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L Combettes

Publications and source records attributed to L Combettes.

At least 37 records · Page 2Linked to original sources

3':5'-cyclic guanosine monophosphate (cGMP) potentiates the inositol 1,4,5-trisphosphate-evoked Ca2+ release in guinea-pig hepatocytes.

The effect of cGMP on noradrenaline-induced intracellular Ca2+ mobilization was investigated in whole-cell voltage-clamped guinea-pig hepatocytes. Treatment of the cells with 8-Br-cGMP (1-500 microM) resulted in an increase in the sensitivity of the cells to noradrenaline and to inositol 1,4,5-trisphosphate (InsP3) photo-released from caged InsP3. The positive effect of 8-Br-cGMP on the Ca2+ release evoked by Ca(2+)-mobilizing agonists or InsP3 was blocked by a protein kinase G (PKG; cGMP-dependent protein kinase) inhibitor, the RP-8-(4-chlorophenylthio)guanosine 3':5'-monophosphorothioate. 8-Br-cGMP affected neither the basal InsP3 concentration nor the noradrenaline-induced production of InsP3. In permeabilized hepatocytes, the dose-response curve for InsP3-induced Ca2+ release was shifted to the left in the presence of 8-Br-cGMP. Furthermore, the treatment with 8-Br-cGMP did not affect the Ca2+ content of the InsP3-sensitive Ca2+ stores. These results indicate that intracellular cGMP potentiates the noradrenaline-induced Ca2+ response by enhancing Ca2+ release from the intracellular Ca2+ stores. We suggest that cGMP increases the apparent affinity of InsP3 receptors for InsP3 in guinea-pig hepatocytes probably by phosphorylation via the activation of PKG.

Animals↗

Regulation of inositol trisphosphate receptors by luminal Ca2+ contributes to quantal Ca2+ mobilization.

The quantal behaviour of inositol trisphosphate (InsP3) receptors allows rapid graded release of Ca2+ from intracellular stores, but the mechanisms are unknown. In Ca2+-depleted stores loaded with Fura 2, InsP3 caused concentration dependent increases in the rates of fluorescence quench by Mn2+ that were unaffected by prior incubation with InsP3, indicating that InsP3 binding did not cause desensitization. When Fura 2 was used to report the luminal free [Ca2+] after inhibition of further Ca2+ uptake, submaximal concentrations of InsP3 caused rapid, partial decreases in fluorescence ratios. Subsequent addition of a maximal InsP3 concentration caused the fluorescence to fall to within 5% of that recorded after ionomycin. Addition of all but the lowest concentrations of InsP3 to stores loaded with the lower affinity indicator, Calcium Green-5N, caused almost complete emptying of the stores at rates that increased with InsP3 concentration. The lowest concentration of InsP3 (10 nM) slowly emptied approximately 80% of the stores, but within 3 min the rate of Ca2+ release slowed leaving approximately 7 microM Ca2+ within the stores, which was then rapidly released by a maximal InsP3 concentration. In stores co-loaded with both indicators, InsP3-evoked Ca2+ release appeared quantal with Fura 2 and largely non-quantal with Calcium Green-5N; the discrepancy is not, therefore, a direct effect of the indicators. The fall in luminal [Ca2+] after activation of InsP3 receptors may, therefore, cause their inactivation, but only after the Ca2+ content of the stores has fallen by approximately 95% to < or = 10 microM.

Animals↗

The location of hepatocytes in the rat liver acinus determines their sensitivity to calcium-mobilizing hormones.

BACKGROUND & AIMS: In multicellular systems of rat hepatocytes and in the intact liver, inositol 1,4,5-trisphosphate (IP3)-dependent agonists induce sequentially ordered calcium ion signals. The mechanisms by which sequential waves are oriented from one hepatocyte to another are unknown. The aim of this study was to investigate the relationship between hepatocyte location in the acinus and cellular sensitivity to noradrenaline, vasopressin, adenosine triphosphate, and angiotensin II. METHODS: Periportal (PP) and pericentral (PC) rat hepatocyte suspensions, isolated by the digitonin-collagenase technique, were loaded with quin2-acetoxymethyl ester, and hormonal responses were studied in a spectrofluorimeter. The function of the IP3 receptor was studied by measuring the IP3-mediated 45Ca2+ release from permeabilized PP and PC hepatocytes. RESULTS: Increases in noradrenaline and vasopressin-induced intracellular Ca2+ concentration were greater in PC than in PP hepatocytes. In contrast, PP cells were more responsive than PC cells to adenosine triphosphate, and angiotensin II induced similar intracellular Ca2+ concentration increases in both hepatocyte populations. In permeabilized PP and PC hepatocytes, internal Ca2+ stores showed the same loading kinetics, the responses to IP3 were similar, and the sizes of the IP3 sensitive compartment were not different. CONCLUSIONS: Hepatocyte location in the acinus determines cellular sensitivity to Ca(2+)-mobilizing agonists. Intercellular Ca2+ waves in the liver could be driven by sensitivity gradients along the hepatocyte plate.

