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1.
We havepreviously shown that Ca2+-dependent Clsecretion across intestinal epithelial cells is limited by a signalingpathway involving transactivation of the epidermal growth factorreceptor (EGFR) and activation of ERK mitogen-activated protein kinase (MAPK). Here, we have investigated a possible role for p38 MAPK inregulation of Ca2+-dependent Cl secretion.Western blot analysis of T84 colonic epithelial cells revealed that the muscarinic agonist carbachol (CCh; 100 µM)stimulated phosphorylation and activation of p38 MAPK. The p38inhibitor SB-203580 (10 µM) potentiated and prolonged short-circuitcurrent (Isc) responses to CCh acrossvoltage-clamped T84 cells to 157.4 ± 6.9% of thosein control cells (n = 21; P < 0.001).CCh-induced p38 phosphorylation was attenuated by the EGFR inhibitortyrphostin AG-1478 (0.1 nM-10 µM) and by the Src family kinaseinhibitor PP2 (20 nM-2 µM). The effects of CCh on p38phosphorylation were mimicked by thapsigargin (TG; 2 µM), whichspecifically elevates intracellular Ca2+, and wereabolished by the Ca2+ chelator BAPTA-AM (20 µM), implyinga role for intracellular Ca2+ in mediating p38 activation.SB-203580 (10 µM) potentiated Isc responses toTG to 172.4 ± 18.1% of those in control cells (n = 18; P < 0.001). When cells were pretreated withSB-203580 and PD-98059 to simultaneously inhibit p38 and ERK MAPKs,respectively, Isc responses to TG and CCh weresignificantly greater than those observed with either inhibitor alone.We conclude that Ca2+-dependent agonists stimulate p38 MAPKin T84 cells by a mechanism involving intracellularCa2+, Src family kinases, and the EGFR. CCh-stimulated p38activation constitutes a similar, but distinct and complementary,antisecretory signaling pathway to that of ERK MAPK.

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2.
Bovine adrenalzona fasciculata cells (AZF) express a noninactivatingK+ current(IAC) whoseinhibition by adrenocorticotropic hormone and ANG II may be coupled tomembrane depolarization andCa2+-dependentcortisol secretion. We studiedIACinhibition byCa2+ and theCa2+ionophore ionomycin in whole cell and single-channel patch-clamp recordings of AZF. In whole cell recordings with intracellular (pipette)Ca2+concentration([Ca2+]i)buffered to 0.02 µM,IAC reachedmaximum current density of 25.0 ± 5.1 pA/pF(n = 16); raising[Ca2+]ito 2.0 µM reduced it 76%. In inside-out patches, elevated[Ca2+]idramatically reducedIAC channelactivity. Ionomycin inhibited IAC by 88 ± 4% (n = 14) without altering rapidlyinactivating A-type K+ current.Inhibition of IACby ionomycin was unaltered by adding calmodulin inhibitory peptide tothe pipette or replacing ATP with its nonhydrolyzable analog5'-adenylylimidodiphosphate.IAC inhibition byionomycin was associated with membrane depolarization. When[Ca2+]iwas buffered to 0.02 µM with 2 and 11 mM1,2-bis(2-aminophenoxy)ethane-N,N,N',N'-tetraacetic acid (BAPTA), ionomycin inhibitedIAC by 89.6 ± 3.5 and 25.6 ± 14.6% and depolarized the same AZF by 47 ± 8 and 8 ± 3 mV, respectively (n = 4). ANG II inhibitedIAC significantlymore effectively when pipette BAPTA was reduced from 11 to 2 mM. Raising[Ca2+]iinhibits IACthrough a mechanism not requiring calmodulin or protein kinases,suggesting direct interaction withIAC channels. ANGII may inhibitIAC anddepolarize AZF by activating parallel signaling pathways, one of whichuses Ca2+ asa mediator.

