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J G Farrelly

Publications and source records attributed to J G Farrelly.

6 recordsLinked to original sources

The mutagenicity of nitrosopyrrolidine is related to its metabolism.

Various cell fractions from rat liver were tested for their ability to convert nitrosopyrrolidine (NO-PYR) to products which were mutagenic to E. coli in liquid-incubation assays. Microsomes alone produced only a small number of tyr+ revertants, approximately 40/10(8) survivors), while the S100 supernatant produced none at all. However, the S8 Fraction or combinations of microsomes and the S100 supernatant, yielded 300-400 tyr+ revertants/10(8) survivors. Neither products of the microsomal, nor microsome + supernatant reactions were mutagenic in the absence or presence of cellular fractions. These results suggest that bacterial mutagens are formed during the microsomal metabolism of NO-PYR to 2-hydroxytetrahydrofuran by alpha-hydroxylation, but not during the metabolism of 2-hydroxytetrahydrofuran by the S100 supernatant enzymes. Possible roles of the supernatant enzymes in the formation of mutagenic intermediates during the initial alpha-hydroxylation of NO-PYR are discussed.

Animals

Metabolism of the liver carcinogen N-nitrosopyrrolidine by rat liver microsomes.

This report represents a study of the total metabolism of the hepatocellular carcinogen, N-nitrosopyrrolidine (NO-PYR), by rat liver microsomes and postmicrosomal supernatant. [2,5-14C]NO-PYR, which is totally extractable from aqueous solution with methylene chloride, is converted to radioactive nonmethylene chloride-extractable products by these fractions. The initial rate of conversion to nonmethylene chloride-extractable products follows simple Michaelis-Menten kinetics with an apparent Km of 3.6 x 10(-4) M NO-PYR. The major products of NO-PYR metabolism by rat liver microsomes and postmicrosomal supernatant have been isolated and identified. One product of metabolism of NO-PYR is 2-hydroxytetrahydrofuran formed by alpha-hydroxylation by the microsomes. In the presence of postmicrosomal supernatant enzymes, this compound exists only as a transient intermediate which is rapidly converted to 1,4-butanediol or gamma-hydroxybutyrate. These compounds may be cycled into general cellular metabolism resulting in the production of CO2. Two minor pathways of metabolism have also been found.

Animals

Metabolism of three cyclic nitrosamines in Sprague-Dawley rats.

The metabolism of three cyclic nitrosamines has been studied in Sprague-Dawley rats. The compounds were nitrosopyrrolidine, nitrosohexamethyleneimine, and nitrosohepatamethyleneimine and were labeled at the alpha carbon with 14C. At low doses (2 to 4 mg/animal) the compounds were metabolized to 14CO2 to the extent of 77, 43, and 27%, respectively, after 24 hr. At doses closer to the 50% lethal dose of the compounds (70 to 160 mg/animal) the metabolism values were only 14, 4, and 8%, respectively, after 24 hr. The significance of these results is discussed.

Air

Separation of cellular and viral DNA polymerases by affinity chromatography on polynucleotide-Sepharose.

Polyguanylate- and poly(2'-O-methyl)uridylate-Sepharose have been prepared for affinity chromatography of DNA polymerases of viral origin (reverse transcriptase). Both cellular DNA polymerases and reverse transcriptase bind to polyguanylate-Sepharose. The cellular polymerases can be eluted from the column between 0.32 and 0.42 M NaCl while reverse transcriptase eluted between 0.56 and 0.78 M NaCl. However, only reverse transcriptase adheres to poly(2'-O-methyl)uridylate-Sepharose and can be eluted at approximately 0.35 M NaCl. The columns were used to partially purify RNA-dependent DNA polymerase from spleens of mice infected with Rauscher leukemia virus. The enzyme preparation is about 1300-fold purified and is inhibited by antiserum prepared against purified reverse transcriptase from Rauscher leukemia virus to the same extent as the virion enzyme.

Animals

Effect of glucocorticoids on activation of leukemia virus in AKR mouse embryo cells.

The effect of glucocorticoids on activation and replication of leukemia virus in AKR mouse embryo cells was analyzed. The number of cells detected as positive by fluorescent antibody techniques as well as the virus production in cells chronically producing virus was doubled at optimal concentrations of glucocorticoids. The effect of the hormones in activated cells was found to be not on the process of activation per se but rather on synthesis of the viral components after activation has occurred. Intracellular reverse transcriptase levels were not changed by hormone treatment. The stimulation of virus synthesis by glucocorticoids requires binding of the steroid to a cytoplasmic receptor protein.

Animals