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Biomedical subjects

W F Morgan

Publications and source records attributed to W F Morgan.

At least 109 records · Page 6Linked to original sources

Effect of 5-bromodeoxyuridine substitution on sister chromatid exchange induction by chemicals.

The fluorescence-plus-Giemsa (FPG) technique for analysis of sister chromatid exchange (SCE) is widely used as an assay for mutagenic carcinogens. There is very little information, however, on whether incorporation of the bromodeoxyuridine (BrdU) necessary for visualization of SCEs affects the sensitivity of the SCE test system to different chemical agents. We have investigated the effect of BrdU incorporation on SCE induction by labeling cells with BrdU for either the first cell cycle or the first and second cell cycles. The cells were then treated with bleomycin, which produces DNA strand breakage; proflavine, which intercalates into DNA; mitomycin C, which produces monoadducts and DNA crosslinks; or aphidicolin, which inhibits DNA polymerase alpha. Chemicals were added before BrdU exposure or during the first, second, or both cell cycles. Only mitomycin C, which induces long-lived lesions, elevated the SCE frequency when cells were treated before BrdU labeling. When bleomycin, proflavine, or mitomycin C was present concurrently with BrdU, the frequency of SCEs was increased independently of the BrdU labeling protocol. Aphidicolin, on the other hand, induced more SCEs when present for the second cell cycle, when DNA replicates on a template DNA strand containing BrdU. We also examined the induction of SCEs in the first cell cycle (twins) and in the second cell cycle (singles) after continuous treatment of cells with BrdU and the test chemicals. Only aphidicolin increased SCE frequency in the second cell cycle. These results indicate that aphidicolin, but not bleomycin, proflavine, or mitomycin C, affects BrdU-substituted DNA and unsubstituted DNA differently. This type of interaction should be taken into consideration when the SCE test is used as an assay system.

Animals↗

Inhibition of malignant transformation in vitro by inhibitors of poly(ADP-ribose) synthesis.

Malignant transformation in vitro of hamster embryo cells and mouse C3H 10T 1/2 cells by x-rays, ultraviolet light, and chemical carcinogens was inhibited by benzamide and by 3-aminobenzamide at concentrations that are specific for inhibition of poly(ADP-ribose) formation. These compounds slow the ligation stage of repair of x-ray and alkylation damage but not of ultraviolet light damage. At high concentrations they also inhibited de novo synthesis of DNA purines and DNA methylation by S-adenosylmethionine. The suppression of transformation by the benzamides is in striking contrast to their reported effectiveness in enhancing sister chromatid exchange, mutagenesis, and killing in cells exposed to alkylating agents. Our results suggest that mechanisms regulating malignant transformation are different from those regulating DNA repair, sister chromatid exchange, and mutagenesis and may be associated with changes in gene regulation and expression caused by alterations in poly(ADP-ribosyl)ation.

Animals↗

Induction of sister chromatid exchange by 3-aminobenzamide is independent of bromodeoxyuridine.

The poly(ADP-ribose) polymerase inhibitor, 3-aminobenzamide (3AB), significantly increases sister chromatid exchange (SCE) frequency without causing apparent damage to cellular DNA. A previous study has suggested that the increase of SCEs by 3AB results from DNA replication on a template strand containing bromodeoxyuridine (BrdU), which is used to visualize SCEs. Therefore, to study the importance of BrdU incorporation on the induction of SCEs by 3AB, we analyzed exchanges induced during the first round of replication (twin SCEs) and those induced during the second (single SCEs). 3AB increased the formation of SCEs in both replication cycles, but significantly more exchanges were induced in the second cycle, when BrdU was present in the template DNA. These data are consistent with the suggestion that the presence of BrdU in the template strand of DNA plays an important role in SCE induction by 3AB. However, we also studied 3AB-induced SCEs by autoradiography of cells cultured with 3H-thymidine (3H-dT) instead of BrdU. A significant increase in SCE frequency was also observed in cells from these cultures. Furthermore, the analysis of twin and single SCEs showed that with 3H-dT too, there was a greater increase in SCEs in the second cycle than in the first. Thus, SCE induction by 3AB in the second cycle is not dependent on the presence of BrdU in template DNA. Incubation of cells with deoxycytidine was found to have no effect on the frequency of SCEs induced by 3AB, suggesting that an imbalance in the deoxycytidine precursor pool did not account for the effect.

Animals↗

Inhibition of X-ray- and ultraviolet light-induced transformation in vitro by modifiers of poly(ADP-ribose) synthesis.

