Effect of 2‐(4‐Phenylpiperidino)cyclohexanol on Acetylcholine Release and Subcellular Distribution in Rat Striatal Slices
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[1] Y. Dunant. On the mechanism of acetylcholine release , 1986, Progress in Neurobiology.
[2] B. Bahr,et al. Acetylcholine Transport and Drug Inhibition Kinetics in Torpedo Synaptic Vesicles , 1986, Journal of neurochemistry.
[3] J. Říčný,et al. Acetylcholine Synthesis and Release by a Sympathetic Ganglion in the Presence of 2‐(4‐Phenylpiperidino) Cyclohexanol (AH5183) , 1986, Journal of neurochemistry.
[4] E. Meyer,et al. Effects of 4-(2-Hydroxyethyl)-1-piperazine-ethanesulfonic acid (AH5183) on rat cortical synaptosome choline uptake, acetylcholine storage and release , 1985, Brain Research.
[5] P. T. Carroll. The effect of the acetylcholine transport blocker 2-(4-phenylpiperidino) cyclohexanol (AH5183) on the subcellular storage and release of acetylcholine in mouse brain , 1985, Brain Research.
[6] C. Edwards,et al. Is an acetylcholine transport system responsible for nonquantal release of acetylcholine at the rodent myoneural junction? , 1985, Proceedings of the National Academy of Sciences of the United States of America.
[7] V. P. Whittaker,et al. Separation of Recycling and Reserve Synaptic Vesicles from Cholinergic Nerve Terminals of the Myenteric Plexus of Guinea Pig Ileum , 1985, Journal of neurochemistry.
[8] W. Melega,et al. Biochemical evidence that vesicles are the source of the acetylcholine released from stimulated PC12 cells. , 1984, Proceedings of the National Academy of Sciences of the United States of America.
[9] D. Anderson,et al. Pharmacological characterization of the acetylcholine transport system in purified Torpedo electric organ synaptic vesicles. , 1983, Molecular pharmacology.
[10] B. Collier,et al. Synthesis of Acetylcholine from Acetate in a Sympathetic Ganglion , 1982, Journal of neurochemistry.
[11] L. Tauc. Non vesicular release of neurotransmitter. , 1982, Physiological reviews.
[12] D. Anderson,et al. Proton gradient linkage to active uptake of [3H]acetylcholine by Torpedo electric organ synaptic vesicles. , 1982, Biochemistry.
[13] M. E. O'leary,et al. Differential Labeling of Depot and Active Acetylcholine Pools in Nondepolarized and Potassium‐Depolarized Rat Brain Synaptosomes , 1982, Journal of neurochemistry.
[14] P. T. Carroll,et al. Spontaneous and potassium-induced release of acetylcholine from mouse forebrain minces , 1981, Neuroscience.
[15] B. Katz,et al. Does the motor nerve impulse evoke ‘non-quantal’ transmitter release? , 1981, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[16] V. P. Whittaker,et al. Changes in the biochemical and biophysical parameters of cholinergic synaptic vesicles on transmitter release and during a subsequent period of rest , 1981, Neuroscience.
[17] B. Collier,et al. Factors affecting choline transport by the cat superior cervical ganglion during and following stimulation, and the relationship between choline uptake and acetylcholine synthesis , 1981, Neuroscience.
[18] P. Boksa,et al. Spontaneous and evoked release of acetylcholine and a cholinergic false transmitter from brain slices: Comparison to true and false transmitter in subcellular stores , 1980, Neuroscience.
[19] W. P. Hurlbut,et al. Vesicle hypothesis of the release of quanta of acetylcholine. , 1980, Physiological reviews.
[20] L. Toll,et al. Evidence that an ATPase and a protonmotive force function in the transport of acetylcholine into storage vesicles. , 1980, The Journal of biological chemistry.
[21] Y. Dunant,et al. The present status of the vesicular hypothesis , 1979, Progress in Neurobiology.
[22] H. Zimmermann. Vesicle recycling and transmitter release , 1979, Neuroscience.
[23] K. Vaca,et al. Mechanisms controlling choline transport and acetylcholine synthesis in motor nerve terminals during electrical stimulation , 1979, The Journal of general physiology.
[24] I. Schwarzenfeld. Origin of transmitters released by electrical stimulation from a small, metabolically very active vesicular pool of cholinergic synapses in guinea-pig cerebral cortex , 1979, Neuroscience.
[25] V. P. Whittaker,et al. VESICULAR STORAGE AND RELEASE OF ACETYLCHOLINE IN TORPEDO ELECTROPLAQUE SYNAPSES , 1978, Journal of neurochemistry.
[26] Bernard Katz,et al. Transmitter leakage from motor nerve endings , 1977, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[27] M. Kuhar,et al. Activation of high-affinity choline uptake in vitro by depolarizing agents. , 1976, Molecular pharmacology.
[28] M. Kuhar,et al. HIGH AFFINITY CHOLINE UPTAKE: IONIC AND ENERGY REQUIREMENTS , 1976, Journal of neurochemistry.
[29] J. Richter. CHARACTERISTICS OF ACETYLCHOLINE RELEASE BY SUPERFUSED SLICES OF RAT BRAIN 1 , 1976, Journal of neurochemistry.
[30] L. Neckers,et al. GLUCOCORTICOIDS AS A REGULATORY FACTOR FOR BRAIN TRYPTOPHAN HYDROXYLASE , 1976, Journal of neurochemistry.
[31] P. T. Carroll,et al. RELATIVE IMPORTANCE OF CHOLINE TRANSPORT TO SPONTANEOUS AND POTASSIUM DEPOLARIZED RELEASE OF ACh , 1975, Journal of neurochemistry.
[32] R. Mccaman,et al. THE DETERMINATION OF PICOMOLE AMOUNTS OF ACETYLCHOLINE IN MAMMALIAN BRAIN , 1973, Journal of neurochemistry.
[33] V. P. Whittaker,et al. Choline metabolism in the cerebral cortex of guinea pigs. Phosphorylcholine and lipid choline. , 1972, The Biochemical journal.
[34] V. P. Whittaker,et al. Choline metabolism in the cerebral cortex of guinea pigs. Stable-bound acetylcholine. , 1972, The Biochemical journal.
[35] I. G. Marshall,et al. Studies on the blocking action of 2‐(4‐phenyl piperidino) cyclohexanol (AH5183) , 1970, British journal of pharmacology.
[36] G. P. Levy,et al. The neuromuscular blocking action of 2-(4-phenylpiperidino) cyclohexanol (AH 5183). , 1969, European journal of pharmacology.
[37] V. P. Whittaker,et al. The separation of synaptic vesicles from nerve-ending particles ('synaptosomes'). , 1964, The Biochemical journal.
[38] R. Jope,et al. Quinacrine and 2-(4-phenylpiperidino)cyclohexanol (AH5183) inhibit acetylcholine release and synthesis in rat brain slices. , 1986, Molecular pharmacology.
[39] M. Israël,et al. The release of acetylcholine: from a cellular towards a molecular mechanism , 1985, Biology of the Cell.
[40] S. Tuček. Problems in the organization and control of acetylcholine synthesis in brain neurons. , 1984, Progress in biophysics and molecular biology.
[41] R. Kelly,et al. A molecular description of nerve terminal function. , 1983, Annual review of biochemistry.
[42] B. Collier,et al. The effect of preganglionic nerve stimulation on the accumulation of certain analogues of choline by a sympathetic ganglion. , 1977, The Journal of physiology.
[43] F. C. Macintosh,et al. Neurochemistry of Cholinergic Terminals , 1976 .