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1.
Westudied the interplay between matrix Ca2+ concentration([Ca2+]) and mitochondrial membrane potential() in regulation of the mitochondrial permeability transition(MPT) during anoxia and reoxygenation. Without Ca2+loading, anoxia caused near-synchronous dissipation,mitochondrial Ca2+ efflux, and matrix volume shrinkage whena critically low PO2 was reached, which wasrapidly reversible upon reoxygenation. These changes were related toelectron transport inhibition, not MPT. Cyclosporin A-sensitive MPT didoccur when extramitochondrial [Ca2+] was increased topromote significant Ca2+ uptake during anoxia, depending onthe Ca2+ load size and ability to maintain . However,when [Ca2+] was increased after complete dissipation, MPT did not occur until reoxygenation, at which timereactivation of electron transport led to partial regeneration.In the setting of elevated extramitochondrial Ca2+, thisenhanced matrix Ca2+ uptake while promoting MPT because ofless than full recovery of . The interplay between andmatrix [Ca2+] in accelerating or inhibiting MPT duringanoxia/reoxygenation has implications for preventing reoxygenationinjury associated with MPT.

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2.
Thecalcium-binding protein parvalbumin (PV) occurs at high concentrationsin fast-contracting vertebrate muscle fibers. Its putative role infacilitating the rapid relaxation of mammalian fast-twitch musclefibers by acting as a temporary buffer for Ca2+ is still controversial. Wegenerated knockout mice for PV (PV /) and compared theCa2+ transients and the dynamicsof contraction of their muscles with those from heterozygous (PV+/) and wild-type (WT) mice. In the muscles of PV-deficientmice, the decay of intracellularCa2+ concentration([Ca2+]i)after 20-ms stimulation was slower compared with WT mice and led to aprolongation of the time required to attain peak twitch tension and toan extension of the half-relaxation time. The integral [Ca2+]iin muscle fibers of PV / mice was higher and consequently the force generated during a single twitch was ~40% greater than inPV +/ and WT animals. Acceleration of the contraction-relaxation cycle of fast-twitch muscle fibers by PV may confer an advantage in theperformance of rapid, phasic movements.  相似文献   

3.
The fluorescence of quinolinium-basedCl indicators such as6-methoxy-N-(3-sulfopropyl)quinolinium(SPQ) is quenched by Cl bya collisional mechanism without change in spectral shape. A series of"chimeric" dual-wavelengthCl indicators weresynthesized by conjugatingCl-sensitive and-insensitive chromophores with spacers. The SPQ chromophore(N-substituted 6-methoxyquinolinium; MQ) was selected as theCl-sensitive moiety[excitation wavelength(ex) 350 nm, emission wavelength (em) 450 nm]. N-substituted 6-aminoquinolinium (AQ) waschosen as theCl-insensitive moietybecause of its different spectral characteristics (ex 380 nm,em 546 nm), insensitivity toCl, positive charge (tominimize quenching by chromophore stacking/electron transfer), andreducibility (for noninvasive cell loading). The dual-wavelengthindicators were stable and nontoxic in cells and were distributeduniformly in cytoplasm, with occasional staining of the nucleus. Thebrightest and mostCl-sensitive indicatorswere -MQ-'-dimethyl-AQ-xylene dichloride andtrans-1,2-bis(4-[1-'-MQ-1'-'-dimethyl-AQ-xylyl]-pyridinium)ethylene (bis-DMXPQ). At 365-nm excitation, emission maxima were at 450 nm(Cl sensitive; Stern-Volmerconstants 82 and 98 M1)and 565 nm (Clinsensitive). Cystic fibrosis transmembrane conductanceregulator-expressing Swiss 3T3 fibroblasts were labeled with bis-DMXPQby hypotonic shock or were labeled with its uncharged reduced form(octahydro-bis-DMXPQ) by brief incubation (20 µM, 10 min). Changes inCl concentration inresponse to Cl/nitrateexchange were recorded by emission ratio imaging (450/565 nm) at 365-nmexcitation wavelength. These results establish a first-generation setof chimeric bisquinoliniumCl indicators forratiometric measurement ofCl concentration.  相似文献   

