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1.
The effects of niflumic acid on ryanodinereceptors (RyRs) of frog skeletal muscle were studied by incorporatingsarcoplasmic reticulum (SR) vesicles into planar lipid bilayers. Frogmuscle had two distinct types of RyRs in the SR: one showed abell-shaped channel activation curve against cytoplasmicCa2+ or niflumic acid, and its mean open probability(Po) was increased by perchlorate at 20-30mM (termed "-like" RyR); the other showed a sigmoidalactivation curve against Ca2+ or niflumic acid, with noeffect on perchlorate (termed "-like" RyR). The unitaryconductance and reversal potential of both channel types wereunaffected after exposure to niflumic acid when clamped at 0 mV. Whenclamped at more positive potentials, the -like RyRchannel rectified this, increasing the unitary current. Treatment withniflumic acid did not inhibit the response of both channels toCa2+ release channel modulators such as caffeine,ryanodine, and ruthenium red. The different effects of niflumic acid onPo and the unitary current amplitude in both typesof channels may be attributable to the lack or the presence ofinactivation sites and/or distinct responses to agonists.

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2.
Ethanol inhibition of large-conductance,Ca2+-activated K+ (BKCa) channelsin aortic myocytes may contribute to the direct contraction of aorticsmooth muscle produced by acute alcohol exposure. In this tissue,BKCa channels consist of pore-forming (bslo) and modulatory () subunits. Here, modulation of aortic myocyteBKCa channels by acute alcohol was explored by expressingbslo subunits in Xenopus oocytes, in the absenceand presence of 1-subunits, and studying channelresponses to clinically relevant concentrations of ethanol in excisedmembrane patches. Overall, average values of bslo channelactivity (NPo, with N = no. ofchannels present in the patch; Po = probability of a single channel being open) in response to ethanol(3-200 mM) mildly decrease when compared with pre-ethanol,isosmotic controls. However, channel responses show qualitativeheterogeneity at all ethanol concentrations. In the majority of patches(42/71 patches, i.e., 59%), a reversible reduction inNPo is observed. In this subset, the maximaleffect is obtained with 100 mM ethanol, at whichNPo reaches 46.2 ± 9% of control. Thepresence of 1-subunits, which determines channel sensitivity to dihydrosoyaponin-I and 17-estradiol, fails to modifyethanol action on bslo channels. Ethanol inhibition of bslo channels results from a marked increase in the meanclosed time. Although the voltage dependence of gating remainsunaffected, the apparent effectiveness of Ca2+ to gate thechannel is decreased by ethanol. These changes occur withoutmodifications of channel conduction. In conclusion, a new molecularmechanism that may contribute to ethanol-induced aortic smooth musclecontraction has been identified and characterized: a functionalinteraction between ethanol and the bslo subunit and/or itslipid microenvironment, which leads to a decrease in BKCachannel activity.

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3.
Cell-attached recordings revealedK+ channel activity in basolateral membranes ofguinea pig distal colonic crypts. Inwardly rectified currents wereapparent with a pipette solution containing 140 mM K+.Single-channel conductance () was 9 pS at the resting membrane potential. Another inward rectifier with  of 19 pS was observed occasionally. At a holding potential of 80 mV,  was 21 and 41 pS,respectively. Identity as K+ channels was confirmed afterpatch excision by changing the bath ion composition. From reversalpotentials, relative permeability of Na+ overK+ (PNa/PK)was 0.02 ± 0.02, withPRb/PK = 1.1 andPCl/PK < 0.03. Spontaneous open probability (Po) of the 9-pSinward rectifier (gpKir) was voltageindependent in cell-attached patches. Both a low(Po = 0.09 ± 0.01) and a moderate(Po = 0.41 ± 0.01) activity mode wereobserved. Excision moved gpKir to the mediumactivity mode; Po ofgpKir was independent of bath Ca2+activity and bath acidification. Addition of Cl andK+ secretagogues altered Po ofgpKir. Forskolin or carbachol (10 µM)activated the small-conductance gpKir inquiescent patches and increased Po inlow-activity patches. K+ secretagogues, either epinephrine(5 µM) or prostaglandin E2 (100 nM), decreasedPo of gpKir in activepatches. This gpKir may be involved inelectrogenic secretion of Cl and K+ acrossthe colonic epithelium, which requires a large basolateral membraneK+ conductance during maximal Cl secretionand, presumably, a lower K+ conductance during primaryelectrogenic K+ secretion.