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3.
Rapamycin and FK-506 are immunosuppressive drugs thatbind a ubiquitous immunophilin, FKBP12, but immunosuppressivemechanisms and side effects appear to be different. Rapamycin bindsrenal FKBP12 to change renal transport. We used cell-attached patch clamp to examine rapamycin's effect on Na+ channels in A6cells. Channel NPo was 0.5 ± 0.08 (n = 6)during the first 5 min but fell close to zero after 20 min. Application of 1 µM rapamycin reactivated Na+ channels(NPo = 0.47 ± 0.1; n=6), but 1 µMFK-506 did not. Also, GF-109203X, a protein kinase C (PKC) inhibitor,mimicked the rapamycin-induced reactivation in a nonadditive manner.However, rapamycin did not reactivate Na+ channels if cellswere exposed to 1 µM FK-506 before rapamycin. In PKC assays,rapamycin was as effective as the PKC inhibitor; however, epithelialNa+ channel (ENaC) phosphorylation was low under baselineconditions and was not altered by PKC inhibitors or activators. Theseresults suggest that rapamycin activates Na+ channels bybinding FKBP12 and inhibiting PKC, and, in renal cells, despite bindingthe same immunophilin, rapamycin and FK-506 activate differentintracellular signaling pathways.

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4.
Forskolin,UTP, 1-ethyl-2-benzimidazolinone (1-EBIO), NS004, 8-methoxypsoralen(Methoxsalen; 8-MOP), and genistein were evaluated for theireffects on ion transport across primary cultures of human bronchialepithelium (HBE) expressing wild-type (wt HBE) and F508(F-HBE) cystic fibrosis transmembrane conductance regulator. In wtHBE, the baseline short-circuit current (Isc)averaged 27.0 ± 0.6 µA/cm2 (n = 350). Amiloride reduced this Isc by 13.5 ± 0.5 µA/cm2 (n = 317). In F-HBE,baseline Isc was 33.8 ± 1.2 µA/cm2 (n = 200), and amiloride reducedthis by 29.6 ± 1.5 µA/cm2 (n = 116), demonstrating the characteristic hyperabsorption of Na+ associated with cystic fibrosis (CF). In wt HBE,subsequent to amiloride, forskolin induced a sustained,bumetanide-sensitive Isc(Isc = 8.4 ± 0.8 µA/cm2; n = 119). Addition ofacetazolamide, 5-(N-ethyl-N-isopropyl)-amiloride, and serosal 4,4'-dinitrostilben-2,2'-disulfonic acid further reduced Isc, suggesting forskolin also stimulatesHCO3 secretion. This was confirmed by ionsubstitution studies. The forskolin-induced Iscwas inhibited by 293B, Ba2+, clofilium, and quinine,whereas charybdotoxin was without effect. In F-HBE the forskolinIsc response was reduced to 1.2 ± 0.3 µA/cm2 (n = 30). In wt HBE, mucosal UTPinduced a transient increase in Isc ( Isc = 15.5 ± 1.1 µA/cm2;n = 44) followed by a sustained plateau, whereas inF-HBE the increase in Isc was reduced to5.8 ± 0.7 µA/cm2 (n = 13). In wtHBE, 1-EBIO, NS004, 8-MOP, and genistein increased Isc by 11.6 ± 0.9 (n = 20), 10.8 ± 1.7 (n = 18), 10.0 ± 1.6 (n = 5), and 7.9 ± 0.8 µA/cm2(n = 17), respectively. In F-HBE, 1-EBIO, NS004, and8-MOP failed to stimulate Cl secretion. However, additionof NS004 subsequent to forskolin induced a sustained Clsecretory response (2.1 ± 0.3 µA/cm2,n = 21). In F-HBE, genistein alone stimulatedCl secretion (2.5 ± 0.5 µA/cm2,n = 11). After incubation of F-HBE at 26°C for24 h, the responses to 1-EBIO, NS004, and genistein were allpotentiated. 1-EBIO and genistein increased Na+ absorptionacross F-HBE, whereas NS004 and 8-MOP had no effect. Finally,Ca2+-, but not cAMP-mediated agonists, stimulatedK+ secretion across both wt HBE and F-HBE in aglibenclamide-dependent fashion. Our results demonstrate thatpharmacological agents directed at both basolateral K+ andapical Cl conductances directly modulate Clsecretion across HBE, indicating they may be useful in ameliorating theion transport defect associated with CF.