Neoplastic transformation in vitro of hamster embryo cells and mouse C3H 10T1/2 cells by X rays and ultraviolet light was suppressed by benzamide or 3-aminobenzamide, agents which inhibit poly(ADP-ribose) polymerization. Suppression was observed under conditions in which the inhibitors reduce poly(ADP-ribose) polymerization by about 75% and increase sister chromatid exchange frequencies, but have no influence on repair of X-ray and uv damage and reportedly have no detectable side effects on nucleotide precursor metabolism. These findings suggest that the mechanisms regulating neoplastic transformation differ from those regulating mutagenesis and sister chromatid exchanges and are mediated via alterations in poly(ADP-ribosylation), causing changes in gene control and expression.

Animals↗

Reduced level of DNA cross-links and sister chromatid exchanges in 1,3-bis(2-chloroethyl)-1-nitrosourea-resistant rat brain tumor cells.

We found that 9L-2 cells, a cell line derived from the in vivo 9L rat brain tumor model, are approximately 8-fold more resistant to the cytotoxic effect of 1,3-bis(2-chloroethyl)-1-nitrosourea (BCNU) than are sensitive 9L cells. Treatment with BCNU induces sister chromatid exchanges in both lines, but to produce similar levels of exchanges, 9L-2 cells must be treated with a 14-fold higher concentration of BCNU. The extent of DNA methylation was the same in both cell lines after a 1-hr treatment with 100 microM methylnitrosourea. While the levels of the alkylation products N-7-methylguanine and N-3-methyladenine were similar in both lines, the level of O6-methylguanine was 20% lower in 9L-2 than in 9L cells, which implies that 9L-2 cells repair O6-alkylguanine derivatives more efficiently than do 9L cells. The number of DNA interstrand cross-links formed in 9L-2 cells after treatment with BCNU was approximately 50% of the number formed in 9L cells. These results suggest that the repair of O6-alkylguanine derivatives formed in BCNU-treated 9L-2 cells may be related to the reduced number of DNA interstrand cross-links formed and may have a role in the mechanism of cellular resistance of 9L-2 cells to BCNU. However, our results indicate that, in itself, the reduction in the number of DNA cross-links may not be sufficient to account entirely for the cellular resistance of 9L-2 cells to BCNU and suggest that additional mechanisms may be involved in cellular resistance of 9L-2 cells to BCNU treatment.

Alkylation↗

Differences in the regulation by poly(ADP-ribose) of repair of DNA damage from alkylating agents and ultraviolet light according to cell type.

Inhibition of poly(ADP-ribose) synthesis by 3-aminobenzamide in various human and hamster cells influenced the responses to DNA damage from methyl methanesulfonate, but not from ultraviolet light. After exposure to methyl methanesulfonate, 3-aminobenzamide increased the strand break frequency in all cell types studied, but only stimulated repair replication in lymphoid and HeLa cells, suggesting these are independent effects. 3-Aminobenzamide also inhibited the pathway for de novo synthesis of DNA purines, suggesting that some of its effects may be due to disturbance of precursor pathways and irrelevant to the role of poly(ADP-ribose) in repair. Previous claims that 3-aminobenzamide stimulates repair synthesis after exposure to UV light are probably artifacts, because the stimulations are only observed in lymphocytes in the presence of a high concentration of hydroxyurea that itself inhibits repair. The initial inhibition of semiconservative DNA synthesis and the excision of the major alkylation products and pyrimidine dimers were unaffected by 3-aminobenzamide. In general poly(ADP-ribose) synthesis appears to be uniquely involved in regulating the ligation stage of repair of alkylation damage but not ultraviolet damage. By regulating the ligation efficiency, poly(ADP-ribosylation) modulates the dynamic balance between incision and ligation, so as to minimize the frequency of DNA breaks. The ligation stage of repair of UV damage appears different and is not regulated by poly(ADP-ribosylation).

Animals↗

Effects of 3-aminobenzamide on DNA synthesis and cell cycle progression in Chinese hamster ovary cells.

3-Aminobenzamide (3AB), an inhibitor of poly(ADP-ribose) polymerase, is a potent inducer of sister chromatid exchanges (SCEs). Because of the possible relation between SCEs and DNA synthesis, the effects of 3AB on DNA synthesis and cell cycle progression in Chinese hamster ovary (CHO) cells were examined. Unlike all other SCE-inducing agents whose effects on DNA synthesis have been studied, short term exposures (30-120 min) of 3AB did not inhibit the overall rate of DNA synthesis and this result was independent of the amount of bromodeoxyuridine (BrdU) in the DNA. Longer exposure times (greater than 24 h) did result in an extended S phase, but this was not due to an effect on the rate of DNA chain elongation. 3AB also delayed the entry of cells into S phase. The overall cell cycle delay was dose dependent, approaching 9 h after a 54 h exposure to 10 mM 3AB. Earlier reports that 3AB is neither mutagenic nor cytotoxic were confirmed. Thus 3AB acts to increase SCE frequency by a mechanism distinct from that which causes cytotoxicity and mutagenicity, and does not involve any inhibition in the rate of DNA chain growth.

