Page last updated: 2024-08-16

tyramine and n-caffeoyltyramine

tyramine has been researched along with n-caffeoyltyramine in 9 studies

Research

Studies (9)

TimeframeStudies, this research(%)All Research%
pre-19900 (0.00)18.7374
1990's0 (0.00)18.2507
2000's5 (55.56)29.6817
2010's3 (33.33)24.3611
2020's1 (11.11)2.80

Authors

AuthorsStudies
Bonnet, S; Boumendjel, A; Mariotte, AM; Okombi, S; Perrier, E; Rival, D1
Park, JB; Schoene, N1
Hahm, KS; Jung, HJ; Kim, MR; Lee, DG; Park, Y; Seu, YB; Woo, ER1
Park, JB2
Back, K; Kang, K; Kim, YS; Lee, S; Lee, SG; Park, M; Park, S1
Guo, L; Li, H; Ma, X; Xu, K; Yan, J1
Chen, H; Olatunji, OJ; Zhou, Y1
Lee, SH; Levine, F; Veeriah, V1

Other Studies

9 other study(ies) available for tyramine and n-caffeoyltyramine

ArticleYear
Analogues of N-hydroxycinnamoylphenalkylamides as inhibitors of human melanocyte-tyrosinase.
    Bioorganic & medicinal chemistry letters, 2006, Apr-15, Volume: 16, Issue:8

    Topics: Amides; Benzoquinones; Caffeic Acids; Catalysis; Cells, Cultured; Dihydroxyphenylalanine; Enzyme Inhibitors; Humans; Levodopa; Melanins; Melanocytes; Monophenol Monooxygenase; Oxidation-Reduction; Pigmentation Disorders; Pyrones; Skin; Structure-Activity Relationship; Tyramine; Tyrosine

2006
N-Caffeoyltyramine arrests growth of U937 and Jurkat cells by inhibiting protein tyrosine phosphorylation and inducing caspase-3.
    Cancer letters, 2003, Dec-30, Volume: 202, Issue:2

    Topics: Antineoplastic Agents, Phytogenic; Caffeic Acids; Caspase 3; Caspases; Cell Division; DNA Fragmentation; Enzyme Activation; ErbB Receptors; HL-60 Cells; Humans; Jurkat Cells; Phosphorylation; Tyramine; Tyrosine; U937 Cells

2003
Anti-fungal effects of phenolic amides isolated from the root bark of Lycium chinense.
    Biotechnology letters, 2004, Volume: 26, Issue:14

    Topics: Amides; Antifungal Agents; Biotechnology; Caffeic Acids; Candida albicans; Coumaric Acids; Erythrocytes; Hemolysis; Humans; Lycium; Magnetic Resonance Spectroscopy; Models, Chemical; Octopamine; Plant Bark; Plant Extracts; Saccharomyces cerevisiae; Trichosporon; Tyramine

2004
Quantitation of clovamide-type phenylpropenoic acid amides in cells and plasma using high-performance liquid chromatography with a coulometric electrochemical detector.
    Journal of agricultural and food chemistry, 2005, Oct-19, Volume: 53, Issue:21

    Topics: Animals; Caffeic Acids; Chromatography, High Pressure Liquid; Dopamine; Humans; Jurkat Cells; Mice; Tyramine

2005
Production of plant-specific tyramine derivatives by dual expression of tyramine N-hydroxycinnamoyltransferase and 4-coumarate:coenzyme A ligase in Escherichia coli.
    Biotechnology letters, 2009, Volume: 31, Issue:9

    Topics: Acyltransferases; Arabidopsis; Caffeic Acids; Coenzyme A Ligases; Coumaric Acids; Culture Media; Escherichia coli; Gene Expression; Recombinant Proteins; Tyramine

2009
Effects of typheramide and alfrutamide found in Allium species on cyclooxygenases and lipoxygenases.
    Journal of medicinal food, 2011, Volume: 14, Issue:3

    Topics: Allium; Caffeic Acids; Coumaric Acids; Cyclooxygenase 1; Cyclooxygenase 2; Cyclooxygenase Inhibitors; Humans; Lipoxygenases; Plant Extracts; Tyramine

2011
Binding mechanism of trans-N-caffeoyltyramine and human serum albumin: Investigation by multi-spectroscopy and docking simulation.
    Bioorganic chemistry, 2016, Volume: 66

    Topics: Binding Sites; Caffeic Acids; Circular Dichroism; Dose-Response Relationship, Drug; Humans; Magnetic Resonance Spectroscopy; Molecular Docking Simulation; Molecular Structure; Serum Albumin; Spectrometry, Fluorescence; Structure-Activity Relationship; Tyramine

2016
Neuroprotective effect of trans-N-caffeoyltyramine from Lycium chinense against H
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2017, Volume: 93

    Topics: Animals; Antioxidants; Apoptosis; Caffeic Acids; Catalase; Cell Line, Tumor; Cell Survival; Glutathione; Glutathione Peroxidase; Hydrogen Peroxide; Lycium; Malondialdehyde; Membrane Potential, Mitochondrial; Neurons; Neuroprotective Agents; Oxidative Stress; PC12 Cells; Plant Extracts; Rats; Reactive Oxygen Species; Superoxide Dismutase; Tyramine

2017
Liver fat storage is controlled by HNF4α through induction of lipophagy and is reversed by a potent HNF4α agonist.
    Cell death & disease, 2021, 06-11, Volume: 12, Issue:6

    Topics: Animals; Autophagy; Caffeic Acids; Cells, Cultured; Coumaric Acids; HeLa Cells; Hep G2 Cells; Hepatocyte Nuclear Factor 4; Humans; Lipid Metabolism; Liver; Male; Mice; Mice, Inbred C57BL; Tyramine

2021