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A F James

Publications and source records attributed to A F James.

At least 19 recordsLinked to original sources

VEGF activates receptor-operated cation channels in human microvascular endothelial cells.

OBJECTIVE: Vascular endothelial growth factor (VEGF) exerts many of its effects by stimulating endothelial calcium influx, but little is known about channels mediating VEGF-induced cation entry. The aim of this study was to measure and characterize for the first time the VEGF-activated cation current in human microvascular endothelial cells (HMVECs). METHODS AND RESULTS: Whole-cell patch-clamp recordings were made from HMVECs. During applied voltage ramps, VEGF activated a current that reversed at 0 mV, was sensitive to gadolinium, and required extracellular cations. Noise analysis yielded a single-channel conductance of 27 pS. The current was not dependent on intracellular calcium stores, and was not blocked by inositol triphosphate (IP3) receptor or serine/threonine kinase inhibition but was partially inhibited by flufenamic acid. A similar current was activated by 1-oleoyl-2-acetyl-sn-glycerol (OAG), a membrane-permeant analog of diacylglycerol (DAG). To determine whether VEGF could activate recombinant ion channels with similar properties, we investigated the effect of VEGF on Chinese hamster ovary cells cotransfected with VEGFR2 and the canonical transient receptor potential (TRPC) channels, TRPC3 or TRPC6. VEGF induced a similar current to that described above in VEGFR2-TRPC3 and VEGFR2-TRPC6 cells but not in cells transfected with either cDNA alone. CONCLUSIONS: VEGF activates a receptor-operated cation current in HMVECs and OAG can activate directly a similar current in these cells. VEGF is also able to activate heterologously expressed TRPC3/6 channels through VEGFR2.

Animals↗

Effects of endothelin-1 on K(+) currents from rat ventricular myocytes.

It has been suggested that the positive inotropic effect of the vasoactive peptide hormone, endothelin-1 (ET-1), involves inhibition of cardiac K(+) currents. In order to identify the K(+) currents modulated by ET-1, the outward K(+) currents of isolated rat ventricular myocytes were investigated using whole-cell patch-clamp recording techniques. Outward currents were elicited by depolarisation to +40 mV for 200 ms from the holding potential of -60 mV. Currents activated rapidly, reaching a peak (I(pk)) of 1310 +/- 115 pA and subsequently inactivating to an outward current level of 1063 +/- 122 pA at the end of the voltage-pulse (I(late)) (n = 11). ET-1 (20 nM) reduced I(pk) by 247.6 +/- 60.7 pA (n = 11, P < 0.01) and reduced I(late) by 323.2 +/- 43.9 pA (P < 0.001). The effects of ET-1 were abolished in the presence of the nonselective ET receptor antagonist, PD 142893 (10 microM, n = 5). Outward currents were considerably reduced and the effects of ET-1 were not observed when K(+) was replaced with Cs(+) in the experimental solutions; this indicates that ET-1 modulated K(+)-selective currents. A double-pulse protocol was used to investigate the inactivation of the currents. The voltage-dependent inactivation of the currents from potentials positive to -80 mV was fitted by a Boltzmann equation revealing the existence of an inactivating transient outward component (I(to)) and a noninactivating steady-state component (I(ss)). ET-1 markedly inhibited I(ss) by 43.0 +/- 3.8% (P < 0.001, n = 7) and shifted the voltage-dependent inactivation of I(to) by +3.3 +/- 1.2 mV (P < 0.05). Although ET-1 had little effect on the onset of inactivation of the currents elicited from a conditioning potential of -70 mV, the time-independent noninactivating component of the currents was markedly inhibited. In conclusion, the predominant effect of ET-1 was to inhibit a noninactivating steady-state background K(+) current (I(ss)). These results are consistent with the hypothesis that I(ss) inhibition contributes to the inotropic effects of ET-1.

Animals↗

Heterogeneous calcium responses to extracellular ATP in cultured rat renal tubule cells.

