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A Corcia

Publications and source records attributed to A Corcia.

18 recordsLinked to original sources

Coculturing posterior pituitary and GH3 cells: dramatic stimulation of prolactin gene expression.

UNLABELLED: Recent evidence suggests that the posterior pituitary (PP), also called the neurointermediate lobe, regulates PRL release. We previously reported that cocultures of anterior pituitary and PP cells resulted in a 2- to 3-fold increase in PRL content and release. For this study we chose GH3 cells (a somatomammotroph tumor cell line) to determine whether coculturing GH3 with PP cells: 1) stimulates the release and cell content of PRL as compared with GH; 2) increases GH3 cell proliferation; and 3) affects PRL messenger RNA (mRNA) levels. Exp 1. GH3 cells (25,000 cells per well; 25K) were cocultured with PP cells (0K, 12.5K, or 25K) from male rats in serum-free media for 1, 2, 4, and 7 days; hormones were measured by RIA. Coculturing resulted in 5- to 10-fold increases in both media and cell PRL that were linear with time and dependent on the number of PP cells. In contrast, media GH increased only 1.5- to 2-fold, and GH cell content reduced by 75%. Exp 2. GH3, PP, and GH3 + PP cells were cultured for 1, 2, and 4 days and then incubated with [3H]thymidine for 5 h. The incorporation of [3H]thymidine in GH3 cells remained constant over time and showed a small, early increase in cocultures. In contrast, incubation of PP cells alone resulted in a 50- to 60-fold rise in [3H]thymidine incorporation from days 1-4 in culture. Exp 3. Cytoplasmic mRNA was determined by slot blot hybridization with 32P-labeled complementary DNA probes for PRL and GH. After coculturing 25K GH3 cells with 12.5K and 25K PP cells for 4 days, PRL mRNA levels increased 15- and 30-fold, respectively, whereas GH mRNA levels rose less than 2-fold. Neither PRL nor GH mRNA were detected in PP cells. CONCLUSIONS: 1) coculturing GH3 with PP cells dramatically stimulates PRL gene expression, synthesis, and release; 2) this response is specific for PRL, has little effect on GH, and is not due to increased GH3 cell proliferation; and 3) we speculate that a subpopulation of intermediate lobe cells, possibly with a proliferative capacity, is responsible for inducing these effects.

Animals↗

A possible relationship between KCl symport and basolateral K(+)-conductance in Necturus gallbladder epithelial cells.

1. Apical membrane potential (Va), transepithelial potential (VT), fractional apical voltage ratio (FVa = delta Va/delta VT), tissue resistance (RT), and intracellular Cl- (aiCl) and K+ (aiK) activities were measured in isolated gallbladders maintained between oxygenated bicarbonate-free physiological media (23 degrees C, pH 7.2 or 8.2) in a divided chamber. The basolateral membrane potential (Vb) was calculated from the measured values of Va and VT. 2. Cl- removal from the serosal medium (which should accelerate coupled basolateral KCl exit) significantly depolarized Vb, decreased aiCl, decreased FVa, increased RT, and attenuated the depolarization of Vb (delta Vb) induced by high K+ added to the serosal side. These changes are consistent with a decrease in the K(+)-conductance of the basolateral membrane (gbK). 3. Addition of furosemide (an inhibitor of KCl cotransport) to the serosal medium induced significant increases in Vb, FVa, and high K(+)-induced delta Vb, indicating an increase in gbK. 4. In the presence of serosal furosemide, Cl- removal from the serosal medium did not significantly alter Vb, aiCl or delta Vb from their corresponding values when serosal Cl- was present. 5. Serosal furosemide had no significant effect on aiK and aiCl measured with double-barreled ion-selective microelectrodes. 6. These results suggest the possibility of a reciprocal relationship between gbK and the rate of basolateral KCl cotransport. This may contribute to the maintenance of aiK in gallbladder epithelial cells.

Animals↗

Calcium specificity of the antigen-induced channels in rat basophilic leukemia cells.