Adenosine Triphosphate↗

Characterization of the co-agonist effects of strontium and calcium on myo-inositol trisphosphate-dependent ion fluxes in cerebellar microsomes.

Using sheep cerebellum microsomes previously loaded with 45Ca2+ or 90Sr2+, we measured the dependence of inositol 1,4,5-trisphosphate (InsP3)-induced efflux of these ions on Ca2+ or Sr2+ on the cytosolic side. At a low InsP3 concentration, Ca2+ in the submicromolar range only poorly activated 45Ca2+ or 90Sr2+ efflux, and higher Ca2+ concentrations were inhibitory. In contrast, Sr2+ in the micromolar range activated release efficiently, while only very high Sr2+ concentrations were inhibitory. Experiments were repeated in the presence of a high InsP3 concentration, which allowed increasing free Ca2+ to micromolar concentrations without inducing complete inhibition of the InsP3-dependent efflux. Under these conditions, micromolar Ca2+ was found to activate efflux to a large extent, similar to that previously found with Sr2+. Optimal activation by Ca2+ of the InsP3-dependent channel occurs at micromolar rather than submicromolar free Ca2+ concentrations, but at too low an InsP3 concentration, Ca(2+)-induced activation is counteracted by Ca(2+)-induced inactivation. Separate measurements of [3H]-InsP3 binding at a low concentration showed that Sr2+ and Ca2+ did not enhance the amount of bound [3H]-InsP3, implying that the activating effect of Sr2+ and Ca2+ in cerebellar microsomes is mediated by an increase in the channel opening probability and not by an increase in the receptor's affinity for InsP3. A similar relationship also holds in the case of the activating effect of nucleotides.

Animals↗

[Hormone-mediated calcium responses of rat and human hepatocytes. Study of multicellular systems by videomicroscopy].

OBJECTIVES AND METHODS: Activation of hepatocyte hormonal receptors leads to the mobilization of intracellular Ca2+ which is thought to be an elaborate system for encoding hormonal messages. We studied hormone-induced calcium signals in freshly isolated multicellular systems of normal rat and human hepatocytes. Calcium signals were recorded by videomicroscopy after stimulation with noradrenaline, angiotensin II, and vasopressin. RESULTS: Calcium signals were highly organized in multiplets: the different hepatocytes responded to Ca(2+)-mobilizing hormones in a sequentially ordered manner, with a first, a second (doublets) and a third (triplets) responding cells. This pattern was an intrinsic feature of the multicellular systems, and seemed to be a result of a gradual heterogeneity of the sensitivity of the different cells, to the hormones. The stimulation of the same multiplet with two different agonists and the removal of the hormone during cell responses provides some evidence for the major role of hormonal receptors in this heterogeneity. CONCLUSIONS: Hormone responses in multicellular systems of rat and human hepatocytes are highly elaborate. The density of hormonal receptors could be the major determinant of the sequential pattern of Ca2+ responses. Hormonal receptors may be gradually distributed among the different cells of the multiplets in vitro and along the porto-centrilobular axis in situ.

Angiotensin II↗

Ca(2+)-mobilizing hormones induce sequentially ordered Ca2+ signals in multicellular systems of rat hepatocytes.

