Page last updated: 2024-08-17

chloroform and 1,1,2-trichloroethane

chloroform has been researched along with 1,1,2-trichloroethane in 7 studies

Research

Studies (7)

TimeframeStudies, this research(%)All Research%
pre-19901 (14.29)18.7374
1990's2 (28.57)18.2507
2000's3 (42.86)29.6817
2010's1 (14.29)24.3611
2020's0 (0.00)2.80

Authors

AuthorsStudies
Famini, GR; Wilson, LY1
Benigni, R; Cotta-Ramusino, M; Gallo, G; Giorgi, F1
Bianucci, AM; Carli, N; Coi, A; Imbriani, M; Massarelli, I; Saraceno, M1
Brendel, K; Byard, JL; DiRenzo, AB; Gandolfi, AJ; Sipes, IG1
Fedi, S; Frascari, D; Nocentini, M; Pii, Y; Pinelli, D; Zannoni, A; Zannoni, D1
Fedi, S; Frascari, D; Nocentini, M; Pii, Y; Pinelli, D; Zannoni, D1
Ertan, H; Holland, SI; Lee, M; Manefield, M; Wong, YK1

Reviews

1 review(s) available for chloroform and 1,1,2-trichloroethane

ArticleYear
Using theoretical descriptors in quantitative structure-activity relationships: some toxicological indices.
    Journal of medicinal chemistry, 1991, Volume: 34, Issue:5

    Topics: Animals; Computers; Lethal Dose 50; Models, Theoretical; Structure-Activity Relationship; Toxicology

1991

Other Studies

6 other study(ies) available for chloroform and 1,1,2-trichloroethane

ArticleYear
Molecular similarity matrices and quantitative structure-activity relationships: a case study with methodological implications.
    Journal of medicinal chemistry, 1995, Feb-17, Volume: 38, Issue:4

    Topics: Aneuploidy; Aspergillus nidulans; Hydrocarbons, Halogenated; Models, Chemical; Molecular Conformation; Mutagens; Structure-Activity Relationship

1995
Development of QSAR models for predicting hepatocarcinogenic toxicity of chemicals.
    European journal of medicinal chemistry, 2009, Volume: 44, Issue:9

    Topics: Algorithms; Animals; Artificial Intelligence; Carcinogenicity Tests; Carcinogens; Databases, Factual; Liver; Models, Chemical; Quantitative Structure-Activity Relationship

2009
Effect of O2 tension on the bioactivation and metabolism of aliphatic halides by primary rat-hepatocyte cultures.
    Xenobiotica; the fate of foreign compounds in biological systems, 1984, Volume: 14, Issue:7

    Topics: Animals; Biotransformation; Carbon Tetrachloride; Cells, Cultured; Chloroform; Halothane; Hydrocarbons, Chlorinated; Kinetics; Liver; Male; Oxygen; Rats; Rats, Inbred Strains; Trichloroethanes

1984
Aerobic cometabolism of chloroform by butane-grown microorganisms: long-term monitoring of depletion rates and isolation of a high-performing strain.
    Biodegradation, 2005, Volume: 16, Issue:2

    Topics: Aerobiosis; Bacteria, Aerobic; Biotransformation; Butanes; Chloroform; Environmental Pollutants; Hydrocarbons, Chlorinated; Kinetics; Trichloroethanes; Vinyl Chloride

2005
Chloroform degradation by butane-grown cells of Rhodococcus aetherovorans BCP1.
    Applied microbiology and biotechnology, 2006, Volume: 73, Issue:2

    Topics: Binding, Competitive; Biodegradation, Environmental; Biomass; Biotechnology; Butanes; Chloroform; Dichloroethylenes; Dose-Response Relationship, Drug; Hexanes; Kinetics; Metabolic Networks and Pathways; Rhodococcus; Trichloroethanes; Vinyl Chloride

2006
Isolation and characterization of Dehalobacter sp. strain UNSWDHB capable of chloroform and chlorinated ethane respiration.
    Environmental microbiology, 2016, Volume: 18, Issue:9

    Topics: Chloroform; Ethane; Ethylene Dichlorides; Halogenation; Methylene Chloride; Peptococcaceae; Trichloroethanes

2016