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Biomedical subjects

M Bignami

Publications and source records attributed to M Bignami.

At least 37 records · Page 2Linked to original sources

Differential influence of adjacent normal cells on the proliferation of mammalian cells transformed by the viral oncogenes myc, ras and src.

We investigated the role of adjacent normal cells in the modulation of focal outgrowth of mammalian fibroblasts transformed by different viral oncogenes (myc, src and ras). NIH3T3 cells transformed by these three oncogenes were derived by transfection or infection and showed comparable cloning efficiencies in semi-solid medium. However, upon replating in liquid medium a small number of transformed cells together with a vast excess of normal mouse embryo fibroblasts C3H10T1/2, ras- and src-transformed cells were able to overgrow the monolayer and formed distinct foci, whereas myc-transformed cells lacked this ability. Conditioned medium from normal cells did not affect the proliferation of myc-transformed cells at clonal density. Addition of phorbol ester tumour promoters, either at the time of plating or as late as after one week, efficiently rescued focus formation by myc-transformed cells. In contrast, when myc-transformed cells were cultivated alone, their clone size and cloning efficiency were slightly reduced by the addition of tumour promoters. These results indicate that cell-cell contacts between transformed cells and adjacent normal cells specifically inhibit the growth of myc- but not of ras- or src-transformed cells. The ability of tumour promoters and phospholipase-C to rescue the focus forming ability of myc-transformed cells is consistent with the possibility that activation of protein-kinase C is involved in the clonal expansion of 'suppressed' myc-bearing cells.

Animals

Induction kinetics of mutations at two genetic loci, DNA damage and repair in CHO cells after different exposure times to N-ethyl-N-nitrosourea.

Ouabain resistance (ouar) and 6-thioguanine resistance (6-TGr) mutation frequencies were measured in Chinese hamster ovary cells after treatment with N-ethyl-N-nitrosourea (ENU) for varying periods of time. Maximal mutation frequency at the Na+/K+ ATPase gene locus (ouar mutations) was attained within 5 min of exposure, whereas the mutation frequency at the hypoxanthine guanine phosphoribosyltransferase locus (6-TGr mutations) continued to increase up to 60 min, following the theoretical curve for exponential decay of ENU with time. Detection of DNA single strand breaks (ssb) by alkaline elution showed that maximal levels were attained within 5 min of treatment with ENU. Fast repair of DNA ssb occurred early after exposure (greater than 50% repair within 10 min). Analysis of DNA ethylation products by h.p.l.c. showed initially rapid removal of O2-ethylcytosine (25% in the first hour), slow removal of 7-ethylguanine, 3-ethyladenine and 3-ethylguanine and no removal at all of O6-ethylguanine, O4-ethylthymine and ethylphosphotriesters. These time-course studies reveal different target gene responses in the fixation of DNA damage into mutations.

Animals

Cytotoxicity, mutations and SCEs induced by methylating agents are reduced in CHO cells expressing an active mammalian O6-methylguanine-DNA methyltransferase gene.

Alkylation at the O6 position of guanine leading to miscoding during DNA replication has been shown to correlate with mutagenesis both in bacteria and mammalian cells. The widely used Chinese hamster ovary cells (CHO) are unable to remove O6-methylguanine (O6-meG) due to the absence of O6-meG DNA methyltransferase (MT) activity. Recently Ding et al. [Mol. Cell. Biol. (1985) 5, 3293-3296] transfected CHO cells with human liver DNA obtaining a line provided with a function for the repair of O6-meG. We confirmed the presence of MT activity in this particular clone (14,300 molecules/cell). We used this MT-proficient cell line as compared with the original MT-deficient CHO cell line to analyse the relevance of repair of this lesion on cell killing, ouabain resistance (ouar) mutations and sister chromatid exchanges (SCEs) induced by methylating agents. MT-proficient cells were more resistant than MT-deficient ones to the cytotoxic and mutagenic effects of N-methyl-N'-nitro-N-nitrosoguanidine (MNNG) and N-methyl-N-nitrosourea (MNU). Furthermore a lower number of MNNG-induced SCEs were found in MT-proficient CHO than in MT-deficient cells. Similar ouar mutation frequencies were recorded in the two cell lines after 4-nitroquinoline-1-oxide (4NQO) treatment showing that the differences in cytotoxicity and mutagenesis are restricted to treatment with alkylating agents.

4-Nitroquinoline-1-oxide

Studies on chemically induced neoplastic transformation and mutation in the BALB/3T3 Cl A31-1-1 cell line in relation to the quantitative evaluation of carcinogens.

