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1.
The role of Na+/Ca2+ exchange inregulating intracellular Ca2+ concentration([Ca2+]i) in isolated smooth muscle cellsfrom the guinea pig urinary bladder was investigated. Incrementalreduction of extracellular Na+ concentration resulted in agraded rise of [Ca2+]i; 50-100 µMstrophanthidin also increased [Ca2+]i. Asmall outward current accompanied the rise of[Ca2+]i in low-Na+ solutions(17.1 ± 1.8 pA in 29.4 mM Na+). The quantity ofCa2+ influx through the exchanger was estimated from thecharge carried by the outward current and was ~30 times that which isnecessary to account for the rise of [Ca2+]i,after correction was made for intracellular Ca2+ buffering.Ca2+ influx through the exchanger was able to loadintracellular Ca2+ stores. It is concluded that the levelof resting [Ca2+]i is not determined by theexchanger, and under resting conditions (membrane potential 50 to60 mV), there is little net flux through the exchanger. However, asmall rise of intracellular Na+ concentration would besufficient to generate significant net Ca2+ influx.

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2.
Stretch-induced Ca(2+) release via an IP(3)-insensitive Ca(2+) channel   总被引:6,自引:0,他引:6  
Various mechanicalstimuli increase the intracellular Ca2+ concentration([Ca2+]i) in vascular smooth muscle cells(VSMC). A part of the increase in [Ca2+]i isdue to the release of Ca2+ from intracellular stores. Wehave investigated the effect of mechanical stimulation produced bycyclical stretch on the release of Ca2+ from theintracellular stores. Permeabilized VSMC loaded with 45Ca2+ were subjected to 7.5% average (15%maximal) cyclical stretch. This resulted in an increase in45Ca2+ rate constant by 0.126 ± 0.0035. Inhibition of inositol 1,4,5-trisphosphate (IP3),ryanodine, and nicotinic acid adenine dinucleotide phosphate channels(NAADP) with 50 µg/ml heparin, 50 µM ruthenium red, and 25 µMthio-NADP, respectively, did not block the increase in45Ca2+ efflux in response to cyclical stretch.However, 10 µM lanthanum, 10 µM gadolinium, and 10 µMcytochalasin D but not 10 µM nocodazole inhibited the increase in45Ca2+ efflux. This supports the existence of anovel stretch-sensitive intracellular Ca2+ store in VSMCthat is distinct from the IP3-, ryanodine-, and NAADP-sensitive stores.

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3.
Uridine 5'-triphosphate (UTP), a potent vasoconstrictor that activatesphospholipase C, shifted Ca2+ signaling from sparks towaves in the smooth muscle cells of rat cerebral arteries. UTPdecreased the frequency of Ca2+ sparks and transientCa2+-activated K+ (KCa) currentsand increased the frequency of Ca2+ waves. The UTP-inducedreduction in Ca2+ spark frequency did not reflect adecrease in global cytoplasmic Ca2+, Ca2+influx through voltage-dependent Ca2+ channels (VDCC), orCa2+ load of the sarcoplasmic reticulum (SR), since globalCa2+ was elevated, blocking VDCC did not prevent theeffect, and SR Ca2+ load did not decrease. However,blocking protein kinase C (PKC) with bisindolylmaleimide I did preventUTP reduction of Ca2+ sparks and transient KCacurrents. UTP decreased the effectiveness of caffeine, which increasesthe Ca2+ sensitivity of ryanodine-sensitiveCa2+ release (RyR) channels, to activate transientKCa currents. This work supports the concept thatvasoconstrictors shift Ca2+ signaling modalities fromCa2+ sparks to Ca2+ waves through the concertedactions of PKC on the Ca2+ sensitivity of RyR channels,which cause Ca2+ sparks, and of inositol trisphosphate(IP3) on IP3 receptors to generateCa2+ waves.