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5.
The Ca2+ affinity andpermeation of the epithelial Ca2+ channel (ECaC1) wereinvestigated after expression in Xenopus oocytes. ECaC1displayed anomalous mole-fraction effects. Extracellular Ca2+ and Mg2+ reversibly inhibited ECaC1 wholecell Li+ currents: IC50 = 2.2 ± 0.4 µM (n = 9) and 235 ± 35 µM (n = 10), respectively. These values compare well with theCa2+ affinity of the L-type voltage-gated Ca2+(CaV1.2) channel measured under the same conditions,suggesting that high-affinity Ca2+ binding is awell-conserved feature of epithelial and voltage-gated Ca2+channels. Neutralization of D550 and E535 in the pore region had nosignificant effect on Ca2+ and Mg2+ affinities.In contrast, neutralization of D542 significantly decreasedCa2+ affinity (IC50 = 1.1 ± 0.2 mM,n = 6) and Mg2+ affinity(IC50 > 25 ± 3 mM, n = 4).Despite a 1,000-fold decrease in Ca2+ affinity in D542N,Ca2+ permeation properties and theCa2+-to-Ba2+ conductance ratio remainedcomparable to values for wild-type ECaC1. Together, our observationssuggest that D542 plays a critical role in Ca2+ affinitybut not in Ca2+ permeation in ECaC1.

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6.
To investigate the biology of the malegenital duct epithelium, we have established cell cultures from theovine vas deferens and epididymis epithelium. These cells develop tightjunctions, high transepithelial electrical resistance, and alumen-negative transepithelial potential difference as a sign of activetransepithelial ion transport. In epididymis cultures the equivalentshort-circuit current (Isc) averaged 20.8 ± 0.7 µA/cm2 (n = 150) and was partially inhibited byapical application of amiloride with an inhibitor concentration of 0.64 µM. In vas deferens cultures, Isc averaged 14.4 ± 1.1 µA/cm2 (n = 18) and was also inhibited byapical application of amiloride with a half-maximal inhibitorconcentration (Ki) of 0.68 µM. The remainingamiloride-insensitive Isc component in epididymisand vas deferens cells was partially inhibited by apical application ofthe Cl channel blocker diphenylamine-2-carboxylicacid (1 mM). It was largely dependent on extracellularCl and, to a lesser extent, on extracellularHCO3. It was further stimulated bybasolateral application of forskolin (105 M), which increasedIsc by 3.1 ± 0.3 µA/cm2 (n=65) in epididymis and 0.9 ± 0.1 µA/cm2 (n =11) in vas deferens. These findings suggest that cultured ovine vasdeferens and epididymis cells absorb Na+ viaamiloride-sensitive epithelial Na+ channels (ENaC) andsecrete Cl and HCO3via apical cystic fibrosis transmembrane conductance regulator (CFTR)Cl channels. This interpretation is supported byRT-PCR data showing that vas deferens and epididymis cells express CFTRand ENaC mRNA.

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7.
We describe theuse of an in vivo human bronchial xenograft model of cystic fibrosis(CF) and non-CF airways to investigate pathophysiological alterationsin airway surface fluid (ASF) volume (Vs) and Cl content.Vs was calculated based on thedilution of an impermeable marker,[3H]inulin, duringharvesting of ASF from xenografts with an isosmotic Cl-free solution.These calculations demonstrated thatVs in CF xenographs (28 ± 3.0 µl/cm2;n = 17) was significantly less thanthat of non-CF xenografts (35 ± 2.4 µl/cm2;n = 30). The Cl concentration of ASF([Cl]s) wasdetermined using a solid-state AgCl electrode and adjusted for dilutionduring harvesting using the impermeable[3H]inulin marker.Cumulative results demonstrate small but significant elevations(P < 0.045) in[Cl]s in CF (125 ± 4 mM; n = 27) compared with non-CF(114 ± 4 mM; n = 48) xenografts.To investigate potential mechanisms by which CF airways may facilitatea higher level of fluid absorption yet retain slightly elevated levelsof Cl, we sought to evaluate the capacity of CF and non-CF airways toabsorb both 22Na and36Cl. Two consistent findings wereevident from these studies. First, in both CF and non-CF xenografts,22Na and36Cl were always absorbed in anequal molar ratio. Second, CF xenografts hyperabsorbed (~1.5-foldhigher) both 22Na and36Cl compared with non-CFxenografts. These results substantiate previously documented findingsof elevated Na absorption in CF airways and also suggest that theslightly elevated[Cl]s found in thisstudy of CF xenograft epithelia does not occur through a mechanism ofdecreased apical permeability to Cl.  相似文献   