4.
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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5.
Chloride release from nonpigmented ciliary epithelial (NPE)cells is a final step in forming aqueous humor, and adenosine stimulates Cl transport by these cells. Whole cell patchclamping of cultured human NPE cells indicated that theA3-selective agonist1-deoxy-1-(6-[([3-iodophenyl]methyl)amino]-9H-purin-9-yl)-N-methyl--D-ribofuranuronamide (IB-MECA) stimulated currents (IIB-MECA) by~90% at +80 mV. Partial replacement of external Clwith aspartate reduced outward currents and shifted the reversal potential (Vrev) from 23 ± 2 mV to0.0 ± 0.7 mV. Nitrate substitution had little effect. Perfusionwith the Cl channel blockers5-nitro-2-(3-phenylpropylamino)benzoic acid (NPPB) and niflumic acidinhibited the currents. Partial Cl replacement withaspartate and NO3, and perfusion with NPPB, hadsimilar effects on the swelling-activated whole cell currents(ISwell). Partial cyclamate substitution for external Cl inhibited inward and outward currents of bothIIB-MECA and ISwell. Bothsets of currents also showed outward rectification and inactivation atlarge depolarizing potentials. The results are consistent with theconcept that A3-subtype adenosine agonists and swellingactivate a common population of Cl channels.

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6.
Depolarization elicited outwardK+ currents from canine loweresophageal sphincter (LES) muscle cells, primarily through iberiotoxin (IbTX)- and tetraethylammonium-sensitiveCa2+-dependentK+ channels. Current magnitudesvaried with pipette Ca2+concentration (EC50 = 108.5 nM).NG-nitro-L-arginine(L-NNA,104 M), IbTX(108 M), or bufferingintracellular Ca2+ to 8 nMdecreased outward currents >80%. Sodium nitroprusside (NaNP,104 M) restoredL-NNA-inhibited or lowintracellular Ca2+ concentration(not IbTX)-inhibited currents.L-NNA or IbTXapplication depolarized LES cells from 43 to 35 mV. NaNPrestored the membrane potential to 46 mV afterL-NNA but not after IbTXapplication. Nifedipine (30 µM) reduced outward currents andabolished or reduced L-NNA orNaNP effects, respectively. Immunocytochemistry revealed the presenceof both argininosuccinate synthetase and argininosuccinate lyase in LESmuscle cells. L-Citrulline, likeL-arginine, reversed L-NNA inhibition of outwardcurrents; only L-argininereversed inhibition of outward currents by an antibody toargininosuccinate synthetase. Therefore, endogenous nitric oxideproduction, activated by Ca2+entrance involving L-typeCa2+ channels, may continuouslyenhance outward currents to modulate LES muscle cell membrane potentialand excitability.

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7.
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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8.
The possibility that membrane depolarization of synovialfibroblasts caused by interleukin-1 (IL-1) was mediated byprotein kinase C (PKC) and Ca2+influx was studied using inhibitor and activator analysis. The effectof IL-1 was blocked by bisindolylmaleimide I, an inhibitor of PKC,and by the Ca2+ channel blockersnifedipine and verapamil. In other experiments, PKC was activated usingphorbol 12-myristate 13-acetate, andCa2+ influx was increased by meansof a Ca2+ ionophore. Simultaneousapplication of phorbol ester andCa2+ ionophore in the absence ofIL-1 mimicked the depolarization caused by IL-1. The results wereconsistent with the hypothesis that, under the conditions studied,activation of PKC and Ca2+ influxare necessary and sufficient processes in the transduction of IL-1by synovial cells leading to membrane depolarization. Theessential role of protein phosphorylation andCa2+ influx in the earlyelectrophysiological response of synovial fibroblasts to IL-1 wastherefore established. The role of IL-1-induced depolarization inregulating protein expression by the cells remains to be determined,but the results reported here, taken together with observations thatprotein phosphorylation and Ca2+influx also mediate the effect of IL-1 on protease production (1, 2), suggest that electrophysiological changes are actually part of thepathway for expression of proteases in response to IL-1.