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4.
Inskeletal muscle fibers, the intracellular loop between domains II andIII of the 1-subunit of the dihydropyridine receptor (DHPR) may directly activate the adjacent Ca2+ releasechannel in the sarcoplasmic reticulum. We examined the effects ofsynthetic peptide segments of this loop on Ca2+ release inmechanically skinned skeletal muscle fibers with functional excitation-contraction coupling. In rat fibers at physiological Mg2+ concentration ([Mg2+]; 1 mM), a20-residue skeletal muscle DHPR peptide[AS(20);Thr671-Leu690; 30 µM], shown previously toinduce Ca2+ release in a triad preparation, caused onlysmall spontaneous force responses in ~40% of fibers, although itpotentiated responses to depolarization and caffeine in all fibers. TheCOOH-terminal half of AS(20)[AS(10)] induced much larger spontaneousresponses but also caused substantial inhibition of Ca2+release to both depolarization and caffeine. Both peptides induced orpotentiated Ca2+ release even when the voltage sensors wereinactivated, indicating direct action on the Ca2+ releasechannels. The corresponding 20-residue cardiac DHPR peptide [AC(20);Thr793-Ala812] was ineffective, but itsCOOH-terminal half [AC(10)] had effects similar to AS(20). In the presence of lower[Mg2+] (0.2 mM), exposure to eitherAS(20) or AC(10) (30 µM) induced substantial Ca2+ release. PeptideCS (100 µM), a loop segment reported to inhibit Ca2+ release in triads, caused partial inhibition ofdepolarization-induced Ca2+ release. In toad fibers, eachof the A peptides had effects similar to or greater than those in ratfibers. These findings suggest that the A and C regions of the skeletalDHPR II-III loop may have important roles in vivo.

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5.
The rat dorsal root ganglion (DRG) Ca2+-sensing receptor (CaR) was stably expressed in-frame as an enhanced green fluorescent protein (EGFP) fusion protein in human embryonic kidney (HEK)293 cells, and is functionally linked to changes in intracellular Ca2+ concentration ([Ca2+]i). RT-PCR analysis indicated the presence of the message for the DRG CaR cDNA. Western blot analysis of membrane proteins showed a doublet of 168–175 and 185 kDa, consistent with immature and mature forms of the CaR.EGFP fusion protein, respectively. Increasing extracellular [Ca2+] ([Ca2+]e) from 0.5 to 1 mM resulted in increases in [Ca2+]i levels, which were blocked by 30 µM 2-aminoethyldiphenyl borate. [Ca2+]e-response studies indicate a Ca2+ sensitivity with an EC50 of 1.75 ± 0.10 mM. NPS R-467 and Gd3+ activated the CaR. When [Ca2+]e was successively raised from 0.25 to 4 mM, peak [Ca2+]i, attained with 0.5 mM, was reduced by 50%. Similar reductions were observed with repeated applications of 10 mM Ca2+, 1 and 10 µM NPS R-467, or 50 and 100 µM Gd3+, indicating desensitization of the response. Furthermore, Ca2+ mobilization increased phosphorylated protein kinase C (PKC) levels in the cells. However, the PKC activator, phorbol myristate acetate did not inhibit CaR-mediated Ca2+ signaling. Rather, a spectrum of PKC inhibitors partially reduced peak responses to Cae2+. Treatment of cells with 100 nM PMA for 24 h, to downregulate PKC, reduced [Ca2+]i transients by 49.9 ± 5.2% (at 1 mM Ca2+) and 40.5 ± 6.5% (at 2 mM Ca2+), compared with controls. The findings suggest involvement of PKC in the pathway for Ca2+ mobilization following CaR activation. desensitization; protein kinase C  相似文献   

6.
Our previous study has demonstrated that ovariectomy (Ovx) significantly increased the left ventricular developed pressure (LVDP) and the maximal rate of developed pressure over time (±dP/dtmax) in the isolated perfused rat heart and the effects were reversed by female sex hormone replacement. In the present investigation, we studied the effects of Ovx for 6 wk on Ca2+ homeostasis that determines the contractile function. Particular emphasis was given to Ca2+ handling by ryanodine receptor (RyR) and Na+-Ca2+ exchange (NCX). 45Ca2+ fluxes via the RyR, NCX, and Ca2+-ATPase (SERCA) were compared with their expression in myocytes from Ovx rats with and without estrogen replacement. Furthermore, we correlated the handling of Ca2+ by these Ca2+ handling proteins with the overall Ca2+ homeostasis by determining the Ca2+ transients induced by electrical stimulation and caffeine, which reveals the dynamic changes of cytosolic Ca2+ concentration ([Ca2+]i) in the heart. In addition, we determined the expression and contribution of protein kinase A (PKA) to the regulation of the aforementioned Ca2+ handling proteins in Ovx rats. It was found that after Ovx there were 1) increased Ca2+ fluxes via RyR and NCX, which were reversed not only by estrogen replacement, but more importantly by blockade of PKA; 2) an increased expression of PKA; and 3) no increase in expression of NCX and SERCA. We suggest that hyperactivities of RyR and NCX are a result of upregulation of PKA. The increased release of Ca2+ through RyR and removal of Ca2+ by NCX are believed to be responsible for the greater contractility and faster relaxation after Ovx. ovariectomy  相似文献   

