Page last updated: 2024-09-05

phosphatidylcholines and stilbenes

phosphatidylcholines has been researched along with stilbenes in 17 studies

Compound Research Comparison

Studies
(phosphatidylcholines)
Trials
(phosphatidylcholines)
Recent Studies (post-2010)
(phosphatidylcholines)
Studies
(stilbenes)
Trials
(stilbenes)
Recent Studies (post-2010) (stilbenes)
32,2044435,59313,9352457,836

Research

Studies (17)

TimeframeStudies, this research(%)All Research%
pre-19900 (0.00)18.7374
1990's2 (11.76)18.2507
2000's2 (11.76)29.6817
2010's12 (70.59)24.3611
2020's1 (5.88)2.80

Authors

AuthorsStudies
Bérubé, G; Gicquaud, C; Grenier, G1
de Godos, A; García-García, J; Gómez-Fernández, JC; Micol, V1
Tou, J; Urbizo, C1
Fang, CL; Fang, JY; Hung, CF; Liao, MH1
Iwata, K; Nojima, Y2
Holmsen, H; Olas, B1
Barros Neto, B; Cadena, PG; Cavalcanti, IM; Cordeiro, RB; Lima Filho, JL; Pereira, MA; Pimentel, Mdo C; Santos-Magalhães, NS; Silva, VL1
Barrajón-Catalán, E; Catania, A; Cicirata, F; Micol, V; Nicolosi, S1
Koumanov, K; Markovska, T; Momchilova, A; Nikolova-Karakashian, M; Pankov, R; Petkova, D; Skrobanska, R; Staneva, G1
Fu, LM; Han, RM; Liang, R; Skibsted, LH; Wang, HJ; Zhang, JP1
Babica, P; Böke, H; Kumar, E; Park, JS; Sovadinova, I; Trosko, JE; Upham, BL; Wilke, A1
Neves, AR; Nunes, C; Reis, S2
Amenitsch, H; Neves, AR; Nunes, C; Reis, S1
Bianchi, A; Scalia, S; Trotta, V; Zampino, MR1
Iwata, K; Nojima, Y; Takaya, T1

Other Studies

17 other study(ies) available for phosphatidylcholines and stilbenes

ArticleYear
Effects of new triphenylethylene platinum(II) complexes on the interaction with phosphatidylcholine liposomes.
    Chemical & pharmaceutical bulletin, 1998, Volume: 46, Issue:9

    Topics: Antineoplastic Agents; Calorimetry, Differential Scanning; Cell Membrane Permeability; Cisplatin; Liposomes; Phosphatidylcholines; Stilbenes; Structure-Activity Relationship

1998
The cancer chemopreventive agent resveratrol is incorporated into model membranes and inhibits protein kinase C alpha activity.
    Archives of biochemistry and biophysics, 1999, Dec-15, Volume: 372, Issue:2

    Topics: Acrylamide; Animals; Anticarcinogenic Agents; Calorimetry, Differential Scanning; Diffusion; Enzyme Activation; Fluorescence; Inhibitory Concentration 50; Isoenzymes; Liposomes; Magnetic Resonance Spectroscopy; Membrane Fluidity; Membranes, Artificial; Micelles; Octoxynol; Phosphatidylcholines; Phosphatidylethanolamines; Phosphatidylserines; Protein Kinase C; Protein Kinase C-alpha; Resveratrol; Stilbenes; Temperature; Thermodynamics

1999
Resveratrol inhibits the formation of phosphatidic acid and diglyceride in chemotactic peptide- or phorbol ester-stimulated human neutrophils.
    Cellular signalling, 2001, Volume: 13, Issue:3

    Topics: Choline; Chromatography, Thin Layer; Diglycerides; Drug Interactions; Ethanol; Ethanolamine; Glycerophosphates; Glycerophospholipids; Humans; In Vitro Techniques; N-Formylmethionine Leucyl-Phenylalanine; Neutrophils; Phosphatidic Acids; Phosphatidylcholines; Resveratrol; Stilbenes; Tetradecanoylphorbol Acetate; Time Factors