Mutagenesis and neoplastic transformation assays on mammalian cells in culture have been extensively used for quantitative estimates of the activity of carcinogens, in spite of the limitations that such in vitro systems have when compared with in vivo systems for tumor induction. In order to assess the validity of these correlations, a series of studies was undertaken in our laboratory with the BALB/3T3 Cl A31-1-1 mouse embryo cell line. Different carcinogens were found to induce dose-dependent frequencies of transformation, including the direct-acting alkylating agent N-methyl-N'-nitro-N-nitrosoguanidine (MNNG) and carcinogens that were metabolically activated by these cells through different pathways (benzo[a]pyrene, 3-methylcholanthrene, aflatoxin B1, and benzidine). Their respective level of activity on a molar basis was different from that obtained in standard Salmonella + S9 mutagenesis tests. Studies currently underway indicate the possibility of lowering the serum content in the medium considerably, thereby reducing a major variable in the assay. Methods were established for the induction of ouabain-resistant (ouar) mutants in these cells. Studies were conducted by applying 30-min MNNG exposures to cells that were synchronized by serum deprivation followed by serum-induced release from growth block. While maximal induction of mutants occurred in the S phase, the transformation frequency remained constant for treatments in G1 and early or late S.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Temporal dissociation in the exposure times required for maximal induction of cytotoxicity, mutation, and transformation by N-methyl-N'-nitro-N-nitrosoguanidine in the BALB/3T3 ClA31-1-1 cell line.

Cytotoxicity, alkali-labile DNA lesions, ouabain resistance mutations, and neoplastic transformation were analyzed concurrently in the BALB/3T3 ClA31 -1-1 cell line treated with the alkylating agent N-methyl-N'-nitro-N-nitrosoguanidine (MNNG) for different exposure times (15, 30, 60, 90, 120, and 240 min; 24, 48, and 72 hr). The half-life of MNNG in complete medium was approximately 70 min, both without cells and with cell numbers as used in the assays for cytotoxicity (2 X 10(2) cells/60-mm dish), transformation (1 X 10(4) cells/dish), and mutation (1 X 10(5) cells/dish). The cytotoxic effect of MNNG (0.5 or 2 micrograms/ml) appeared to be completed after an exposure time between 100 and 200 min. Maximal frequency of ouabain resistance mutations, however, was reached after a much shorter treatment time (30 to 60 min). Detection of DNA damage by alkaline elution analysis showed maximal increase in single-strand breaks already after treatment for 30 min. Exposures for 30 min followed by posttreatment incubation for 30 or 90 min showed active repair of single-strand breaks during these periods, indicative of an even balance between the additional MNNG-induced damage and its repair. Morphological transformation assays, at the same treatment times and concentrations used in the mutation assays, yielded frequency curves that reached their maxima 1 to 3 hr later than did the mutation frequencies. The ratio of transformation to ouabain resistance mutation frequencies was 3.7 for short treatment times (30 to 60 min), while it increased to more than 20 for exposure times of 240 min or longer. The temporal dissociation in the exposure times for maximal induction of mutation and transformation, observed with MNNG in this cell line, supports the hypothesis that a single gene mutational event is not sufficient to account for the full expression of neoplastic transformation.

Animals

Mutagenesis and morphological transformation by N-methyl-N'-nitro-N-nitrosoguanidine in the BALB/3T3 clone A31-1-1 cell line.

Concomitant induction of ouabain resistant mutations and morphological transformation in the BALB/3T3 ClA31-1-1-c mouse embryo cell line were obtained after a 30 min treatment with the direct alkylating agent N-methyl-N'-nitro-N-nitrosoguanidine (MNNG). Parameters affecting mutation frequencies were determined. The optimal expression time (48 h) for ouabain resistance was independent from the dose of the carcinogen. A linear dose-response relationship for mutation induction was found after treatment with increasing doses of MNNG. The ratio of malignant transformation to mutation frequencies induced by the short treatment with MNNG was found to be within the same order of magnitude over a four-fold dose range. The development of a mutational assay for ouabain resistance in the BALB/3T3 ClA31-1-1-c cell line makes quantitative comparisons possible between mutation and neoplastic transformation frequencies induced by chemical carcinogens in this single cellular system.

Animals

Evaluation of 2 different genetic markers for the detection of frameshift and missense mutagens in A. nidulans.

