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Journal of the National Cancer Institute|May 19, 1993
Assessment of the carcinogenic potential of chlorinated water: experimental studies of chlorine, chloramine, and trihalomethanesJ K Dunnick, R L MelnickToxicology|October 28, 1996
Effects of the structure of a toxicokinetic model of butadiene inhalation exposure on computed production of carcinogenic intermediatesM C Kohn, R L MelnickInternational Journal of Occupational and Environmental Health|May 4, 2012
MTBE: recent carcinogenicity studiesKathleen M Burns, Ronald L MelnickEnvironmental Health Perspectives|October 19, 2000
The privileged access model of 1,3-butadiene dispositionM C Kohn, R L MelnickToxicology|January 1, 1985
Effect of phthalate esters on energy coupling and succinate oxidation in rat liver mitochondriaR L Melnick, C M SchillerIARC Scientific Publications|January 1, 1993
1,3-Butadiene induces cancer in experimental animals at all concentrations from 6.25 to 8000 parts per millionR L Melnick, J E HuffBulletin of the World Health Organization|January 1, 1985
Lyophilized combination pools of enterovirus equine antisera: new LBM pools prepared from reserves of antisera stored frozen for two decadesJ L Melnick, I L WimberlyCarcinogenesis|April 1, 1993
Species differences in the production and clearance of 1,3-butadiene metabolites: a mechanistic model indicates predominantly physiological, not biochemical, controlM C Kohn, R L MelnickChemico-Biological Interactions|June 9, 2001
Comparative carcinogenicity of 1,3-butadiene, isoprene, and chloroprene in rats and miceR L Melnick, R C SillsPageof 31