2001
The effect of oil components on the physicochemical properties and drug delivery of emulsions: tocol emulsion versus lipid emulsion.
    International journal of pharmaceutics, 2007, Apr-20, Volume: 335, Issue:1-2

    Topics: Animals; Antioxidants; Biphenyl Compounds; Carotid Stenosis; Chemistry, Pharmaceutical; Coconut Oil; Disease Models, Animal; Drug Carriers; Drug Compounding; Emulsions; Hemolysis; Male; Micelles; Oils; Particle Size; Phosphatidylcholines; Picrates; Plant Oils; Polyethylene Glycols; Rats; Rats, Sprague-Dawley; Resveratrol; Solubility; Stilbenes; Surface-Active Agents; Technology, Pharmaceutical; Time Factors; Vitamin E

2007
Lipid bilayer membrane of egg-PC liposome evaluated as chemical reaction field with picosecond time-resolved fluorescence spectroscopy.
    Chemistry, an Asian journal, 2011, Jul-04, Volume: 6, Issue:7

    Topics: Egg Yolk; Isomerism; Lipid Bilayers; Liposomes; Phosphatidylcholines; Spectrometry, Fluorescence; Stilbenes; Time Factors

2011
Interaction of resveratrol with membrane glycerophospholipids in model system in vitro.
    Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association, 2012, Volume: 50, Issue:11

    Topics: 1,2-Dipalmitoylphosphatidylcholine; Calorimetry, Differential Scanning; Glycerophospholipids; Liposomes; Membrane Lipids; Phosphatidylcholines; Phosphatidylserines; Resveratrol; Stilbenes; Transition Temperature

2012
Nanoencapsulation of quercetin and resveratrol into elastic liposomes.
    Biochimica et biophysica acta, 2013, Volume: 1828, Issue:2

    Topics: Adipocytes; Chemistry, Physical; Cholesterol; Chromatography, High Pressure Liquid; Cyclodextrins; Deoxycholic Acid; Drug Delivery Systems; Drug Design; Elasticity; Kinetics; Liposomes; Microscopy, Electron, Scanning; Nanoparticles; Nanotechnology; Phosphatidylcholines; Quercetin; Resveratrol; Solubility; Stilbenes; Time Factors

2013
Immunoliposome encapsulation increases cytotoxic activity and selectivity of curcumin and resveratrol against HER2 overexpressing human breast cancer cells.
    Breast cancer research and treatment, 2013, Volume: 141, Issue:1

    Topics: Antibodies, Monoclonal, Humanized; Anticarcinogenic Agents; Antineoplastic Agents; Biological Availability; Biological Products; Breast Neoplasms; Carcinoma, Ductal, Breast; Cell Division; Cell Line, Tumor; Cholesterol; Chromatography, High Pressure Liquid; Curcumin; Drug Compounding; Drug Screening Assays, Antitumor; Female; Gene Expression Regulation, Neoplastic; Genes, erbB-2; Humans; Immunoconjugates; Liposomes; Neoplasm Proteins; Particle Size; Phosphatidylcholines; Phosphatidylethanolamines; Receptor, ErbB-2; Resveratrol; Stilbenes; Trastuzumab

2013
Resveratrol alters the lipid composition, metabolism and peroxide level in senescent rat hepatocytes.
    Chemico-biological interactions, 2014, Jan-25, Volume: 207

    Topics: Acetates; Aging; Animals; Cell Membrane; Fatty Acids; Fluorescence; Glutathione; Hepatocytes; Lipid Metabolism; Lipid Peroxides; Male; Phosphatidylcholines; Phosphatidylethanolamines; Phosphatidylserines; Rats; Rats, Wistar; Reactive Oxygen Species; Resveratrol; Sphingolipids; Stilbenes