Animals↗

Effect of 3-aminobenzamide on the rate of ligation during repair of alkylated DNA in human fibroblasts.

3-Aminobenzamide, an inhibitor of polyadenosine diphosphoribose polymerase, produced rapid reversible changes in single-strand break frequencies in DNA from primary human fibroblasts damaged by alkylating agents, but it did not cause such changes in the DNA of cells damaged by ultraviolet light. The increase in single-strand peak frequencies was not due to an accumulation of blocked repair sites, such as occurs with DNA polymerase inhibitors, but to a delay in the rejoining of induced breaks. 3-Aminobenzamide increases the net break frequency that results from a dynamic balance between excision and ligation. This balance appears to be regulated at the ligation step by adenosine diphosphate ribosylation, which is rapidly altered by addition or removal of 3-aminobenzamide. The rapidity with which strand break frequencies change in the presence of 3-aminobenzamide implies that individual strand breaks resulting from excision at any time after exposure have a lifetime of no more than about 30 min in the cell.

Benzamides↗

Poly(ADP-ribose): spectator or participant in excision repair of DNA damage.

Inhibition of poly(ADP-ribose) synthesis by 3-aminobenzamide in various human and hamster cell types influenced the responses to DNA damage from methyl methanesulfonate (MMS), but not from UV light. Excision of the major alkylation products and pyrimidine dimers was unaffected by 3-aminobenzamide. After exposure of cells to methyl methanesulfonate, 3-aminobenzamide increased the strand break frequency in all cell types studied, but stimulated repair replication only in lymphoid and HeLa cells, suggesting these are independent effects. 3-Aminobenzamide also inhibited the pathway for de novo synthesis of DNA purines, suggesting that some of its effects, particularly on repair replication, may be due to disturbance of precursor pathways. 3-Aminobenzamide stimulated sister chromatid exchange formation and mutagenesis but inhibited transformation, suggesting that some of these endpoints involve ADP-ribosylation by ways other than repair. Poly(ADP-ribose) synthesis appears to regulate the ligation stage of repair of alkylation damage by modulating a dynamic balance between incision and ligation, so as to minimize the frequency of DNA breaks.

Animals↗

Effect of 3-aminobenzamide on sister chromatid exchange frequency in X-irradiated cells.

To investigate whether a delay in the rejoining of radiation-induced strand breakage can lead to sister chromatid exchange formation, Chinese hamster ovary cells were prelabeled with 5-bromodeoxyuridine and X-irradiated in the presence of 3-aminobenzamide, an inhibitor of poly(ADP-ribose) polymerase. The resulting sister chromatid exchange frequencies were consistent with those expected if 3-aminobenzamide and X-ray treatments were independent and additive. A similar but much smaller additive effect was also observed in cells cultured in the presence of 3-aminobenzamide and X-irradiated immediately before the addition of bromodeoxyuridine to the culture medium. These findings support previous studies indicating that X rays are poor inducers of sister chromatid exchanges and suggest that the normally rapid resealing of DNA strand breaks does not account for this inefficiency.

Animals↗

A comparison of induced sister chromatid exchange levels in Chinese hamster ovary cells and cultured human lymphocytes.

Human lymphocytes and Chinese hamster ovary cells were exposed to DNA damaging agents for two cell cycles, and the induced sister chromatid exchange (SCE) rate was compared. CHO cells showed a significant increase in SCE following treatment with bleomycin and vincristine whereas human lymphocytes did not. Both CHO cells and lymphocytes showed an increase in SCE with 5-bromodeoxyuridine (BrdUrd) and tritiated uridine (3H-Urd) but the increase was greater in CHO cells. SCE levels were similar after exposure to proflavine and colcemid did not increase the exchange frequency in either cell type. Apparently CHO cells are more sensitive than human lymphocytes to the actions of bleomycin, vincristine, BrdUrd, and 3H-Urd. SCE analysis in response to mutagens and carcinogens should therefore be based on more than one cell type.

Animals↗

The effect of chlorpromazine on SCE frequency in human chromosomes.

Schizophrenic patients who were receiving, or who had received chlorpromazine showed SCE levels similar to those in a normal control population. Of 8 normal individuals whose lymphocytes were exposed in vitro to chlorpromazine (0.05-2.00 micrograms/ml) for two cell cycles, 4 showed a significant increase in SCE, 3 showed no increase and 1 a decrease compared with untreated lymphocytes. Lymphocytes from a further 8 donors treated with 2.0 micrograms/ml chlorpromazine prior to mitogen stimulation (G0 lymphocytes) showed a similar SCE response. Only 3 of the 8 donors showed a significant increase in SCEs over the baseline level. When proliferating lymphocytes were exposed to chlorpromazine 38 h after culture initiation and prior to the addition of BrdUrd to the culture medium, metaphase chromosomes from only 3 of the 8 individuals studied showed increased levels of exchange. These results indicate that chlorpromazine can induce SCEs in vitro but that there is considerable variation in SCE response among individuals. Furthermore, our data emphasises the importance of using more than 1 or 2 donors when analysing SCE response in human chromosomes.