There is increasing evidence that extracellular ATP acting on purinoceptors may play an important signalling role in renal epithelial cells, often through alterations in cellular Ca(2+). In this paper effects of extracellular ATP and related purinoceptor agonists and antagonists on [Ca(2+)](i) have been studied in single cells from primary cultures of rat proximal tubule cells. Responses to 1--100 micromol/l ATP were heterogeneous; 55% of cells showed a transient rise in [Ca(2+)](i), 20% of cells showed a transient fall; in 25% there was no response. ATP actions on [Ca(2+)](i) were abolished by pre-treatment with thapsigargin. The P(2) receptor antagonist suramin unexpectedly increased the [Ca(2+)](i) response to ATP; the related antagonist XAMR 0721 did not significantly alter ATP responses. This difference is likely to arise from the inhibition of ATP hydrolysis by suramin. UTP, ADP and the non-hydrolyzable ATP analogue adenosine-5'-O-(3-thio)-triphosphate (ATP gamma S)produced similar increases in [Ca(2+)](i). The magnitude of the [Ca(2+)](i) responses to 100 micromol/l agonist gave an agonist potency order of ATP> or =ADP> or =UTP approximately ATP gamma S. Desensitisation experiments demonstrated the presence of more than one P2Y ATP receptor subtype on a single cell. These results are consistent with the expression of purinoceptors of both P2Y(1) and P2Y(2) subclasses on individual rat proximal tubule cells coupled to inositol trisphosphate-mediated release of intracellular calcium stores.

Adenosine Triphosphate↗

Regulation by endothelin-1 of Na+-Ca2+ exchange current (I(NaCa)) from guinea-pig isolated ventricular myocytes.

The cardiac Na+-Ca2+ exchanger participates in Ca homeostasis, and Na+-Ca2+ exchanger-mediated ionic current (I(NaCa)) also contributes to the regulation of cardiac action potential duration. Moreover, I(NaCa) can contribute to arrhythmogenesis under conditions of cellular Ca overload. Although it has been shown that the peptide hormone endothelin-1 (ET-1) can phosphorylate the cardiac Na+-Ca2+ exchanger via protein kinase C (PKC), little is known about the effect of ET-1 on I(NaCa). In order to examine the effects of ET-1 on I(NaCa), whole-cell patch clamp measurements were made at 378C from guinea-pig isolated ventricular myocytes. With major interfering currents inhibited, I(NaCa) was measured as the current sensitive to nickel (Ni; 10mM) during a descending voltage ramp. ET-1 (10 nM) significantly increased I(NaCa) ( approximately 2-fold at -100 mV). Application of a PKC activator (PMA; 1mM: phorbol 12-myristate 13-acetate), mimicked the effect of ET-1. In contrast, the PKC inhibitor chelerythrine (CLT, 1mM) abolished the stimulatory effect of ET-1. An inactive phorbol ester, 4-alpha-phorbol-12,13-didecanoate (4a-PDD, 1mM) had no effect on I(NaCa). Collectively, these data indicate that ET-1 activated I(NaCa) through a PKC-dependent pathway. In additional experiments, isoprenaline (ISO; which has also been reported to activate I(NaCa) ) was applied. The increase in I(NaCa) density with ISO (1mM) was similar to that induced by ET-1 (10nM). When I(NaCa) was pre-stimulated by ET-1, application of ISO elicited no further increase in current and vice versa. ISO also had no additional effect on I(NaCa) when the cells were pretreated with PMA. Application of CLT did not alter the response of I(NaCa) to ISO. We conclude that ET-1 stimulated ventricular I(NaCa) via a PKC-dependent mechanism under our recording conditions. Concentrations of ET-1 and ISO that stimulated I(NaCa) to similar extents when applied separately were not additive when co-applied. The lack of synergy between the stimulatory effects of ET-1 and ISO may be important in protecting the heart from the potentially deleterious consequences of excessive stimulation of I(NaCa).

Adrenergic beta-Agonists↗

Alterations in outward K(+) currents on removal of external Ca(2+) in human atrial myocytes.

