Page last updated: 2024-08-21

malondialdehyde and aspartame

malondialdehyde has been researched along with aspartame in 6 studies

Research

Studies (6)

TimeframeStudies, this research(%)All Research%
pre-19900 (0.00)18.7374
1990's1 (16.67)18.2507
2000's0 (0.00)29.6817
2010's4 (66.67)24.3611
2020's1 (16.67)2.80

Authors

AuthorsStudies
Ahouandjivo, R; Baudrimont, I; Creppy, EE1
Abdel-Salam, OM; Ahmed, NA; El-Nagar, ME; El-Shamarka, ME; Hussein, JS; Salem, NA1
Goto, T; Lee, SH; Oe, T; Takahashi, R1
El-Sayed, YS; Lebda, MA; Tohamy, HG1
Erbaş, O; Erdoğan, MA; Eroglu, HA; Gürkan, FT; Khalilnezhad, A; Solmaz, V; Taskiran, D; Yiğittürk, G1
Anbara, H; Kian, M; Razi, M; Sheibani, MT1

Other Studies

6 other study(ies) available for malondialdehyde and aspartame

ArticleYear
Prevention of lipid peroxidation induced by ochratoxin A in Vero cells in culture by several agents.
    Chemico-biological interactions, 1997, Apr-18, Volume: 104, Issue:1

    Topics: Animals; Anti-Inflammatory Agents, Non-Steroidal; Aspartame; Catalase; Chlorocebus aethiops; Chromatography, High Pressure Liquid; Free Radical Scavengers; Lipid Peroxidation; Malondialdehyde; Molecular Structure; Mycotoxins; Ochratoxins; Piroxicam; Reactive Oxygen Species; Superoxide Dismutase; Thiobarbiturates; Vero Cells

1997
Studies on the effects of aspartame on memory and oxidative stress in brain of mice.
    European review for medical and pharmacological sciences, 2012, Volume: 16, Issue:15

    Topics: Animals; Aspartame; Brain; Male; Malondialdehyde; Memory; Mice; Nitric Oxide; Oxidative Stress; Phenylalanine

2012
Angiotensin II modification by decomposition products of linoleic acid-derived lipid hydroperoxide.
    Chemico-biological interactions, 2015, Sep-05, Volume: 239

    Topics: Aldehydes; Angiotensin II; Ascorbic Acid; Aspartame; Carbon Isotopes; Epoxy Compounds; Isomerism; Linoleic Acids; Lipid Peroxides; Malondialdehyde; Spectrometry, Mass, Electrospray Ionization; Tandem Mass Spectrometry

2015
Long-term soft drink and aspartame intake induces hepatic damage via dysregulation of adipocytokines and alteration of the lipid profile and antioxidant status.
    Nutrition research (New York, N.Y.), 2017, Volume: 41

    Topics: Adipokines; Alanine Transaminase; Alkaline Phosphatase; Animals; Antioxidants; Aspartame; Aspartate Aminotransferases; Biomarkers; Carbonated Beverages; Catalase; Glutathione; Glutathione Peroxidase; High Fructose Corn Syrup; Hyperglycemia; Lipid Metabolism; Liver; Male; Malondialdehyde; Metabolic Syndrome; Nutritive Sweeteners; Obesity; Oxidative Stress; PPAR gamma; Rats; Rats, Wistar; Superoxide Dismutase

2017
Evaluation of long-term effects of artificial sweeteners on rat brain: a biochemical, behavioral, and histological study.
    Journal of biochemical and molecular toxicology, 2018, Volume: 32, Issue:6

    Topics: Animals; Aspartame; Avoidance Learning; Blood Glucose; Cell Count; Cognition; Drinking Water; Glial Fibrillary Acidic Protein; Hippocampus; Immunohistochemistry; Lipid Peroxides; Male; Malondialdehyde; Memory; Neurons; Non-Nutritive Sweeteners; Rats, Sprague-Dawley; Saccharin; Sucrose; Weight Gain

2018
Insight into the mechanism of aspartame-induced toxicity in male reproductive system following long-term consumption in mice model.
    Environmental toxicology, 2021, Volume: 36, Issue:2

    Topics: Animals; Antioxidants; Apoptosis; Aspartame; Autophagy-Related Proteins; Caspases; Dose-Response Relationship, Drug; Glutathione Peroxidase; Male; Malondialdehyde; Mice; Oxidative Stress; Spermatogenesis; Superoxide Dismutase; Testis; Testosterone

2021