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9.
Upregulation of Kv1.3 K(+) channels in microglia deactivated by TGF-beta   总被引:5,自引:0,他引:5  
Microglial activation is accompanied by changes inK+ channel expression. Here we demonstrate that adeactivating cytokine changes the electrophysiological properties ofmicroglial cells. Upregulation of delayed rectifier (DR) K+channels was observed in microglia after exposure to transforming growth factor- (TGF-) for 24 h. In contrast, inwardrectifier K+ channel expression was unchanged by TGF-.DR current density was more than sixfold larger in TGF--treatedmicroglia than in untreated microglia. DR currents of TGF--treatedcells exhibited the following properties: activation at potentials morepositive than 40 mV, half-maximal activation at 27 mV, half-maximalinactivation at 38 mV, time dependent and strongly use-dependentinactivation, and a single channel conductance of 13 pS in Ringersolution. DR channels were highly sensitive to charybdotoxin (CTX) andkaliotoxin (KTX), whereas -dendrotoxin had little effect.With RT-PCR, mRNA for Kv1.3 and Kir2.1 was detected in microglia. Inaccordance with the observed changes in DR current density, the mRNAlevel for Kv1.3 (assessed by competitive RT-PCR) increased fivefold after treatment of microglia with TGF-.

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10.
Ca2+-activatedCl currents (ICl,Ca) wereexamined using fluorescence confocal microscopy to monitorintracellular Ca2+ liberation evoked by flash photolysis ofcaged inositol 1,4,5-trisphosphate (InsP3) involtage-clamped Xenopus oocytes. Currents at +40 mV exhibited asteep dependence on InsP3 concentration([InsP3]), whereas currents at140 mV exhibited a higher threshold and more graded relationshipwith [InsP3]. Ca2+ levelsrequired to half-maximally activate ICl,Ca wereabout 50% larger at 140 mV than at +40 mV, and currents evokedby small Ca2+ elevations were reduced >25-fold. Thehalf-decay time of Ca2+ signals shortened at increasinglypositive potentials, whereas the decay of ICl,Calengthened. The steady-state current-voltage (I-V) relationshipfor ICl,Ca exhibited outward rectification withweak photolysis flashes but became more linear with stronger stimuli.Instantaneous I-V relationships were linear with both strongand weak stimuli. Current relaxations following voltage steps duringactivation of ICl,Ca decayed with half-times that shortened from about 100 ms at +10 mV to 20 ms at 160 mV. We conclude that InsP3-mediated Ca2+liberation activates a single population of Clchannels, which exhibit voltage-dependent Ca2+ activationand voltage-independent instantaneous conductance.

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11.
Thickening of airway mucus and lungdysfunction in cystic fibrosis (CF) results, at least in part, fromabnormal secretion of Cl and HCO3across the tracheal epithelium. The mechanism of the defect in HCO3 secretion is ill defined; however, a lack ofapical Cl/HCO3 exchange may exist inCF. To test this hypothesis, we examined the expression ofCl/HCO3 exchangers in trachealepithelial cells exhibiting physiological features prototypical ofcystic fibrosis [CFT-1 cells, lacking a functional cystic fibrosistransmembrane conductance regulator (CFTR)] or normal trachea (CFT-1cells transfected with functional wild-type CFTR, termed CFT-WT). Cellswere grown on coverslips and were loaded with the pH-sensitive dye2',7'-bis(2-carboxyethyl)-5(6)-carboxyfluorescein, andintracellular pH was monitored. Cl/HCO3exchange activity increased by ~300% in cells transfected with functional CFTR, with activities increasing from 0.034 pH/min in CFT-1cells to 0.11 in CFT-WT cells (P < 0.001, n = 8). This activity was significantly inhibited byDIDS. The mRNA expression of the ubiquitous basolateral AE-2Cl/HCO3 exchanger remained unchanged.However, mRNA encoding DRA, recently shown to be aCl/HCO3 exchanger (Melvin JE, Park K,Richardson L, Schultheis PJ, and Shull GE. J Biol Chem 274:22855-22861, 1999.) was abundantly expressed in cells expressingfunctional CFTR but not in cells that lacked CFTR or that expressedmutant CFTR. In conclusion, CFTR induces the mRNA expression of"downregulated in adenoma" (DRA) and, as a result, upregulates theapical Cl/HCO3 exchanger activity intracheal cells. We propose that the tracheal HCO3secretion defect in patients with CF is partly due to thedownregulation of the apical Cl/HCO3exchange activity mediated by DRA.