8.
Rabbit conjunctival epithelium exhibits UTP-dependentCl secretion into the tears. We investigated whetherfluid secretion also takes place. Short-circuit current(Isc) was 14.9 ± 1.4 µA/cm2(n = 16). Four P2Y2 purinergic receptoragonists [UTP and the novel compounds INS365, INS306, and INS440(Inspire Pharmaceuticals)] added apically (10 µM) resulted intemporary (~30 min) Isc increases (88%, 66%,57%, and 28%, respectively; n = 4 each). Importantly, the conjunctiva transported fluid from serosa to mucosa at a rate of6.5 ± 0.7 µl · h1 · cm2 (range2.1-15.3, n = 20). Fluid transport was stimulatedby mucosal additions of 10 µM: 1) UTP, from 7.4 ± 2.3 to 10.7 ± 3.3 µl · h1 · cm2,n = 5; and 2) INS365, from 6.3 ± 1.0 to 9.8 ± 2.5 µl · h1 · cm2,n = 5. Fluid transport was abolished by 1 mMouabain (n = 5) and was drastically inhibited by 300 µM quinidine (from 6.4 ± 1.2 to 3.6 ± 1.0 µl · h1 · cm2,n = 4). We conclude that this epithelium secretes fluidactively and that P2Y2 agonists stimulate bothCl and fluid secretions.

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9.
It has been reported thatsecretory mammary epithelial cells (MEC) release ATP, UTP, and UDP uponmechanical stimulation. Here we examined the physiological changescaused by ATP/UTP in nontransformed, clonal mouse mammary epithelia(31EG4 cells). In control conditions, transepithelial potential (apicalside negative) and resistance were 4.4 ± 1.3 mV (mean ± SD, n = 12) and 517.7 ± 39.4  · cm2, respectively. The apicalmembrane potential was 43.9 ± 1.7 mV, and the ratio of apicalto basolateral membrane resistance (RA/RB) was 3.5 ± 0.2. Addition of ATP or UTP to the apical or basolateral membranescaused large voltage and resistance changes with an EC50 of~24 µM (apical) and ~30 µM (basal). Apical ATP/UTP (100 µM)depolarized apical membrane potential by 17.6 ± 0.8 mV (n = 7) and decreasedRA/RB by a factor of3. The addition of adenosine to either side (100 µM) hadno effect on any of these parameters. The ATP/UTP responses werepartially inhibited by DIDS and suramin and mediated by a transientincrease in free intracellular Ca2+ concentration (427 ± 206 nM; 15-25 µM ATP, apical; n = 6). This Ca2+ increase was blocked by cyclopiazonic acid, by BAPTA,or by xestospongin C. 31EG4 MEC monolayers also secreted or absorbedfluid in the resting state, and ATP or UTP increased fluid secretion by5.6 ± 3 µl · cm2 · h1(n = 10). Pharmacology experiments indicate that 31EG4epithelia contain P2Y2 purinoceptors on the apical andbasolateral membranes, which upon activation stimulate apicalCa2+-dependent Cl channels and cause fluid secretion acrossthe monolayer. This suggests that extracellular nucleotides could playa fundamental role in mammary gland paracrine signaling and theregulation of milk composition in vivo.

