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Biomedical subjects

M D Waters

Publications and source records attributed to M D Waters.

At least 73 records · Page 4Linked to original sources

Induction of 6-thioguanine resistance in synchronized human fibroblast cells treated with methyl methanesulfonate, N-acetoxy-2-acetylaminofluorene and N-methyl-N'-nitro-N-nitrosoguanidine.

Chemical induction of 6-thioguanine resistance was studied in synchronized human fibroblast cells. Cells initially grown in a medium lacking arginine and glutamine for 24 h ceased DNA synthesis and failed to enter the S phase. After introduction of complete medium, the cells progressed to the S phase after 16h. DNA synthesis peaked 20 h after removal of nutrient stress and declined. Mutations were induced in S-phase cells by methyl methanesulfonate (MMS), N-acetoxy-2-acetylaminofluorene (NA-AAF) and N-methyl-N'-nitro-N-nitroso-guanidine (MNNG). Chemical treatments resulted in an increase in the absolute number of mutant colonies and in a dose-dependent mutation frequency. In this report, we show that NA-AAF evokes a temporal pattern of mutation in synchronized cells, with such mutations being induced only during the S phase. Evidence indicates that presence of S-phase cells in the treated cultures is a prerequisite for the induction of mutations.

Acetoxyacetylaminofluorene↗

The GENE-TOX program: genetic activity evaluation.

The GENE-TOX program, a two-phase evaluation from the existing literature of selected bioassays for detecting mutagenicity and presumptive carcinogenicity, is described. Sponsored and directed by the Office of Testing and Evaluation within the U.S. Environmental Protection Agency's (EPA) Office of Pesticides and Toxic Substances, this program will aid EPA in establishing standard genetic testing and evaluation procedures for the regulation of toxic substances and determining the direction of research and development in the area of genetic toxicology.

Animals↗

An overview of short-term tests for the mutagenic and carcinogenic potential of pesticides.

In the last few years, marked progress has been made in the development of methods for evaluating the mutagenic and carcinogenic potential of pesticide chemicals. The correlation of genetic and related biological activity in short-term tests with carcinogenic activity in whole animals allows the utilization of short-term mutagenicity bioassays to prescreen chemicals for effects related to mutation induction and presumptive carcinogenicity. In addition, bioassays now available can measure directly the chemical transformation of normal cells in culture into cells capable of producing tumors when injected into animals. This paper will review briefly the major types of relevant short-term tests and will develop a rationale for a phased approach to the evaluation of the mutagenic and carcinogenic potential of environmental chemicals. This approach involves the sequential application of bioassays which are organized into a three-level matrix emphasizing first detection, then confirmation, and finally hazard assessment. Chemicals demonstrating positive results in the short-term detection systems and confirmatory bioassays are pursued in higher level whole animal define a negative result. The phased approach should facilitate a cost effective utilization of limited testing resources and provide protection for human health in proportion to the anticipated hazard. Results obtained in evaluating a series of thirty-eight pesticide chemicals according to the phased approach discussed in detail.

Animals↗

Mutagenicity evaluation of chemical pesticides.

Over the last few decades, the use of chemical pesticides has increased dramatically in the U.S. This relatively sudden increase greatly concerns the U.S. Environmental Protection Agency (EPA), since it has the responsibility for ensuring the safety of all pesticides used in the U.S. In response to this concern, EPA has established a review program, the Rebuttable Presumption Against Registration (RPAR), for periodically reassessing the mutagenic and carcinogenic potential of pesticide compounds. This paper presents a review and evaluation of the data reported in the literature on six chemical pesticides suspect for mutagenic potential. The pesticide chemicals discussed are maleic hydrazide; rotenone; monuron; diallate; triallate, and benomyl.

Animals↗

Effect of trace metals on phagocytosis by alveolar macrophages.

Experiments were performed to measure the effect of trace metals on a vital function of the alveolar macrophage (AM), phagocytosis. Since certain trace metals were found to reduce the viability of AMs, a technique was developed to permit examination of live cells only for phagocytosis. Evidence is presented that Ni(2+) selectively altered the phagocytic activity of AMs at concentrations lower than those which caused cell death. It is further shown that a level of VO(3) (-) that caused extensive lysis and death did not reduce phagocytosis in surviving cells. The effects of Cd(2+), Cr(3+), and Mn(2+) on AMs were also examined.

Animals↗

Toxicity of platinum (IV) salts for cells of pulmonary origin.

The acute toxicity of tetravalent platinum was studied in vitro by use of rabbit alveolar macrophages and human lung fibroblasts (strain WI-38). Alveolar macrophages were exposed in tissue culture for 20 hr to platinum dioxide (PtO2) or platinum tetrachloride (PtCl4). There was no evidence of dissolution of PtO2 and no decrease in viable cells at concentrations as high as 500 mug/ml. PtCl4 was soluble in the macrophage system and after a 20-hr exposure, resulted in loss of viability in 50% of the cells originally present at a concentration of 0.30mM (59 mug Pt/ml). After a 20-hr exposure, rapidly growing human lung fibroblasts were rendered nonviable by PtCl4 at comparable concentrations. A decrease in total cellular ATP was observed at lower concentrations in macrophages and fibroblasts along with a reduction in phagocytic activity of macrophages as compared to controls. With the fibroblasts, a 50% decrease in incorporation of 14C-thymidine was observed after a 22-hr exposure to PtCl4 at a concentration of 0.007mM; higher concentrations were required to inhibit the incorporation of 14C-uridine and 14C-leucine. Time-course studies indicated that the inhibition of 14C-thymidine incorporation was nearly complete (90%) after 7 hr in the presence of 0.06mM PtCl4. Under the same conditions, there was little inhibition (15%) of 14C-leucine incorporation and moderate inhibition (50%) of 14C-uridine incorporation. Higher concentrations of PtCl4 were required to inhibit 14C-thymidine incorporation into the acid-soluble fraction than were required to inhibit incorporation into the acid-precipitable fraction. Hence, the preferential inhibition of DNA synthesis by PtCl4 may result from an impairment of the incorporation process.

Adenosine Triphosphate↗