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4.
Investigation of the role ofindividual protein kinase C (PKC) isozymes in the regulation ofNa+ channels has been largely limited by the lack ofisozyme-selective modulators. Here we used a novel peptide-specificactivator (V1-7) of PKC and other peptide isozyme-specificinhibitors in addition to the general PKC activator phorbol12-myristate 13-acetate (PMA) to dissect the role of individual PKCs inthe regulation of the human cardiac Na+ channel hH1,heterologously expressed in Xenopus oocytes. Peptides wereinjected individually or in combination into the oocyte. Whole cellNa+ current (INa) was recorded usingtwo-electrode voltage clamp. V1-7 (100 nM) and PMA (100 nM)inhibited INa by 31 ± 5% and 44 ± 8% (at 20 mV), respectively. These effects were not seen with thescrambled peptide for V1-7 (100 nM) or the PMA analog4-phorbol 12,13-didecanoate (100 nM). However, V1-7-and PMA-induced INa inhibition was abolished byV1-2, a peptide-specific antagonist of PKC. Furthermore,PMA-induced INa inhibition was not altered by100 nM peptide-specific inhibitors for -, -, -, or PKC. PMAand V1-7 induced translocation of PKC from soluble toparticulate fraction in Xenopus oocytes. This translocationwas antagonized by V1-2. In native rat ventricular myocytes,PMA and V1-7 also inhibited INa; thisinhibition was antagonized by V1-2. In conclusion, the resultsprovide evidence for selective regulation of cardiac Na+channels by PKC isozyme.

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5.
We usedsingle-channel recording techniques to identify and characterize alarge-conductance,Ca2+-independentK+ channel in the colonicsecretory cell line T84. In symmetric potassium gluconate, this channelhad a linear current-voltage relationship with a single-channelconductance of 161 pS. Channel open probability(Po) wasincreased at depolarizing potentials. Partial substitution of bathK+ withNa+ indicated a permeability ratioof K+ toNa+ of 25:1. ChannelPo was reduced byextracellular Ba2+. Event-durationanalysis suggested a linear kinetic model for channel gating having asingle open state and three closed states: C3C2C1O.Arachidonic acid (AA) increased thePo of thechannel, with an apparent stimulatory constant(Ks)of 1.39 µM. Neither channel open time (O) nor the fast closed time(C1) was affected by AA. Incontrast, AA dramatically reduced mean closed time by decreasing bothC3 andC2. Thecis-unsaturated fatty acid linoleate increased Poalso, whereas the saturated fatty acid myristate and thetrans-unsaturated fatty acid elaidatedid not affectPo. This channelis activated also by negative pressure applied to the pipette duringinside-out recording. Thus we determined the effect of thestretch-activated channel blockers amiloride and Gd3+ on theK+ channel after activation by AA.Amiloride (2 mM) on the extracellular side reduced single-channelamplitude in a voltage-dependent manner, whereasGd3+ (100 µM) had no effect onchannel activity. Activation of this K+ channel may be important duringstimulation of Cl secretionby agonists that use AA as a second messenger (e.g., vasoactiveintestinal polypeptide, adenosine) or during the volume regulatoryresponse to cell swelling.