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10.
Methods are described for isolating smooth muscle cells from thetracheae of adult and neonatal sheep and measuring the single-cell shortening velocity. Isolated cells were elongated,Ca2+ tolerant, and contractedrapidly and substantially when exposed to cholinergic agonists, KCl,serotonin, or caffeine. Adult cells were longer and widerthan preterm cells. Mean cell length in 1.6 mMCaCl2 was 194 ± 57 (SD) µm(n = 66) for adult cells and 93 ± 32 µm (n = 20) for preterm cells(P < 0.05). Mean cell width at thewidest point of the adult cells was 8.2 ± 1.8 µm(n = 66) and 5.2 ± 1.5 µm(n = 20) for preterm cells(P < 0.05). Cells were loaded into aperfusion dish maintained at 35°C and exposed to agonists, andcontractions were videotaped. Cell lengths were measured from 30 videoframes and plotted as a function of time. Nonlinear fitting of celllength to an exponential model gave shortening velocities faster thanmost of those reported for airway smooth muscle tissues. For a sampleof 10 adult and 10 preterm cells stimulated with 100 µM carbachol,mean (± SD) shortening velocity of the preterm cells was notdifferent from that of the adult cells (0.64 ± 0.30 vs. 0.54 ± 0.27 s1, respectively), butpreterm cells shortened more than adult cells (68 ± 12 vs. 55 ± 11% of starting length, respectively;P < 0.05). The preparative andanalytic methods described here are widely applicable to other smoothmuscles and will allow contraction to be studied quantitatively at thesingle-cell level.

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11.
The integrity ofF-actin and its association with the activation of aCl current(ICl) incultured chick cardiac myocytes subjected to hyposmotic challenge weremonitored by whole cell patch clamp and fluorescence confocalmicroscopy. Disruption of F-actin by 25 µM cytochalasin B augmentedhyposmotic cell swelling by 51% (from a relative volume of 1.54 ± 0.10 in control to 2.33 ± 0.21), whereas stabilization of F-actinby 20 µM phalloidin attenuated swelling by 15% (relative volume of1.31 ± 0.05). Trace fluorochrome-labeled (fluoresceinisothiocyanate or tetramethylrhodamine isothiocyanate) phalloidinrevealed an intact F-actin conformation in control cells underhyposmotic conditions despite the considerable changes in cell volume.Sarcoplasmic F-actin was very disorganized and occurred only randomlybeneath the sarcolemma in cells treated with cytochalasin B, whereas nochanges in F-actin distribution occurred under either isosmotic orhyposmotic conditions in cells treated with phalloidin.Swelling-activatedICl (68.0 ± 6.0 pA/pF at +60 mV) was suppressed by both cytochalasin B (22.7 ± 5.1 pA/pF) and phalloidin (22.5 ± 3.5 pA/pF). On the basis of theseresults, we suggest that swelling of cardiac myocytes initiates dynamic changes in the cytoarchitecture of F-actin, which may be involved inthe volume transduction processes associated with activation ofICl.

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12.
Isolated rat heart perfused with 1.5-7.5µM NO solutions or bradykinin, which activates endothelial NOsynthase, showed a dose-dependent decrease in myocardial O2uptake from 3.2 ± 0.3 to 1.6 ± 0.1 (7.5 µM NO, n = 18,P < 0.05) and to 1.2 ± 0.1 µM O2 · min1 · gtissue1 (10 µM bradykinin, n = 10,P < 0.05). Perfused NO concentrations correlated with aninduced release of hydrogen peroxide (H2O2) inthe effluent (r = 0.99, P < 0.01). NO markedlydecreased the O2 uptake of isolated rat heart mitochondria(50% inhibition at 0.4 µM NO, r = 0.99,P < 0.001). Cytochrome spectra in NO-treated submitochondrial particles showed a double inhibition of electron transfer at cytochrome oxidase and between cytochrome b andcytochrome c, which accounts for the effects in O2uptake and H2O2 release. Most NO was bound tomyoglobin; this fact is consistent with NO steady-state concentrationsof 0.1-0.3 µM, which affect mitochondria. In the intact heart,finely adjusted NO concentrations regulate mitochondrial O2uptake and superoxide anion production (reflected byH2O2), which in turn contributes to thephysiological clearance of NO through peroxynitrite formation.

