicity. Copyright 1999 Annals of Botany Company Salinty, K+/N+ratio, transporter, membrane.  相似文献   

8.
Cell-attached and cell-free configurations of the patch-clamptechnique were used to investigate the conductive properties andregulation of the major K+channels in the basolateral membrane of outer hair cells freshly isolated from the guinea pig cochlea. There were two majorvoltage-dependent K+ channels. ACa2+-activatedK+ channel with a high conductance(220 pS,PK/PNa = 8) was found in almost 20% of the patches. The inside-out activityof the channel was increased by depolarizations above 0 mV andincreasing the intracellular Ca2+concentration. External ATP or adenosine did not alter thecell-attached activity of the channel. The open probability of theexcised channel remained stable for several minutes without rundown andwas not altered by the catalytic subunit of protein kinase A (PKA)applied internally. The most frequentK+ channel had a low conductanceand a small outward rectification in symmetricalK+ conditions (10 pS for inwardcurrents and 20 pS for outward currents, PK/PNa = 28). It was found significantly more frequently in cell-attached andinside-out patches when the pipette contained 100 µM acetylcholine. It was not sensitive to internalCa2+, was inhibited by4-aminopyridine, was activated by depolarization above 30 mV,and exhibited a rundown after excision. It also had a slow inactivationon ensemble-averaged sweeps in response to depolarizing pulses. Thecell-attached activity of the channel was increased when adenosine wassuperfused outside the pipette. This effect also occurred with permeantanalogs of cAMP and internally applied catalytic subunit of PKA. Bothchannels could control the cell membrane voltage of outer hair cells.

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9.
Charybdotoxin(ChTX) is a specific blocker ofCa2+-activatedK+ channels. The voltage- andtime-dependent dynamics of ChTX block were investigated using caninecolonic myocytes and the whole cell patch-clamp technique with step andramp depolarization protocols. During prolonged step depolarizations,K+ current slowly increased in thecontinued presence of ChTX (100 nM). The rate of increase depended onmembrane potential with an e-foldchange for every 60 mV. During ramp depolarizations, the effectivenessof ChTX block depended significantly on the rate of the ramp (50% at0.01 V/s to 80% at 0.5 V/s). Results are consistent with a mechanismin which ChTX slowly "unbinds" in a voltage-dependent manner. Asimple kinetic model was developed in which ChTX binds to both open andclosed states. Slow unbinding is consistent with ChTX having littleeffect on electrical slow waves recorded from circular muscle whilecausing depolarization and contraction of longitudinal muscle, whichdisplays more rapid "spikes." Resting membrane potential andmembrane potential dynamics are important determinants of ChTX action.

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10.
Cytoplasmic drops were prepared from internodal cells of thebrackish Characeae Lamprothamnium succinctum. Applying the patch-clamptechnique to single drops covered with tonoplast, we demonstratedthe presence of Ca2+-regulated K+ channels in the tonoplast.In a cell-attached mode, the selectivity of such channels forK+ was about 50 times that for Na+. This channel showed a tendencyto rectify in an outward direction. In the negative region ofthe pipette voltage, the conductance of this channel was 50pS, while it was 100 pS in the positive voltage region. Whenthe pipette voltage was increased above 50 mV, two conductancelevels were found in the cell-attached mode as well as in theexcised patch (cytoplasmic-side-out patch), which was obtainedby pulling the patch pipette from the cytoplasmic drop underconditions of low levels of Ca2+. Using the excised patch, wecontrolled the level of Ca2+ on the cytoplasmic side of thechannels. At a low level of Ca2+ (pCa=8) on the cytoplasmicside, the open frequency was very low and the opening time wasshort. An increase in Ca2+ on the cytoplasmic side (pCa = 5)increased both the frequency and the duration of opening. However,the conductance of the channels did not change. This regulationby Ca2+ of the K+ channels was reversible, that is, additionof EGTA on the cytoplasmic side inactivated the channels. Thepresent study demonstrates a direct action of Ca2+ on the K+channels. The physiological role of the K+ channel in the regulationof turgor in Lamprothamnium is discussed. (Received January 9, 1989; Accepted March 8, 1989)  相似文献   

