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1.
Volatile anesthetics have been shown to activate various two-pore (2P) domain K+ (K2P) channels such as TASK-1 and TREK-1 (TWIK-related acid-sensitive K+ channel), and mice deficient in these channels are resistant to halothane-induced anesthesia. Here, we investigated whether K2P channels were also potentially important targets of intravenous anesthetics. Whole cell patch-clamp techniques were used to determine the effects of the commonly used intravenous anesthetics etomidate and propofol on the acid-sensitive K+ current in rat ventricular myocytes (which strongly express TASK-1) and selected human K2P channels expressed in Xenopus laevis oocytes. In myocytes, etomidate decreased both inward rectifier K+ (Kir) current (IK1) and acid-sensitive outward K+ current at positive potentials, suggesting that this drug may inhibit TASK channels. Indeed, in addition to inhibiting guinea pig Kir2.1 expressed in oocytes, etomidate inhibited human TASK-1 (and TASK-3) in a concentration-dependent fashion. Propofol had no effect on human TASK-1 (or TASK-3) expressed in oocytes. Moreover, we showed that, similar to the known effect of halothane, sevoflurane and the purified R-(–)- and S-(+)-enantiomers of isoflurane, without stereoselectivity, activated human TASK-1. We conclude that intravenous and volatile anesthetics have dissimilar effects on K2P channels. Human TASK-1 (and TASK-3) are insensitive to propofol but are inhibited by supraclinical concentrations of etomidate. In contrast, stimulatory effects of sevoflurane and enantiomeric isoflurane on human TASK-1 can be observed at clinically relevant concentrations. volatile anesthetics; etomidate; propofol; ion channels  相似文献   

2.
The L-type Ca2+ channel is the primary voltage-dependent Ca2+-influx pathway in many excitable and secretory cells, and direct phosphorylation by different kinases is one of the mechanisms involved in the regulation of its activity. The aim of this study was to evaluate the participation of Ser/Thr kinases and tyrosine kinases (TKs) in depolarization-induced Ca2+ influx in the endocrine somatomammotrope cell line GH3. Intracellular Ca2+ concentration ([Ca2+]i) was measured using a spectrofluorometric method with fura 2-AM, and 12.5 mM KCl (K+) was used as a depolarization stimulus. K+ induced an abrupt spike (peak) in [Ca2+]i that was abolished in the presence of nifedipine, showing that K+ enhances [Ca2+]i, preferably activating L-type Ca2+ channels. H89, a selective PKA inhibitor, significantly reduced depolarization-induced Ca2+ mobilization in a concentration-related manner when it was applied before or after K+, and okadaic acid, an inhibitor of Ser/Thr phosphatases, which has been shown to regulate PKA-stimulated L-type Ca2+ channels, increased K+-induced Ca2+ entry. When PKC was activated by PMA, the K+-evoked peak in [Ca2+]i, as well as the plateau phase, was significantly reduced, and chelerythrine (a PKC inhibitor) potentiated the K+-induced increase in [Ca2+]i, indicating an inhibitory role of PKC in voltage-dependent Ca2+ channel (VDCC) activity. Genistein, a TK inhibitor, reduced the K+-evoked increase in [Ca2+]i, but, unexpectedly, the tyrosine phosphatase inhibitor orthovanadate reduced not only basal Ca2+ levels but, also, Ca2+ influx during the plateau phase. Both results suggest that different TKs may act differentially on VDCC activation. Activation of receptor TKs with epidermal growth factor (EGF) or vascular endothelial growth factor potentiated K+-induced Ca2+ influx, and AG-1478 (an EGF receptor inhibitor) decreased it. However, inhibition of the non-receptor TK pp60 c-Src enhanced K+-induced Ca2+ influx. The present study strongly demonstrates that a complex equilibrium among different kinases and phosphatases regulates VDCC activity in the pituitary cell line GH3: PKA and receptor TKs, such as vascular endothelial growth factor receptor and EGF receptor, enhance depolarization-induced Ca2+ influx, whereas PKC and c-Src have an inhibitory effect. These kinases modulate membrane depolarization and may therefore participate in the regulation of a plethora of intracellular processes, such as hormone secretion, gene expression, protein synthesis, and cell proliferation, in pituitary cells. phosphatases; protein kinase A; protein kinase C; epidermal growth factor  相似文献   