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13.
To examine the effects of chronic cyclichypoxia on neuronal excitability and function in mice, we exposed miceto cyclic hypoxia for 8 h daily (9 cycles/h) for ~2 wk (startingat 2-3 days of age) and examined the properties of freshlydissociated hippocampal neurons obtained from slices. Compared withcontrol (Con) hippocampal CA1 neurons, exposed neurons (CYC) hadsimilar resting membrane potentials (Vm) andaction potentials (AP). CYC neurons, however, had a lower rheobase thanCon neurons. There was also an upregulation of the Na+current density (333 ± 84 pA/pF, n = 18) in CYCcompared with that of Con neurons (193 ± 20 pA/pF,n = 27, P < 0.03). Na+channel characteristics were significantly altered by hypoxia. Forexample, the steady-state inactivation curve was significantly morepositive in CYC than in Con (60 ± 6 mV, n = 8, for CYC and 71 ± 3 mV, n = 14, for Con,P < 0.04). The time constant for deactivation(d) was much shorter in CYC than in Con (at 100 mV,d=0.83 ± 0.23 ms in CYC neurons and 2.29 ± 0.38 ms in Con neurons, P = 0.004). We conclude thatthe increased neuronal excitability in mice neurons treated with cyclichypoxia is due to alterations in Na+ channelcharacteristics and/or Na+ channel expression. Wehypothesize from these and previous data from our laboratory (Gu XQ andHaddad GG. J Appl Physiol 91: 1245-1250, 2001) that thisincreased excitability is a reflection of an enhanced central nervoussystem maturation when exposed to low O2 conditions inearly postnatal life.

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14.
We report here the expression in C2C12 myoblasts of the intermediate-conductance Ca2+-activated K+ (IKCa) channel. The IKCa current, recorded under perforated-patch configuration, had a transient time course when activated by ionomycin (0.5 µM; peak current density 26.2 ± 3.7 pA/pF; n = 10), but ionomycin (0.5 µM) + 5,6-dichloro-1-ethyl-1,3-dihydro-2H-benzimidazol-2-one (100 µM) evoked a stable outward current (28.4 ± 8.2 pA/pF; n = 11). The current was fully inhibited by charybdotoxin (200 nM), clotrimazole (2 µM), and 5-nitro-2-(3-phenylpropylamino)benzoic acid (300 µM), but not by tetraethylammonium (1 mM) or D-tubocurarine (300 µM). Congruent with the IKCa channel, elevation of intracellular Ca2+ in inside-out patches resulted in the activation of a voltage-insensitive K+ channel with weak inward rectification, a unitary conductance of 38 ± 6 pS (at negative voltages), and an IC50 for Ca2+ of 530 nM. The IKCa channel was activated metabotropically by external application of ATP (100 µM), an intracellular Ca2+ mobilizer. Under current-clamp conditions, ATP application resulted in a membrane hyperpolarization of 35 mV. The IKCa current downregulated during myogenesis, ceasing to be detectable 4 days after the myoblasts were placed in differentiating medium. Downregulation was prevented by the myogenic suppressor agent basic FGF (bFGF). We also found that block of the IKCa channel by charybdotoxin did not inhibit bFGF-sustained myoblast proliferation. These observations show that in C2C12 myoblasts the IKCa channel expression correlates inversely with differentiation, yet it does not appear to have a role in myoblast proliferation. ATP; cell proliferation  相似文献   

15.
Regulation of the epithelial Na(+) channel by extracellular acidification   总被引:2,自引:0,他引:2  
The effect of extracellular acidification wastested on the native epithelial Na+ channel (ENaC) in A6epithelia and on the cloned ENaC expressed in Xenopusoocytes. Channel activity was determined utilizing blocker-inducedfluctuation analysis in A6 epithelia and dual electrode voltage clampin oocytes. In A6 cells, a decrease of extracellular pH(pHo) from 7.4 to 6.4 caused a slow stimulation of theamiloride-sensitive short-circuit current (INa)by 68.4 ± 11% (n = 9) at 60 min. This increaseof INa was attributed to an increase of openchannel and total channel (NT) densities. Similar changes were observed with pHo 5.4. The effects ofpHo were blocked by buffering intracellularCa2+ with 5 µM1,2-bis(2-aminophenoxy)ethane-N,N,N',N'-tetraacetic acid. Inoocytes, pHo 6.4 elicited a small transient increase of theslope conductance of the cloned ENaC (11.4 ± 2.2% at 2 min)followed by a decrease to 83.7 ± 11.7% of control at 60 min (n = 6). Thus small decreases of pHostimulate the native ENaC by increasing NT butdo not appreciably affect ENaC expressed in Xenopus oocytes.These effects are distinct from those observed with decreasingintracellular pH with permeant buffers that are known to inhibit ENaC.

