quinacrine and vesamicol

quinacrine has been researched along with vesamicol in 7 studies

Research

Studies (7)

TimeframeStudies, this research(%)All Research%
pre-19903 (42.86)18.7374
1990's2 (28.57)18.2507
2000's2 (28.57)29.6817
2010's0 (0.00)24.3611
2020's0 (0.00)2.80

Authors

AuthorsStudies
González-Díaz, H; Orallo, F; Quezada, E; Santana, L; Uriarte, E; Viña, D; Yáñez, M1
Dolezal, V; Edwards, C; Tucek, S; Vyskocil, F; Zemková, H1
Johnson, GV; Jope, RS1
Anderson, DC; Bahr, BA; Parsons, SM1
Enomoto, K; Maeno, T1
Chen, YH; Fu, WM; Liou, HC; Wang, SM1
Bellows, DS; Clarke, ID; Diamandis, P; Dirks, PB; Graham, J; Jamieson, LG; Ling, EK; Sacher, AG; Tyers, M; Ward, RJ; Wildenhain, J1

Other Studies

7 other study(ies) available for quinacrine and vesamicol

ArticleYear
Quantitative structure-activity relationship and complex network approach to monoamine oxidase A and B inhibitors.
    Journal of medicinal chemistry, 2008, Nov-13, Volume: 51, Issue:21

    Topics: Computational Biology; Drug Design; Humans; Isoenzymes; Molecular Structure; Monoamine Oxidase; Monoamine Oxidase Inhibitors; Quantitative Structure-Activity Relationship

2008
Is an acetylcholine transport system responsible for nonquantal release of acetylcholine at the rodent myoneural junction?
    Proceedings of the National Academy of Sciences of the United States of America, 1985, Volume: 82, Issue:10

    Topics: Acetylcholine; Animals; Female; Hydrogen-Ion Concentration; Male; Membrane Potentials; Mice; Neuromuscular Depolarizing Agents; Neuromuscular Junction; Phencyclidine; Piperidines; Quinacrine; Rats; Secretory Rate

1985
Quinacrine and 2-(4-phenylpiperidino)cyclohexanol (AH5183) inhibit acetylcholine release and synthesis in rat brain slices.
    Molecular pharmacology, 1986, Volume: 29, Issue:1

    Topics: Acetylcholine; Animals; Biological Transport; Brain; Choline; In Vitro Techniques; Kinetics; Male; Neuromuscular Depolarizing Agents; Phencyclidine; Piperidines; Potassium; Quinacrine; Rats; Rats, Inbred Strains

1986
Stoichiometries of acetylcholine uptake, release, and drug inhibition in Torpedo synaptic vesicles: heterogeneity in acetylcholine transport and storage.
    Journal of neurochemistry, 1986, Volume: 46, Issue:4

    Topics: Acetylcholine; Animals; Biological Transport, Active; Electric Organ; Hemicholinium 3; Phencyclidine; Piperidines; Quinacrine; Synaptic Vesicles; Torpedo

1986
Effects of vesicular acetylcholine uptake blockers on frequency augmentation-potentiation in frog neuromuscular transmission.
    Neuroscience, 1994, Volume: 59, Issue:2

    Topics: Acetylcholine; Animals; Antidepressive Agents; Azepines; Chloroquine; Ethacridine; Evoked Potentials; In Vitro Techniques; Neuromuscular Depolarizing Agents; Neuromuscular Junction; Piperidines; Pyrilamine; Quinacrine; Ranidae; Regression Analysis; Synaptic Transmission

1994
Release of acetylcholine from embryonic myocytes in Xenopus cell cultures.
    The Journal of physiology, 1998, Jun-01, Volume: 509 ( Pt 2)

    Topics: Acetylcholine; Ammonium Chloride; Animals; Cells, Cultured; Choline O-Acetyltransferase; Coculture Techniques; Embryo, Nonmammalian; Heart; Membrane Potentials; Muscles; Myocardium; Neurons; Piperidines; Quinacrine; Receptors, Cholinergic; Spinal Cord; Tubocurarine; Xenopus

1998
Chemical genetics reveals a complex functional ground state of neural stem cells.
    Nature chemical biology, 2007, Volume: 3, Issue:5

    Topics: Animals; Cell Survival; Cells, Cultured; Mice; Molecular Structure; Neoplasms; Neurons; Pharmaceutical Preparations; Sensitivity and Specificity; Stem Cells

2007