The development of hormone-mediated Ca2+ signals was analysed in polarized doublets, triplets and quadruplets of rat hepatocytes by video imaging of fura2 fluorescence. These multicellular models showed dilated bile canaliculi, and gap junctions were observed by using an anti-connexin-32 antibody. They also showed highly organized Ca2+ signals in response to vasopressin or noradrenaline. Surprisingly, the primary rises in intracellular Ca2+ concentration ([Ca2+]i) did not start randomly from any cell of the multiplet. It originated invariably in the same hepatocyte (first-responding cell), and then was propagated in a sequential manner to the nearest connected cells (cell 2, then 3, in triplets; cell 2, 3, then 4 in quadruplets). The sequential activation of the cells appeared to be an intrinsic property of multiplets of rat hepatocytes. (1) In the continued presence of hormones, the same sequential order was observed up to six times, i.e. at each train of oscillations occurring between the cells. (2) The order of [Ca2+]i responses was modified neither by the repeated addition of hormones nor by the hormonal dose. (3) The mechanical disruption of an intermediate cell slowed down the speed of the propagation, suggesting a role of gap junctions in the rapidity of the sequential activation of cells. (4) The same multiplet could have a different first-responding cell for vasopressin or noradrenaline, suggesting a role of the hormonal receptors in the sequentiality of cell responses. It is postulated that a functional heterogeneity of hormonal receptors, and the presence of functional gap junctions, are involved in the existence of sequentially ordered hormone-mediated [Ca2+]i rises in the multiplets of rat hepatocytes.

Animals↗

Rapid kinetics of myo-inositol trisphosphate binding and dissociation in cerebellar microsomes.

Using sheep cerebellum microsomes adsorbed on a filter, we measured the kinetics of [3H]inositol 1,4,5-trisphosphate (InsP3) binding and dissociation on the subsecond time scale during rapid perfusion of the filter with [3H]InsP3-containing or InsP3-free media. At 20 degrees C and pH 7.1, in a cytosol-like medium containing MgCl2, the half-time for InsP3 dissociation was as short as 125 ms. The receptor behaved as a simple target for binding of its ligand, with the rate constant for InsP3 binding increasing linearly with InsP3 concentration. Various modulators of InsP3 binding (KCl, NaCl, pH, Mg2+, and Ca2+) were found to affect the receptor's apparent affinity for InsP3 mainly by altering the rate constant for [3H]InsP3 dissociation. ATP (but not InsP3) also accelerated [3H]InsP3 dissociation. In contrast to these modulators, luminal Ca2+ was found to have no effect on the amount of microsome-bound [3H]InsP3.

Animals↗

Transient inositol 1,4,5-trisphosphate-induced Ca2+ release: a model based on regulatory Ca(2+)-binding sites along the permeation pathway.

A remarkable property of Ca2+ fluxes through the inositol 1,4,5-trisphosphate (InsP3)-gated Ca2+ channel is that successive increments of InsP3 induce repeated transient release of accumulated Ca2+. The initial aim of this study was to propose a model, based on hypotheses compatible with the current description of this Ca2+ channel, which could account for such experimental observations. The key feature of the model was the assumption that the Ca(2+)-binding sites on the receptor, whose occupancy leads to immediate channel activation but to subsequent slow channel desensitization, were located somewhere along the permeation pathway and were therefore sensitive to the flux of Ca2+ rather than the cytosolic or luminal Ca2+ concentration per se. Simulation showed that, provided Ca2+ bound to both activating and inhibitory sites with adequate cooperativity, addition of submaximal concentrations InsP3 resulted in transient opening well above the stationary state. The model also rationalized the documented existence of a threshold for InsP3 action, the puzzling control of channel sensitivity to InsP3 by luminal and cytosolic Ca2+, as well as the functional heterogeneity of the Ca2+ pools.

Binding Sites↗

Caffeine inhibits cytosolic calcium oscillations induced by noradrenaline and vasopressin in rat hepatocytes.

The effects of caffeine on agonist-induced changes in intracellular Ca2+ concentration ([Ca2+]i) were studied in single fura 2-loaded cells and suspensions of rat hepatocytes. In single cells, caffeine (5-10 mM) inhibited [Ca2+]i oscillations induced both by noradrenaline (0.1 microM) and by vasopressin (0.1 nM). Caffeine shifted the dose-response curves of the [Ca2+]i rise induced by vasopressin (0.5 to 2 nM) and noradrenaline (from 80 to 580 nM) in suspensions of liver cells loaded with quin2. This inhibitory effect of caffeine was not due to inhibition of phosphodiesterase enzymes and elevation of cyclic AMP levels, because application of 3-isobutyl-1-methylxanthine, forskolin or 8-bromo cyclic AMP had no inhibitory effect on the intracellular Ca2+ rise induced by inositol 1,4,5-trisphosphate (InsP3)-dependent agonists. We demonstrate that the inhibitory effect of caffeine may result from at least three actions of caffeine: (1) inhibition of receptor-stimulated InsP3 formation; (2) inhibition of agonist-stimulated Ca2+ influx; and (3) direct inhibition of the InsP3-sensitive Ca(2+)-release channel.