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16.
The aim of the presentstudy was to examine the kinetic characteristics of theL-3,4-dihydroxyphenylalanine (L-DOPA)transporter and the fate of newly formed dopamine in Caco-2 cells. Inthe presence of 50 µM benserazide (an inhibitor of aromaticL-amino acid decarboxylase), L-DOPA was rapidlyaccumulated in Caco-2 cells. At equilibrium (30 min of incubation) theintracellular L-DOPA concentration was 10.2 ± 0.1 µM ata medium concentration of 0.5 µM. In saturation experiments theaccumulation of L-DOPA was saturable with aMichaelis-Menten constant (Km) of 60 ± 10 µMand a maximal reaction velocity (Vmax) of 6.6 ± 0.3 nmol · mg protein1 · 6 min1; at 4°C the amount of L-DOPAaccumulated in the cells was nonsaturable. When cells were incubatedwith increasing concentrations of L-DOPA (10-100 µM)in the absence of benserazide, a substantial amount of theL-DOPA that was taken up was decarboxylated to dopamine, with an apparent Km of 27.2 µM. In experimentsperformed in cells cultured in polycarbonate filters, theaccumulation of L-DOPA in the presence of benserazide wasgreater when the substrate was applied from the basolateral cell borderthan when it was applied from the apical cell border. In the absence ofbenserazide, L-DOPA applied from the basolateral cellborder resulted in a nonlinear formation of dopamine(Km = 43 ± 7 µM,Vmax = 23.7 ± 1.2 nmol · mgprotein1 · 6 min1). Theamount of dopamine leaving the cell through the apical cell border waslower than the amount that escaped through the basolateral cell border,and the process was saturable (Km = 623 ± 238 µM, Vmax = 0.19 ± 0.02 nmol · mgprotein1 · 6 min1). Inconclusion, the data presented here show that Caco-2 cells are endowedwith an efficient L-DOPA uptake system, and intracellular L-DOPA was found to be rapidly converted to dopamine, someof which diffuses out of the cell. The utilization of Caco-2 cells cultured on polycarbonate filters probably provides a better way tolook at processes such as the outward transfer of intracellular molecules, namely, the outward transfer of newly formed dopamine.

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17.
Mathew, Rajamma, Elizabeth S. Gloster, T. Sundararajan, Carl I. Thompson, Guillermo A. Zeballos, andMichael H. Gewitz. Role of inhibition of nitric oxide productionin monocrotaline-induced pulmonary hypertension. J. Appl. Physiol. 82(5): 1493-1498, 1997.Monocrotaline (MCT)-induced pulmonary hypertension (PH) isassociated with impaired endothelium-dependent nitric oxide(NO)-mediated relaxation. To examine the role of NO in PH,Sprague-Dawley rats were given a single subcutaneous injection ofnormal saline [control (C)], 80 mg/kg MCT, or the same doseof MCT and a continuous subcutaneous infusion of 2 mg · kg1 · day1of molsidomine, a NO prodrug (MCT+MD). Two weeks later, plasma NO3 levels, pulmonary arterialpressure (Ppa), ratio of right-to-left ventricular weights (RV/LV) toassess right ventricular hypertrophy, and pulmonary histology wereevaluated. The plasma NO3 level inthe MCT group was reduced to 9.2 ± 1.5 µM(n = 12) vs. C level of 17.7 ± 1.8 µM (n = 8; P < 0.02). In the MCT+MD group,plasma NO3 level was 12.3 ± 2.0 µM (n = 8). Ppa and RV/LV in theMCT group were increased compared with C [Ppa, 34 ± 3.4 mmHg(n = 6) vs. 19 ± 0.8 mmHg(n = 8) and 0.41 ± 0.01 (n = 9) vs. 0.25 ± 0.008 (n = 8), respectively;P < 0.001]. In the MCT+MDgroup, Ppa and RV/LV were not different when compared with C [19 ± 0.5 mmHg (n = 5) and 0.27 ± 0.01 (n = 9), respectively;P < 0.001 vs. MCT]. Medial wall thickness of lung vessels in the MCT group was increased comparedwith C [31 ± 1.5% (n = 9)vs. 13 ± 0.66% (n = 9);P < 0.001], and MDpartially prevented MCT-induced pulmonary vascular remodeling [22 ± 1.2% (n = 11);P < 0.001 vs. MCT and C].These results indicate that a defect in the availability of bioactive NO may play an important role in the pathogenesis of MCT-induced PH.