7.
Calmodulin (CaM) activates the skeletal muscle ryanodine receptorCa2+ release channel (RyR1) in the presence of nanomolarCa2+ concentrations. However, the role of CaM activation inthe mechanisms that control Ca2+ release from thesarcoplasmic reticulum (SR) in skeletal muscle and in the heart remainsunclear. In media that contained 100 nM Ca2+, the rate of45Ca2+ release from porcine skeletal muscle SRvesicles was increased approximately threefold in the presence of CaM(1 µM). In contrast, cardiac SR vesicle45Ca2+ release was unaffected by CaM,suggesting that CaM activated the skeletal RyR1 but not the cardiacRyR2 channel isoform. The activation of RyR1 by CaM was associated withan approximately sixfold increase in the Ca2+ sensitivityof [3H]ryanodine binding to skeletal muscle SR, whereasthe Ca2+ sensitivity of cardiac SR[3H]ryanodine binding was similar in the absence andpresence of CaM. Cross-linking experiments identified both RyR1 andRyR2 as predominant CaM binding proteins in skeletal and cardiac SR,respectively, and [35S]CaM binding determinations furtherindicated comparable CaM binding to the two isoforms in the presence ofmicromolar Ca2+. In nanomolar Ca2+, however,the affinity and stoichiometry of RyR2 [35S]CaM bindingwas reduced compared with that of RyR1. Together, our results indicatethat CaM activates RyR1 by increasing the Ca2+ sensitivityof the channel, and further suggest differences in CaM's functionalinteractions with the RyR1 and RyR2 isoforms that may potentiallycontribute to differences in the Ca2+ dependence of channelactivation in skeletal and cardiac muscle.

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8.
Localized Ca2+ transients inisolated murine colonic myocytes depend on Ca2+ releasefrom inositol 1,4,5-trisphosphate (IP3) receptors.Localized Ca2+ transients couple to spontaneous transientoutward currents (STOCs) and mediate hyperpolarization responses inthese cells. We used confocal microscopy and whole cell patch-clamprecording to investigate how muscarinic stimulation, which causesformation of IP3, can suppress Ca2+ transientsand STOCs that might override the excitatory nature of cholinergicresponses. ACh (10 µM) reduced localized Ca2+ transientsand STOCs, and these effects were associated with a rise in basalcytosolic Ca2+. These effects of ACh were mimicked bygeneralized rises in basal Ca2+ caused by ionomycin(250-500 nM) or elevated external Ca2+ (6 mM).Atropine (10 µM) abolished the effects of ACh. Pretreatment of cellswith nicardipine (1 µM), or Cd2+ (200 µM) had no effecton responses to ACh. An inhibitor of phospholipase C, U-73122, blockedCa2+ transients and STOCs but did not affect the increasein basal Ca2+ after ACh stimulation. Xestospongin C (Xe-C;5 µM), a membrane-permeable antagonist of IP3 receptors,blocked spontaneous Ca2+ transients but did not prevent theincrease of basal Ca2+ in response to ACh. Gd3+(10 µM), a nonselective cation channel inhibitor, prevented the increase in basal Ca2+ after ACh and increased thefrequency and amplitude of Ca2+ transients and waves.Another inhibitor of receptor-mediated Ca2+ influxchannels, SKF-96365, also prevented the rise in basal Ca2+after ACh and increased Ca2+ transients and development ofCa2+ waves. FK-506, an inhibitor ofFKBP12/IP3 receptor interactions, had no effect onthe rise in basal Ca2+ but blocked the inhibitory effectsof increased basal Ca2+ and ACh on Ca2+transients. These results suggest that the rise in basalCa2+ that accompanies muscarinic stimulation of colonicmuscles inhibits localized Ca2+ transients that couldcouple to activation of Ca2+-activated K+channels and reduce the excitatory effects of ACh.

