Pancreatic acinar cells: effect of acetylcholine, pancreozymin, gastrin and secretin on membrane potential and resistance in vivo and in vitro.

PubWeight™: 1.32‹?› | Rank: Top 10%

🔗 View Article (PMC 1309479)

Published in J Physiol on May 01, 1975

Authors

O H Petersen, N Ueda

Articles citing this

Cytoplasmic Ca2+ oscillations evoked by receptor stimulation, G-protein activation, internal application of inositol trisphosphate or Ca2+: simultaneous microfluorimetry and Ca2+ dependent Cl- current recording in single pancreatic acinar cells. EMBO J (1990) 2.26

Pancreatic acinar cells: the role of calcium in stimulus-secretion coupling. J Physiol (1976) 2.04

Secretion of electrolytes by the pancreas of the anaestetized rat. J Physiol (1975) 1.60

Interaction of cholecystokinin with specific membrane receptors on pancreatic acinar cells. Proc Natl Acad Sci U S A (1980) 1.43

Cell membrane potential and resistance in liver. J Physiol (1978) 1.33

Secretion of fluid and amylase in the perfused rat pancreas. J Physiol (1977) 1.31

Membrane potential, resistance, and intercellular communication in the lacrimal gland: effects of acetylcholine and adrenaline. J Physiol (1978) 1.24

In vitro action of bombesin on amylase secretion, membrane potential, and membrane resistance in rat and mouse pancreatic acinar cells. A comparison with other secretagogues. J Clin Invest (1978) 1.20

Regulation of fluid secretion and intracellular messengers in isolated rat pancreatic ducts by acetylcholine. J Physiol (1993) 0.99

Proceedings: "Static" and "dynamic" nuclear bag fibres in isolated cat muscle spindles. J Physiol (1975) 0.98

Spontaneous Pancreatitis Caused by Tissue-Specific Gene Ablation of Hhex in Mice. Cell Mol Gastroenterol Hepatol (2015) 0.97

Pancreatic acinar cells: effects of micro-ionophoretic polypeptide application on membrane potential and resistance. J Physiol (1979) 0.85

The effects of gastrin and gastrin analogues on pancreatic acinar cell membrane potential and resistance. Br J Pharmacol (1977) 0.85

Pancreatic acinar cells: electrophysiological evidence for stimulant-evoked increase in membrane calcium permeability in the mouse. J Physiol (1980) 0.80

Potassium channels in pancreatic duct epithelial cells: their role, function and pathophysiological relevance. Pflugers Arch (2014) 0.76

Flux studies in perfused amphibian intestine [proceedings]. J Physiol (1977) 0.75

Dopamine, noradrenaline and isoprenaline: secretory and electrophysiological effects in vitro on mouse pancreas. J Physiol (1986) 0.75

Articles cited by this

The mechanism of pancreatic secretion. J Physiol (1902) 15.82

Pancreozymin, a stimulant of the secretion of pancreatic enzymes in extracts of the small intestine. J Physiol (1943) 7.23

Pancreatic acinar cells: ionic dependence of the membrane potential and acetycholine-induced depolarization. J Physiol (1973) 2.13

Pancreatic acinar cells: measurement of membrane potential and miniature depolarization potentials. J Physiol (1972) 2.07

Pancreatic acinar cells: ionic dependence of acetylcholine-induced membrane potential and resistance change. J Physiol (1975) 1.98

Pancreatic acinar cells: membrane potential and resistance change evoked by acetylcholine. J Physiol (1974) 1.96

Calcium-dependent amylase release and electrophysiological measurements in cells of the pancreas. J Physiol (1972) 1.69

Stimulation of amylase secretion from the perfused cat pancreas by potassium and other alkali metal ions. J Physiol (1971) 1.69

A gastric phase of pancreatic secretion. J Physiol (1966) 1.59

The action of scretin, cholecystokinin-pancreozymin and caerulein on pancreatic secretion in the rat. J Physiol (1972) 1.57