External divalent cations are known to play an important role in the function of voltage-gated ion channels. The purpose of this study was to examine the sensitivity of the voltage-gated K(+) currents of human atrial myocytes to external Ca(2+) ions. Myocytes were isolated by collagenase digestion of atrial appendages taken from patients undergoing coronary artery-bypass surgery. Currents were recorded from single isolated myocytes at 37 degrees C using the whole-cell patch-clamp technique. With 0.5 mM external Ca(2+), voltage pulses positive to -20 mV (holding potential = -60 mV) activated outward currents which very rapidly reached a peak (I(peak)) and subsequently inactivated (tau = 7.5 +/- 0.7 msec at +60 mV) to a sustained level, demonstrating the contribution of both rapidly inactivating transient (I(to1)) and non-inactivating sustained (I(so)) outward currents. The I(to1) component of I(peak), but not I(so), showed voltage-dependent inactivation using 100 msec prepulses (V(1/2) = -35.2 +/- 0.5 mV). The K(+) channel blocker, 4-aminopyridine (4-AP, 2 mM), inhibited I(to1) by approximately 76% and reduced I(so) by approximately 33%. Removal of external Ca(2+) had several effects: (i) I(peak) was reduced in a manner consistent with an approximately 13 mV shift to negative voltages in the voltage-dependent inactivation of I(to1). (ii) I(so) was increased over the entire voltage range and this was associated with an increase in a non-inactivating 4-AP-sensitive current. (iii) In 79% cells (11/14), a slowly inactivating component was revealed such that the time-dependent inactivation was described by a double exponential time course (tau(1) = 7.0 +/- 0.7, tau(2) = 90 +/- 21 msec at +60 mV) with no effect on the fast time constant. Removal of external Ca(2+) was associated with an additional component to the voltage-dependent inactivation of I(peak) and I(so) (V(1/2) = -20.5 +/- 1.5 mV). The slowly inactivating component was seen only in the absence of external Ca(2+) ions and was insensitive to 4-AP (2 mM). Experiments with Cs(+)-rich pipette solutions suggested that the Ca(2+)-sensitive currents were carried predominantly by K(+) ions. External Ca(2+) ions are important to voltage-gated K(+) channel function in human atrial myocytes and removal of external Ca(2+) ions affects I(to1) and 4-AP-sensitive I(so) in distinct ways.

4-Aminopyridine↗

L-type calcium current of isolated rat cardiac myocytes in experimental uraemia.

BACKGROUND: End-stage renal failure is associated with a low-output cardiomyopathy, left ventricular hypertrophy and increased QTc dispersion. Cardiac dysfunction is prevalent in patients at the beginning of dialysis and is an important predictor of mortality. Ca(2+) influx through voltage-gated L-type Ca(2+) channels plays a key role in the excitation-contraction coupling of cardiac myocytes. The purpose of this study was to examine the effect of subtotal nephrectomy (SNx) in the rat on both cardiac L-type Ca(2+) currents and action potential duration. METHODS: Wistar rats underwent two-stage SNx; control rats (C) underwent bilateral renal decapsulation. Animals were sacrificed after 8 weeks, and ventricular myocytes were isolated. SNx rats showed a 2-fold increase in plasma urea and creatinine compared with C rats. Whole-cell patch clamp techniques were used to examine L-type Ca(2+) channel currents in isolated cardiac myocytes at 37 degrees C. In separate experiments, the epicardial monophasic action potentials of isolated perfused whole hearts from C and SNx rats were recorded. RESULTS: The amplitude and current-voltage relationships of the L-type Ca(2+) current were not significantly different in myocytes from C (n=11) and SNx (n=8) rats. However, the rate of inactivation of the Ca(2+) current was increased by approximately 15-25% (P<0. 05) in myocytes from SNx rats. The action potential duration (APD(33)) at the apex of the left ventricle was approximately 20% shorter (P<0.01) in hearts from SNx rats as compared with controls. CONCLUSIONS: Renal failure is associated with rapid inactivation of cardiac ventricular myocyte L-type Ca(2+) currents, which may reduce Ca(2+) influx and contribute to shortening of the action potential duration.

Animals↗

Endothelin-1 inhibits L-type Ca currents enhanced by isoproterenol in guinea-pig ventricular myocytes.

To investigate the action of endothelin-1 (ET-1) on L-type Ca currents (ICa,L) in guinea-pig ventricular cells, whole-cell currents were recorded at approximately 36-37 degrees C in enzymatically isolated myocytes. ET-1 (> or =10 nM) suppressed the basal ICa,L to 79+/-8% of control at 20 nM. Bath application of isoproterenol (ISO; 10 nM) enhanced ICa,L to 192+/-28% with about a -10-mV shift of its relationship with membrane potential. ET-1 concentration dependently inhibited this ISO-enhanced ICa,L with a half-maximally inhibitory concentration (IC50) of 168 pM. The inhibitory actions of ET-1 were antagonised by BQ-123 (300 nM), cyclo(D-Asp-L-Pro-D-Val-L-Leu-D-Trp), a specific ETA receptor antagonist. Histamine-enhanced ICa,L was also suppressed by ET-1, but ICa, L potentiated by internal adenosine 3',5'-cyclic monophosphate (cAMP) was unaffected. Preincubation of myocytes with pertussis toxin (PTX, at 5 microgram/ml for >60 min at 36 degrees C) completely occluded the ET-1 action. Thus, stimulation of ETA receptors by subnanomolar ET-1 inhibits ICa,L via PTX-sensitive G-proteins.

