Quantitative relationships of structure-activity and volume fraction for selected nonpolar and polar narcotic chemicals.
暂无分享,去创建一个
[1] W. R. Lieb,et al. Mechanisms of general anesthesia. , 1990, Environmental health perspectives.
[2] L. J. Mullins,et al. Some Physical Mechanisms in Narcosis. , 1954 .
[3] S. Bradbury,et al. Fish acute toxicity syndromes and their use in the QSAR approach to hazard assessment. , 1987, Environmental health perspectives.
[4] Christine L. Russom,et al. Behavioral toxicity syndromes: A promising tool for assessing toxicity mechanisms in juvenile fathead minnows , 1990 .
[5] T W Schultz,et al. Relationships of quantitative structure-activity to comparative toxicity of selected phenols in the Pimephales promelas and Tetrahymena pyriformis test systems. , 1986, Ecotoxicology and environmental safety.
[6] T. Wayne Schultz,et al. Structure-toxicity relationships for nonpolar narcotics: A comparison of data from the tetrahymena, photobacterium and pimephales systems , 1990, Bulletin of environmental contamination and toxicology.
[7] J. Hermens,et al. Toxicokinetics of aromatic amines in guppy, Poecilia reticulata. , 1991, The Science of the total environment.
[8] Y. P. Handa,et al. Volume changes on mixing two liquids: A review of the experimental techniques and the literature data☆ , 1979 .
[9] Richard W. Carlson,et al. Polar Narcosis in Aquatic Organisms , 1989 .
[10] G. Veith,et al. Rules for distinguishing toxicants that cause type I and type II narcosis syndromes. , 1990, Environmental health perspectives.
[11] Norman T. J. Bailey,et al. Statistical Methods in Biology. , 1960 .
[12] D Weininger,et al. SMILES: a line notation and computerized interpreter for chemical structures. , 1987 .
[13] K. Miller,et al. The pressure reversal of general anesthesia and the critical volume hypothesis. , 1973, Molecular pharmacology.
[14] Gilman D. Veith,et al. Structure–Toxicity Relationships for the Fathead Minnow, Pimephales promelas: Narcotic Industrial Chemicals , 1983 .
[15] George A. F. Seber,et al. Linear regression analysis , 1977 .
[16] J. Jaworska,et al. Comparative toxicity and structure-activity inChlorella andTetrahymena: Monosubstituted phenols , 1991, Bulletin of environmental contamination and toxicology.
[17] J. S. Rowlinson,et al. Molecular Thermodynamics of Fluid-Phase Equilibria , 1969 .
[18] D. Mackay,et al. “Volume fraction” correlation for narcosis in aquatic organisms: The key role of partitioning , 1988 .
[19] T W Schultz,et al. Relationships of quantitative structure-activity for normal aliphatic alcohols. , 1990, Ecotoxicology and environmental safety.
[20] John Ferguson,et al. The Use of Chemical Potentials as Indices of Toxicity , 1939 .
[21] D. Hawker,et al. Comparison of the critical concentration and critical volume hypotheses to model non-specific toxicity of individual compounds. , 1991, Toxicology.
[22] H. Könemann,et al. Fish toxicity tests with mixtures of more than two chemicals: a proposal for a quantitative approach and experimental results. , 1981, Toxicology.
[23] Gerald J. Niemi,et al. Use of respiratory‐cardiovascular responses of rainbow trout (Salmo gairdneri) in identifying acute toxicity syndromes in fish: Part 3. Polar narcotics , 1989 .
[24] Robert L. Lifnick. Hans Horst Meyer and the lipoid theory of narcosis. , 1989 .
[25] Robert L. Lipnick,et al. Charles Ernest Overton: narcosis studies and a contribution to general pharmacology , 1986 .
[26] Gilman D. Veith,et al. Structure-Toxicity Relationships for Industrial Chemicals Causing Type (II) Narcosis Syndrome , 1987 .
[27] M. D. Kahl,et al. Acute toxicity of organic chemical mixtures to the fathead minnow , 1985 .
[28] P. Seeman,et al. The membrane actions of anesthetics and tranquilizers. , 1972, Pharmacological reviews.