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6.
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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7.
During maturation of oocytes,Cl conductance (GCl) oscillatesand intracellular pH (pHi) increases. ElevatingpHi permits the protein synthesis essential to maturation.To examine whether changes in GCl andpHi are coupled, the Cl channel ClC-0 washeterologously expressed. Overexpressing ClC-0 elevatespHi, decreases intracellular Cl concentration([Cl]i), and reduces volume. Acuteacidification with butyrate does not activate acid extrusion inClC-0-expressing or control oocytes. The ClC-0-induced pHichange increases after overnight incubation at extracellular pH 8.5 butis unaltered after incubation at extracellular pH 6.5. Membranedepolarization did not change pHi. In contrast, hyperpolarization elevates pHi. Thus neither membranedepolarization nor acute activation of acid extrusion accounts for theClC-0-dependent alkalinization. Overnight incubation in lowextracellular Cl concentration increases pHiand decreases [Cl]i in control and ClC-0expressing oocytes, with the effect greater in the latter. Incubationin hypotonic, low extracellular Cl solutions preventedpHi elevation, although the decrease in[Cl]i persisted. Taken together, ourobservations suggest that KCl loss leads to oocyte shrinkage, whichtransiently activates acid extrusion. In conclusion, expressing ClC-0in oocytes increases pHi and decreases[Cl]i. These parameters are coupled viashrinkage activation of proton extrusion. Normal, cyclical changes ofoocyte GCl may exert an effect onpHi via shrinkage, thus inducing meiotic maturation.

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8.
Purines regulate intraocular pressure. Adenosine activatesCl channels of nonpigmented ciliary epithelial cellsfacing the aqueous humor, enhancing secretion. Tamoxifen and ATPsynergistically activate Cl channels of pigmented ciliaryepithelial (PE) cells facing the stroma, potentially reducing netsecretion. The actions of nucleotides alone on Cl channelactivity of bovine PE cells were studied by electronic cell sorting,patch clamping, and luciferin/luciferase ATP assay. Clchannels were activated by ATP > UTP, ADP, and UDP, but not by 2-methylthio-ATP, all at 100 µM. UTP triggered ATP release. The second messengers Ca2+, prostaglandin (PG)E2,and cAMP activated Cl channels without enhancing effectsof 100 µM ATP. Buffering intracellular Ca2+activity with1,2-bis(2-aminophenoxy)ethane-N,N,N',N'- tetraacetic acidor blocking PGE2 formation with indomethacininhibited ATP-triggered channel activation. The Rp stereoisomerof 8-bromoadenosine 3',5'-cyclic monophosphothioate inhibited proteinkinase A activity but mimicked 8-bromoadenosine 3',5'-cyclicmonophosphate. We conclude that nucleotides can act at >1 P2Yreceptor to trigger a sequential cascade involving Ca2+,PGE2, and cAMP. cAMP acts directly on Clchannels of PE cells, increasing stromal release and potentially reducing net aqueous humor formation and intraocular pressure.

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9.
We describe thebiochemical properties of an eicosanoid-modulated Clchannel and assess the mechanisms by which the epoxyeicosatrienoic acids (EETs) alter both its unitary conductance and its openprobability (Po). After a purification protocolinvolving wheat-germ agglutinin affinity and anion-exchangechromatography, the proteins were sequentially inserted into liposomes,which were then fused into PLBs. Functional and biochemicalcharacterization tests confirm that the Cl channel is a55-kDa glycosylated monomer with voltage- and Ca2+concentration-independent activity. 5,6- and 8,9-EET decreased theconductance of the native channel (control conductance: 70 ± 5 pSin asymmetrical 50 mM trans/250 mM cis CsCl) in aconcentration-dependent manner, with respective 50% inhibitoryconcentration values of 0.31 and 0.42 µM. These regioisomerssimilarly decreased the conductance of the purified channel (controlconductance value: 75 ± 5 pS in asymmetrical 50 mMtrans/250 mM cis CsCl), which had been stripped of its native proteic and lipidic environment. On the other hand, 5,6- and 8,9-EETs decreased the Po of the nativechannel with respective 50% inhibitory concentration values of 0.27 and 0.30 µM but failed to alter the Po of thepurified protein. Thus we suggest that the effects of these EETs onchannel conductance likely result from direct interactions ofEET anions with the channel pore, whereas the alterationof Po requires a lipid environment of specificcomposition that is lost on solubilization and purification of the protein.

