pyrroles has been researched along with phytosterols in 15 studies
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 0 (0.00) | 18.7374 |
1990's | 1 (6.67) | 18.2507 |
2000's | 8 (53.33) | 29.6817 |
2010's | 6 (40.00) | 24.3611 |
2020's | 0 (0.00) | 2.80 |
Authors | Studies |
---|---|
Masuko, A; Mimaki, Y; Mito, K; Nikaido, T; Ohmoto, T; Ori, K; Sashida, Y | 1 |
Gylling, H; Lindbohm, N; Miettinen, TA; Miettinen, TE; Rajaratnam, RA; Relas, H | 1 |
Barrett, PH; Chan, DC; O'Neill, FH; Thompson, GR; Watts, GF | 1 |
Gylling, H; Miettinen, TA | 1 |
De Paepe, B; Laakso, J; Laaksonen, R; Lehtimäki, T; Lütjohann, D; Mattila, KM; Päivä, H; Smet, J; Thelen, KM; Van Coster, R; von Bergmann, K | 1 |
Ho, SS; Pal, S | 1 |
Davidson, MH; Robinson, JG | 1 |
Beugels, I; de Winther, MP; Gijbels, MJ; Mensink, RP; Plat, J | 1 |
Ai, M; Jones, PH; Matthan, NR; Otokozawa, S; Resteghini, NA; Schaefer, EJ; Stein, EA; van Himbergen, TM | 1 |
Ceglarek, U; Farmer, A; Holman, RR; Neil, HA; Paul, S; Thiery, J | 1 |
Eussen, SR; Klungel, OH; Rompelberg, CJ; van Eijkeren, JC | 1 |
Covelli, D; Crisanti, F; De Vuono, S; Lupattelli, G; Mannarino, E; Pirro, M; Roscini, AR; Siepi, D | 1 |
Endo, T; Fukui, K; Himeno, H; Iwahashi, N; Iwasawa, Y; Kimura, K; Kobayashi, S; Mochida, Y; Morita, Y; Okada, K; Sawada, R; Shigemasa, T; Shimizu, M; Shimizu, T; Uchino, K; Umemura, S; Wada, A | 1 |
Aguirre, AC; Amaral, JB; Barbosa, SP; Bianco, HT; Fonseca, FA; França, CN; Izar, MC; Lins, LC; Matos, LN; Santana, JM | 1 |
Boonyawan, D; Mahatheeranont, S; Norkaew, O; Roytrakul, S; Sookwong, P; Yodpitak, S | 1 |
1 review(s) available for pyrroles and phytosterols
Article | Year |
---|---|
Combination therapy with ezetimibe and simvastatin to achieve aggressive LDL reduction.
Topics: Anticholesteremic Agents; Atorvastatin; Azetidines; C-Reactive Protein; Cardiovascular Diseases; Drug Therapy, Combination; Ezetimibe; Heptanoic Acids; Humans; Hydroxymethylglutaryl-CoA Reductase Inhibitors; Hypercholesterolemia; Intestinal Absorption; Lipoproteins, LDL; Phytosterols; Pravastatin; Pyrroles; Simvastatin | 2006 |
8 trial(s) available for pyrroles and phytosterols
Article | Year |
---|---|
Serum noncholesterol sterols during inhibition of cholesterol synthesis by statins.
Topics: Anticholesteremic Agents; Atorvastatin; Cholestanol; Cholesterol; Coronary Disease; Female; Heptanoic Acids; Humans; Male; Middle Aged; Phytosterols; Pyrroles; Simvastatin; Sitosterols; Squalene; Sterols | 2003 |
Effect of a statin on hepatic apolipoprotein B-100 secretion and plasma campesterol levels in the metabolic syndrome.
Topics: Anticholesteremic Agents; Apolipoprotein B-100; Apolipoproteins B; Atorvastatin; Cholesterol; Cholesterol, VLDL; Double-Blind Method; Heptanoic Acids; Humans; Hydroxymethylglutaryl-CoA Reductase Inhibitors; Male; Metabolic Syndrome; Middle Aged; Phytosterols; Pyrroles | 2003 |
High-dose statins and skeletal muscle metabolism in humans: a randomized, controlled trial.
Topics: Adult; Age Factors; Aged; Atorvastatin; Biopsy; Cholesterol; Cholesterol, HDL; Cholesterol, LDL; Citrate (si)-Synthase; Dose-Response Relationship, Drug; Double-Blind Method; Electron Transport; Female; Heptanoic Acids; Humans; Hydroxymethylglutaryl-CoA Reductase Inhibitors; Hypercholesterolemia; Male; Middle Aged; Muscles; Patient Selection; Phytosterols; Pyrroles; Sex Factors; Simvastatin; Sitosterols; Succinate Cytochrome c Oxidoreductase; Time Factors; Ubiquinone | 2005 |
Comparison of the effects of maximal dose atorvastatin and rosuvastatin therapy on cholesterol synthesis and absorption markers.
Topics: Absorption; Adult; Aged; Atorvastatin; Biomarkers; Cholesterol; Diabetes Complications; Female; Fluorobenzenes; Glycated Serum Albumin; Glycation End Products, Advanced; Heptanoic Acids; Humans; Hydroxymethylglutaryl-CoA Reductase Inhibitors; Hyperlipidemias; Lipids; Lipoproteins; Male; Middle Aged; Phytosterols; Pyrimidines; Pyrroles; Rosuvastatin Calcium; Serum Albumin; Sterols; Sulfonamides | 2009 |
Impact of atorvastatin and omega-3 ethyl esters 90 on plasma plant sterol concentrations and cholesterol synthesis in type 2 diabetes: a randomised placebo controlled factorial trial.