1-Methyl-3-isobutylxanthine↗

Rapid filtration studies of the effect of cytosolic Ca2+ on inositol 1,4,5-trisphosphate-induced 45Ca2+ release from cerebellar microsomes.

Using microsomal membrane vesicles derived from sheep cerebellum, we measured the rate of inositol 1,4,5-trisphosphate (InsP3)-dependent 45Ca2+ efflux from 45Ca(2+)-loaded compartments during rapid perfusion with a medium containing InsP3 and various concentrations of free 40Ca2+ on the cytosolic side (pH 7.1, 5 mM Mg2+, in the absence of ATP at 20 degrees C). At 0.15 microM InsP3 and pCa 6.5, half-45Ca2+ release was attained within less than 200 ms. At low Ca2+ concentrations, the initial rate of 45Ca2+ release depended smoothly on InsP3 concentration, and InsP3 activated release with moderate positive cooperativity. Preliminary experiments performed at various free 40Ca2+ concentrations were consistent with a bell-shaped 40Ca2+ dependence of 45Ca2+ release. In the range of micromolar or higher free 40Ca2+ concentrations, the apparent inhibition of 45Ca2+ release was dependent on InsP3 concentration, and 45Ca2+ release for intermediate InsP3 concentrations was transient; under selected conditions, a second perfusion period, identical to the first one but separated from it by a short recovery period, was found to allow renewed 45Ca2+ efflux. At high Ca2+ concentration, fast reversible Ca(2+)-dependent desensitization of the channel, and not heterogeneity, was therefore responsible for the termination of InsP3-triggered 45Ca2+ efflux at submaximal concentrations of InsP3. At lower Ca2+ concentrations, a large fraction of the apparent activating effect of submicromolar 40Ca2+ concentrations on 45Ca2+ efflux that we had observed in the preliminary experiments proved to be the artifactual consequence of an inhibitory effect exerted by metal-free Ca2+ chelators on InsP3-dependent efflux at nanomolar 40Ca2+ concentrations. 1,2-Bis(2-aminophenoxy)ethane-N,N,N'-N'-tetraacetic acid, EGTA, and fluo-3 were all effective inhibitors. When this inhibition was taken into account, a rise in free 40Ca2+ concentration from 30 to 300 nM only weakly enhanced 45Ca2+ fluxes in the presence of a low concentration of InsP3. As a result, submicromolar free 40Ca2+ appears to be only a poor activator of InsP3-induced Ca2+ release under these experimental conditions.

Adenosine Triphosphate↗

Role of calcium in carbachol- and neurotensin-induced mucin exocytosis in a human colonic goblet cell line and cross-talk with the cyclic AMP pathway.

The mechanisms of Ca(2+)-induced mucin secretion were examined in monolayers of the differentiated epithelial colon cell line C1.16E by combined measurements of free intracellular Ca2+ ([Ca2+]i) using a fluorescence indicator and mucous secretion using a specific and sensitive electrophoretic assay. Carbachol, a cholinergic agonist, induced an initial concentration-dependent [Ca2+]i peak increasing from 129 +/- 3 nM (basal [Ca2+]i) to 608 +/- 101 nM at 1 x 10(-4) M carbachol with an ED50 of 7 microM, and this was followed by a lower-level plateau. These biphasic effects were reversed by the muscarinic-receptor antagonist atropine. In the absence of extracellular Ca2+, the initial [Ca2+]i peak was maintained while the sustained plateau was abolished. The regulatory peptide neurotensin caused a monophasic transient rise in [Ca2+]i followed by a very rapid return to baseline. The neurotensin-induced rise in [Ca2+]i was concentration-dependent with an ED50 of 4 nM, and was maximal at 1 x 10(-6) M (598 +/- 127 nM). The [Ca2+]i response to neurotensin was not significantly affected by extracellular Ca2+ depletion. Carbachol-induced mucin exocytosis was concentration-dependent with an ED50 of 15 microM, and was inhibited by 35% upon removal of extracellular Ca2+. Neurotensin caused a concentration-dependent rise in mucous secretion with an ED50 of 36 nM, not significantly affected upon removal of extracellular Ca2+. Together our results suggest that while the mucin secretory response to carbachol depends on both the release of Ca2+ from intracellular stores and a Ca2+ influx from external medium, the secretory response to neurotensin is based solely on intracellular Ca2+ mobilization. Finally, evaluation of the cross-talk between the cyclic AMP pathway stimulated by vasoactive intestinal peptide (VIP) and the Ca2+ pathway stimulated by neurotensin or carbachol led to the conclusion that the potentiated secretory response elicited by the combined action of carbachol and VIP requires extracellular Ca2+.

