mannitol has been researched along with diazoxide in 13 studies
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 3 (23.08) | 18.7374 |
1990's | 0 (0.00) | 18.2507 |
2000's | 3 (23.08) | 29.6817 |
2010's | 7 (53.85) | 24.3611 |
2020's | 0 (0.00) | 2.80 |
Authors | Studies |
---|---|
González-Díaz, H; Orallo, F; Quezada, E; Santana, L; Uriarte, E; Viña, D; Yáñez, M | 1 |
Barnes, JC; Bradley, P; Day, NC; Fourches, D; Reed, JZ; Tropsha, A | 1 |
García-Mera, X; González-Díaz, H; Prado-Prado, FJ | 1 |
Chen, M; Hu, C; Suzuki, A; Thakkar, S; Tong, W; Yu, K | 1 |
Hellman, B; Sehlin, J; Täljedal, IB | 1 |
Greene, JA | 1 |
Griswold, WR; James, HE; Mendoza, SA; Viney, J | 1 |
Kevelaitis, E; Menasché, P; Mouas, C; Oubenaissa, A; Peynet, J | 2 |
Han, F; Mandal, A; Rao, GN; Xu, L; Zhang, X | 1 |
Chen, WL; Chen, YY; Shen, YL; Xu, HJ; Yang, F; Yu, GW; Zheng, MZ | 1 |
Aliaga, S; Chantala, K; Clark, RH; Herring, AH; Hornik, CP; Hughes, R; Laughon, MM; Smith, PB | 1 |
Chiovato, LM; de Campos Lima, T; Lemes, JBP; Lotufo, CMDC; Santos, DO | 1 |
1 review(s) available for mannitol and diazoxide
Article | Year |
---|---|
DILIrank: the largest reference drug list ranked by the risk for developing drug-induced liver injury in humans.
Topics: Chemical and Drug Induced Liver Injury; Databases, Factual; Drug Labeling; Humans; Pharmaceutical Preparations; Risk | 2016 |
12 other study(ies) available for mannitol and diazoxide
Article | Year |
---|---|
Quantitative structure-activity relationship and complex network approach to monoamine oxidase A and B inhibitors.
Topics: Computational Biology; Drug Design; Humans; Isoenzymes; Molecular Structure; Monoamine Oxidase; Monoamine Oxidase Inhibitors; Quantitative Structure-Activity Relationship | 2008 |
Cheminformatics analysis of assertions mined from literature that describe drug-induced liver injury in different species.
Topics: Animals; Chemical and Drug Induced Liver Injury; Cluster Analysis; Databases, Factual; Humans; MEDLINE; Mice; Models, Chemical; Molecular Conformation; Quantitative Structure-Activity Relationship | 2010 |
Multi-target spectral moment QSAR versus ANN for antiparasitic drugs against different parasite species.
Topics: Antiparasitic Agents; Molecular Structure; Neural Networks, Computer; Parasitic Diseases; Quantitative Structure-Activity Relationship; Species Specificity; Thermodynamics | 2010 |
Calcium uptake by pancreatic -cells as measured with the aid of 45 Ca and mannitol- 3 H.
Topics: Animals; Biological Transport, Active; Calcium; Calcium Isotopes; Diazoxide; Dinitrophenols; Female; Glucose; Heptoses; Hyperglycemia; In Vitro Techniques; Insulin; Insulin Secretion; Islets of Langerhans; Male; Mannitol; Mice; Obesity; Osmolar Concentration; Phlorhizin; Potassium; Sodium; Subcellular Fractions; Tritium | 1971 |
Effects of diazoxide on renal function in the dog.
Topics: Animals; Creatine; Diazoxide; Diuresis; Dogs; Female; Glomerular Filtration Rate; Inulin; Kidney; Male; Mannitol; Natriuresis | 1967 |
Intracranial pressure monitoring in severe hypertensive encephalopathy.
