thioctic acid has been researched along with s-adenosylmethionine in 14 studies
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 0 (0.00) | 18.7374 |
1990's | 0 (0.00) | 18.2507 |
2000's | 7 (50.00) | 29.6817 |
2010's | 4 (28.57) | 24.3611 |
2020's | 3 (21.43) | 2.80 |
Authors | Studies |
---|---|
Birkler, RID; Corydon, TJ; Fernandez-Guerra, P; Gregersen, N; Hansen, J; Nochi, Z; Olsen, RKJ; Wibrand, F | 1 |
Ashley, GW; Broderick, JB; Busby, RW; Cheek, J; Cronan, JE; Henshaw, TF; Jordan, SW; Marletta, MA; Miller, JR | 1 |
Booker, SJ; Frey, PA | 1 |
Baleanu-Gogonea, C; Booker, SJ; Cicchillo, RM; Iwig, DF; Jones, AD; Nesbitt, NM; Souder, MG; Tu, L | 1 |
Booker, SJ; Cicchillo, RM | 1 |
Colombatto, S; Grillo, MA | 1 |
Allen, RH; O'Neill, HC; Sekhar, J; Stabler, SP; White, CW | 1 |
Al-muzafar, HM; Amin, KA; Hashem, KS; Taha, EM | 1 |
Bolar, NA; Bruhn, H; Freyer, C; Govaert, P; Jespers, A; Kishita, Y; Kohda, M; Lesko, N; Loeys, BL; Maffezzini, C; Marobbio, CM; Miniero, DV; Monné, M; Mourier, A; Murayama, K; Naess, K; Nennesmo, I; Ohtake, A; Okazaki, Y; Pajak, A; Palmieri, F; Stranneheim, H; Van Laer, L; Wedell, A; Wibom, R; Wredenberg, A | 1 |
Booker, SJ; Landgraf, BJ; McCarthy, EL | 1 |
Hanna, LE; Hassan, S; Krishnamoorthy, E; Padmalayam, I; Rajaram, R; Viswanathan, V | 1 |
Boal, AK; Booker, SJ; Jeyachandran, VR; McCarthy, EL; Pendyala, JV | 1 |
Chen, H; Ishii, Y; Koga, T; Li, RS; Matsuo, Y; Nishida, K; Nishino, T; Sano, H; Takeda, T; Tanaka, Y; Yuan, M | 1 |
4 review(s) available for thioctic acid and s-adenosylmethionine
Article | Year |
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Radical mechanisms of S-adenosylmethionine-dependent enzymes.
Topics: Acetyltransferases; Catalysis; Free Radicals; Intramolecular Transferases; Ribonucleotide Reductases; S-Adenosylmethionine; Sulfurtransferases; Thioctic Acid | 2001 |
Anti-aging products, Part I. Can supplements rewind our body clocks?
Topics: Advertising; Aging; Antioxidants; Coenzymes; Dietary Supplements; Evidence-Based Medicine; Humans; Patient Education as Topic; S-Adenosylmethionine; Superoxide Dismutase; Thioctic Acid; Ubiquinone | 2001 |
S-adenosylmethionine and radical-based catalysis.
Topics: Acyltransferases; Animals; Biotin; Catalysis; Chemistry, Pharmaceutical; Coproporphyrinogen Oxidase; Dimerization; Escherichia coli; Free Radicals; Humans; Models, Chemical; Molybdenum; Ribonucleotide Reductases; S-Adenosylmethionine; Thioctic Acid | 2007 |
Radical S-Adenosylmethionine Enzymes in Human Health and Disease.
Topics: Carbon-Carbon Lyases; Diabetes Mellitus, Type 2; Gene Expression; Heart Defects, Congenital; Histone Acetyltransferases; Humans; Intracellular Signaling Peptides and Proteins; Iron-Sulfur Proteins; Metal Metabolism, Inborn Errors; Mutation; Nerve Tissue Proteins; Neurodegenerative Diseases; Nuclear Proteins; Oxidoreductases; Oxidoreductases Acting on CH-CH Group Donors; Proteins; S-Adenosylmethionine; Thioctic Acid; tRNA Methyltransferases | 2016 |
10 other study(ies) available for thioctic acid and s-adenosylmethionine
Article | Year |
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Increased antioxidant response in medium-chain acyl-CoA dehydrogenase deficiency: does lipoic acid have a protective role?
