chloramphenicol has been researched along with hydrazine in 12 studies
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 6 (50.00) | 18.7374 |
1990's | 3 (25.00) | 18.2507 |
2000's | 2 (16.67) | 29.6817 |
2010's | 1 (8.33) | 24.3611 |
2020's | 0 (0.00) | 2.80 |
Authors | Studies |
---|---|
Glen, RC; Lowe, R; Mitchell, JB | 1 |
Broderick, GA | 1 |
Gloor, B | 1 |
Pine, MJ | 1 |
Fishbain, D; Kushner, DJ; Ling, G | 1 |
Chenouda, MS; Osman, HG | 1 |
Kamen, MD; Yamashita, J | 1 |
Adachi, K; Antosiewicz, J; Karbowsky, M; Matsuhashi, T; Wakabayashi, T; Wozniak, M | 1 |
Karbowski, M; Kurono, C; Nishizawa, Y; Soji, T; Teranishi, Ma; Usukura, J; Wakabayashi, T | 1 |
Karbowski, M; Kurono, C; Soji, T; Teranishi, M; Wakabayashi, T | 1 |
Karbowski, M; Kurono, C; Soji, T; Spodonik, JH; Teranishi, M; Wakabayashi, T | 1 |
Broderick, GA; Murphy, ML; Udén, P | 1 |
12 other study(ies) available for chloramphenicol and hydrazine
Article | Year |
---|---|
Predicting phospholipidosis using machine learning.
Topics: Animals; Artificial Intelligence; Databases, Factual; Drug Discovery; Humans; Lipidoses; Models, Biological; Phospholipids; Support Vector Machine | 2010 |
Determination of protein degradation rates using a rumen in vitro system containing inhibitors of microbial nitrogen metabolism.
Topics: Animals; Azo Compounds; Caseins; Cattle; Chloramphenicol; Coloring Agents; Dietary Proteins; Female; Glycine max; Hydrazines; In Vitro Techniques; Nitrogen; Protein Hydrolysates; Rumen; Serum Albumin, Bovine | 1987 |
[Eye and toxicology of new pharmacologic agents].
Topics: Adrenal Cortex Hormones; Anesthetics, Local; Carbonic Anhydrase Inhibitors; Chloramphenicol; Chloroquine; Cholinesterase Inhibitors; Eye Diseases; Humans; Hydrazines; Indomethacin; Phenothiazines | 1969 |
Studies on the antimicrobial action of terephthalanilide and related drugs.
Topics: Amino Acids; Anilides; Antiprotozoal Agents; Bacterial Proteins; Carbon Isotopes; Cell Membrane Permeability; Cell-Free System; Chloramphenicol; Chlorine; Dinitrophenols; Escherichia coli; Guanine; Hydrazines; Imidazoles; Isoleucine; Lipids; Oxygen Consumption; Peptide Biosynthesis; Phenylalanine; Protein Binding; Ribosomes; RNA, Bacterial; RNA, Transfer; Spermine; Stilbamidines; Streptomycin; Thiosemicarbazones; Trypanosoma | 1968 |
Isoniazid metabolism and binding by sensitive and resistant strains of Mycobacterium smegmatis.
Topics: Azides; Bacterial Proteins; Carbon Isotopes; Chloramphenicol; Culture Media; Cyanides; Drug Resistance, Microbial; Glycerol; Hydrazines; Hydroxylamines; Isoniazid; Isonicotinic Acids; Mycobacterium; RNA, Messenger; Spectrophotometry; Temperature; Toluene | 1972 |
Biosynthesis of vitamin B 12 by Propionibacterium shermanii. V. Interrelationship between vitamin B 12 and porphyrin synthesis.
Topics: Agar; Amino Acids; Azaguanine; Azides; Chloramphenicol; Cobalt; Culture Media; Depression, Chemical; Dinitrophenols; Glucose; Hydrazines; Iron; Levulinic Acids; Malonates; Peptones; Porphyrins; Propionibacterium; Saccharomyces; Stimulation, Chemical; Vitamin B 12; Xanthines | 1971 |
Uracil incorporation and photopigment synthesis in Rhodospirillum rubrum.
Topics: Antimycin A; Bacterial Proteins; Carbon Isotopes; Centrifugation, Density Gradient; Chloramphenicol; Chlorophyll; Chromatography, Ion Exchange; Cyanides; Darkness; Dinitrophenols; Fluorouracil; Hydrazines; Kinetics; Light; Mitomycins; Puromycin; Quinolines; Rhodospirillum; Ribosomes; RNA, Bacterial; RNA, Transfer; Time Factors; Tritium; Uracil | 1969 |
Suppression of the formation of megamitochondria by scavengers for free radicals.
Topics: Allopurinol; Animals; Body Weight; Chloramphenicol; Coenzymes; Cyclic N-Oxides; Depression, Chemical; Enzyme Inhibitors; Ethanol; Free Radical Scavengers; Hydrazines; Lipid Peroxidation; Male; Malondialdehyde; Membrane Fusion; Mitochondria, Liver; Purines; Rats; Rats, Wistar; Spin Labels; Ubiquinone; Vitamin E; Xanthine Oxidase | 1997 |
Effects of coenzyme Q10 on changes in the membrane potential and rate of generation of reactive oxygen species in hydrazine- and chloramphenicol-treated rat liver mitochondria.
Topics: Animals; Apoptosis; Chloramphenicol; Coenzymes; Cycloheximide; Free Radical Scavengers; Hydrazines; Male; Membrane Potentials; Mitochondria, Liver; Rats; Rats, Wistar; Reactive Oxygen Species; Ubiquinone | 1999 |
Two types of the enlargement of mitochondria related to apoptosis: simple swelling and the formation of megamitochondria.
Topics: Animals; Apoptosis; Cells, Cultured; Chloramphenicol; Cytochromes; Flow Cytometry; Hydrazines; Hypotonic Solutions; Liver; Male; Membrane Potentials; Microscopy, Electron; Mitochondria, Liver; Mitochondrial Swelling; Rats; Rats, Wistar; Reactive Oxygen Species | 1999 |
Swelling of free-radical-induced megamitochondria causes apoptosis.
Topics: Animals; Apoptosis; Cells, Cultured; Chloramphenicol; Cytochromes; Flow Cytometry; Free Radicals; Hydrazines; Liver; Male; Membrane Potentials; Mice; Microscopy, Electron; Mitochondria, Liver; Mitochondrial Swelling; Rats; Rats, Wistar; Reactive Oxygen Species | 2000 |
Effect of inhibitor concentration and end-product accumulation on estimates of ruminal in vitro protein degradation.
Topics: Amino Acids; Ammonia; Animals; Anti-Bacterial Agents; Bacteria; Caseins; Cattle; Chloramphenicol; Dietary Proteins; Dose-Response Relationship, Drug; Fermentation; Glycine max; Hydrazines; In Vitro Techniques; Kinetics; Nitrogen; Peptides; Protein Synthesis Inhibitors; Rumen | 2004 |