2014
Nutritional aspects of β-carotene and resveratrol antioxidant synergism in giant unilamellar vesicles.
    Food & function, 2014, Jul-25, Volume: 5, Issue:7

    Topics: Antioxidants; beta Carotene; Glycine max; Image Processing, Computer-Assisted; Microscopy, Fluorescence; Oxidative Stress; Phosphatidylcholines; Resveratrol; Stilbenes; Unilamellar Liposomes

2014
Viscosity heterogeneity inside lipid bilayers of single-component phosphatidylcholine liposomes observed with picosecond time-resolved fluorescence spectroscopy.
    The journal of physical chemistry. B, 2014, Jul-24, Volume: 118, Issue:29

    Topics: Cell Membrane; Lipid Bilayers; Liposomes; Phosphatidylcholines; Rotation; Solubility; Spectrometry, Fluorescence; Stereoisomerism; Stilbenes; Temperature; Time Factors; Viscosity

2014
Phosphatidylcholine Specific PLC-Induced Dysregulation of Gap Junctions, a Robust Cellular Response to Environmental Toxicants, and Prevention by Resveratrol in a Rat Liver Cell Model.
    PloS one, 2015, Volume: 10, Issue:5

    Topics: Animals; Bridged-Ring Compounds; Butadienes; Cell Line; Gap Junctions; Nitriles; Norbornanes; Phosphatidylcholines; Principal Component Analysis; Rats; Rats, Inbred F344; Resveratrol; Stilbenes; Thiocarbamates; Thiones; Type C Phospholipases

2015
New Insights on the Biophysical Interaction of Resveratrol with Biomembrane Models: Relevance for Its Biological Effects.
    The journal of physical chemistry. B, 2015, Sep-03, Volume: 119, Issue:35

    Topics: Antineoplastic Agents, Phytogenic; Cardiotonic Agents; Cholesterol; Lipid Bilayers; Liposomes; Membrane Fluidity; Molecular Structure; Neuroprotective Agents; Phosphatidylcholines; Resveratrol; Spectrophotometry; Sphingomyelins; Stilbenes

2015
Resveratrol induces ordered domains formation in biomembranes: Implication for its pleiotropic action.
    Biochimica et biophysica acta, 2016, Volume: 1858, Issue:1

    Topics: Animals; Chickens; Cholesterol; Cyclic N-Oxides; Diphenylhexatriene; Fluorescence Resonance Energy Transfer; Fluorescent Dyes; Lipid Bilayers; Liposomes; Membrane Microdomains; Octoxynol; Phosphatidylcholines; Resveratrol; Sphingomyelins; Stilbenes; Thermodynamics

2016
Resveratrol Interaction with Lipid Bilayers: A Synchrotron X-ray Scattering Study.
    Langmuir : the ACS journal of surfaces and colloids, 2016, Dec-06, Volume: 32, Issue:48

    Topics: Animals; Cattle; Cholesterol; Egg Yolk; Lipid Bilayers; Phosphatidylcholines; Resveratrol; Scattering, Small Angle; Sheep; Sphingomyelins; Stilbenes; Synchrotrons; X-Ray Diffraction

2016
Enhancement of
    Die Pharmazie, 2017, Apr-01, Volume: 72, Issue:4

    Topics: Adult; Anti-Inflammatory Agents; Antioxidants; Chemistry, Pharmaceutical; Drug Stability; Emulsions; Female; Humans; Hydrogels; Lipids; Male; Microscopy; Microspheres; Phosphatidylcholines; Photolysis; Resveratrol; Skin Cream; Stilbenes; Surface-Active Agents; Triglycerides; Young Adult

2017
Energy Transfer Characteristics of Lipid Bilayer Membranes of Liposomes Examined with Picosecond Time-Resolved Raman Spectroscopy.
    The journal of physical chemistry. B, 2023, 08-03, Volume: 127, Issue:30

    Topics: Lipid Bilayers; Liposomes; Phosphatidylcholines; Phospholipids; Spectrum Analysis, Raman; Stilbenes

2023