Ion channels, activated upon IgE-Fc epsilon receptor aggregation by specific antigen, were studied in micropipet-supported lipid bilayers. These bilayers were reconstituted with purified IgE-Fc epsilon receptor complex and the intact 110-kDa channel-forming protein, both isolated from plasma membranes of rat basophilic leukemia cells (line RBL-2H3). In order to identify the current carrier through these ion channels and to determine their ion selectivity, we investigated the currents flowing through the IgE-Fc epsilon receptor gated channels in the presence of a gradient of Ca2+ ions. Thus, the solution in which the micropipet-supported bilayer was immersed contained 1.8 mM CaCl2, while the interior of the micropipet contained 0.1 microM Ca2+ (buffered with EGTA). Both solutions also contained 150 mM of a monovalent cation chloride salt (either K+ or Na+). The currents induced upon specific aggregation of the IgE (by either antigen or anti-IgE antibodies) were examined over a range of potentials imposed on the bilayer. The type of conductance event most frequently observed under the employed experimental conditions was a channel that has a slope conductance of 3 pS and a reversal potential practically identical with the calculated value for the reversal potential of calcium (134 +/- 11 mV in the presence of sodium, 125 +/- 13 mV in the presence of potassium). These results indicate that this channel is highly selective for calcium against the monovalent cations sodium and potassium. This same channel has a conductance of 4-5 pS in the presence of symmetrical solutions containing only 100 mM CaCl2 and 8 pS in the presence of 0.5 M NaCl with no calcium.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Rheogenic transport of basic and acidic amino acids across the brush border of Necturus small intestine.

In studies with isolated Necturus intestine, glutamate (Glu-) and Na+ each enhanced the mucosal influx of the other. Measurement of apical membrane potential, Va, with microelectrodes revealed a rapid depolarization with addition of 10 mM mucosal Glu-. This depolarization was Na+ dependent. Upon complete removal of Cl- from the bathing medium Va hyperpolarized and the Glu- -induced depolarization increased significantly. However, removal of Cl- did not alter the total Glu- influx. These data suggest that external Cl- attenuates the rheogenicity of Na+/Glu- cotransport in the apical membrane of the absorptive cells. We have presented a model consistent with these observations in which Cl- competes with one -COO- group of Glu- for its binding site on the carrier. The two complexes which may form, carrier/Glu-/2Na+ or carrier/Glu-/2Na+/Cl-, allow for either electrogenic or electroneutral transport of Glu-, depending on the ratio [Glu-]/[Cl-] in the extracellular fluid. In other experiments, addition of mucosal L-lysine (Lys+) induced a rapid depolarization of Va. In the presence of Na+, the depolarization appeared to be saturable with respect to Lys+ concentration. In Na+-free media, however, the depolarization increased with Lys+ concentration up to a maximum at 10 mM and then decreased to near zero at 30 mM. These data are consistent with a model for Lys+ entry in which an anionic site of the carrier can bind either Na+ or the epsilon-NH3+ group of Lys+. In this model transport of either complex, carrier-/Lys+ or carrier-/Lys+/Na+ (and return of the carrier to the extracellular surface) is rheogenic. However, at higher Lys+ concentrations, the epsilon-NH3+ group of a second Lys+ molecule may bind to the carrier forming a complex, carrier-/2Lys+, which is not transported.

Amino Acids↗

Stimulus-secretion coupling mechanisms in mast cells.

We have investigated several aspects of the complex sequence of events, transmitting the antigen-induced signal of cross-linking immunoglobulin E (IgE) resident in the membrane surface of mast cells into the signals yielding the final process of mediator release. Already the initial phase of this cascade still requires a better understanding. Namely, we are still missing a clear physical description of the effective stimulus-producing antigen-IgE complex in terms of size and spatial requirements. We are investigating this problem on a well-defined cell line (rat basophilic leukemia-RBL-2H3) using synthetic divalent haptens and a monoclonal IgE. A subsequent phase following IgE aggregation is a transient increase in the free calcium concentration in these cells' cytosol. The source of the Ca2+ and the way by which it enters the cytosol are studied predominantly by examining antigen-induced channel activity in the cells' membrane allowing Ca2+ influx from the exterior medium. Finally, we have observed that under certain experimental conditions, antigen-induced degranulation can be achieved even without a rise in cytosolic free calcium. In our search for alternative second messengers, we examine the potential candidacy of the cytosolic Na+/H+ balance. So far, we have found that antigen-stimulated secretion does require extracellular sodium and involves changes in its cytosolic pH. However, further studies are required to clarify its possible role as a coupling element.