Animals↗

Distribution of cAMP-activated chloride current and CFTR mRNA in the guinea pig heart.

Guinea pig ventricular myocytes exhibit a Cl(-)-selective current regulated by the cAMP-dependent pathway. We have investigated the distribution of cAMP-activated Cl- channel current density and cystic fibrosis transmembrane-conductance regulator (CFTR) mRNA in three regions of the guinea pig heart: the atrium, and the epicardium and endocardium of the free wall of the left ventricle. The regional differences in the Cl- current density were investigated in enzymatically isolated myocytes using the whole-cell patch-clamp technique. Forskolin (1 mumol/L) activated Cl(-)-selective currents in all ventricular myocytes and 21% of atrial myocytes examined. The conductance density, estimated as the outward chord conductance normalized to cell capacitance, was greatest in epicardial myocytes (79.8 +/- 8.4 pS/pF, n = 21) and significantly lower in endocardial (59.8 +/- 9.5 pS/pF, n = 22) and atrial (10.9 +/- 5.0 pS/pF, n = 38) myocytes. The regional differences in CFTR mRNA expression levels were investigated by competitive reverse-transcribed polymerase chain reaction. The regional distribution of the mRNA levels was similar to that of the Cl- conductance density, ie, highest in the epicardium (23230 +/- 1840 molecules/microgram total RNA, n = 3), significantly lower in endocardium (10610 +/- 780 molecules/microgram total RNA, n = 3), and lowest in atrium (1450 +/- 290 molecules/microgram total RNA, n = 3). The data indicate that regional differences in CFTR mRNA expression in the guinea pig heart are responsible, at least in part, for the regional differences in cAMP-activated Cl- current density.

Animals↗

Hormonal regulation of cardiac cystic fibrosis transmembrane conductance regulator chloride channels.

The chloride conductance that arises from the stimulation of beta-adrenoceptors has been shown to be carried by a cardiac isoform of cystic fibrosis transmembrane conductance regulator (CFTR) Cl- channels. This brief review will focus first upon the cellular signal transduction system for the activation of this type of Cl- channels and then its regulation by catecholamines, muscarinic agonists, endothelin-1 and angiotensin-II. Both in physiological and pathological conditions, the complex interaction of these agonists modulates the Cl- conductance, which is potentially arrhythmogenic by shortening the action potential duration and inducing the depolarization.

Action Potentials↗

Actions of endothelin-1 on calcium homeostasis in Madin-Darby canine kidney tubule cells.

BACKGROUND: In both ischaemic and nephrotoxic models, renal failure is associated with increased endothelin-1 (ET-1) and cell calcium overload, and ET receptor antagonists are protective. Vascular and tubular actions of endothelins appear to be involved. This study examines the actions of ET-1 on intracellular Ca ([Ca2+]i) in the tubule model cell line MDCK (Madin-Darby canine kidney). METHODS: Single-cell [Ca2+]i was measured using fura-2 and actions of ET-1 were compared with thapsigargin, which empties IP3-sensitive intracellular Ca stores. RESULTS: Mean resting [Ca2+]i was 84 nM (s.e.m. 6, n = 87). 1 microM thapsigargin and 100 nM ET-1 each caused a transient increase in [Ca2+]i by 696 nM (s.e.m. 160, n = 9) and 727 nM (s.e.m. 121, n = 5) respectively. After 1 microM thapsigargin, 100 nM ET-1 had no effect on [Ca2+]i. Oscillations in [Ca2+]i were frequently observed following 100 nM ET-1. In Ca(2+)-free extracellular solution, mean resting [Ca2+]i was reduced by 37 nM (s.e.m. 5, n = 11) and the mean transient increase in [Ca2+]i in response to ET-1 was 419 nM (s.e.m. 97, n = 5). Inhibition of the plasma membrane Ca-ATPase with La3+ halved the rate of [Ca2+]i removal from the cytoplasm following ET-1. The PKC inhibitor, chelerythrine (1 microM), reduced the ET-1 induced increase in [Ca2+]i to 349 nM (s.e.m. 97, n = 5) and also reduced the rate of removal of [Ca2+]i. Ligand binding studies demonstrated ETA receptor expression in MDCK cells sensitive to ET-1. CONCLUSIONS: ET-1 releases Ca2+ from IP3-sensitive stores in MDCK cells as well as stimulating extracellular Ca2+ entry leading to oscillations of [Ca2+]i. Ca2+ responses to ET-1 are potentiated by PKC; the plasma membrane Ca-ATPase contributes to removal of Ca2+ from the cytoplasm.