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9.
In cultured porcine aortic smooth muscle cells,sphingosylphosphorylcholine (SPC), ATP, or bradykinin (BK) induced arapid dose-dependent increase in the cytosolicCa2+ concentration([Ca2+]i)and also stimulated inositol 1,4,5-trisphosphate(IP3) generation. Pretreatmentof cells with pertussis toxin blocked the SPC-induced IP3 generation and[Ca2+]iincrease but had no effect on the action of ATP or BK. In addition, SPCstimulated the mitogen-activated protein kinase (MAPK) and increasedDNA synthesis, whereas neither ATP nor BK produced such effects. Boththe SPC-induced MAPK activation and DNA synthesis were pertussis toxinsensitive. SPC-induced MAPK activation was blocked by treatment ofcells with the phospholipase C inhibitor, U-73122, or the intracellularCa2+-ATPase inhibitor,thapsigargin, but not by removal of extracellular Ca2+. Lysophosphatidic acidinduced cellular responses similar to SPC in a pertussistoxin-sensitive manner in terms of[Ca2+]iincrease, IP3 generation, MAPKactivation, and DNA synthesis. Platelet-derived growth factor (PDGF)also induced a[Ca2+]iincrease, MAPK activation, and DNA synthesis in the same cells; however, the PDGF-induced MAPK activation was not sensitive to pertussis toxin and changes in[Ca2+]i.SPC-induced MAPK activation was inhibited by pretreatment of cells withstaurosporine, W-7, or calmidazolium. Our results suggest that, inporcine aortic smooth muscle cells, MAPK is not activated by theincrease in[Ca2+]iunless a pertussis toxin-sensitive G protein is simultaneously stimulated, indicating the role ofCa2+ in pertussis toxin-sensitiveG protein-mediated MAPK activation.

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10.
High-conductanceCa2+-activatedK+(KCa) channels werestudied in mouse skeletal muscle fibers using thepatch-clamp technique. In inside-out patches, application of negativepressure to the patch induced a dose-dependent and reversibleactivation of KCa channels.Stretch-induced increase in channel activity was found to be of thesame magnitude in the presence and in the absence ofCa2+ in the pipette. Thedose-response relationships betweenKCa channel activity andintracellular Ca2+ and betweenKCa channel activity and membranepotential revealed that voltage andCa2+ sensitivity were not alteredby membrane stretch. In cell-attached patches, in the presence of highexternal Ca2+ concentration,stretch-induced activation was also observed. We conclude that membranestretch is a potential mode of regulation of skeletal muscleKCa channel activity and could beinvolved in the regulation of muscle excitability duringcontraction-relaxation cycles.

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11.
Phospholamban (PLB) inhibits the sarcoplasmic reticulum (SR)Ca2+-ATPase, and this inhibition is relieved bycAMP-dependent protein kinase (PKA)-mediated phosphorylation. The roleof PLB in regulating Ca2+ release throughryanodine-sensitive Ca2+ release channels, measured asCa2+ sparks, was examined using smooth muscle cells ofcerebral arteries from PLB-deficient ("knockout") mice(PLB-KO). Ca2+ sparks were monitored opticallyusing the fluorescent Ca2+ indicator fluo 3 or electricallyby measuring transient large-conductance Ca2+-activatedK+ (BK) channel currents activated by Ca2+sparks. Basal Ca2+ spark and transient BK current frequencywere elevated in cerebral artery myocytes of PLB-KO mice. Forskolin, anactivator of adenylyl cyclase, increased the frequency ofCa2+ sparks and transient BK currents in cerebral arteriesfrom control mice. However, forskolin had little effect on thefrequency of Ca2+ sparks and transient BK currents fromPLB-KO cerebral arteries. Forskolin or PLB-KO increased SRCa2+ load, as measured by caffeine-induced Ca2+transients. This study provides the first evidence that PLB is criticalfor frequency modulation of Ca2+ sparks and associated BKcurrents by PKA in smooth muscle.