Animals↗

Ion channels activated by specific Ti or T3 antibodies in plasma membranes of human T cells.

T lymphocytes are activated to proliferate via a surface membrane receptor recognizing the antigen/major histocompatibility complex. This membrane component is comprised of at least five polypeptide subunits, collectively termed the Ti-T3 receptor complex. A transient increase in cytosolic free calcium occurs as an early event in the T-cell activation process and is necessary for induction of the endogenous IL-2 and certain other genes. Monoclonal antibodies specific to epitopes of either the Ti or the T3 components were shown to be effective agonists, also leading to such transient rises in cytosolic free calcium and activating the lymphocytes. Here we show, using micropipette-supported bilayers formed from membranes of the human T-cell line REX, that Ti- or T3-specific antibodies cause opening of ligand gated ion channels. Both types of specific antibodies yielded similar histograms of conductance amplitudes which show a channel with a conductance of 2-3 pS in symmetrical 100 mM CaCl2 solutions. These channels allow the passage of calcium and barium ions and are blocked by lanthanum ions, suggesting that they are specific for calcium. We propose that these channels, by allowing the entry of external calcium, may account for a large fraction of the rise in intracellular calcium observed upon triggering of the Ti-T3 receptor.

Antibodies, Monoclonal↗

[The relationship between Ca++ ions and a protein specific to cromolyn in the degranulation of mast cells and basophils in the rat].

Previous research has shown that cromolyn (disodium cromoglycate) binds specifically to the membrane of rat mast and basophil leukemia (RBL) cells, forming a ternary complex with Ca++, blocking of the Ca++ results in inhibition of histamine release upon immunologic triggering. The specific cromolyn binding protein (CBP) has been isolated by using its high affinity form cromolyn. Specific monoclonal anti CBP antibodies have been obtained in mice and polyclonal anti-cromolyn antibodies in rabbits. These antibodies have been used for further purification and characterization of the CBP. Experiments on RBL cell lines have shown that CBP is essential for Ca++ influx and histamine liberation upon immunologic triggering by these cells. Variant CBP deficient RBL do not take up Ca++ and do not degranulate in response to immunologic triggering but their ability to respond normally can be induced by incorporating CBP into their membranes with help of Sendai virus carrier vesicles. This shows that CBP plays a crucial role for the RBL cells Ca++ influx and histamine release following IgE crosslinking.

Animals↗

Characterization of the ion channel activity in planar bilayers containing IgE-Fc epsilon receptor and the cromolyn-binding protein.

Electric conductance was studied across micropipette-supported planar lipid bilayers, reconstituted with IgE-Fc epsilon receptor and the cromolyn-binding protein (CBP) isolated from membranes of rat basophilic leukemia cells (RBL-2H3). Currents were observed following the addition of aggregating agents, specific for either of the two proteins. The results show that the two proteins are necessary and sufficient for the opening of cation channels. Both aggregation of Fc epsilon receptor via IgE with a specific antigen and of CBP by anti-CBP induce channels with similar conductances and open-time distributions. In the presence of 1.8 mM calcium, the most frequently observed channels have a conductance of 1-2 pS. At 100 mM calcium conductance increased to 4-5 pS. Channels induced by antigen were susceptible to blocking by the anti-allergic drug cromolyn. These results suggest that CBP acts as the core of the cation channel and that the channel conductance and open-time characteristics are independent of the mode of aggregation.

Animals↗

Cyclic AMP-induced changes in membrane conductance of Necturus gallbladder epithelial cells.