11.
Cytochrome c activates K+ channels before inducing apoptosis   总被引:10,自引:0,他引:10  
Cellshrinkage is an early prerequisite for apoptosis. Theapoptotic volume decrease is due primarily to loss ofcytoplasmic ions. Increased outward K+ currents have indeedbeen implicated in the early stage of apoptosis in many celltypes. We found that cytoplasmic dialysis of cytochrome c(cyt-c), a mitochondria-dependent apoptotic inducer,increases K+ currents before inducing nuclear condensationand breakage in pulmonary vascular smooth muscle cells. Thecyt-c-mediated increase in K+ currents tookplace rapidly and was not affected by treatment with a specificinhibitor of caspase-9. Cytoplasmic dialysis of recombinant (active)caspase-9 negligibly affected the K+ currents. Furthermore,treatment of the cells with staurosporine (ST), an apoptosisinducer that mediates translocation of cyt-c frommitochondria to the cytosol, also increased K+ currents,caused cell shrinkage, and induced apoptosis (determined byapoptotic nuclear morphology and TdT-UTP nick end labeling assay).The staurosporine-induced increase in K+ currents concurredto the volume decrease but preceded the activation of apoptosis(nuclear condensation and breakage). These results suggest that thecyt-c-induced activation of K+ channels and theresultant K+ loss play an important role in initiating theapoptotic volume decrease when cells undergo apoptosis.

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12.
Electrophysiological characterization of murine HL-5 atrial cardiomyocytes   总被引:1,自引:0,他引:1  
HL-5 cells are cultured murine atrial cardiomyocytes and have been used in studies to address important cellular and molecular questions. However, electrophysiological features of HL-5 cells have not been characterized. In this study, we examined such properties using whole cell patch-clamp techniques. Membrane capacitance of the HL-5 cells was from 8 to 62 pF. The resting membrane potential was –57.8 ± 1.4 mV (n = 51). Intracellular injection of depolarizing currents evoked action potentials (APs) with variable morphologies in 71% of the patched cells. Interestingly, the incidence of successful, current-induced APs positively correlated with the hyperpolarizing degrees of resting membrane potentials (r = 0.99, P < 0.001). Only a few of the patched cells (4 of 51, 7.8%) exhibited spontaneous APs. The muscarinic agonist carbachol activated the acetylcholine-activated K+ current and significantly shortened the duration of APs. Immunostaining confirmed the presence of the muscarinic receptor type 2 in HL-5 cells. The hyperpolarization-activated cation current (If) was detected in 39% of the patched cells. The voltage to activate 50% of If channels was –73.4 ± 1.2 mV (n = 12). Voltage-gated Na+, Ca2+, and K+ currents were observed in the HL-5 cells with variable incidences. Compared with the adult mouse cardiomyocytes, the HL-5 cells had prolonged APs and small outward K+ currents. Our data indicate that HL-5 cells display significant electrophysiological heterogeneity of morphological appearance of APs and expression of functional ion channels. Compared with adult murine cardiomyocytes, HL-5 cells show an immature phenotype of cardiac AP morphology. action potential; ion channel; muscarinic receptor  相似文献   

13.
The effects ofcyanide (CN) on whole cell current measured with the perforated-patchmethod were studied in adrenal medullary cells. Application of CNproduced initially inward and then outward currents at 52 mV ormore negative. As the membrane potential was hyperpolarized, amplitudeand latency of the outward current (Io) by CNbecame small and long, respectively. A decrease in the externalNa+ concentration did not affectthe latency for CN-inducedIo but enhancedthe amplitude markedly. The CNIo reversedpolarity at 85 mV, close to the Nernst potential forK+, and was suppressed by theK+ channel blockers curare andapamin but not by glibenclamide, suggesting thatIo is due to theactivation of Ca2+-dependentK+ channels. Consistent with thisnotion, the Ca2+-mobilizingagents, muscarine and caffeine, also producedIo. Exposure toCN in a Ca2+-deficient medium for4 min abolished caffeine- or muscarine-induced Io withoutdevelopment ofIo, and additionof Ca2+ to the CN-containingsolution inducedIo. We concludethat exposure to CN producesCa2+-dependentK+ currents in an externalCa2+-dependent manner, probablyvia facilitation of Ca2+ influx.