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12.
Inositol1,4,5-trisphosphate (IP3) receptors (IP3R) andryanodine receptors (RyR) were localized in cultured rodent muscle fractions by binding of radiolabeled ligands (IP3 andryanodine), and IP3R were visualized in situ byfluorescence immunocytological techniques. Also explored was the effectof K+ depolarization on IP3 mass andCa2+ transients studied using a radio-receptor displacementassay and fluorescence imaging of intracellular fluo 3. RyR werelocated in a microsomal fraction; IP3R were preferentiallyfound in the nuclear fraction. Fluorescence associated withanti-IP3R antibody was found in the region of the nuclearenvelope and in a striated pattern in the sarcoplasmic areas. Anincrease in external K+ affected membrane potential andproduced an IP3 transient. Rat myotubes displayed afast-propagating Ca2+ signal, corresponding to theexcitation-contraction coupling transient and a much slowerCa2+ wave. Both signals were triggered by high externalK+ and were independent of external Ca2+. Slowwaves were associated with cell nuclei and were propagated leaving"glowing" nuclei behind. Different roles are proposed for atleast two types of Ca2+ release channels, each mediating anintracellular signal in cultured skeletal muscle.

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13.
We investigatedwhether Rho activation is required for Ca2+-insensitivepaxillin phosphorylation, myosin light chain (MLC) phosphorylation, andcontraction in tracheal muscle. Tyrosine-phosphorylated proteins havebeen implicated in the Ca2+-insensitive contractileactivation of smooth muscle tissues. The contractile activation oftracheal smooth muscle increases tyrosine phosphorylation of thecytoskeletal proteins paxillin and focal adhesion kinase. Paxillin isimplicated in integrin-mediated signal transduction pathways thatregulate cytoskeletal organization and cell motility. In fibroblastsand other nonmuscle cells, paxillin tyrosine phosphorylation depends onthe activation of Rho and is inhibited by cytochalasin, an inhibitor ofactin polymerization. In permeabilized muscle strips, we found that AChinduced Ca2+-insensitive contraction, MLC phosphorylation,and paxillin tyrosine phosphorylation. Ca2+-insensitivecontraction and MLC phosphorylation induced by ACh were inhibited by C3transferase, an inhibitor of Rho activation; however, C3 transferasedid not inhibit paxillin tyrosine phosphorylation. Ca2+-insensitive paxillin tyrosine phosphorylation was alsonot inhibited by the Rho kinase inhibitor Y-27632, by cytochalasin D,or by the inhibition of MLC phosphorylation. We conclude that, intracheal smooth muscle, Rho mediates Ca2+-insensitivecontraction and MLC phosphorylation but that Rho is not required forCa2+-insensitive paxillin tyrosine phosphorylation.Paxillin phosphorylation also does not require actomyosin activation,nor is it inhibited by the actin filament capping agent cytochalasin D.

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14.
Recent studies on the role of nitric oxide (NO) ingastrointestinal smooth muscle have raised the possibility thatNO-stimulated cGMP could, in the absence of cGMP-dependent proteinkinase (PKG) activity, act as aCa2+-mobilizing messenger[K. S. Murthy, K.-M. Zhang, J.-G. Jin, J. T. Grider, and G. M. Makhlouf. Am. J. Physiol. 265 (Gastrointest. Liver Physiol. 28):G660-G671, 1993]. This notion was examined indispersed gastric smooth muscle cells with 8-bromo-cGMP (8-BrcGMP) andwith NO and vasoactive intestinal peptide (VIP), which stimulate endogenous cGMP. In muscle cells treated with cAMP-dependent protein kinase (PKA) and PKG inhibitors (H-89 and KT-5823), 8-BrcGMP (10 µM),NO (1 µM), and VIP (1 µM) stimulated45Ca2+release (21 ± 3 to 30 ± 1% decrease in45Ca2+cell content); Ca2+ releasestimulated by 8-BrcGMP was concentration dependent with anEC50 of 0.4 ± 0.1 µM and athreshold of 10 nM. 8-BrcGMP and NO increased cytosolic freeCa2+ concentration([Ca2+]i)and induced contraction; both responses were abolished after Ca2+ stores were depleted withthapsigargin. With VIP, which normally increases[Ca2+]iby stimulating Ca2+ influx,treatment with PKA and PKG inhibitors caused a further increase in[Ca2+]ithat reverted to control levels in cells pretreated with thapsigargin. Neither Ca2+ release norcontraction induced by cGMP and NO in permeabilized muscle cells wasaffected by heparin or ruthenium red.Ca2+ release induced by maximallyeffective concentrations of cGMP and inositol 1,4,5-trisphosphate(IP3) was additive, independent of which agent was applied first. We conclude that, in the absence ofPKA and PKG activity, cGMP stimulatesCa2+ release from anIP3-insensitive store and that itseffect is additive to that of IP3.