Adult↗

3-Aminobenzamide synergistically increases sister-chromatid exchanges in cells exposed to methyl methanesulfonate but not to ultraviolet light.

3-Aminobenzamide, an inhibitor of poly(ADP-ribose) synthesis, increased baseline sister-chromatid exchange (SCE) frequencies and acted synergistically with the alkylating agent methyl methanesulfonate to induce exchanges in Chinese hamster ovary and SV40-transformed human (GM637) cells. In contrast, 3-aminobenzamide did not affect the frequency of ultraviolet light-induced SCEs. Our data suggest that, in these 2 cell types, synthesis of poly(ADP-ribose) is more important in damage and repair after exposure to an alkylating agent than after exposure to ultraviolet light.

Animals↗

Factors influencing sister-chromatid exchange rate in cultured human lymphocytes.

Factors influencing sister-chromatid exchange (SCE) frequency in human lymphocytes were investigated. Slides treated by the hot PO4 technique showed a lower SCE rate than those treated by the fluorescence plus Giemsa (FPG) technique. Lymphocytes cultured in McCoy's 5A culture medium showed a lower SCE rate than those cultured in TC 199. Neither of the 2 batches of serum tested (Gibco batch 092 and human AB) increased the SCE rate. Cultures harvested at 48 and 72 h showed similar SCE rates. The mean SCE rate in lymphocytes from 100 subjects was 10.98 with a standard deviation of 1.71. Only 3 donors fell outside the 95% confidence level. The distribution of SCE in individual cells was judged to differ significantly from normal. Cells with increased SCE contributed to the positive skewness of the distribution. Repeat cultures from 20 subjects were studied over a 3-year period. Only 3 subjects showed significant variation in SCE in successive cultures.

Cells, Cultured↗

Proliferation of PPD-stimulated lymphocytes measured by sister chromatoid differential staining.

Lymphocyte proliferation in response to tuberculin-purified protein derivative (PPD) stimulation was measured by bromodeoxyuridine incorporation followed by sister chromatid differential staining PPD-stimulated lymphocytes responded identically to phytohaemagglutinin (PHA) stimulated lymphocytes in that there was a steady increase in the number of second- and third-division metaphases with a corresponding decrease in the number of first-division metaphases. However, the mitotic index was considerably less in the PPD-stimulated cultures. The response of PPD-stimulated lymphocytes was largely the result of repeated divisions of a small number of lymphocytes. Donors who had been treated for tuberculosis showed greater numbers of second- and third-division metaphases than donors who had received BCG vaccination. Third-division metaphases than donors who had received BCG vaccination. Third-division metaphases were also present in the PPD and PHA 48-hr cultures, indicating tha lymphocytes can both respond to stimulation and divide faster than was previously recognized.

Cell Division↗

X irradiation and sister chromatid exchange in cultured human lymphocytes.

Sister chromatid exchange (SCE) frequency was not increased in G0 lymphocytes following irradiation up to 400 rads. Lymphocytes irradiation after 42 or 60 hours of culture showed a dose-dependent increases in exchange frequency at 100 and 200 rads. SCE was not increased in cells irradiated in G2 (68.5 hours). Lymphocytes maintained in a 5-Bromodeoxyuridine (BrdUrd) free medium and irradiated 42 hours after culture initiation showed an increase in SCE if BrdUrd was added immediately after irradiation, but no increase was found if there was a 5 hour holding period to the additional of BrdUrd. The effect on induced SCE frequency of heightened radiosensitivity due to increased amounts of BrdUrd was also investigated. When the BrdUrd concentration was increased form 10 micrograms/ml, the percent increase in X-ray-induced SCE was lower at 50 micrograms/ml. In addition, increased BrdUrd concentration only slightly increased the sensitivity of the SCE technique to irradiation doses of 50 rads.

Bromodeoxyuridine↗

Lymphocyte proliferation in Down's syndrome measured by sister chromatid differential staining.

Lymphocyte proliferation in PHA stimulated cultures from Down's syndrome patients and normals was measured by the BrdU/Giemsa method for demonstrating sister chromatid differential staining. Both Down's syndrome patients and normals had 1st, 2nd and 3rd divisions present. However, Down's syndrome patients had more 3rd division metaphases and fewer 2nd division metaphases than the normals. There was no difference in the mitotic index between the two groups.

Cell Division↗