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12.
Taurodeoxycholic acid (TDC) stimulates Cl transport inadult (AD), but not weanling (WN) and newborn (NB), rabbit colonic epithelial cells (colonocytes). The present study demonstrates thatstimuli like neurotensin (NT) are also age specific and identifies theage-dependent signaling step. Bile acid actions are segment and bileacid specific. Thus although TDC and taurochenodeoxycholate stimulateCl transport in AD distal but not proximal colon,taurocholate has no effect in either segment. TDC increasesintracellular Ca2+ concentration([Ca2+]i) in AD, but not in WN and NB,colonocytes. In AD cells, TDC (5 min) action on Cltransport needs intra- but not extracellular Ca2+. NT,histamine, and bethanechol increase Cl transport and[Ca2+]i in AD, but not WN, distalcolonocytes. However, A-23187 increased [Ca2+]i and Cl transport in allage groups, suggesting that Ca2+-sensitive Cltransport is present from birth. Study of the proximal steps inCa2+ signaling revealed that NT, but not TDC, activates aGTP-binding protein, Gq, in AD and WN cells. Inaddition, although WN and AD colonocytes had similar levels ofphosphatidylinositol 4,5-bisphosphate, NT and TDC increased1,4,5-inositol trisphosphate content only in AD cells.Nonresponsiveness of WN cells to Ca2+-dependent stimuli,therefore, is due to the absence of measurable phospholipase Cactivity. Thus delays in Ca2+ signaling afford a crucialprotective mechanism to meet the changing demands of the developing colon.

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13.
Monolayers of the human colonic epithelial cell line T84 exhibitelectrogenic Cl secretionin response to the Ca2+ agonistthapsigargin and to the cAMP agonist forskolin. To evaluate directlythe regulation of apical Clconductance by these two agonists, we have utilized amphotericin B topermeabilize selectively the basolateral membranes of T84 cellmonolayers. We find that apical anion conductance is stimulated by bothforskolin and thapsigargin but that these conductances aredifferentially sensitive to the anion channel blocker DIDS. DIDSinhibits thapsigargin-stimulated responses completely but forskolinresponses only partially. Furthermore, the apical membrane anionconductances elicited by these two agonists differ in anion selectivity(for thapsigargin, I > Cl; for forskolin,Cl > I). However, theDIDS-sensitive component of the forskolin-induced conductance responseexhibits anion selectivity similar to that induced by thapsigargin(I > Cl). Thusforskolin-induced apical anion conductance comprises at least twocomponents, one of which has features in common with that elicited bythapsigargin.

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14.
Previous data indicate that adenosine 3',5'-cyclicmonophosphate activates the epithelial basolateralNa+-K+-Clcotransporter in microfilament-dependent fashion in part by direct action but also in response to apicalCl loss (due to cellshrinkage or decreased intracellularCl). To further addressthe actin dependence ofNa+-K+-Clcotransport, human epithelial T84 monolayers were exposed to anisotonicity, and isotopic flux analysis was performed.Na+-K+-Clcotransport was activated by hypertonicity induced by added mannitol but not added NaCl. Cotransport was also markedly activated by hypotonic stress, a response that appeared to be due in part to reduction of extracellularCl concentration and alsoto activation of K+ andCl efflux pathways.Stabilization of actin with phalloidin blunted cotransporter activationby hypotonicity and abolished hypotonic activation ofK+ andCl efflux. However,phalloidin did not prevent activation of cotransport by hypertonicityor isosmotic reduction of extracellularCl. Conversely, hypertonicbut not hypotonic activation was attenuated by the microfilamentdisassembler cytochalasin D. The results emphasize the complexinterrelationship among intracellularCl activity, cell volume,and the actin cytoskeleton in the regulation of epithelialCl transport.