Enhanced cellular cAMP levels have been shown to increase apical membrane Cl- and HCO3- conductances in epithelia. We found that the phosphodiesterase inhibitor 3-isobutyl-1-methyl-xanthine (IBMX) increases cAMP levels in Necturus gallbladder. We used conventional open-tip and double-barreled Cl- -selective microelectrodes to study the effects of IBMX on membrane conductances and intracellular Cl- activities in gallbladders mounted in a divided chamber and bathed with Ringer's solutions at 23 degrees C and pH 7.4. In HCO3- -free media, 0.1 mM IBMX added to the mucosal medium depolarized the apical membrane potential Va, decreased the fractional resistance FR, and significantly reduced intracellular Cl- activity (aCli). Under control conditions, aCli was above the value corresponding to passive distribution across the apical cell membrane. In media containing 25 mM HCO3-, IBMX caused a small transient hyperpolarization of Va followed by a depolarization not significantly different from that observed in HCO3- -free Ringer's. Removal of mucosal Cl-, Na+ or Ca2+ did not affect the IBMX-induced depolarization in Va. The basolateral membrane of Necturus gallbladder is highly K+ permeable. Increasing serosal K+ from 2.5 to 80 mM, depolarized Va. Mucosal IBMX significantly reduced this depolarization. Addition of 10 mM Ba2+, a K+ channel blocker, to the serosal medium depolarized Va and, essentially, blocked the depolarization induced by IBMX. These results indicate that mucosal IBMX increases apical HCO3- conductance and decreases basolateral K+ conductance in gallbladder epithelial cells via a cAMP-dependent mechanism. The latter effect, not previously reported in epithelial tissues, appears to be the major determinant of the IBMX-induced depolarization of Va.

1-Methyl-3-isobutylxanthine↗

Intracellular chloride activity and apical membrane chloride conductance in Necturus gallbladder.

Open-tip and Cl--selective microelectrodes were used to study the effect of external pH on apical membrane potential (Va) and intracellular chloride activity (aiCl) in epithelial cells of Necturus gallbladder. Increasing the pH from 7.2 to 8.2 in the mucosal, the serosal, or in both bathing solutions simultaneously, hyperpolarized Va (control value -60 +/- 5 mV) by about -6, -10 and -17 mV, respectively, but did not significantly change the transepithelial potential (VT = 0.3 +/- 0.5 mV). Identical hyperpolarizations were recorded with Cl--selective microelectrodes, even 40 min after changing external pH. Thus, aiCl (12 +/- 2 mM) remained essentially constant. The ratio fVa between the deflections in Va and VT produced by transepithelial current pulses, which is an approximate measure of the fractional resistance of the apical membrane, decreased when mucosal pH was increased, and increased when serosal pH was raised. The changes in Va and fVa are due, in part at least, to the known pH dependence of cell membrane K+ conductance (PK) in this tissue. The constancy of aiCl, despite significant increases in Va, indicates that cell membrane Cl- conductance (PCl) is virtually zero or decreases, with increased external pH, in a way that compensates for the increased driving force for Cl- exit. Experiments in which 90 mM gluconate or 90 mM methylsulfate were substituted for an equivalent amount of luminal Cl- did not provide any evidence for a significant contribution of Cl- ions, per se, to the emf or conductance of the apical membrane. They suggested, rather, a dependence of apical membrane cation permeability on luminal Cl- concentration. Since basolateral membrane PCl is known to be very low, the insensitivity of aiCl to Va is the consequence of a negligible electrodiffusive Cl- permeability at both cell membranes. Thus, overall, transcellular Cl- transport in Necturus gallbladder is, in large measure, effected by electroneutral processes.

Animals↗

KCl cotransport: a mechanism for basolateral chloride exit in Necturus gallbladder.

K+ and Cl--selective double-barreled microelectrodes were used to study the effect of changes in external K+ concentration on intracellular Cl- activity (aiCl) in epithelial cells of Necturus gallbladder. Decreasing the K+ concentration simultaneously in both bathing solutions produced a decrease in aiCl. Steady-state values of aiCl were related to the values of the chemical potential gradient for K+ (delta microK) across either the apical or the basolateral cell membrane. A similar dependence between aiCl and delta microK appeared when the K+ concentration was changed in the serosal solution only. This indicates that aiCl depends on delta microK across the basolateral membrane. aiCl was virtually independent of the membrane potential. This supports the idea that both the mucosal and the basolateral membranes of Necturus gallbladder cells have very low passive permeabilities to Cl-. These results indicate that the exit of Cl- from Necturus gallbladder cells is driven by delta microK across the basolateral membrane, and suggest that KCl electroneutral coupled mechanism in this membrane plays an important role in transcellular Cl- transport.