3.
We previously reported that human growth hormone (hGH) increases cytoplasmic Ca2+ concentration ([Ca2+]i) and proliferation in pancreatic -cells (Sjöholm Å, Zhang Q, Welsh N, Hansson A, Larsson O, Tally M, and Berggren PO. J Biol Chem 275: 21033–21040, 2000) and that the hGH-induced rise in [Ca2+]i involves Ca2+-induced Ca2+ release facilitated by tyrosine phosphorylation of ryanodine receptors (Zhang Q, Kohler M, Yang SN, Zhang F, Larsson O, and Berggren PO. Mol Endocrinol 18: 1658–1669, 2004). Here we investigated the tyrosine kinases that convey the hGH-induced rise in [Ca2+]i and insulin release in BRIN-BD11 -cells. hGH caused tyrosine phosphorylation of Janus kinase (JAK)2 and c-Src, events inhibited by the JAK2 inhibitor AG490 or the Src kinase inhibitor PP2. Although hGH-stimulated rises in [Ca2+]i and insulin secretion were completely abolished by AG490 and JAK2 inhibitor II, the inhibitors had no effect on insulin secretion stimulated by a high K+ concentration. Similarly, Src kinase inhibitor-1 and PP2, but not its inactive analog PP3, suppressed [Ca2+]i elevation and completely abolished insulin secretion stimulated by hGH but did not affect responses to K+. Ovine prolactin increased [Ca2+]i and insulin secretion to a similar extent as hGH, effects prevented by the JAK2 and Src kinase inhibitors. In contrast, bovine GH evoked a rise in [Ca2+]i but did not stimulate insulin secretion. Neither JAK2 nor Src kinase inhibitors influenced the effect of bovine GH on [Ca2+]i. Our study indicates that hGH stimulates rise in [Ca2+]i and insulin secretion mainly through activation of the prolactin receptor and JAK2 and Src kinases in rat insulin-secreting cells. c-Src; growth hormone receptor; prolactin receptor; Ca2+-induced Ca2+ release  相似文献   

4.
Osteoclasts are multinucleated, bone-resorbing cells that show structural and functional differences between the resorbing and nonresorbing (motile) states during the bone resorption cycle. In the present study, we measured intracellular Ca2+ concentration ([Ca2+]i) in nonresorbing vs. resorbing rat osteoclasts. Basal [Ca2+]i in osteoclasts possessing pseudopodia (nonresorbing/motile state) was around 110 nM and significantly higher than that in actin ring-forming osteoclasts (resorbing state, around 50 nM). In nonresorbing/motile osteoclasts, exposure to high K+ reduced [Ca2+]i, whereas high K+ increased [Ca2+]i in resorbing state osteoclasts. In nonresorbing/motile cells, membrane depolarization and hyperpolarization applied by the patch-clamp technique decreased and increased [Ca2+]i, respectively. Removal of extracellular Ca2+ or application of 300 µM La3+ reduced [Ca2+]i to 50 nM in nonresorbing/motile osteoclasts, and high-K+-induced reduction of [Ca2+]i could not be observed under these conditions. Neither inhibition of intracellular Ca2+ stores or plasma membrane Ca2+ pumps nor blocking of L- and N-type Ca2+ channels significantly reduced [Ca2+]i. Exposure to high K+ inhibited the motility of nonresorbing osteoclasts and reduced the number of actin rings and pit formation in resorbing osteoclasts. These results indicate that in nonresorbing/motile osteoclasts, a La3+-sensitive Ca2+ entry pathway is continuously active under resting conditions, keeping [Ca2+]i high. Changes in membrane potential regulate osteoclastic motility by controlling the net amount of Ca2+ entry in a "reversed" voltage-dependent manner, i.e., depolarization decreases and hyperpolarization increases [Ca2+]i. membrane depolarization; resorbing and motile activities; bone resorbing cycle  相似文献   

5.
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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6.
Hyperpolarization in human leukemia THP-1 monocytes adherent tovascular cell adhesion molecule (VCAM)-1 is due to an induction ofinwardly rectifying K+ currents(Iir) (Colden-Stanfield M and Gallin EK,Am J Physiol Cell Physiol 275: C267-C277, 1998).We determined whether the VCAM-1-induced hyperpolarization issufficient to augment the increase in intracellular free calcium([Ca2+]i) produced by Ca2+ storedepletion with thapsigargin (TG) and readdition of external CaCl2 in fura 2-loaded THP-1 monocytes. Whereas there was a2.1-fold increase in [Ca2+]i in monocytesbound to glass for 5 h in response to TG and CaCl2 addition, adherence to VCAM-1 produced a 5-fold increase in[Ca2+]i. Depolarization of monocytes adherentto VCAM-1 by Iir blockade or exposure to high[K+] abolished the enhancement of the peak[Ca2+]i response. In monocytes bound toglass, hyperpolarization of the membrane potential with valinomycin, aK+ ionophore, to the level of hyperpolarization seen incells adherent to VCAM-1 produced similar changes in peak[Ca2+]i. Adherence of monocytes to E-selectinproduced a similar peak [Ca2+]i to cellsbound to glass. Thus monocyte adherence to the physiological substrateVCAM-1 produces a hyperpolarization that is sufficient to enhanceCa2+ entry and may impact Ca2+-dependentmonocyte function.