Membrane effects mediated by alpha-and beta-adrenoceptors in mouse parotid acinar cells. J Membr Biol (1974) 1.36

Membrane potential and resistance measurement in acinar cells from salivary glands in vitro: effect of acetylcholine. J Physiol (1974) 1.34

Micropuncture studies on the pancreas of the rabbit. Pflugers Arch (1969) 1.27

The actions of dibutyryl cyclic adenosine 3',5'-monophosphate and methyl xanthines on pancreatic exocrine secretion. J Physiol (1972) 1.23

The effect of glucagon on the liver cell membrane potential. J Physiol (1974) 1.04

Adenylate cyclase in the rat pancreas properties and stimulation by hormones. Biochim Biophys Acta (1972) 1.04

The action of gastrin and cholecystokinin-related peptides on pancreatic secretion in the rat. Q J Exp Physiol Cogn Med Sci (1973) 0.91

Cell membrane permeability change: an important step in hormone action. Experientia (1974) 0.82

Articles by these authors

Calcium-activated potassium channels and their role in secretion. Nature (1984) 4.20

Pulsatile intracellular calcium release does not depend on fluctuations in inositol trisphosphate concentration. Nature (1989) 3.65

Local and global cytosolic Ca2+ oscillations in exocrine cells evoked by agonists and inositol trisphosphate. Cell (1993) 3.53

Synergism of inositol trisphosphate and tetrakisphosphate in activating Ca2+-dependent K+ channels. Nature (1988) 3.29

Endoscopic resection of early gastric cancer and other tumors with local injection of hypertonic saline-epinephrine. Gastrointest Endosc (1988) 2.68

Active mitochondria surrounding the pancreatic acinar granule region prevent spreading of inositol trisphosphate-evoked local cytosolic Ca(2+) signals. EMBO J (1999) 2.67

Transcriptional roles of nuclear factor kappa B and nuclear factor-interleukin-6 in the tumor necrosis factor alpha-dependent induction of cyclooxygenase-2 in MC3T3-E1 cells. J Biol Chem (1995) 2.60

Calcium-dependent enzyme activation and vacuole formation in the apical granular region of pancreatic acinar cells. Proc Natl Acad Sci U S A (2000) 2.34

Cytoplasmic Ca2+ oscillations evoked by receptor stimulation, G-protein activation, internal application of inositol trisphosphate or Ca2+: simultaneous microfluorimetry and Ca2+ dependent Cl- current recording in single pancreatic acinar cells. EMBO J (1990) 2.26

Voltage and Ca2+-activated K+ channel in baso-lateral acinar cell membranes of mammalian salivary glands. Nature (1983) 2.16

Anandamide amidohydrolase reacting with 2-arachidonoylglycerol, another cannabinoid receptor ligand. FEBS Lett (1998) 2.16

Pancreatic acinar cells: ionic dependence of the membrane potential and acetycholine-induced depolarization. J Physiol (1973) 2.13

Reverse correlation of E-cadherin and snail expression in oral squamous cell carcinoma cells in vitro. Oral Oncol (2001) 2.12

Pancreatic acinar cells: acetylcholine-induced membrane depolarization, calcium efflux and amylase release. J Physiol (1973) 2.12

Intracellular ADP activates K+ channels that are inhibited by ATP in an insulin-secreting cell line. FEBS Lett (1986) 2.06

Receptor-activated cytoplasmic Ca2+ spiking mediated by inositol trisphosphate is due to Ca2(+)-induced Ca2+ release. Cell (1990) 2.05

Pancreatic acinar cells: the role of calcium in stimulus-secretion coupling. J Physiol (1976) 2.04

Pancreatic acinar cells: ionic dependence of acetylcholine-induced membrane potential and resistance change. J Physiol (1975) 1.98

ATP-dependent accumulation and inositol trisphosphate- or cyclic ADP-ribose-mediated release of Ca2+ from the nuclear envelope. Cell (1995) 1.97