Animals↗

Effect of furosemide on the electrical parameters of frog skin.

When added to the mucosal solution bathing isolated frog skin at concentrations ranging from 5 X 10(-4) to 3 X 10(-3) M, the diuretic furosemide increased both the active transport of sodium and the electrical potential difference across the tissue in a dose-dependent way. The same effect was observed in chloride-free solutions. Mucosal furosemide also decreased the passive unidirectional fluxes of chloride. We believe that as far as electrical parameters are concerned mucosal furosemide has a double effect in frog skin: it increases the active conductance to sodium across the mucosal membrane, thus increasing active transport, and decreases the passive permeability to chloride, thus altering the passive conductance of the skin. The relative increase in short-circuit current was, however, invariably greater than the increase of the active conductance, suggesting the influence of yet a third effect. The effect of mucosal furosemide on active sodium transport was blocked by amiloride (5 X 1-(-5) M) and was independent of vasopressin. Qualitatively the effect was similar to the effect produced by triphenylmethylphosphonium ion.

Amiloride↗

Effect of furosemide on the thermodynamic parameters of frog skin.

The formalism of nonequilibrium thermodynamics (NET) was used to analyze the effect of diuretic furosemide on the transport mechanism of frog skin. Mucosal furosemide increased the active conductance of Na+ across the mucosal membrane of the cells, producing an increased transport of Na+ (short-circuit current). Furosemide also increased both the thermodynamic affinity of the metabolic reaction supplying energy to the sodium pump and the degree of coupling between transport and metabolism. It changed the phenomenological cross-coefficient of the NET description as well as the stoichiometric ratio, indicating that its effect cannot be explained simply on the basis of a change in Na+ conductance. The effect on the NET parameters was independent of the presence of either chloride or sulfate as the principal anion in the solutions, and was qualitatively similar to the effect produced by mucosal application of triphenylmethylphosphonium ion.

Animals↗

Effect of ouabain on electrical conductance of frog skins. Evidence against recycling of sodium.

Ouabain (10(-4) M) added to the serosal solution of isolated frog skin not only stops the active transport of Na+ but causes a dramatic increase in the electric conductance of the skin. The effect also appears when ouabain is added to amiloride-pretreated skins, ruling out the possibility of a cellular effect. The similarity between the effect of ouabain on normal and amiloride-pretreated skins indicates that no appreciable recycling of Na+ across the basolateral membrane of frog skin takes place. The change of Na+ efflux after ouabain is added to amiloride-pretreated skins parallels the change of electric conductance, indicating that besides blocking the Na+ pump, ouabain affects the paracellular shunt pathway between the cells.

Amiloride↗

Suppression of gastric acid secretion by furosemide in isolated gastric mucosa of guinea pig.

The effect of furosemide on acid secretion and Cl- transport was studied in isolated fundic mucosa of the guinea pig. Furosemide (10(-3) M), applied to the serosal side produced an immediate effect on the short-circuit current (Isc), lowering it by 47 +/- 2%. Potential difference decreased by 29 +/- 3%, electrical conductance by 18 +/- 4%, acid secretion by 38 +/- 1%, and net flux of Cl- from serosal-to-mucosal side by 37%. Application of the drug to the mucosal side produced similar effects on acid secretion and on the electrical parameters. It is suggested that furosemide blocks the entrance of Cl-, by the Na+--Cl- cotransport mechanism, through the basolateral membrane of the secreting cell. The consequent reduction in electrogenic Cl- transport would cause Isc and acid secretion to decrease. A reduction of Cl- conductance of the apical membrane, upon mucosal application of the drug, would cause similar effects on acid secretion and Cl- transport.

Animals↗

Furosemide reduces gastric acid secretion.

Furosemide (10(-3) M) reduced acid secretion of isolated fundic mucosa of the guinea pig by 40%, and lowered the short circuit current, carried mainly by Cl- ions, by 49 +/- 2 (SE) %. These effects occurred within seconds of application of the drug to the serosal side of the mucosa and were fully reversible. When the drug was applied to the mucosal side, the same effects were obtained.

Animals↗