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7.
How the endoplasmic reticulum (ER) and mitochondria communicate with each other and how they regulate plasmalemmal Ca2+ entry were studied in cultured rat brown adipocytes. Cytoplasmic Ca2+ or Mg2+ and mitochondrial membrane potential were measured by fluorometry. The sustained component of rises in cytoplasmic Ca2+ concentration ([Ca2+]i) produced by thapsigargin was abolished by removing extracellular Ca2+, depressed by depleting extracellular Na+, and enhanced by raising extracellular pH. FCCP, dinitrophenol, and rotenone caused bi- or triphasic rises in [Ca2+]i, in which the first phase was accompanied by mitochondrial depolarization. The FCCP-induced first phase was partially inhibited by oligomycin but not by ruthenium red, cyclosporine A, U-73122, a Ca2+-free EGTA solution, and an Na+-free solution. The FCCP-induced second phase paralleling mitochondrial repolarization was partially blocked by removing extracellular Ca2+ and fully blocked by oligomycin but not by thapsigargin or an Na+-deficient solution, was accompanied by a rise in cytoplasmic Mg2+ concentration, and was summated with a high pH-induced rise in [Ca2+]i, whereas the extracellular Ca2+-independent component was blocked by U-73122 and cyclopiazonic acid. The FCCP-induced third phase was blocked by removing Ca2+ but not by thapsigargin, depressed by decreasing Na+, and enhanced by raising pH. Cyclopiazonic acid-evoked rises in [Ca2+]i in a Ca2+-free solution were depressed after FCCP actions. Thus mitochondrial uncoupling causes Ca2+ release, activating Ca2+ release from the ER and store-operated Ca2+ entry, and directly elicits a novel plasmalemmal Ca2+ entry, whereas Ca2+ release from the ER activates Ca2+ accumulation in, or release from, mitochondria, indicating bidirectional mitochondria-ER couplings in rat brown adipocytes. plasmalemmal calcium entry; calcium release; mitochondrial depolarization; FCCP  相似文献   

8.
Palytoxin is a coral toxin that seriously impairs heart function, but its effects on excitation-contraction (E-C) coupling have remained elusive. Therefore, we studied the effects of palytoxin on mechanisms involved in atrial E-C coupling. In field-stimulated cat atrial myocytes, palytoxin caused elevation of diastolic intracellular Ca2+ concentration ([Ca2+]i), a decrease in [Ca2+]i transient amplitude, Ca2+ alternans followed by [Ca2+]i waves, and failures of Ca2+ release. The decrease in [Ca2+]i transient amplitude occurred despite high sarcoplasmic reticulum (SR) Ca2+ load. In voltage-clamped myocytes, palytoxin induced a current with a linear current-voltage relationship (reversal potential 5 mV) that was blocked by ouabain. Whole cell Ca2+ current and ryanodine receptor Ca2+ release channel function remained unaffected by the toxin. However, palytoxin significantly reduced Ca2+ pumping of isolated SR vesicles. In current-clamped myocytes stimulated at 1 Hz, palytoxin induced a depolarization of the resting membrane potential that was accompanied by delayed afterdepolarizations. No major changes of action potential configuration were observed. The results demonstrate that palytoxin interferes with the function of the sarcolemmal Na+-K+ pump and the SR Ca2+ pump. The suggested mode of palytoxin toxicity in the atrium involves the conversion of Na+-K+ pumps into nonselective cation channels as a primary event followed by depolarization, Na+ accumulation, and Ca2+ overload, which, in turn, causes arrhythmogenic [Ca2+]i waves and delayed afterdepolarizations. atrial myocytes; intracellular calcium  相似文献   