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15.
ATP is a candidate enteric inhibitory neurotransmitterin visceral smooth muscles. ATP hyperpolarizes visceral muscles via activation of small-conductance, Ca2+-activatedK+ (SK) channels. Coupling between ATP stimulation and SKchannels may be mediated by localized Ca2+ release.Isolated myocytes of the murine colon produced spontaneous, localizedCa2+ release events. These events corresponded tospontaneous transient outward currents (STOCs) consisting ofcharybdotoxin (ChTX)-sensitive and -insensitive events.ChTX-insensitive STOCs were inhibited by apamin. LocalizedCa2+ transients were not blocked by ryanodine, but theseevents were reduced in magnitude and frequency by xestospongin C(Xe-C), a blocker of inositol 1,4,5-trisphosphate receptors. Thus wehave termed the localized Ca2+ events in colonic myocytes"Ca2+ puffs." The P2Y receptor agonist2-methylthio-ATP (2-MeS-ATP) increased the intensity and frequency ofCa2+ puffs. 2-MeS-ATP also increased STOCs in associationwith the increase in Ca2+ puffs.Pyridoxal-phospate-6-azophenyl-2',4'-disculfonic acid tetrasodium, aP2 receptor inhibitor, blocked responses to 2-MeS-ATP. Spontaneous Ca2+ transients and the effects of 2-MeS-ATP onCa2+ puffs and STOCs were blocked by U-73122, an inhibitorof phospholipase C. Xe-C and ryanodine also blocked responses to2-MeS-ATP, suggesting that, in addition to release from IP3receptor-operated stores, ryanodine receptors may be recruited duringagonist stimulation to amplify release of Ca2+. These datasuggest that localized Ca2+ release modulatesCa2+-dependent ionic conductances in the plasma membrane.Localized Ca2+ release may contribute to the electricalresponses resulting from purinergic stimulation.

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16.
Hypotonicswelling increases the intracellular Ca2+ concentration([Ca2+]i) in vascular smooth muscle cells(VSMC). The source of this Ca2+ is not clear. To study thesource of increase in [Ca2+]i in response tohypotonic swelling, we measured [Ca2+]i infura 2-loaded cultured VSMC (A7r5 cells). Hypotonic swelling produced a40.7-nM increase in [Ca2+]i that was notinhibited by EGTA but was inhibited by 1 µM thapsigargin. Priordepletion of inositol 1,4,5-trisphosphate (IP3)-sensitive Ca2+ stores with vasopressin did not inhibit the increasein [Ca2+]i in response to hypotonic swelling.Exposure of 45Ca2+-loaded intracellular storesto hypotonic swelling in permeabilized VSMC produced an increase in45Ca2+ efflux, which was inhibited by 1 µMthapsigargin but not by 50 µg/ml heparin, 50 µM ruthenium red, or25 µM thio-NADP. Thus hypotonic swelling of VSMC causes a release ofCa2+ from the intracellular stores from a novel sitedistinct from the IP3-, ryanodine-, and nicotinic acidadenine dinucleotide phosphate-sensitive stores.