Atropine↗

In vitro inhibition, by loratadine and descarboxyethoxyloratadine, of histamine release from human basophils, and of histamine release and intracellular calcium fluxes in rat basophilic leukemia cells (RBL-2H3).

The effect of the H1-antihistamine drug loratadine and its active metabolite descarboxyethoxyloratadine upon histamine release was examined on anti-immunoglobulin E (IgE) triggered human basophils and 2,4-dinitrophenyl (DNP) triggered rat basophilic leukemia (RBL-2H3) cells. In both experimental systems, dose-dependent inhibition of histamine release was observed at descarboxyethoxyloratadine and loratadine doses above 2 and 7 microM, respectively. In the RBL-2H3 experimental system, inhibition by loratadine increased when the concentration of extracellular Ca2+ was reduced from 1.8 to 0.45 mM. We further investigated the effect of loratadine and descarboxyethoxyloratadine on the increase in cytosolic calcium concentration (Ca2+)i, an early step in biochemical events leading to exocytosis. The effect of these two drugs upon (Ca2+)i changes was measured using the fluorescent probe fura-2 loaded into RBL-2H3 cells passively sensitized with DNP-specific IgE. Both drugs inhibited, in a dose-dependent manner (2.5-25 microM), the (Ca2+)i rise induced by DNP-BSA challenge in sensitized RBL cells, a process observed in both the presence and absence of extracellular Ca2+. Loratadine also inhibited the Mn2+ influx into these cells, thus reflecting the Ca2+ influx. These results suggest that loratadine and descarboxyethoxyloratadine impair the increase in (Ca2+)i following cell activation by decreasing both the influx of extracellular Ca2+ and the release of Ca2+ from intracellular stores.

Animals↗

[Effects of cholestatic bile acids on cytosolic calcium in isolated intrahepatic biliary cells].

In this study we measured biliary cytosolic calcium and examined the effect of cholestatic bile acids LCS and TLCS on intrahepatic isolated biliary cells cytosolic calcium. Cells have been isolated from bile duct ligated rats. Cytosolic calcium has been measured by using the Ca++ sensitive indicator Fura 2 and a cytofluorimetric method. LCS and TLCS (200 microM and 300 microM) increased the cytosolic Ca++ concentration of the cells. In contrast, the bile acids cholate and urso-desoxycholate which are choleretic had no effect. The number of cells which have increased their cytosolic calcium was directly correlated with the biliary acid toxicity. The increase induced by LCS and TLCS was abolished by removing external calcium. It is suggested that the calcium increase results from external calcium influx. This cytosolic calcium increase is known to be toxic for cells so it is concluded that this calcium increase is probably involved in the toxicity of LCS and TLCS.

Animals↗

Calcium control on InsP3-induced discharge of calcium from permeabilised hepatocyte pools.

The control exerted by intralumenal and cytosolic Ca2+ on InsP3-induced release of Ca2+ from intracellular Ca2+ pools in suspensions of saponin-permeabilised rat hepatocytes was investigated by combined Quin-2 and 45Ca2+ measurements at 20 degrees C. We failed to detect a major effect of intralumenal Ca2+ in regulating this release, as various manipulations in which the load of the Ca2+ pools was varied by a factor of two did not significantly affect the apparent relative efficiency of InsP3 in releasing Ca2+; these manipulations included loading the Ca2+ pools up to various steady state levels by preliminary equilibration at various external free Ca2+ concentrations, as well as emptying them progressively through the blockade of pump-mediated Ca2+ uptake. As regards Ca2+ on the cytosolic side, in contrast with recent results obtained with other systems, we found that, at maximal doses, InsP3-induced Ca2+ release was not stimulated by raising Ca2+ from very low to submicromolar or micromolar concentrations, and that only relatively high concentrations of free Ca2+ inhibited this release (half-maximal inhibition was between 3 and 15 microM). Such elevated Ca2+ concentrations reduced the size of the InsP3-sensitive Ca2+ pool. We also noted that the apparent cooperativity of InsP3 activation of release at pCa 5 was noticeably less than that observed at pCa 7. As a result, at low InsP3 concentrations, a rise in cytosolic Ca2+ from pCa 7 to pCa 5 stimulated InsP3-mediated Ca2+ release. These results are discussed in the context of the current speculations about tissue specificity, heterogeneity, quantal release, oscillations, and the several different mechanisms that may control InsP3-induced Ca2+ release.