9.
In fura 2-loaded N1E-115 cells, regulationof intracellular Ca2+ concentration([Ca2+]i) following a Ca2+ loadinduced by 1 µM thapsigargin and 10 µM carbonylcyanidep-trifluoromethyoxyphenylhydrazone (FCCP) wasNa+ dependent and inhibited by 5 mM Ni2+. Incells with normal intracellular Na+ concentration([Na+]i), removal of bath Na+,which should result in reversal of Na+/Ca2+exchange, did not increase [Ca2+]i unlesscell Ca2+ buffer capacity was reduced. When N1E-115 cellswere Na+ loaded using 100 µM veratridine and 4 µg/mlscorpion venom, the rate of the reverse mode of theNa+/Ca2+ exchanger was apparently enhanced,since an ~4- to 6-fold increase in [Ca2+]ioccurred despite normal cell Ca2+ buffering. In SBFI-loadedcells, we were able to demonstrate forward operation of theNa+/Ca2+ exchanger (net efflux ofCa2+) by observing increases (~ 6 mM) in[Na+]i. These Ni2+ (5 mM)-inhibited increases in [Na+]i could onlybe observed when a continuous ionomycin-induced influx ofCa2+ occurred. The voltage-sensitive dyebis-(1,3-diethylthiobarbituric acid) trimethine oxonol was used tomeasure changes in membrane potential. Ionomycin (1 µM) depolarizedN1E-115 cells (~25 mV). This depolarization was Na+dependent and blocked by 5 mM Ni2+ and 250-500 µMbenzamil. These data provide evidence for the presence of anelectrogenic Na+/Ca2+ exchanger that is capableof regulating [Ca2+]i after release ofCa2+ from cell stores.

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10.
Regulation of intracellular calcium in human esophageal smooth muscles   总被引:7,自引:0,他引:7  
We have investigated sources ofCa2+ contributing to excitation ofhuman esophageal smooth muscle, using fura 2 to study cytosolic freeCa2+ concentration([Ca2+]i)in dispersed cells and contraction of intact muscles. Acetylcholine (ACh) caused an initial peak rise of[Ca2+]ifollowed by a plateau accompanied by reversible contraction. Removal ofextracellular Ca2+ or addition ofdihydropyridine Ca2+ channelblockers reduced the plateau phase but did not prevent contraction.Caffeine also caused elevation of[Ca2+]iand blocked responses to ACh. Undershoots of[Ca2+]iwere apparent after ACh or caffeine. Blockade of the sarcoplasmic reticular Ca2+-ATPase bycyclopiazonic acid (CPA) reduced the ACh-evoked increase of[Ca2+]iand abolished the undershoot, indicating involvement ofCa2+ stores. When contraction wasstudied in intact muscles, removal ofCa2+ or addition of nifedipinereduced, but did not abolish, carbachol (CCh)-induced contraction.Elevation of extracellular K+caused contraction that was inhibited by nifedipine, although CCh stillelicited contraction. CPA caused contraction and suppressed theCCh-induced contraction, whereas ryanodine reduced CCh-induced contraction. Our studies provide evidence that muscarinic excitation ofhuman esophagus involves both release ofCa2+ from intracellular stores andinflux of Ca2+.

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11.
Palytoxin-induced cell death cascade in bovine aortic endothelial cells   总被引:1,自引:0,他引:1  
The plasmalemmal Na+-K+-ATPase (NKA) pump is the receptor for the potent marine toxin palytoxin (PTX). PTX binds to the NKA and converts the pump into a monovalent cation channel that exhibits a slight permeability to Ca2+. However, the ability of PTX to directly increase cytosolic free Ca2+ concentration ([Ca2+]i) via Na+ pump channels and to initiate Ca2+ overload-induced oncotic cell death has not been examined. Thus the purpose of this study was to determine the effect of PTX on [Ca2+]i and the downstream events associated with cell death in bovine aortic endothelial cells. PTX (3–100 nM) produced a graded increase in [Ca2+]i that was dependent on extracellular Ca2+. The increase in [Ca2+]i initiated by 100 nM PTX was blocked by pretreatment with ouabain with an IC50 < 1 µM. The elevation in [Ca2+]i could be reversed by addition of ouabain at various times after PTX, but this required much higher concentrations of ouabain (0.5 mM). These results suggest that the PTX-induced rise in [Ca2+]i occurs via the Na+ pump. Subsequent to the rise in [Ca2+]i, PTX also caused a concentration-dependent increase in uptake of the vital dye ethidium bromide (EB) but not YO-PRO-1. EB uptake was also blocked by ouabain added either before or after PTX. Time-lapse video microscopy showed that PTX ultimately caused cell lysis as indicated by release of transiently expressed green fluorescent protein (molecular mass 27 kDa) and rapid uptake of propidium iodide. Cell lysis was 1) greatly delayed by removing extracellular Ca2+ or by adding ouabain after PTX, 2) blocked by the cytoprotective amino acid glycine, and 3) accompanied by dramatic membrane blebbing. These results demonstrate that PTX initiates a cell death cascade characteristic of Ca2+ overload. necrosis; vital dyes; membrane blebs; time-lapse video microscopy; fura-2  相似文献   