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17.
Previous work from this laboratorydemonstrated that arachidonic acid activates c-junNH2-terminal kinase (JNK) through oxidative intermediatesin a Ca2+-independent manner (Cui X and Douglas JG.Arachidonic acid activates c-jun N-terminal kinase throughNADPH oxidase in rabbit proximal tubular epithelial cells. ProcNatl Acad Sci USA 94: 3771-3776, 1997.). We now report thatJNK can also be activated via a Ca2+-dependent mechanism byagents that increase the cytosolic Ca2+ concentration(Ca2+ ionophore A23187, Ca2+-ATPaseinhibitor thapsigargin) or deplete intracellular Ca2+stores [intracellular Ca2+ chelator1,2-bis(2-aminophenoxy)ethane-N,N,N',N'-tetraacetic acid(BAPTA)-AM]. The activation of JNK by BAPTA-AM occurs despite adecrease in cytosolic Ca2+ concentration as detected by theindicator dye fura 2, but appears to be related to Ca2+metabolism, because modification of BAPTA with two methyl groups increases not only the chelation affinity for Ca2+, butalso the potency for JNK activation. BAPTA-AM stimulates Ca2+ influx across the plasma membrane, and the resultinglocal Ca2+ increases are probably involved in activation ofJNK because Ca2+ influx inhibitors (SKF-96365, nifedipine)and lowering of the free extracellular Ca2+ concentrationwith EGTA reduce the BAPTA-induced JNK activation.

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18.
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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19.
Inorganic phosphate(Pi) accumulates in the fibers of actively working musclewhere it acts at various sites to modulate contraction. To characterizethe role of Pi as a regulator of the sarcoplasmic reticulum(SR) calcium (Ca2+) release channel, we examined the actionof Pi on purified SR Ca2+ release channels,isolated SR vesicles, and skinned skeletal muscle fibers. In singlechannel studies, addition of Pi to the cis chamberincreased single channel open probability (Po;0.079 ± 0.020 in 0 Pi, 0.157 ± 0.034 in 20 mMPi) by decreasing mean channel closed time; mean channelopen times were unaffected. In contrast, the ATP analog,,-methyleneadenosine 5'-triphosphate (AMP-PCP), enhancedPo by increasing single channel open time anddecreasing channel closed time. Pi stimulation of[3H]ryanodine binding by SR vesicles wassimilar at all concentrations of AMP-PCP, suggesting Pi andadenine nucleotides act via independent sites. In skinned musclefibers, 40 mM Pi enhanced Ca2+-inducedCa2+ release, suggesting an in situ stimulation ofthe release channel by high concentrations of Pi. Ourresults support the hypothesis that Pi may be an importantendogenous modulator of the skeletal muscle SR Ca2+ releasechannel under fatiguing conditions in vivo, acting via a mechanismdistinct from adenine nucleotides.

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20.
Localized Ca2+ transients resulting from inositoltrisphosphate (IP3)-dependent Ca2+ releasecouple to spontaneous transient outward currents (STOCs) in murinecolonic myocytes. Confocal microscopy and whole cell patch-clamptechniques were used to investigate coupling between localizedCa2+ transients and STOCs. Colonic myocytes were loadedwith fluo 3. Reduction in external Ca2+([Ca2+]o) reduced localized Ca2+transients but increased STOC amplitude and frequency. Simultaneous recordings of Ca2+ transients and STOCs showed increasedcoupling strength between Ca2+ transients and STOCs when[Ca2+]o was reduced. Gd3+ (10 µM) did not affect Ca2+ transients but increased STOCamplitude and frequency. Similarly, an inhibitor of Ca2+influx,1-2-(4-methoxyphenyl)-2-[3-(4-methoxyphenyl)propoxy]ethyl-1H-imidazole (SKF-96365), increased STOC amplitude and frequency. A protein kinase C(PKC) inhibitor, GF-109203X, also increased the amplitude and frequencyof STOCs but had no effect on Ca2+ transients. Phorbol12-myristate 13-acetate (1 µM) reduced STOC amplitude and frequencybut did not affect Ca2+ transients. 4-Phorbol (1 µM)had no effect on STOCs or Ca2+ transients. Single channelstudies indicated that large-conductance Ca2+-activatedK+ (BK) channels were inhibited by aCa2+-dependent PKC. In summary 1)Ca2+ release from IP3 receptor-operated storesactivates Ca2+-activated K+ channels;2) Ca2+ influx through nonselective cationchannels facilitates activation of PKC; and 3) PKC reducesthe Ca2+ sensitivity of BK channels, reducing the couplingstrength between localized Ca2+ transients and BK channels.

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