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15.
The cerebrospinalfluid (CSF)-generating choroid plexus (CP) has manyV1 binding sites for argininevasopressin (AVP). AVP decreases CSF formation rate and choroidal bloodflow, but little is known about how AVP alters ion transport across theblood-CSF barrier. Adult rat lateral ventricle CP was loaded with36Cl,exposed to AVP for 20 min, and then placed in isotope-free artificial CSF to measure release of36Cl.Effect of AVP at 1012 to107 M on theCl efflux rate coefficient(in s1) was quantified.Maximal inhibition (by 20%) ofCl extrusion at109 M AVP was prevented bythe V1 receptor antagonist[-mercapto-,-cyclopentamethyleneproprionyl1,O-Me-Tyr2,Arg8]vasopressin.AVP also increased by more than twofold the number of dark and possiblydehydrated but otherwise morphologically normal choroid epithelialcells in adult CP. The V1 receptorantagonist prevented this AVP-induced increment in dark cell frequency.In infant rats (1 wk) with incomplete CSF secretory ability,109 M AVP altered neitherCl efflux nor dark cellfrequency. The ability of AVP to elicit functional and structuralchanges in adult, but not infant, CP epithelium is discussed in regardto ion transport, CSF secretion, intracranial pressure, and hydrocephalus.

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16.
The hypothesisthat amiloride-sensitive Na+channels (ENaC) are involved in cell volume regulation was tested.Anisosmotic ND-20 media (ranging from 70 to 450 mosM) were used tosuperfuse Xenopus oocytes expressing-rat ENaC (-rENaC). Whole cell currents werereversibly dependent on external osmolarity. Under conditions ofswelling (70 mosM) or shrinkage (450 mosM), current amplitude decreasedand increased, respectively. In contrast, there was no change incurrent amplitude of H2O-injectedoocytes to the above osmotic insults. Currents recorded from-rENaC-injected oocytes were not sensitive to externalCl concentration or to theK+ channel inhibitorBaCl2. They were sensitive toamiloride. The concentration of amiloride necessary to inhibit one-halfof the maximal rENaC current expressed in oocytes(Ki; apparentdissociation constant) decreased in swollen cells and increased inshrunken oocytes. The osmotic pressure-inducedNa+ currents showed propertiessimilar to those of stretch-activated channels, including inhibition byGd3+ andLa3+, and decreased selectivityfor Na+.-rENaC-expressing oocytes maintained a nearly constant cell volume in hypertonic ND-20. The present study is the firstdemonstration that -rENaC heterologously expressed inXenopus oocytes may contribute tooocyte volume regulation following shrinkage.

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17.
The substitution of gluconate forCl is commonly used tocharacterize Cl transportor Cl-dependent transportmechanisms. We evaluated the effects of substituting gluconate forCl on the transport of theP-glycoprotein substrate rhodamine 123 (R123). The replacement ofRinger solution containingCl(Cl-Ringer)with gluconate-Ringer inhibited R123 efflux, whereas the replacement ofCl by other anions (sulfateor cyclamate) had no effect. The inhibition of R123 efflux bygluconate-Ringer was absent after chloroform extraction of the sodiumgluconate salt. The readdition of the sodium gluconate-chloroformextract to the extracted gluconate-Ringer or to cyclamate-Ringerinhibited R123 efflux, whereas its addition toCl-Ringer had no effect.These observations indicate that the inhibition ofP-glycoprotein-mediated R123 transport by gluconate is due to one ormore chloroform-soluble contaminants and that the inhibition is absentin the presence of Cl. Theresults are consistent with the fact that P-glycoprotein substrates arehydrophobic. Care should be taken when replacing ions to evaluatemembrane transport mechanisms because highly pure commercialpreparations may still contain potent contaminants that affect transport.