Topics: Acyl-CoA Dehydrogenase; Antioxidants; Caprylates; Carnitine; Cell Death; Fibroblasts; Genotype; Glycolysis; Humans; Lipid Metabolism, Inborn Errors; Lipid Peroxidation; Mitochondria; Oxidative Stress; Phenotype; Superoxides; Thioctic Acid | 2020 |
Escherichia coli LipA is a lipoyl synthase: in vitro biosynthesis of lipoylated pyruvate dehydrogenase complex from octanoyl-acyl carrier protein.
Topics: Acyl Carrier Protein; Acylation; Bacterial Proteins; Cloning, Molecular; Dithionite; Escherichia coli; Iron; Iron-Sulfur Proteins; Models, Chemical; Oxidation-Reduction; Protein Processing, Post-Translational; Pyruvate Dehydrogenase Complex; S-Adenosylmethionine; Sulfur; Thioctic Acid | 2000 |
Lipoyl synthase requires two equivalents of S-adenosyl-L-methionine to synthesize one equivalent of lipoic acid.
Topics: Bacterial Proteins; Chromatography, Liquid; Deoxyadenosines; Escherichia coli; Hydrogen; Mass Spectrometry; Protein Engineering; S-Adenosylmethionine; Thioctic Acid | 2004 |
Mechanistic investigations of lipoic acid biosynthesis in Escherichia coli: both sulfur atoms in lipoic acid are contributed by the same lipoyl synthase polypeptide.
Topics: Bacterial Proteins; Escherichia coli; Escherichia coli Proteins; Gas Chromatography-Mass Spectrometry; S-Adenosylmethionine; Sulfur; Sulfurtransferases; Thioctic Acid | 2005 |
Alpha-lipoic acid induces elevated S-adenosylhomocysteine and depletes S-adenosylmethionine.
Topics: Animals; Antioxidants; Cysteine; Gas Chromatography-Mass Spectrometry; Liver; Male; Methylation; Rats; Rats, Sprague-Dawley; S-Adenosylhomocysteine; S-Adenosylmethionine; Thioctic Acid | 2009 |
Oxidative hepatotoxicity effects of monocrotaline and its amelioration by lipoic acid, S-adenosyl methionine and vitamin E.
Topics: Animals; Antioxidants; Chemical and Drug Induced Liver Injury; Monocrotaline; Oxidants; Oxidative Stress; Oxidoreductases; Rats; S-Adenosylmethionine; Thioctic Acid; Vitamin E | 2014 |
Intra-mitochondrial Methylation Deficiency Due to Mutations in SLC25A26.
Topics: Amino Acid Sequence; Amino Acid Transport Systems; Calcium-Binding Proteins; Child, Preschool; DNA Methylation; Female; Humans; Male; Mitochondrial Diseases; Molecular Sequence Data; Muscle Weakness; Mutation; Pedigree; Prognosis; RNA Stability; S-Adenosylmethionine; Sequence Homology, Amino Acid; Thioctic Acid; Ubiquinone | 2015 |
Homology modeling of Homo sapiens lipoic acid synthase: Substrate docking and insights on its binding mode.
Topics: Catalytic Domain; Computational Biology; Humans; Models, Molecular; Molecular Docking Simulation; Molecular Dynamics Simulation; Protein Binding; S-Adenosylmethionine; Sequence Homology, Amino Acid; Structural Homology, Protein; Sulfurtransferases; Thioctic Acid | 2017 |
Biochemical Approaches to Probe the Role of the Auxiliary Iron-Sulfur Cluster of Lipoyl Synthase from Mycobacterium Tuberculosis.
Topics: Carrier Proteins; Escherichia coli; Escherichia coli Proteins; Humans; Iron; Iron-Sulfur Proteins; Lipid Metabolism; Lipids; Mycobacterium tuberculosis; S-Adenosylmethionine; Sulfur; Thioctic Acid | 2021 |
α-Lipoic acid eliminates dioxin-induced offspring sexual immaturity by improving abnormalities in folic acid metabolism.
Topics: Animals; Female; Fetus; Folic Acid; Hypothalamus; Male; Maternal Exposure; Polychlorinated Dibenzodioxins; Pregnancy; Prenatal Exposure Delayed Effects; Rats; Reproduction; S-Adenosylmethionine; Sex Characteristics; Sexual Development; Thioctic Acid | 2023 |