Glomerulosclerosis induced by in vivo transfection of transforming growth factor-beta or platelet-derived growth factor gene into the rat kidney. J Clin Invest (1993) 1.97

Pancreatic acinar cells: membrane potential and resistance change evoked by acetylcholine. J Physiol (1974) 1.96

Termination of cytosolic Ca2+ signals: Ca2+ reuptake into intracellular stores is regulated by the free Ca2+ concentration in the store lumen. EMBO J (1998) 1.88

Electrophysiology of the pancreas. Physiol Rev (1987) 1.85

Perinuclear, perigranular and sub-plasmalemmal mitochondria have distinct functions in the regulation of cellular calcium transport. EMBO J (2001) 1.76

Two different but converging messenger pathways to intracellular Ca(2+) release: the roles of nicotinic acid adenine dinucleotide phosphate, cyclic ADP-ribose and inositol trisphosphate. EMBO J (2000) 1.72

Some factors influencing stimulation-induced release of potassium from the cat submandibular gland to fluid perfused through the gland. J Physiol (1970) 1.72

The endoplasmic reticulum as one continuous Ca(2+) pool: visualization of rapid Ca(2+) movements and equilibration. EMBO J (2000) 1.71

Ca2+ flow via tunnels in polarized cells: recharging of apical Ca2+ stores by focal Ca2+ entry through basal membrane patch. Cell (1997) 1.70

Spatial dynamics of second messengers: IP3 and cAMP as long-range and associative messengers. Trends Neurosci (1994) 1.69

Calcium uptake via endocytosis with rapid release from acidifying endosomes. Curr Biol (1998) 1.68

Quantification of Ca2+-activated K+ channels under hormonal control in pig pancreas acinar cells. Nature (1983) 1.59

Enzymes of porcine brain hydrolyzing 2-arachidonoylglycerol, an endogenous ligand of cannabinoid receptors. Biochem Pharmacol (1999) 1.58

High-conductance K+ channel in pancreatic islet cells can be activated and inactivated by internal calcium. J Membr Biol (1985) 1.58

Electrophysiology of mammalian gland cells. Physiol Rev (1976) 1.55

Inositol 1,3,4,5-tetrakisphosphate is essential for sustained activation of the Ca2+-dependent K+ current in single internally perfused mouse lacrimal acinar cells. J Membr Biol (1989) 1.52

ATP-sensitive inward rectifier and voltage- and calcium-activated K+ channels in cultured pancreatic islet cells. J Membr Biol (1985) 1.50

Calcium leak from intracellular stores--the enigma of calcium signalling. Cell Calcium (2003) 1.48

Cyclic ADP-ribose regulation of ryanodine receptors involved in agonist evoked cytosolic Ca2+ oscillations in pancreatic acinar cells. EMBO J (1994) 1.46

Spatial and temporal distribution of agonist-evoked cytoplasmic Ca2+ signals in exocrine acinar cells analysed by digital image microscopy. EMBO J (1992) 1.46

In vitro and in vivo evidence suggesting a role for iron in cisplatin-induced nephrotoxicity. Kidney Int (1998) 1.45

The gating of nucleotide-sensitive K+ channels in insulin-secreting cells can be modulated by changes in the ratio ATP4-/ADP3- and by nonhydrolyzable derivatives of both ATP and ADP. J Membr Biol (1988) 1.44

Cholecystokinin activation of single-channel currents is mediated by internal messenger in pancreatic acinar cells. Nature (1982) 1.43

Pancreatic acinar cells: the acetylcholine equilibrium potential and its ionic dependency. J Physiol (1977) 1.42

Gene transfer targeting interstitial fibroblasts by the artificial viral envelope-type hemagglutinating virus of Japan liposome method. Kidney Int (2000) 1.41

MuSK antibodies in AChR Ab-seropositive MG vs AChR Ab-seronegative MG. Neurology (2004) 1.40