Topics: Adolescent; Brain Diseases; Brain Edema; Cerebral Hemorrhage; Child; Cockayne Syndrome; Dexamethasone; Diazoxide; Humans; Hypertension; Intracranial Pressure; Male; Mannitol; Monitoring, Physiologic; Nitroprusside; Respiration, Artificial | 1981 |
Opening of mitochondrial potassium channels: a new target for graft preservation strategies?
Topics: Analysis of Variance; Animals; Diazoxide; Disaccharides; Edema; Electrolytes; Endothelium, Vascular; Glutamates; Glutathione; Heart; Histidine; In Vitro Techniques; Ion Channel Gating; Mannitol; Mitochondria, Heart; Myocardial Contraction; Organ Preservation Solutions; Potassium Channels; Rats; Ventricular Function, Left | 2000 |
Ischemic preconditioning with opening of mitochondrial adenosine triphosphate-sensitive potassium channels or Na/H exchange inhibition: which is the best protective strategy for heart transplants?
Topics: Adenosine Triphosphate; Animals; Anti-Arrhythmia Agents; Coronary Circulation; Creatine Kinase; Diazoxide; Disaccharides; Electrolytes; Glutamates; Glutathione; Guanidines; Heart Arrest, Induced; Heart Transplantation; Histidine; In Vitro Techniques; Ischemic Preconditioning, Myocardial; Male; Mannitol; Mitochondria, Heart; Myocardial Contraction; Myocardial Ischemia; Organ Preservation; Organ Preservation Solutions; Potassium Channels; Rats; Rats, Wistar; Sodium-Potassium-Exchanging ATPase; Sulfones; Transplantation, Homologous; Vasodilator Agents | 2001 |
Diazoxide attenuates hypothermic preservation-induced renal injury via down-regulation of CHOP and caspase-12.
Topics: Acute Kidney Injury; Animals; Apoptosis; Caspase 12; Cryoprotective Agents; Diazoxide; Disaccharides; Down-Regulation; Electrolytes; Epithelial Cells; Glutamates; Glutathione; Histidine; Hypothermia; Kidney Tubules; Male; Malondialdehyde; Mannitol; Models, Animal; Organ Preservation Solutions; Oxidative Stress; Rats; Rats, Sprague-Dawley; Superoxide Dismutase; Transcription Factor CHOP | 2010 |
Heat shock protein 90 mediates anti-apoptotic effect of diazoxide by preventing the cleavage of Bid in hypothermic preservation rat hearts.
Topics: Animals; Apoptosis; BH3 Interacting Domain Death Agonist Protein; Cold Temperature; Connexin 43; Diazoxide; Disaccharides; Electrolytes; Glutamates; Glutathione; Heart Transplantation; Histidine; HSP90 Heat-Shock Proteins; Male; Mannitol; Mitochondria, Heart; Models, Animal; Myocardium; Organ Preservation; Organ Preservation Solutions; Rats; Rats, Sprague-Dawley; Time Factors | 2011 |
Diuretic exposure in premature infants from 1997 to 2011.
Topics: Acetazolamide; Amiloride; Bronchopulmonary Dysplasia; Chlorothiazide; Cohort Studies; Diazoxide; Diuretics; Drug Therapy, Combination; Ethacrynic Acid; Female; Furosemide; Humans; Hydrochlorothiazide; Infant, Extremely Premature; Infant, Newborn; Infant, Premature; Male; Mannitol; Metolazone; Off-Label Use; Respiration, Artificial; Retrospective Studies; Spironolactone; Thrombocytopenia | 2015 |
Hyperglycemia induces mechanical hyperalgesia and depolarization of the resting membrane potential of primary nociceptive neurons: Role of ATP-sensitive potassium channels.
Topics: Animals; Diazoxide; Diuretics; Ganglia, Spinal; Hyperalgesia; Hyperglycemia; KATP Channels; Male; Mannitol; Membrane Potentials; Nociceptors; Osmolar Concentration; Peripheral Nervous System Diseases; Primary Cell Culture; Rats; Rats, Wistar; Sensory Receptor Cells | 2019 |