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10.
Four novel splice variants of sulfonylurea receptor 1   总被引:2,自引:0,他引:2  
ATP-sensitiveK+ (KATP) channels are composed of pore-formingKir6.x subunits and regulatory sulfonylurea receptor (SUR) subunits. SURs are ATP-binding cassette proteins with two nucleotide-binding folds (NBFs) and binding sites for sulfonylureas, like glibenclamide, and for channel openers. Here we report the identification and functional characterization of four novel splice forms of guinea pigSUR1. Three splice forms originate from alternative splicing of theregion coding for NBF1 and lack exons 17 (SUR117), 19 (SUR119),or both (SUR11719). The fourth (SUR1C) is a COOH-terminal SUR1-fragment formed by exons 31-39 containing the last twotransmembrane segments and the COOH terminus of SUR1. RT-PCR analysisshowed that these splice forms are expressed in several tissues with strong expression of SUR1C in cardiomyocytes. Confocal microscopy usingenhanced green fluorescent protein-tagged SUR or Kir6.x did not provideany evidence for involvement of these splice forms in themitochondrial KATP channel. Only SUR1 and SUR117 showed high-affinity binding of glibenclamide (Kd 2 nM in the presence of 1 mM ATP) and formed functional KATPchannels upon coexpression with Kir6.2.

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11.
We reported previously that inhibition ofNa+-K+-Cl cotransporter isoform 1 (NKCC1) by bumetanide abolishes high extracellular K+concentration ([K+]o)-induced swelling andintracellular Cl accumulation in rat cortical astrocytes.In this report, we extended our study by using cortical astrocytes fromNKCC1-deficient (NKCC1/) mice. NKCC1 protein andactivity were absent in NKCC1/ astrocytes.[K+]o of 75 mM increased NKCC1 activityapproximately fourfold in NKCC1+/+ cells (P < 0.05) but had no effect in NKCC1/ astrocytes.Intracellular Cl was increased by 70% inNKCC1+/+ astrocytes under 75 mM[K+]o (P < 0.05) butremained unchanged in NKCC1/ astrocytes. Baselineintracellular Na+ concentration([Na+]i) in NKCC1+/+ astrocyteswas 19.0 ± 0.5 mM, compared with 16.9 ± 0.3 mM[Na+]i in NKCC1/ astrocytes(P < 0.05). Relative cell volume ofNKCC1+/+ astrocytes increased by 13 ± 2% in 75 mM[K+]o, compared with a value of 1.0 ± 0.5% in NKCC1/ astrocytes (P < 0.05).Regulatory volume increase after hypertonic shrinkage was completelyimpaired in NKCC1/ astrocytes.High-[K+]o-induced 14C-labeledD-aspartate release was reduced by ~30% inNKCC1/ astrocytes. Our study suggests that stimulationof NKCC1 is required for high-[K+]o-inducedswelling, which contributes to glutamate release from astrocytes underhigh [K+]o.

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12.
Patch-clamping and cell imageanalysis techniques were used to study the expression of thevolume-activated Cl current,ICl(vol), and regulatory volume decrease (RVD)capacity in the cell cycle in nasopharyngeal carcinoma cells (CNE-2Z). Hypotonic challenge caused CNE-2Z cells to swell and activated aCl current with a linear conductance, negligibletime-dependent inactivation, and a reversal potential close to theCl equilibrium potential. The sequence of anionpermeability was I > Br > Cl > gluconate. The Cl channelblockers tamoxifen, 5-nitro-2-(3-phenylpropylamino)benzoic acid (NPPB),and ATP inhibited ICl(vol). Synchronous cultures of cells were obtained by the mitotic shake-off technique and by adouble chemical-block (thymidine and hydroxyurea) technique. Theexpression of ICl(vol) was cell cycle dependent,being high in G1 phase, downregulated in S phase, butincreasing again in M phase. Hypotonic solution activated RVD, whichwas cell cycle dependent and inhibited by the Cl channelblockers NPPB, tamoxifen, and ATP. The expression of ICl(vol) was closely correlated with the RVDcapacity in the cell cycle, suggesting a functional relationship.Inhibition of ICl(vol) by NPPB (100 µM)arrested cells in G0/G1. The data also suggest that expression of ICl(vol) and RVD capacity areactively modulated during the cell cycle. The volume-activatedCl current associated with RVD may therefore play animportant role during the cell cycle progress.