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18.
Corneal endothelial function is dependent onHCO3 transport. However, the relativeHCO3 permeabilities of the apical andbasolateral membranes are unknown. Using changes in intracellular pHsecondary to removingCO2-HCO3 (at constant pH) or removing HCO3alone (at constant CO2) fromapical or basolateral compartments, we determined the relative apicaland basolateral HCO3 permeabilities and their dependencies on Na+ andCl. Removal ofCO2-HCO3from the apical side caused a steady-state alkalinization (+0.08 pHunits), and removal from the basolateral side caused an acidification(0.05 pH units). Removal ofHCO3 at constantCO2 indicated that the basolateralHCO3 fluxes were about three to fourtimes the apical fluxes. Reducing perfusateNa+ concentration to 10 mM had noeffect on apical flux but slowed basolateralHCO3 flux by one-half. In the absence of Cl, there was anapparent increase in apical HCO3 fluxunder constant-pH conditions; however, no net change could be measuredunder constant-CO2 conditions.Basolateral flux was slowed ~30% in the absence ofCl, but the net flux wasunchanged. The steady-state alkalinization after removal ofCO2-HCO3apically suggests that CO2diffusion may contribute to apicalHCO3 flux through the action of amembrane-associated carbonic anhydrase. Indeed, apicalCO2 fluxes were inhibited by theextracellular carbonic anhydrase inhibitor benzolamide and partiallyrestored by exogenous carbonic anhydrase. The presence ofmembrane-bound carbonic anhydrase (CAIV) was confirmed byimmunoblotting. We conclude that theNa+-dependent basolateralHCO3 permeability is consistent withNa+-nHCO3cotransport. Changes inHCO3 flux in the absence ofCl are most likely due toNa+-nHCO3cotransport-induced membrane potential changes that cannot bedissipated. Apical HCO3 permeabilityis relatively low, but may be augmented byCO2 diffusion in conjunction witha CAIV.

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19.
Alterations in the competency of the creatine kinase systemelicit numerous structural and metabolic compensations, including changes in purine nucleotide metabolism. We evaluated molecular andkinetic changes in AMP deaminase from skeletal muscles of micedeficient in either cytosolic creatine kinase alone(M-CK/) or alsodeficient in mitochondrial creatine kinase(CK/) comparedwith wild type. We found that predominantly fast-twitch muscle, but notslow-twitch muscle, from bothM-CK/ andCK/ mice had muchlower AMP deaminase; the quantity of AMP deaminase detected by Westernblot was correspondingly lower, whereas AMP deaminase-1(AMPD1) gene expressionwas unchanged. Kinetic analysis of AMP deaminase from mixed musclerevealed negative cooperativity that was significantly greater increatine kinase deficiencies. Treatment of AMP deaminase with acidphosphatase abolished negative cooperative behavior, indicating that aphosphorylation-dephosphorylation cycle may be important in theregulation of AMP deaminase.

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20.
Ca(2+)-activated Cl(-) current in sheep lymphatic smooth muscle   总被引:1,自引:0,他引:1  
Freshly dispersed sheep mesenteric lymphaticsmooth muscle cells were studied at 37°C using the perforatedpatch-clamp technique with Cs+- and K+-filledpipettes. Depolarizing steps evoked currents that consisted ofL-type Ca2+ [ICa(L)]current and a slowly developing current. The slow current reversed at1 ± 1.5 mV with symmetrical Cl concentrationscompared with 23.2 ± 1.2 mV (n = 5) and34.3 ± 3.5 mV (n = 4) when externalCl was substituted with either glutamate (86 mM) orI (125 mM). Nifedipine (1 µM) blocked and BAY K 8644 enhanced ICa(L), the slow-developing sustainedcurrent, and the tail current. The Cl channel blockeranthracene-9-carboxylic acid (9-AC) reduced only the slowly developinginward and tail currents. Application of caffeine (10 mM) tovoltage-clamped cells evoked currents that reversed close to theCl equilibrium potential and were sensitive to 9-AC.Small spontaneous transient depolarizations and larger actionpotentials were observed in current clamp, and these were blocked by9-AC. Evoked action potentials were triphasic and had a prominentplateau phase that was selectively blocked by 9-AC. Similarly, fluidoutput was reduced by 9-AC in doubly cannulated segments ofspontaneously pumping sheep lymphatics, suggesting that theCa2+-activated Cl current plays an importantrole in the electrical activity underlying spontaneous activity in this tissue.

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