Potassium selective ion channels in insulin-secreting cells: physiology, pharmacology and their role in stimulus-secretion coupling. Biochim Biophys Acta (1991) 1.39

Inositol trisphosphate and cyclic ADP-ribose-mediated release of Ca2+ from single isolated pancreatic zymogen granules. Cell (1996) 1.38

Activation of nonselective cation channels by physiological cholecystokinin concentrations in mouse pancreatic acinar cells. J Gen Physiol (1992) 1.37

Oxidant mechanisms in toxic acute renal failure. Drug Metab Rev (1999) 1.37

Membrane effects mediated by alpha-and beta-adrenoceptors in mouse parotid acinar cells. J Membr Biol (1974) 1.36

Galanin activates nucleotide-dependent K+ channels in insulin-secreting cells via a pertussis toxin-sensitive G-protein. EMBO J (1989) 1.35

Calcium signalling and pancreatic cell death: apoptosis or necrosis? Cell Death Differ (2007) 1.35

Cloning and expression of a novel MAPKK-like protein kinase, lymphokine-activated killer T-cell-originated protein kinase, specifically expressed in the testis and activated lymphoid cells. J Biol Chem (2000) 1.34

Membrane potential and resistance measurement in acinar cells from salivary glands in vitro: effect of acetylcholine. J Physiol (1974) 1.34

Cell membrane potential and resistance in liver. J Physiol (1978) 1.33

Hormone-induced secretory and nuclear translocation of calmodulin: oscillations of calmodulin concentration with the nucleus as an integrator. Proc Natl Acad Sci U S A (1999) 1.33

Transport of calcium in the perfused submandibular gland of the cat. J Physiol (1972) 1.32

Different patterns of receptor-activated cytoplasmic Ca2+ oscillations in single pancreatic acinar cells: dependence on receptor type, agonist concentration and intracellular Ca2+ buffering. EMBO J (1991) 1.31

Secretion of fluid and amylase in the perfused rat pancreas. J Physiol (1977) 1.31

Is an elevated concentration of acinar cytosolic free ionised calcium the trigger for acute pancreatitis? Lancet (1995) 1.28

Acetylcholine stimulates a Ca2+-dependent C1- conductance in mouse lacrimal acinar cells. Pflugers Arch (1985) 1.28

The role of endoplasmic reticulum calcium pumps during cytosolic calcium spiking in pancreatic acinar cells. J Biol Chem (1993) 1.28

The frequency in Japanese of genetic variants of 22 proteins. V. Summary and comparison with data on Caucasians from the British Isles. Ann Hum Genet (1978) 1.28

Novel inhibitors of brain, neuronal, and basophilic anandamide amidohydrolase. Biochem Biophys Res Commun (1997) 1.27

The dependence of the transmembrane salivary secretory potential on the external potassium and sodium concentration. J Physiol (1970) 1.27

Caffeine inhibits the agonist-evoked cytosolic Ca2+ signal in mouse pancreatic acinar cells by blocking inositol trisphosphate production. J Biol Chem (1992) 1.27

Downregulation of miR-126 induces angiogenesis and lymphangiogenesis by activation of VEGF-A in oral cancer. Br J Cancer (2012) 1.26

Purification of arachidonate 5-lipoxygenase from porcine leukocytes and its reactivity with hydroperoxyeicosatetraenoic acids. J Biol Chem (1986) 1.25

Activators of protein kinase C depolarize insulin-secreting cells by closing K+ channels. EMBO J (1988) 1.25

Membrane potential, resistance, and intercellular communication in the lacrimal gland: effects of acetylcholine and adrenaline. J Physiol (1978) 1.24

Membrane potential measurement in parotid acinar cells. J Physiol (1973) 1.22

Acetylcholine-like effects of intracellular calcium application in pancreatic acinar cells. Nature (1977) 1.22