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13.
Growthfactors affect a variety of epithelial functions. We examined theability of TGF- to modulate epithelial ion transport andpermeability. Filter-grown monolayers of human colonic epithelia, T84and HT-29 cells, were treated with TGF- (0.1-100 ng/ml,15 min-72 h) or infected with an adenoviral vector encodingTGF- (Ad-TGF) for 144 h. Ion transport (i.e., short-circuitcurrent, Isc) and transepithelial resistance(TER) were assessed in Ussing chambers. Neither recombinant TGF- norAd-TGF infection affected baseline Isc;however, exposure to 1 ng/ml TGF- led to a significant (30-50%) reduction in the Isc responses toforskolin, vasoactive intestinal peptide, and cholera toxin (agentsthat evoke Cl secretion via cAMP mobilization) and to thecell-permeant dibutyryl cAMP. Pharmacological analysis of signalingpathways revealed that the inhibition of cAMP-driven epithelialCl secretion by TGF- was blocked by pretreatment withSB-203580, a specific inhibitor of p38 MAPK, but not by inhibitors ofJNK, ERK1/2 MAPK, or phosphatidylinositol 3'-kinase. TGF- enhanced the barrier function of the treated monolayers by up to threefold asassessed by TER; however, this event was temporally displaced from thealtered Isc response, being statisticallysignificant only at 72 h posttreatment. Thus, in addition toTGF- promotion of epithelial barrier function, we show that thisgrowth factor also reduces responsiveness to cAMP-dependentsecretagogues in a chronic manner and speculate that this serves as abraking mechanism to limit secretory enteropathies.

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14.
The phorbol ester phorbol12-myristate 13-acetate (PMA) inhibits Cl secretion(short-circuit current, Isc) and decreasesbarrier function (transepithelial resistance, TER) in T84 epithelia. To elucidate the role of specific protein kinase C (PKC) isoenzymes inthis response, we compared PMA with two non-phorbol activators of PKC(bryostatin-1 and carbachol) and utilized three PKC inhibitors (Gö-6850, Gö-6976, and rottlerin) with different isozymeselectivity profiles. PMA sequentially inhibited cAMP-stimulatedIsc and decreased TER, as measured byvoltage-current clamp. By subcellular fractionation and Western blot,PMA (100 nM) induced sequential membrane translocation of the novelPKC followed by the conventional PKC and activated both isozymesby in vitro kinase assay. PKC was activated by PMA but did nottranslocate. By immunofluorescence, PKC redistributed to thebasolateral domain in response to PMA, whereas PKC moved apically.Inhibition of Isc by PMA was prevented by theconventional and novel PKC inhibitor Gö-6850 (5 µM) but not theconventional isoform inhibitor Gö-6976 (5 µM) or the PKCinhibitor rottlerin (10 µM), implicating PKC in inhibition ofCl secretion. In contrast, both Gö-6976 andGö-6850 prevented the decline of TER, suggesting involvement ofPKC. Bryostatin-1 (100 nM) translocated PKC and PKC andinhibited cAMP-elicited Isc. However, unlikePMA, bryostatin-1 downregulated PKC protein, and the decrease in TERwas only transient. Carbachol (100 µM) translocated only PKC andinhibited Isc with no effect on TER. Gö-6850 but not Gö-6976 or rottlerin blocked bryostatin-1and carbachol inhibition of Isc. We concludethat basolateral translocation of PKC inhibits Clsecretion, while apical translocation of PKC decreases TER. Thesedata suggest that epithelial transport and barrier function can bemodulated by distinct PKC isoforms.

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15.
An HEK-293 cell line stably expressing the humanrecombinant ClC-2 Cl channel was used in patch-clampstudies to study its regulation. The relative permeabilityPx/PCl calculated fromreversal potentials was I > Cl = NO3 = SCNBr. Theabsolute permeability calculated from conductance ratios wasCl = Br = NO3  SCN > I. The channel was activatedby cAMP-dependent protein kinase (PKA), reduced extracellular pH, oleicacid (C:18 cis9), elaidic acid (C:18trans9), arachidonic acid (AA; C:20cis5,8,11,14), and by inhibitors of AA metabolism,5,8,11,14-eicosatetraynoic acid (ETYA; C:20trans5,8,11,14),-methyl-4-(2-methylpropyl)benzeneacetic acid (ibuprofen), and2-phenyl-1,2-benzisoselenazol-3-[2H]-one (PZ51, ebselen). ClC-2Cl channels were activated by a combination of forskolinplus IBMX and were inhibited by the cell-permeant myristoylated PKAinhibitor (mPKI). Channel activation by reduction of bath pH wasincreased by PKA and prevented by mPKI. AA activation of the ClC-2Cl channel was not inhibited by mPKI or staurosporine andwas therefore independent of PKA or protein kinase C activation.