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14.
Hordeum vulgare cv. California Mariout was grown for 50 d insand culture at 100 mol m–3 NaCl. Xylem sap was collectedthrough incisions at the base of individual leaves along thestem axis by applying pressure to the root system. K+ concentrationsin the xylem sap reaching individual leaves increased towardsthe apex, while concentrations of Na+, NO3, and Cldeclined. Phloem exudate was obtained by collecting into Li2EDTAfrom the base of excised leaves. K/Na ratios of phloem exudatesincreased from older to younger leaves. K/Na ratios in xylem sap and phloem exudate were combined withchanges in ion content between two harvests (38 and 45 d aftergermination) and the direction of phloem export from individualleaves, to construct an empirical model of K+ and Na+ net flowswithin the xylem and phloem of the whole plant. This model indicatesthat in old leaves, phloem export of K+ greatly exceeded xylemimport. In contrast, Na+ export was small compared to importand Na+ once imported was retained within the leaf. The direction of export strongly depended on leaf age. Old,basal leaves preferentially supplied the root, and most of theK+ retranslocated to the roots was transferred to the xylemand subsequently became available to the shoot. Upper leavesexported to the apex. Young organs were supplied by xylem andphloem, with the xylem preferentially delivering Na+ , and thephloem most of the K+ . For the young ear, which was still coveredby the sheath of the flag leaf, our calculation predicts phloemimport of ions to such an extent that the surplus must havebeen removed by an outward flow in the xylem. Within the culm,indications for specific transfers of K+ and Na+ between xylemand phloem and release or absorption of these ions by the tissuewere obtained. The sum of these processes in stem internodes and leaves ledto a non-uniform distribution of Na+ and K+ within the shoot,Na+ being retained in old leaves and basal stem internodes,and K+ being available for growth and expansion of young tissues. Key words: Hordeum vulgare L., K+, Na+, stem, salt stress  相似文献   

15.
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   

16.
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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17.
Cells of the unicellular green alga Closterium ehrenbergii elongatedexclusively at septa and for 4–5 hours after cell division.Cell elongation was strongly inhibited by a decrease in eitherthe external concentration of Ca2+ or pH, and was also inhibitedby several competitive Ca2+ channel blockers. Changes in concentrationsof other external ions had no effect on the elongation. Theaverage concentrations of ions in the intracellular fluid ofthe interphase cell before cell division was as follows (inmM): K+=56.5, Na+=4.8, Ca2+=2.4, Mg2+=1.3, Cl=59.5; thepH was 7.4. The levels of K+, Na+ and Cl ions decreasedsignificantly with cell elongation, suggesting that this process,which proceeds with water uptake, surpasses ion absorption.The plasma membrane potential (Vm) in both the interphase cellsand in the elongating cells was in the range of –90 to–105 mV (interior negative). The Vm was entirely determinedby the simple diffusion of K+. A decrease in the external concentrationof Ca2+ caused depolarization, probably by an indirect effectof low Ca2+. Changes in the extracellular level of H+ and othercations barely affected Vm. Thus, external Ca2+ and H+ are concludedto affect cell elongation but not via a change in the Vm acrossthe plasma membrane. (Received February 29, 1988; Accepted June 8, 1988)  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.
Activation of K+-Channel in Membrane Excitation of Nitella axilliformis   总被引:1,自引:0,他引:1  
Two processes of the K+ channel activation in plasma membraneexcitation are suggested for Nitella axilliformis. One is relatedto the repolarizing process in the action potential and theother to the after-hyperpolarization (AH). Extra- and intracellulartetraethylammonium (TEA+) and extracellular Co2+ prolonged theaction potential, indicating involvement of K+ channel activationin the repolarizing process of the action potential. The following findings showed that AH is caused by K+ channelactivation. First, AH was inhibited by extracellular K+ andRb+ but not by Na+ and Li+. Second, it was not inhibited byintracellular TEA+ but by extracellular TEA+. Third, the membraneconductance increased during AH. Generation of AH was dependenton the level of the resting membrane potential [(Em)rest] whichis affected by the activity of the electrogenic H+ pump. AHwas generated, when (Em)rest was more positive than a criticalvalue, which was supposed to be the equilibrium potential forK+ across the plasma membrane. Since extracellular Ca2+ competed with extracellular TEA+ andCo2+ in prolonging the action potential, and sometimes in inhibitingAH, Ca2+ may be involved in the K+ channel activation. (Received June 11, 1983; Accepted September 21, 1983)  相似文献   

20.
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   

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