12.
The role of nitric oxide (NO) in the occurrence of intracellular Ca2+ concentration ([Ca2+]i) oscillations in pituitary GH3 cells was evaluated by studying the effect of increasing or decreasing endogenous NO synthesis with L-arginine and nitro-L-arginine methyl ester (L-NAME), respectively. When NO synthesis was blocked with L-NAME (1 mM) [Ca2+]i, oscillations disappeared in 68% of spontaneously active cells, whereas 41% of the quiescent cells showed [Ca2+]i oscillations in response to the NO synthase (NOS) substrate L-arginine (10 mM). This effect was reproduced by the NO donors NOC-18 and S-nitroso-N-acetylpenicillamine (SNAP). NOC-18 was ineffective in the presence of the L-type voltage-dependent Ca2+ channels (VDCC) blocker nimodipine (1 µM) or in Ca2+-free medium. Conversely, its effect was preserved when Ca2+ release from intracellular Ca2+ stores was inhibited either with the ryanodine-receptor blocker ryanodine (500 µM) or with the inositol 1,4,5-trisphosphate receptor blocker xestospongin C (3 µM). These results suggest that NO induces the appearance of [Ca2+]i oscillations by determining Ca2+ influx. Patch-clamp experiments excluded that NO acted directly on VDCC but suggested that NO determined membrane depolarization because of the inhibition of voltage-gated K+ channels. NOC-18 and SNAP caused a decrease in the amplitude of slow-inactivating (IDR) and ether-à-go-go-related gene (ERG) hyperpolarization-evoked, deactivating K+ currents. Similar results were obtained when GH3 cells were treated with L-arginine. The present study suggests that in GH3 cells, endogenous NO plays a permissive role for the occurrence of spontaneous [Ca2+]i oscillations through an inhibitory effect on IDR and on IERG. voltage-gated potassium channels; ether-à-go-go-related gene potassium channels; slow-inactivating outward currents; fast-inactivating outward currents  相似文献   

13.
The possiblerole of altered extracellular Ca2+concentration([Ca2+]o)in skeletal muscle fatigue was tested on isolated slow-twitch soleusand fast-twitch extensor digitorum longus muscles of the mouse. Thefollowing findings were made. 1) Achange from the control solution (1.3 mM[Ca2+]o)to 10 mM[Ca2+]o,or to nominally Ca2+-freesolutions, had little effect on tetanic force in nonfatigued muscle.2) Almost complete restoration oftetanic force was induced by 10 mM[Ca2+]oin severely K+-depressed muscle(extracellular K+ concentration of10-12 mM). This effect was attributed to a 5-mV reversal of theK+-induced depolarization andsubsequent restoration of ability to generate action potentials(inferred by using the twitch force-stimulation strength relationship).3) Tetanic force depressed bylowered extracellular Na+concentration (40 mM) was further reduced with 10 mM[Ca2+]o.4) Tetanic force loss at elevatedextracellular K+ concentration (8 mM) and lowered extracellular Na+concentration (100 mM) was partially reversed with 10 mM[Ca2+]oor markedly exacerbated with low[Ca2+]o.5) Fatigue induced by using repeatedtetani in soleus was attenuated at 10 mM[Ca2+]o(due to increased resting and evoked forces) and exacerbated at low[Ca2+]o.These combined results suggest, first, that raised[Ca2+]oprotects against fatigue rather than inducing it and, second, that aconsiderable depletion of[Ca2+]oin the transverse tubules may contribute to fatigue.