Animals↗

A fast transient outward current in cultured cells from human pulmonary artery smooth muscle.

A voltage-dependent transient outward current (I(to)) was observed in cells cultured from human pulmonary artery smooth muscle when K+, but not Cs+, was the dominant cation in the pipette solution. In 30% of cells investigated using the Cs+ pipette solution, a tetrodotoxin-sensitive inward current (I(in)) dependent on extracellular Na+ was evoked from depolarizations positive to -30 mV.Iin showed voltage-dependent inactivation with a membrane potential at 50% of the evoked current (V50%) of -75.53 +/- 0.81 mV and slope factor potential (Vs) of -10.73 +/- 0.01 mV. In the presence of 1 microM tetrodotoxin, I(to) was rapidly evoked by depolarizations positive to -40 mV and decayed with a single exponential time course (tau = 9.9 +/- 1.1 ms, pulse potential = +50 mV). I(to) also showed voltage-dependent inactivation with a V50% of -70.9 +/- 2.63 mV and Vs of -7.7 +/- 0.03 mV. I(to) was inhibited concentration dependently by the K+ channel blocker, 4-aminopyridine (4-AP), with a concentration of 4-AP at which I(to) was reduced to 50% of control of 36.5 +/- 2.8 microM. These cells possess voltage-dependent currents characteristic of the K(+)-selective fast transient outward and Na(+)-selective inward currents of smooth muscle cells.

4-Aminopyridine↗

Inhibition of the cardiac protein kinase A-dependent chloride conductance by endothelin-1.

Endothelin-1 is a peptide hormone constitutively secreted by vascular and endocardial endothelial cells. Secretion of endothelin-1 is increased under certain pathophysiological conditions, including coronary vasospasm, cardiac ischaemia and myocardial infarction. We have examined the effect of endothelin-1 on the protein kinase A (PKA)-dependent chloride current in voltage-clamped guinea pig ventricular myocytes. This conductance, induced by catecholamines through beta-adrenergic receptors, counteracts the simultaneously increased L-type calcium current by shortening the action potential duration. We report here that endothelin-1, acting through ETA (endothelin-1-selective) receptors, inhibited the current through a pertussis toxin-sensitive mechanism, analogous to muscarinic receptors, by reducing the intracellular cyclic AMP concentration. This effect of endothelin-1 should help protect the ventricle against potentially arrhythmogenic shortening of the action potential during ischaemia when the circulating levels of catecholamines are increased.

Animals↗

Maxi K+ channels from the apical membranes of rabbit oviduct epithelial cells.

Large conductance (approximately 210 pS), K(+)-selective channels were identified in excised, inside-out patches obtained from the apical membranes of both ciliated and nonciliated epithelial cells grown as monolayers from the primary culture of rabbit oviduct. The open probability of channels showing stable gating was increased at positive membrane potentials and was sensitive to the concentration of free calcium ions at the cytosolic surface of the patch ([Ca2+]i). In these respects, the channel resembled "maxi K+ channels" found in a number of other cell types. The distributions of dwelltimes in the open state were most consistently described by two exponential components. Four exponential components were fitted to the distributions of dwelltimes in the closed state. Depolarizations and [Ca2+]i increases had similar effects on the distribution of open dwelltimes, causing increases in the two open time constants (tau o1 and tau o2) and the fraction of events accounted for by the longer component of the distribution. In contrast, calcium ions and voltage had distinct effects on the distribution of closed dwelltimes. While the three shorter closed time constants (tau c1, tau c2 and tau c3) were reduced by depolarizing membrane potentials, increases in [Ca2+]i caused decreases in the longer time constants (tau c3 and tau c4). It is concluded that oviduct large conductance Ca(2+)-activated K+ channels can enter at least two major open states and four closed states.