The fatty acid amide hydrolase (FAAH). Prostaglandins Leukot Essent Fatty Acids (2002) 1.22

Calcium-activated potassium channels and fluid secretion by exocrine glands. Am J Physiol (1986) 1.22

Novel sulfonamides as potential, systemically active antitumor agents. J Med Chem (1992) 1.21

Oxidant mechanisms in toxic acute renal failure. Am J Kidney Dis (1997) 1.20

In vitro action of bombesin on amylase secretion, membrane potential, and membrane resistance in rat and mouse pancreatic acinar cells. A comparison with other secretagogues. J Clin Invest (1978) 1.20

Pancreatic acinar cells: acetylcholine-evoked electrical uncoupling and its ionic dependency. J Physiol (1978) 1.20

Inhibition of TGF-beta 1 expression by antisense oligonucleotides suppressed extracellular matrix accumulation in experimental glomerulonephritis. Kidney Int (1996) 1.19

Long-term efavirenz autoinduction and its effect on plasma exposure in HIV patients. Clin Pharmacol Ther (2010) 1.19

Pulsatile Ca2+ extrusion from single pancreatic acinar cells during receptor-activated cytosolic Ca2+ spiking. J Biol Chem (1992) 1.19

Electrogenic properties of the sodium-alanine cotransporter in pancreatic acinar cells: I. Tight-seal whole-cell recordings. J Membr Biol (1986) 1.18

The effect of pancreozymin and acetylcholine on the membrane potential of the pancreatic acinar cells. Experientia (1972) 1.18

Pancreatic acinar cells: localization of acetylcholine receptors and the importance of chloride and calcium for acetylcholine-evoked depolarization. J Physiol (1977) 1.18

Increase in bleomycin-detectable iron in ischaemia/reperfusion injury to rat kidneys. Biochem J (1993) 1.18

Electrical coupling and uncoupling of exocrine acinar cells. J Cell Biol (1978) 1.18

Membrane potential and resistance changes induced in salivary gland acinar cells by microiontophoretic application of acetylcholine and adrenergic agonists. J Membr Biol (1978) 1.17

Inositol 1,3,4,5-tetrakisphosphate and inositol 1,4,5-trisphosphate act by different mechanisms when controlling Ca2+ in mouse lacrimal acinar cells. FEBS Lett (1989) 1.17

The frequency in Japanese of genetic variants of 22 proteins. I. Albumin, ceruloplasmin, haptoglobin, and transferrin. Ann Hum Genet (1977) 1.17

Quinine inhibits Ca2+-independent K+ channels whereas tetraethylammonium inhibits Ca2+-activated K+ channels in insulin-secreting cells. FEBS Lett (1985) 1.16

Effect of rifampicin and CYP2B6 genotype on long-term efavirenz autoinduction and plasma exposure in HIV patients with or without tuberculosis. Clin Pharmacol Ther (2011) 1.15

Patch-clamp study of rubidium and potassium conductances in single cation channels from mammalian exocrine acini. Pflugers Arch (1984) 1.15

Acetylcholine-evoked increase in the cytoplasmic Ca2+ concentration and Ca2+ extrusion measured simultaneously in single mouse pancreatic acinar cells. J Biol Chem (1992) 1.15

Inositol triphosphate produces different patterns of cytoplasmic Ca2+ spiking depending on its concentration. FEBS Lett (1991) 1.15

Pancreatic acinar cells: the effect of carbon dioxide, ammonium chloride and acetylcholine on intercellular communication. J Physiol (1979) 1.15

Calcium dependence of calcium extrusion and calcium uptake in mouse pancreatic acinar cells. J Physiol (1996) 1.13

Electrogenic sodium pump in pancreatic acinar cells. Proc R Soc Lond B Biol Sci (1973) 1.13

Edible mushroom (Agaricus bisporus) lectin, which reversibly inhibits epithelial cell proliferation, blocks nuclear localization sequence-dependent nuclear protein import. J Biol Chem (1999) 1.12