Page last updated: 2024-08-18

sarin and diazepam

sarin has been researched along with diazepam in 10 studies

Research

Studies (10)

TimeframeStudies, this research(%)All Research%
pre-19902 (20.00)18.7374
1990's3 (30.00)18.2507
2000's1 (10.00)29.6817
2010's4 (40.00)24.3611
2020's0 (0.00)2.80

Authors

AuthorsStudies
Bokonjić, D; Rosić, N1
Inns, RH; Leadbeater, L; Rylands, JM1
Rylands, JM1
Koplovitz, I; Stewart, JR1
Das Gupta, S; Pant, SC; Vijayaraghavan, R1
Breton, P; Buée, J; Calvet, JH; Christin, D; Delamanche, S; Taysse, L1
Dillman, JF; Lumley, LA; Meyerhoff, JL; Robison, CL; Spradling, KD2
Buchanan, S; Dippenaar, N; Laher, AE; Simo, NCT; Watermeyer, MJ1
Ardinger, C; Dunn, E; Haines, K; Lee-Stubbs, R; Matson, L; McCarren, H; McDonough, J; Miller-Smith, S; Whitten, K1

Other Studies

10 other study(ies) available for sarin and diazepam

ArticleYear
Anticonvulsive and protective effects of diazepam and midazolam in rats poisoned by highly toxic organophosphorus compounds.
    Arhiv za higijenu rada i toksikologiju, 1991, Volume: 42, Issue:4

    Topics: Animals; Anticonvulsants; Chemical Warfare Agents; Cholinesterase Inhibitors; Diazepam; Male; Midazolam; Organophosphorus Compounds; Organothiophosphorus Compounds; Rats; Rats, Inbred Strains; Sarin; Soman

1991
Treatment of poisoning by soman.
    Fundamental and applied toxicology : official journal of the Society of Toxicology, 1985, Volume: 5, Issue:6 Pt 2

    Topics: Animals; Antidotes; Atropine; Carbamates; Diazepam; Guinea Pigs; Male; Motor Activity; Organophosphate Poisoning; Parasympatholytics; Phenylpropionates; Physostigmine; Pyridostigmine Bromide; Sarin; Soman; Time Factors

1985
A swimming test for assessing effects of drugs upon motor performance in the guinea-pig (Cavia porcellus).
    Neuropharmacology, 1982, Volume: 21, Issue:11

    Topics: Acetylcholinesterase; Amphetamine; Animals; Cholinesterase Inhibitors; Diazepam; Ethanol; Guinea Pigs; Motor Activity; Sarin; Swimming; Time Factors

1982
A comparison of the efficacy of HI6 and 2-PAM against soman, tabun, sarin, and VX in the rabbit.
    Toxicology letters, 1994, Feb-15, Volume: 70, Issue:3

    Topics: Animals; Antidotes; Atropine; Chemical Warfare Agents; Cholinesterase Inhibitors; Cholinesterase Reactivators; Diazepam; Lethal Dose 50; Male; Organophosphate Poisoning; Organophosphates; Organophosphorus Compounds; Organothiophosphorus Compounds; Oximes; Poisoning; Pralidoxime Compounds; Pyridinium Compounds; Pyridostigmine Bromide; Rabbits; Sarin; Soman; Specific Pathogen-Free Organisms

1994
Sarin induced lung pathology and protection by standard therapy regime.
    Biomedical and environmental sciences : BES, 1993, Volume: 6, Issue:2

    Topics: Animals; Atropine; Cholinesterase Reactivators; Diazepam; Environmental Exposure; Lung; Male; Pralidoxime Compounds; Rats; Sarin

1993
Comparative efficacy of diazepam and avizafone against sarin-induced neuropathology and respiratory failure in guinea pigs: influence of atropine dose.
    Toxicology, 2003, Jun-30, Volume: 188, Issue:2-3

    Topics: Animals; Anticonvulsants; Atropine; Brain; Chemical Warfare Agents; Cholinesterase Inhibitors; Diazepam; Dipeptides; Drug Interactions; Electroencephalography; Guinea Pigs; Histocytochemistry; Muscarinic Antagonists; Nervous System Diseases; Pralidoxime Compounds; Prodrugs; Pyridostigmine Bromide; Respiratory Insufficiency; Sarin; Seizures

2003
Transcriptional analysis of rat piriform cortex following exposure to the organophosphonate anticholinesterase sarin and induction of seizures.
    Journal of neuroinflammation, 2011, Jul-21, Volume: 8

    Topics: Animals; Anticonvulsants; Atropine; Brain; Cholinesterase Inhibitors; Cholinesterase Reactivators; Diazepam; Gene Expression Profiling; Gene Expression Regulation; Gene Regulatory Networks; Humans; Male; Microarray Analysis; Muscarinic Antagonists; Pralidoxime Compounds; Principal Component Analysis; Rats; Rats, Sprague-Dawley; Sarin; Seizures; Signal Transduction; Transcription, Genetic

2011
Transcriptional responses of the nerve agent-sensitive brain regions amygdala, hippocampus, piriform cortex, septum, and thalamus following exposure to the organophosphonate anticholinesterase sarin.
    Journal of neuroinflammation, 2011, Jul-21, Volume: 8

    Topics: Amygdala; Animals; Anticonvulsants; Atropine; Cerebral Cortex; Chemical Warfare Agents; Cholinesterase Inhibitors; Diazepam; Gene Expression Profiling; Gene Regulatory Networks; Hippocampus; Interleukin-1beta; Interleukin-6; Male; Microarray Analysis; Muscarinic Antagonists; Oximes; Principal Component Analysis; Pyridines; Rats; Rats, Sprague-Dawley; Sarin; Seizures; Septum of Brain; Thalamus; Transcription, Genetic; Tumor Necrosis Factor-alpha

2011
Essential Lessons in a Potential Sarin Attack Disaster Plan for a Resource-Constrained Environment.
    Disaster medicine and public health preparedness, 2018, Volume: 12, Issue:2

    Topics: Anticonvulsants; Atropine; Chemical Terrorism; Developing Countries; Diazepam; Health Resources; Humans; Mass Casualty Incidents; Muscarinic Antagonists; Personal Protective Equipment; Sarin

2018
Evaluation of first-line anticonvulsants to treat nerve agent-induced seizures and prevent neuropathology in adult and pediatric rats.
    Neurotoxicology, 2019, Volume: 74

    Topics: Aging; Animals; Animals, Newborn; Anticonvulsants; Diazepam; Dose-Response Relationship, Drug; Electrocorticography; Female; Male; Midazolam; Nerve Agents; Nervous System Diseases; Neuroprotective Agents; Organothiophosphorus Compounds; Pregnancy; Rats; Rats, Sprague-Dawley; Sarin; Seizures; Status Epilepticus

2019