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14.
The myoplasmic free Ca2+concentration([Ca2+]i)was measured in intact single fibers from mouse skeletal muscle withthe fluorescent Ca2+ indicatorindo 1. Some fibers were perfused in a solution in which theconcentration of Na+ was reducedfrom 145.4 to 0.4 mM (low-Na+solution) in an attempt to activate reverse-modeNa+/Ca2+exchange (Ca2+ entry in exchangefor Na+ leaving the cell). Undernormal resting conditions, application oflow-Na+ solution only increased[Ca2+]iby 5.8 ± 1.8 nM from a mean resting[Ca2+]iof 42 nM. In other fibers,[Ca2+]iwas elevated by stimulating sarcoplasmic reticulum (SR)Ca2+ release with caffeine (10 mM)and by inhibiting SR Ca2+ uptakewith2,5-di(tert-butyl)-1,4-benzohydroquinone(TBQ; 0.5 µM) in an attempt to activate forward-modeNa+/Ca2+exchange (Ca2+ removal from thecell in exchange for Na+ influx).These two agents caused a large increase in[Ca2+]i,which then declined to a plateau level approximately twice the baseline[Ca2+]iover 20 min. If the cell was allowed to recover between exposures tocaffeine and TBQ in a solution in whichCa2+ had been removed, theincrease in[Ca2+]iduring the second exposure was very low, suggesting thatCa2+ had left the cell during theinitial exposure. Application of caffeine and TBQ to a preparation inlow-Na+ solution produced a large,sustained increase in[Ca2+]iof ~1 µM. However, when cells were exposed to caffeine and TBQ in alow-Na+ solution in whichCa2+ had been removed, a sustainedincrease in[Ca2+]iwas not observed, although[Ca2+]iremained higher and declined slower than in normalNa+ solution. This suggests thatforward-modeNa+/Ca2+exchange contributed to the fall of[Ca2+]iin normal Na+ solution, but whenextracellular Na+ was low, aprolonged elevation of[Ca2+]icould activate reverse-modeNa+/Ca2+exchange. The results provide evidence that skeletal muscle fibers possess aNa+/Ca2+exchange mechanism that becomes active in its forward mode when [Ca2+]iis increased to levels similar to that obtained during contraction.

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15.
Thenotion that intracellular Ca2+ (Cai2+)stores play a significant role in the chemoreception process inchemoreceptor cells of the carotid body (CB) appears in the literaturein a recurrent manner. However, the structural identity of theCa2+ stores and their real significance in the function ofchemoreceptor cells are unknown. To assess the functional significanceof Cai2+ stores in chemoreceptor cells, we havemonitored 1) the release of catecholamines (CA) from thecells using an in vitro preparation of intact rabbit CB and2) the intracellular Ca2+ concentration([Ca2+]i) using isolated chemoreceptor cells;both parameters were measured in the absence or the presence of agentsinterfering with the storage of Ca2+. We found thatthreshold [Ca2+]i for high extracellularK+ (Ke+) to elicit a release response is250 nM. Caffeine (10-40 mM), ryanodine (0.5 µM), thapsigargin(0.05-1 µM), and cyclopiazonic acid (10 µM) did not alter thebasal or the stimulus (hypoxia, high Ke+)-inducedrelease of CA. The same agents produced Cai2+transients of amplitude below secretory threshold; ryanodine (0.5 µM), thapsigargin (1 µM), and cyclopiazonic acid (10 µM) did notalter the magnitude or time course of the Cai2+responses elicited by high Ke+. Several potentialactivators of the phospholipase C system (bethanechol, ATP, andbradykinin), and thereby of inositol 1,4,5-trisphosphate receptors,produced minimal or no changes in [Ca2+]i anddid not affect the basal release of CA. It is concluded that, in therabbit CB chemoreceptor cells, Cai2+ stores do not playa significant role in the instant-to-instant chemoreception process.

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16.
The role of theNa+/Ca2+exchanger in intracellular Ca2+regulation was investigated in freshly dissociated catfish retinalhorizontal cells (HC).Ca2+-permeable glutamate receptorsand L-type Ca2+ channels as wellas inositol 1,4,5-trisphosphate-sensitive and caffeine-sensitiveintracellular Ca2+ stores regulateintracellular Ca2+ in these cells.We used the Ca2+-sensitive dyefluo 3 to measure changes in intracellularCa2+ concentration([Ca2+]i)under conditions in whichNa+/Ca2+exchange was altered. In addition, the role of theNa+/Ca2+exchanger in the refilling of the caffeine-sensitiveCa2+ store followingcaffeine-stimulated Ca2+ releasewas assessed. Brief applications of caffeine (1-10 s) producedrapid and transient changes in[Ca2+]i.Repeated applications of caffeine produced smallerCa2+ transients until no furtherCa2+ was released. Store refillingoccurred within 1-2 min and required extracellularCa2+. Ouabain-induced increases inintracellular Na+ concentration([Na+]i)increased both basal free[Ca2+]iand caffeine-stimulated Ca2+release. Reduction of external Na+concentration([Na+]o)further and reversibly increased[Ca2+]iin ouabain-treated HC. This effect was not abolished by the Ca2+ channel blocker nifedipine,suggesting that increases in[Na+]ipromote net extracellular Ca2+influx through aNa+/Ca2+exchanger. Moreover, when[Na+]owas replaced by Li+, caffeine didnot stimulate release of Ca2+ fromthe caffeine-sensitive store afterCa2+ depletion. TheNa+/Ca2+exchanger inhibitor 2',4'-dimethylbenzamil significantlyreduced the caffeine-evoked Ca2+response 1 and 2 min after store depletion.