Animals↗

ETA and ETB receptors on single smooth muscle cells cooperate in mediating guinea pig tracheal contraction.

We investigated the distribution of endothelin A (ETA) and ETB receptors in single smooth muscle cells and their contribution to ET-induced contractions of guinea pig trachea. ETA and ETB receptors were detected in smooth muscle membranes (maximum binding capacities of 810 and 360 fmol/mg protein and dissociation constants of 38 and 5.1 pM for 125I-labeled ET-1 and 125I-ET-3, respectively) and visualized autoradiographically in primary cultured cells. ET-1 and ET-3 evoked concentration-dependent increases in intracellular Ca2+ concentration and smooth muscle tension. The half-maximally effective concentrations of ET-1 and ET-3 at inducing contractions were 1.9 and 2.7 nM, respectively. The Ca2+ responses showed tachyphylaxis to both ETs after stimulation with ET-1, but only to ET-3 after stimulation with ET-3. Consecutive applications of ET-3 and ET-1 (10 nM each) classified the cells into ETA dominant (approximately 30%) responding to only ET-1, ETB dominant (approximately 20%) responding to only ET-3, and ETA- and ETB-possessing (approximately 50%) cells responding to both. The ETA antagonist, 10 microM BQ-123, attenuated ET-1-induced contractions but did not affect the ET-3-induced contractions. The results indicate that both receptors coexist in a major population of smooth muscle cells and cooperate in mediating ET-1-induced contractions.

Animals↗

The effects of endothelin-1 on the PKA-dependent Cl- current in the heart.

The effects of endothelin-1 (ET-1) on whole-cell cardiac PKA-dependent Cl- currents (ICl) were investigated using patch clamp techniques. ET-1 inhibited the isoproterenol-induced ICl with a half-maximally effective concentration of approximately 1 nM. ET-1 also inhibited the forskolin-induced current in a similar concentration range. The effects of ET-1 were abolished by pre-treatment of the cells with pertussis toxin. Since ET-1 was ineffective at inhibiting the ICl induced by internal dialysis with cyclic AMP, it is unlikely that the Gi-protein had a direct effect on channel gating or phosphorylation of the channel by PKA. It is concluded that ET-1 inhibited the cardiac PKA-dependent ICl by attenuating activation of adenylate cyclase and that this effect was mediated by a pertussis toxin-sensitive G-protein, presumably Gi.

Adenylate Cyclase Toxin↗

The mechanism and control of rabbit oviduct fluid formation.

The formation of rabbit oviduct fluid was monitored continuously by using an in situ vascular perfusion technique. Oviduct fluid was secreted linearly for at least 3 h at a mean rate of 20.8 +/- 1.5 microliter/h in estrous does. The rate more than doubled on Day 1 following mating, was similar to the value at estrus on Day 2, and dropped to 8.3 microliter on Day 3. Dibutyryl cyclic adenosine 3',5'-monophosphate (cAMP, 1 mM) added to the vascular medium abolished fluid secretion. The same response was obtained, after a lag period, following the addition of cholera toxin (1 mM), forskolin (1 mM), theophylline (1 mM), phorbol dibutyrate (40 microM), A23187 (2 micrograms/ml), 4-acetamido-4'-isothiocyonatostilbene-2,2'-disulphonic acid (SITS, 1 mM), and bumetanide (10 microM) to the vascular medium. N-ethylmaleimide (1 mM), which inhibits adenylate cyclase, stimulated oviduct fluid formation. The transmural potential difference (p.d.) across the oviduct was 5.46 +/- 1.01 mV. This was increased after cAMP addition to 8.7 +/- 1.22 mV. The p.d. in oviducts taken 3 days post-ovulation was 7.6 +/- 1.75 mV, and was increased by cAMP to 12.7 +/- 0.53 mV. Exposure to cholera toxin and forskolin almost doubled the cAMP content of the oviduct. The undirectional flux of chloride ions from the vascular compartment into the lumen was reduced by about 75% after the addition of cAMP, SITS, and bumetanide. A tentative model to account for the formation and regulation of rabbit oviduct fluid in terms of ion fluxes and cAMP and calcium ion concentrations is presented.

4-Acetamido-4'-isothiocyanatostilbene-2,2'-disulfo↗

Ureterocoele.

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Adult↗