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18.
TheNa+/Ca2+ exchanger participates inCa2+ homeostasis in a variety of cells and has a key rolein cardiac muscle physiology. We studied in this work the exchanger ofamphibian skeletal muscle, using both isolated inside-out transversetubule vesicles and single muscle fibers. In vesicles, increasingextravesicular (intracellular) Na+ concentrationcooperatively stimulated Ca2+ efflux (reverse mode), withthe Hill number equal to 2.8. In contrast to the stimulation of thecardiac exchanger, increasing extravesicular (cytoplasmic)Ca2+ concentration ([Ca2+]) inhibited thisreverse activity with an IC50 of 91 nM. Exchanger-mediated currents were measured at 15°C in single fibers voltage clamped at90 mV. Photolysis of a cytoplasmic caged Ca2+ compoundactivated an inward current (forward mode) of 23 ± 10 nA(n = 3), with an average current density of 0.6 µA/µF. External Na+ withdrawal generated an outwardcurrent (reverse mode) with an average current density of 0.36 ± 0.17 µA/µF (n = 6) but produced a minimal increasein cytosolic [Ca2+]. These results suggest that, inskeletal muscle, the main function of the exchanger is to removeCa2+ from the cells after stimulation.

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19.
Transport of fluid by lens epithelium   总被引:2,自引:0,他引:2  
We report for the first time that cultured lens epithelial celllayers and rabbit lenses in vitro transport fluid. Layers of the TN4mouse cell line and bovine cell cultures were grown to confluence onpermeable membrane inserts. Fluid movement across cultured layers andexcised rabbit lenses was determined by volume clamp (37°C).Cultured layers transported fluid from their basal to their apicalsides against a pressure head of 3 cmH2O. Rates were (inµl · h1 · cm2)3.3 ± 0.3 for TN4 cells (n = 27) and 4.7 ± 1.0 for bovine layers (n = 6). Quinidine, a blocker ofK+ channels, andp-chloromercuribenzenesulfonate andHgCl2, inhibitors of aquaporins,inhibited fluid transport. Rabbit lenses transported fluid from theiranterior to their posterior sides against a2.5-cmH2O pressure head at 10.3 ± 0.62 µl · h1 · lens1(n = 5) and along the same pressurehead at 12.5 ± 1.1 µl · h1 · lens1(n = 6). We calculate that this flowcould wash the lens extracellular space by convection about once every2 h and therefore might contribute to lens homeostasis and transparency.  相似文献   

20.
Blocker-inducednoise analysis of epithelial Na+ channels (ENaCs) was usedto investigate how inhibition of an LY-294002-sensitive phosphatidylinositol 3-kinase (PI 3-kinase) alters Na+transport in unstimulated and aldosterone-prestimulated A6 epithelia. From baseline Na+ transport rates(INa) of 4.0 ± 0.1 (unstimulated) and9.1 ± 0.9 µA/cm2 (aldosterone), 10 µM LY-294002caused, following a relatively small initial increase of transport, acompletely reversible inhibition of transport within 90 min to 33 ± 6% and 38 ± 2% of respective baseline values. Initialincreases of transport could be attributed to increases of channel openprobability (Po) within 5 min to 143 ± 17% (unstimulated) and 142 ± 10% of control (aldosterone) frombaseline Po averaging near 0.5. Inhibition oftransport was due to much slower decreases of functional channeldensities (NT) to 28 ± 4% (unstimulated)and 35 ± 3% (aldosterone) of control at 90 min. LY-294002 (50 µM) caused larger but completely reversible increases ofPo (215 ± 38% of control at 5 min) andmore rapid but only slightly larger decreases ofNT. Basolateral exposure to LY-294002 induced nodetectable effect on transport, Po or NT. We conclude that an LY-294002-sensitive PI3-kinase plays an important role in regulation of transport bymodulating NT and Po ofENaCs, but only when presented to apical surfaces of the cells.

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