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16.
Mammary epithelial 31EG4 cells (MEC) were grown as monolayers onfilters to analyze the apical membrane mechanisms that help mediate ionand fluid transport across the epithelium. RT-PCR showed the presenceof cystic fibrosis transmembrane conductance regulator (CFTR) andepithelial Na+ channel (ENaC) message, and immunomicroscopyshowed apical membrane staining for both proteins. CFTR was alsolocalized to the apical membrane of native human mammary ductepithelium. In control conditions, mean values of transepithelialpotential (apical-side negative) and resistance(RT) are 5.9 mV and 829  · cm2, respectively. The apical membranepotential (VA) is 40.7 mV, and the mean ratioof apical to basolateral membrane resistance (RA/RB) is 2.8. Apicalamiloride hyperpolarized VA by 19.7 mV andtripled RA/RB. AcAMP-elevating cocktail depolarized VA by 17.6 mV, decreased RA/RB by60%, increased short-circuit current by 6 µA/cm2,decreased RT by 155  · cm2, and largely eliminated responses toamiloride. Whole cell patch-clamp measurements demonstratedamiloride-inhibited Na+ currents [linear current-voltage(I-V) relation] and forskolin-stimulated Clcurrents (linear I-V relation). A capacitance probe methodshowed that in the control state, MEC monolayers either absorbed orsecreted fluid (2-4µl · cm2 · h1). Fluidsecretion was stimulated either by activating CFTR (cAMP) or blockingENaC (amiloride). These data plus equivalent circuit analysis showedthat 1) fluid absorption across MEC is mediated byNa+ transport via apical membrane ENaC, and fluid secretionis mediated, in part, by Cl transport via apicalCFTR; 2) in both cases, appropriate counterions move throughtight junctions to maintain electroneutrality; and 3)interactions among CFTR, ENaC, and tight junctions allow MEC to eitherabsorb or secrete fluid and, in situ, may help control luminal[Na+] and [Cl].

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17.
We investigated the regulation ofATP-sensitive K+ (KATP) currents in murinecolonic myocytes with patch-clamp techniques. Pinacidil(105 M) activated inward currents in the presence of highexternal K+ (90 mM) at a holding potential of 80 mV indialyzed cells. Glibenclamide (105 M) suppressedpinacidil-activated current. Phorbol 12,13-dibutyrate (PDBu; 2 × 107 M) inhibited pinacidil-activated current.4--Phorbol ester (5 × 107 M), an inactive formof PDBu, had no effect on pinacidil-activated current. In cell-attachedpatches, the open probability of KATP channels wasincreased by pinacidil, and PDBu suppressed openings ofKATP channels. When cells were pretreated withchelerythrine (106 M) or calphostin C (107M), inhibition of the pinacidil-activated whole cell currents by PDBuwas significantly reduced. In cells studied with the perforated patchtechnique, PDBu also inhibited pinacidil-activated current, and thisinhibition was reduced by chelerythrine (106 M).Acetylcholine (ACh; 105 M) inhibited pinacidil-activatedcurrents, and preincubation of cells with calphostin C(107 M) decreased the effect of ACh. Cells dialyzed withprotein kinase C -isoform (PKC) antibody had normal responses topinacidil, but the effects of PDBu and ACh on KATP wereblocked in these cells. Immunofluorescence and Western blots showedexpression of PKC in intact muscles and isolated smooth muscle cellsof the murine proximal colon. These data suggest that PKC regulates KATP in colonic muscle cells and that the effects of ACh onKATP are largely mediated by PKC. PKC appears to be themajor isozyme that regulates KATP in murine colonic myocytes.