21 chemicals, known to induce missense and/or frameshift mutations directly, were assayed for their ability to forward mutate a haploid strain of A. nidulans. 2 genetic markers for forward mutations were used, namely 8-azaguanine resistance and induction of meth A1 suppressors. Missense mutagens were usually active when tested with the plate-incorporation technique, whereas frameshift agents were ineffective; some of these, on the other hand, turned out to be positive when tested with a liquid-test procedure. The 2 genetic markers used showed a similar sensitivity (with only 2 exceptions) in detecting the chemical mutagens assayed.

Aspergillus nidulans

Growth-mediated metabolic activation of promutagens in Aspergillus nidulans.

7 procarcinogens belonging to different chemical classes (nitrosamines, hydrazoalkanes, oxazaphosphorines and aromatic amines) were tested in A. nidulans for the induction of point mutations with two genetic systems (8-AG resistance and induction of methionine suppressors). Dimethylnitrosamine, diethylnitrosamine, nitrosomorpholine, dimethylhydrazine, procarbazine and cyclophosphamide gave positive results with a good dose--effect relationship in the growth-mediated assay, whereas they gave negative or borderline positive results in the plate incorporation assay. 2-Aminoanthracene was completely negative with both experimental procedures. DMN, DEN and NM were also tested for their ability to induce somatic segregation: all were positive when assayed in the growth-mediated assay.

Amines

Microbial short-term assays with thiram in vitro.

The fungicide thiram was assayed in the following tests in vitro, with and without metabolic activation: (1) prophage lambda induction of Escherichia coli K12; (2) repair test in Salmonella typhimurium (strains TA1538 and TA1978); (3) induction of gene mutations in Aspergillus nidulans (methA1 suppressor induction). Thiram was positive in the repair test and in the A. nidulans forward-mutation test (4-6 fold increase) in the absence of metabolic activation. A slight increase was observed in prophage lambda induction with thiram in the presence of the metabolic activation system.

Aspergillus nidulans

Mutagenicity of halogenated aliphatic hydrocarbons in Salmonella typhimurium, Streptomyces coelicolor and Aspergillus nidulans.

Eight structurally related halogenated aliphatic hydrocarbons mono-, di- and trichloroacetaldehyde (the last in the anhydrous and hydrate form), moni-, di- and trichloroethanol and allyl chloride, were tested for their ability to induce gene mutations in prokaryotic and eukaryotic microorganisms. The genetic systems employed were the Salmonella reversion test with strain TA1535 and TA100, with and without metabolic activation, a forward and a back-mutation system in S. coelicolor and two forward mutation systems in A. nidulans. Each compound was tested with the spot and plate incorporation assay techniques. Mono-, di- and trichloroacetaldehyde were mutagenic in all the microorganisms employed; all the halogenated ethanols were positive in A. nidulans, while in S. typhimurium and in S. coelicolor the only active forms were respectively the mono- and dichloroderivatives. Allyl chloride was active in S. typhimurium and S. coelicolor and negative in A. nidulans. The technical approach as well as the complex influence of different factors (toxicity, volatility and stability) on the genetic response of each of the compounds under test did not allow to obtain more than a qualitative relationship between mutagenic potency and chemical structure.

Animals

Mutational studies with diquat and paraquat in vitro.

Diquat and paraquat were assayed in the following tests. (1) Ames test in Salmonella typhimurium (strains TA1535, TA1537, TA1538, TA98 and TA100) with and without rat-liver microsomal fractions. (2) Resistance to 8-azaguanine in Salmonella typhimurium (strain hisG46, TA92 and TA1535. (3) Repair test in Salmonella typhimurium (strains TA1538 and TA1978). (4) Gene mutations in Aspergillus nidulans: 8-AG resistance and methionine suppression (meth A1 locus). (5) Lethal recessive damage in Aspergillus nidulans. (6) Unscheduled DNA synthesis (UDS) in human epithelial-like cells (EUE). Diquat and paraquat were positive in S. typhimurium (in the repair test and the 8-AG resistance system), in A. nidulans (for gene mutations and lethal recessive damage induction) and in EUE cells (UDS induction).

Animals

A new in vitro method for testing plant metabolism in mutagenicity studies.

A rapid method was proposed to detect whether a harmless agricultural chemical can be converted into a mutagenic one by plant metabolism. The method is based on the use of Nicotiana alata cell cultures. Results obtained with five pesticides (atrazine, dichlorvos, tetrachlorvinphos, Kelevan, and maleic hydrazide) suggest that the proposed method simulates the metabolism of the whole plant. This procedure was also successfully applied to the genetic system of Aspergillus nidulans. One pesticide, atrazine, induced mutations and somatic segregation only after metabolism during cocultivation with N. alata cells.

Atrazine