Animals↗

Taurolithocholate-induced Ca2+ release is inhibited by phorbol esters in isolated hepatocytes.

The monohydroxy bile acid taurolithocholate (TLC) causes a rapid and transient increase in free cytosolic Ca2+ concentration ([Ca2+]i) in suspensions of rat hepatocytes similar to that elicited by the InsP3-dependent hormone vasopressin. The effect of the bile acid is due to a mobilization of Ca2+, independent of InsP3, from the endoplasmic reticulum (ER). Short-term preincubation of cells with the phorbol ester 4 beta-phorbol 12 beta-myristate 13 alpha-acetate (PMA), which activates protein kinase C (PKC), blocked the increase in [Ca2+]i induced by TLC, but did not alter that mediated by vasopressin. We obtained the following results, indicating that the effect of PMA is mediated by the activation of PKC. (1) Phorbol esters were effective over a concentration range where they activate PKC (IC50 = 0.5 nM); (2) phorbol esters that do not activate PKC did not inhibit the effects of TLC; (3) the permeant analogue oleoylacetylglycerol mimicked the inhibitory effect of PMA; (4) lastly, the inhibition of the TLC-induced Ca2+ mobilization by phorbol esters was partially prevented by preincubating the cells with the PKC inhibitors H7 and AMG-C16. Preincubating hepatocytes with PMA had no effect on the cell uptake of labelled TLC, indicating that the phorbol ester does not interfere with the transport system responsible for the accumulation of bile acids. In saponin-treated liver cells, PMA added before or after permeabilization failed to abolish TLC-induced Ca2+ release from the ER. The possibility is discussed that PMA, via PKC activation, may alter the intracellular binding or the transfer of bile acids in the liver.

Animals↗

Do submaximal InsP3 concentrations only induce the partial discharge of permeabilized hepatocyte calcium pools because of the concomitant reduction of intraluminal Ca2+ concentration?

In several types of cells whose cytoplasmic Ca2+ is regulated by inositol phosphate derivatives, low concentrations of InsP3 added to permeabilized cell suspensions induce the rapid discharge of part of the InsPs-sensitive Ca2+ pool instead of slow monophasic release of Ca2+ from the entire pool. As a tentative explanation for this puzzling observation, sometimes called 'quantal release', it was suggested that the reduced intraluminal Ca2+ concentration remaining in the Ca2+ pool after a certain amount of Ca2+ had been released might allosterically reduce the channels' affinity for InsP3 and the corresponding InsP3-dependent Ca2+ efflux, and thus result in partial pool discharge (Irvine, R.F. (1990) FEBS Lett. 263, 5-9). We have tested this hypothesis by manipulating the Ca2+ pool contents with ionophore, and found that the rate of InsP3-dependent Ca2+ efflux after ionophore-induced partial discharge of the Ca2+ pools was much faster than what was predicted on the basis of this hypothesis. Heterogeneity of the Ca2+ pools appears to be a more likely reason for the 'quantal release' behavior.

Animals↗

Cyclic AMP-evoked oscillations of intracellular [Ca2+] in guinea-pig hepatocytes.

The effects of the beta-adrenoceptor agonist isoprenaline and cyclic AMP (cAMP) on cytosolic free Ca2+ ([Ca2+]i) were studied in the single guinea-pig hepatocyte. In common with InsP3-dependent agonists such as noradrenaline or angiotensin II, isoprenaline (0.5-10 microM) and cAMP (50-100 mM, perfused into the cell via the patch-pipette), were able to generate fast and slow fluctuations of [Ca2+]i. Responses to isoprenaline and cAMP also were observed in the absence of external Ca2+. Isoprenaline-evoked [Ca2+]i rises were not blocked by the intracellular perfusion of heparin, suggesting that these fluctuations are independent of the binding of InsP3 to its receptor.

Angiotensin II↗