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18.
The amiloride-sensitiveepithelial sodium channel (ENaC) plays a critical role in fluid andelectrolyte homeostasis and is composed of three homologous subunits:, , and . Only heteromultimeric channels made of ENaCare efficiently expressed at the cell surface, resulting in maximallyamiloride-sensitive currents. To study the relative importance ofvarious regions of the - and -subunits for the expression offunctional ENaC channels at the cell surface, we constructedhemagglutinin (HA)-tagged --chimeric subunits composed of -and -subunit regions and coexpressed them with HA-tagged - and-subunits in Xenopus laevis oocytes. The whole cellamiloride-sensitive sodium current (Iami) andsurface expression of channels were assessed in parallel using thetwo-electrode voltage-clamp technique and a chemiluminescence assay.Because coexpression of ENaC resulted in largerIami and surface expression compared withcoexpression of ENaC, we hypothesized that the -subunit ismore important for ENaC trafficking than the -subunit. Usingchimeras, we demonstrated that channel activity is largely preservedwhen the highly conserved second cysteine rich domains (CRD2) of the- and -subunits are exchanged. In contrast, exchanging the wholeextracellular loops of the - and the -subunits largely reducedENaC currents and ENaC expression in the membrane. This indicates thatthere is limited interchangeability between molecular regions of thetwo subunits. Interestingly, our chimera studies demonstrated that theintracellular termini and the two transmembrane domains of ENaC aremore important for the expression of functional channels at the cellsurface than the corresponding regions of ENaC.

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19.
The solubleCa2+-binding protein parvalbumin (PV) is expressed at highlevels in fast-twitch muscles of mice. Deficiency of PV in knockoutmice (PV /) slows down the speed of twitch relaxation, whilemaximum force generated during tetanic contraction is unaltered. Weobserved that PV-deficient fast-twitch muscles were significantly moreresistant to fatigue than were the wild type. Thus components involvedin Ca2+ homeostasis during the contraction-relaxation cyclewere analyzed. No upregulation of another cytosolicCa2+-binding protein was found. Mitochondria are thought toplay a physiological role during muscle relaxation and were thusanalyzed. The fractional volume of mitochondria in the fast-twitchmuscle extensor digitorum longus (EDL) was almost doubled in PV /mice, and this was reflected in an increase of cytochrome coxidase. A faster removal of intracellular Ca2+concentration ([Ca2+]i) 200-700 ms afterfast-twitch muscle stimulation observed in PV / muscles supportsthe role for mitochondria in late [Ca2+]iremoval. The present results also show a significant increase of thedensity of capillaries in EDL muscles of PV / mice. Thus alterations in the dynamics of Ca2+ transients detected infast-twitch muscles of PV / mice might be linked to the increase inmitochondria volume and capillary density, which contribute to thegreater fatigue resistance of these muscles.

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20.
Peroxynitrite causes endothelial cell monolayer barrier dysfunction   总被引:7,自引:0,他引:7  
Nitric oxide (·NO) attenuates hydrogen peroxide(H2O2)-mediated barrier dysfunction in culturedporcine pulmonary artery endothelial cells (PAEC) (Gupta MP, Ober MD,Patterson C, Al-Hassani M, Natarajan V, and Hart, CM. Am JPhysiol Lung Cell Mol Physiol 280: L116-L126, 2001). However,·NO rapidly combines with superoxide (O) to formthe powerful oxidant peroxynitrite (ONOO), which wehypothesized would cause PAEC monolayer barrier dysfunction. To testthis hypothesis, we treated PAEC with ONOO (500 µM) or3-morpholinosydnonimine hydrochloride (SIN-1; 1-500 µM).SIN-1-mediated ONOO formation was confirmed by monitoringthe oxidation of dihydrorhodamine 123 to rhodamine. BothONOO and SIN-1 increased albumin clearance(P < 0.05) in the absence of cytotoxicity and alteredthe architecture of the cytoskeletal proteins actin and -catenin asdetected by immunofluorescent confocal imaging.ONOO-induced barrier dysfunction was partially reversibleand was attenuated by cysteine. Both ONOO and SIN-1nitrated tyrosine residues, including those on -catenin and actin,and oxidized proteins in PAEC. The introduction of actin treated withONOO into PAEC monolayers via liposomes alsoresulted in barrier dysfunction. These results indicate thatONOO directly alters endothelial cytoskeletal proteins,leading to barrier dysfunction.

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