Topics: Anticholesteremic Agents; Atorvastatin; Cholesterol; Cholesterol, LDL; Diabetes Mellitus, Type 2; Docosahexaenoic Acids; Double-Blind Method; Drug Combinations; Eicosapentaenoic Acid; Heptanoic Acids; Humans; Lanosterol; Phytosterols; Pyrroles; Triglycerides | 2010 |
Cholesterol metabolism differs after statin therapy according to the type of hyperlipemia.
Topics: Adult; Aged; Atorvastatin; Cholesterol; Cholesterol, LDL; Female; Gas Chromatography-Mass Spectrometry; Heptanoic Acids; Humans; Hydroxymethylglutaryl-CoA Reductase Inhibitors; Hypercholesterolemia; Hyperlipidemia, Familial Combined; Hyperlipidemias; Lipids; Male; Middle Aged; Phytosterols; Pyrroles; Simvastatin; Sitosterols | 2012 |
Long-term effects of ezetimibe-plus-statin therapy on low-density lipoprotein cholesterol levels as compared with double-dose statin therapy in patients with coronary artery disease.
Topics: Aged; Anticholesteremic Agents; Atorvastatin; Azetidines; Biomarkers; Cholesterol; Cholesterol, LDL; Coronary Artery Disease; Drug Administration Schedule; Drug Therapy, Combination; Ezetimibe; Female; Fluorobenzenes; Heptanoic Acids; Humans; Hydroxymethylglutaryl-CoA Reductase Inhibitors; Japan; Male; Middle Aged; Phytosterols; Proprotein Convertase 9; Proprotein Convertases; Prospective Studies; Pyrimidines; Pyrroles; Rosuvastatin Calcium; Serine Endopeptidases; Sulfonamides; Time Factors; Treatment Outcome | 2012 |
Effects of ezetimibe on markers of synthesis and absorption of cholesterol in high-risk patients with elevated C-reactive protein.
Topics: Aged; Anticholesteremic Agents; Atorvastatin; Azetidines; C-Reactive Protein; Cardiovascular Diseases; Cholesterol; Desmosterol; Ezetimibe; Female; Heptanoic Acids; Humans; Hydroxymethylglutaryl-CoA Reductase Inhibitors; Inflammation; Male; Middle Aged; Phytosterols; Prospective Studies; Pyrroles; Risk Factors; Sitosterols; Statistics, Nonparametric | 2013 |
6 other study(ies) available for pyrroles and phytosterols
Article | Year |
---|---|
Jatropham derivatives and steroidal saponins from the bulbs of Lilium hansonii.
Topics: 3',5'-Cyclic-AMP Phosphodiesterases; Carbohydrate Sequence; Magnetic Resonance Spectroscopy; Molecular Sequence Data; Molecular Structure; Phytosterols; Plants; Pyrroles; Saponins | 1992 |
Synthesis and absorption markers of cholesterol in serum and lipoproteins during a large dose of statin treatment.
Topics: Aged; Anticholesteremic Agents; Atorvastatin; Cholesterol; Cholesterol, LDL; Diabetes Mellitus, Type 2; Feces; Heptanoic Acids; Humans; Hypercholesterolemia; Intestinal Absorption; Lipids; Lipoproteins; Liver; Male; Middle Aged; Phytosterols; Pyrroles; Squalene | 2003 |
Margarine phytosterols decrease the secretion of atherogenic lipoproteins from HepG2 liver and Caco2 intestinal cells.
Topics: Anticholesteremic Agents; Apolipoprotein B-100; Apolipoprotein B-48; Apolipoproteins B; Atherosclerosis; Atorvastatin; Caco-2 Cells; Carcinoma, Hepatocellular; Cholesterol; Drug Synergism; Enterocytes; Hepatocytes; Heptanoic Acids; Humans; Liver Neoplasms; Margarine; Phytosterols; Pyrroles; Sitosterols; Stigmasterol | 2005 |
Plant sterol or stanol esters retard lesion formation in LDL receptor-deficient mice independent of changes in serum plant sterols.
Topics: Animals; Anticholesteremic Agents; Atorvastatin; Cholesterol; Coronary Artery Disease; Female; Heptanoic Acids; Male; Mice; Mice, Inbred C57BL; Mice, Knockout; Phytosterols; Pyrroles; Receptors, LDL; Sitosterols | 2006 |
Modelling approach to simulate reductions in LDL cholesterol levels after combined intake of statins and phytosterols/-stanols in humans.
Topics: Algorithms; Atorvastatin; Cholesterol, LDL; Computer Simulation; Dose-Response Relationship, Drug; Drug Synergism; Dyslipidemias; Heptanoic Acids; Humans; Hydroxymethylglutaryl-CoA Reductase Inhibitors; Hypolipidemic Agents; Models, Biological; Phytosterols; Phytotherapy; Pyrroles | 2011 |
Cold plasma treatment to improve germination and enhance the bioactive phytochemical content of germinated brown rice.
Topics: Anthocyanins; Antioxidants; Chromatography, High Pressure Liquid; Germination; Oryza; Phenols; Phytochemicals; Phytosterols; Plant Extracts; Plasma Gases; Pyrroles; Seeds; Tandem Mass Spectrometry; Thailand | 2019 |