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17.
The regulationof intracellular Ca2+ signals in smooth muscle cells andarterial diameter by intravascular pressure was investigated in ratcerebral arteries (~150 µm) using a laser scanning confocal microscope and the fluorescent Ca2+ indicator fluo 3. Elevation of pressure from 10 to 60 mmHg increased Ca2+spark frequency 2.6-fold, Ca2+ wave frequency 1.9-fold, andglobal intracellular Ca2+ concentration([Ca2+]i) 1.4-fold in smooth muscle cells,and constricted arteries. Ryanodine (10 µM), an inhibitor ofryanodine-sensitive Ca2+ release channels, or thapsigargin(100 nM), an inhibitor of the sarcoplasmic reticulumCa2+-ATPase, abolished sparks and waves, elevated global[Ca2+]i, and constricted pressurized (60 mmHg) arteries. Diltiazem (25 µM), a voltage-dependentCa2+ channel (VDCC) blocker, significantly reduced sparks,waves, and global [Ca2+]i, and dilatedpressurized (60 mmHg) arteries. Steady membrane depolarization elevatedCa2+ signaling similar to pressure and increased transientCa2+-sensitive K+ channel current frequencye-fold for ~7 mV, and these effects were prevented by VDCCblockers. Data are consistent with the hypothesis that pressure inducesa steady membrane depolarization that activates VDCCs, leading to anelevation of spark frequency, wave frequency, and global[Ca2+]i. In addition, pressure inducescontraction via an elevation of global[Ca2+]i, whereas the net effect of sparks andwaves, which do not significantly contribute to global[Ca2+]i in arteries pressurized to between 10 and 60 mmHg, is to oppose contraction.

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18.
Decoding of fast cytosolic Ca2+ concentration ([Ca2+]i) transients by mitochondria was studied in permeabilized cat ventricular myocytes. Mitochondrial [Ca2+] ([Ca2+]m) was measured with fluo-3 trapped inside mitochondria after removal of cytosolic indicator by plasma membrane permeabilization with digitonin. Elevation of extramitochondrial [Ca2+] ([Ca2+]em) to >0.5 µM resulted in a [Ca2+]em-dependent increase in the rate of mitochondrial Ca2+ accumulation ([Ca2+]em resulting in half-maximal rate of Ca2+ accumulation = 4.4 µM) via Ca2+ uniporter. Ca2+ uptake was sensitive to the Ca2+ uniporter blocker ruthenium red and the protonophore carbonyl cyanide p-trifluoromethoxyphenylhydrazone and depended on inorganic phosphate concentration. The rates of [Ca2+]m increase and recovery were dependent on the extramitochondrial [Na+] ([Na+]em) due to Ca2+ extrusion via mitochondrial Na+/Ca2+ exchanger. The maximal rate of Ca2+ extrusion was observed with [Na+]em in the range of 20–40 mM. Rapid switching (0.25–1 Hz) of [Ca2+]em between 0 and 100 µM simulated rapid beat-to-beat changes in [Ca2+]i (with [Ca2+]i transient duration of 100–500 ms). No [Ca2+]m oscillations were observed, either under conditions of maximal rate of Ca2+ uptake (100 µM [Ca2+]em, 0 [Na+]em) or with maximal rate of Ca2+ removal (0 [Ca2+]em, 40 mM [Na+]em). The slow frequency-dependent increase of [Ca2+]m argues against a rapid transmission of Ca2+ signals between cytosol and mitochondria on a beat-to-beat basis in the heart. [Ca2+]m changes elicited by continuous or pulsatile exposure to elevated [Ca2+]em showed no difference in mitochondrial Ca2+ uptake. Thus in cardiac myocytes fast [Ca2+]i transients are integrated by mitochondrial Ca2+ transport systems, resulting in a frequency-dependent net mitochondrial Ca2+ accumulation. mitochondrial Ca2+; excitation-contraction coupling; cardiomyocytes  相似文献   

19.
Thrombin and related protease-activated receptors 1, 2, 3, and 4 (PAR1–4) play a multifunctional role in many types of cells including endothelial cells. Here, using RT-PCR and immunofluorescence staining, we showed for the first time that PAR1–4 are expressed on primary human brain microvascular endothelial cells (HBMEC). Digital fluorescence microscopy and fura 2 were used to monitor intracellular Ca2+ concentration ([Ca2+]i) changes in response to thrombin and PAR1-activating peptide (PAR1-AP) SFFLRN. Both thrombin and PAR1-AP induced a dose-dependent [Ca2+]i rise that was inhibited by pretreatment of HBMEC with the phospholipase C inhibitor U-73122 and the sarco(endo)plasmic reticulum Ca2+-ATPase inhibitor thapsigargin. Thrombin induced transient [Ca2+]i increase, whereas PAR1-AP exhibited sustained [Ca2+]i rise. The PAR1-AP-induced sustained [Ca2+]i rise was significantly reduced in the absence of extracellular calcium or in the presence of an inhibitor of store-operated calcium channels, SKF-96365. Restoration of extracellular Ca2+ to the cells that were initially activated by PAR1-AP in the absence of extracellular Ca2+ resulted in significant [Ca2+]i rise; however, this effect was not observed after thrombin stimulation. Pretreatment of the cells with a low thrombin concentration (0.1 nM) prevented [Ca2+]i rise in response to high thrombin concentration (10 nM), but pretreatment with PAR1-AP did not prevent subsequent [Ca2+]i rise to high PAR1-AP concentration. Additionally, treatment with thrombin decreased transendothelial electrical resistance in HBMEC, whereas PAR1-AP was without significant effect. These findings suggest that, in contrast to thrombin, stimulation of PAR1 by untethered peptide SFFLRN results in stimulation of store-operated Ca2+ influx without significantly affecting brain endothelial barrier functions. store-operated calcium influx; desensitization; transendothelial electrical resistance; digital imaging  相似文献   

20.
To study the effects of -opioid receptor stimulation onintracellular Ca2+ concentration([Ca2+]i)homeostasis during extracellular acidosis, we determined the effects of-opioid receptor stimulation on[Ca2+]iresponses during extracellular acidosis in isolated single ratventricular myocytes, by a spectrofluorometric method. U-50488H (10-30 µM), a selective -opioid receptor agonist, dosedependently decreased the electrically induced[Ca2+]itransient, which results from the influx ofCa2+ and the subsequentmobilization of Ca2+ from thesarcoplasmic reticulum (SR). U-50488H (30 µM) also increased theresting[Ca2+]iand inhibited the[Ca2+]itransient induced by caffeine, which mobilizesCa2+ from the SR, indicating thatthe effects of the -opioid receptor agonist involved mobilization ofCa2+ from its intracellular poolinto the cytoplasm. The Ca2+responses to 30 µM U-50488H were abolished by 5 µMnor-binaltorphimine, a selective -opioid receptorantagonist, indicating that the event was mediated by the -opioidreceptor. The effects of the agonist on[Ca2+]iand the electrically induced[Ca2+]itransient were significantly attenuated when the extracellular pH(pHe) was loweredto 6.8, which itself reduced intracellular pH(pHi) and increased[Ca2+]i.The inhibitory effects of U-50488H were restored during extracellular acidosis in the presence of 10 µM ethylisopropyl amiloride, a potentNa+/H+exchange blocker, or 0.2 mM Ni2+,a putativeNa+/Ca2+exchange blocker. The observations indicate that acidosismay antagonize the effects of -opioid receptor stimulation viaNa+/H+andNa+/Ca2+exchanges. When glucose at 50 mM, known to activate theNa+/H+exchange, was added, both the resting[Ca2+]iand pHi increased. Interestingly,the effects of U-50488H on [Ca2+]iand the electrically induced[Ca2+]itransient during superfusion with glucose were significantly attenuated; this mimicked the responses during extracellular acidosis. When a high-Ca2+ (3 mM) solutionwas superfused, the resting[Ca2+]iincreased; the increase was abolished by 0.2 mMNi2+, but thepHi remained unchanged. Like theresponses to superfusion with high-concentration glucose andextracellular acidosis, the responses of the[Ca2+]iand electrically induced[Ca2+]itransients to 30 µM U-50488H were also significantly attenuated. Results from the present study demonstrated for the first time thatextracellular acidosis antagonizes the effects of -opioid receptorstimulation on the mobilization ofCa2+ from SR. Activation of bothNa+/H+andNa+/Ca2+exchanges, leading to an elevation of[Ca2+]i,may be responsible for the antagonistic action of extracellular acidosis against -opioid receptor stimulation.

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