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W K Kaufmann

Publications and source records attributed to W K Kaufmann.

14 recordsLinked to original sources

Initiation by bleomycin of hepatocellular foci in the rat.

The antitumor antibiotic, bleomycin, was tested for activity as an initiator of hepatocellular foci and neoplasms in rats. The compound was administered in a single dose via the portal vein 4 h after the proliferative stimulus of a two-thirds partial hepatectomy. Rats were subsequently fed diet containing phenobarbital for up to 41 weeks to promote the development of initiated hepatocytes. Bleomycin-treated livers displayed significantly increased frequencies of basophilic hepatocellular foci and hepatocellular foci which retain glycogen during fasting. Foci that express glutathione-S-transferase (placental form) were not initiated by bleomycin. Hepatocellular neoplasms were infrequently seen in bleomycin-treated livers (5% incidence). The results suggest that oxygen radical-mediated DNA damage may initiate, within populations of proliferating hepatocytes, new lineages of altered hepatocytes that form foci but have low probability of progressing to neoplasms during promotion with phenobarbital.

Animals

Association between expression of transforming growth factor-alpha and progression of hepatocellular foci to neoplasms.

Hepatocarcinogenesis was initiated in rats with a single dose of either of two chemical mutagens--benzo[a]pyrene diolepoxide I and methyl(acetoxymethyl)nitrosamine--administered 15 h after partial hepatectomy. The development of hepatocellular foci and neoplasms was then promoted with dietary phenobarbital given for 45 or 62 weeks. Formalin-fixed tissue specimens that contained hepatic neoplasms and altered hepatocellular foci were screened for expression of the oncodevelopmental marker glutathione-S-transferase (placental form) (GSTP) and transforming growth factor-alpha (TGF-alpha) using immunohistochemistry. All (100%) hepatocellular carcinomas expressed both GSTP and TGF-alpha, as did most hepatocellular adenomas (greater than 80%). However, quantitative stereologic analysis of treated and control livers revealed that GSTP-positive foci were 10-30 times more frequent than TGF-alpha-positive foci. Foci with homogeneous expression of GSTP generally displayed heterogeneous expression of TGF-alpha with reaction product most prominent at their peripheries. Less frequently homogeneous TGF-alpha-positive foci were seen within GSTP-positive foci. The average volumes of those GSTP-positive foci that also expressed TGF-alpha were significantly greater than those of the entire sets of GSTP-positive foci. These results suggest that expression of TGF-alpha may distinguish a subset of GSTP-positive foci that have a growth advantage and increased probability of progression to neoplasia.

Adenoma

Role of postreplication repair in transformation of human fibroblasts to anchorage independence.

Cellular capacity for postreplication repair (PRR) and sensitivity to transformation to anchorage independence (AI) were quantified in normal foreskin and xeroderma pigmentosum (XP) variant fibroblasts after treatment with UV or benzo(a)pyrene-diol-epoxide I (BPDE-I). PRR is defined here as a collection of pathways that facilitate the replication of DNA damaged by genotoxic agents. It is recognized biochemically as the process by which nascent DNA grows longer than the average distance between two lesions in the DNA template. PRR refers more directly to the elimination of gaps in the daughter-strand DNA by mechanisms which remain to be determined for human cells, but which may include translesion replication and recombination. PRR was measured in diploid human fibroblasts by analysis of the dose kinetics for inhibition of DNA strand growth in carcinogen-treated cells. Logarithmically growing foreskin fibroblasts (NHF1) displayed D0 values of 4.3 J/m2 and 0.14 microM for the inhibition of DNA synthesis in active replicons by UV and BPDE-I, respectively. XP variant cells (CRL1162) exhibited corresponding D0 values of 1.5 J/m2 and 0.16 microM. The increased sensitivity to inhibition of DNA replication by UV in these XP variant fibroblasts (2.9-fold greater than normal) was mirrored by an enhanced frequency of transformation to AI. XP variant fibroblasts (CRL1162) were 3.2 times more sensitive to transformation to AI by UV than were the normal foreskin fibroblasts. As predicted by the PRR studies, both cell types exhibited similar frequencies of AI colonies induced by BPDE-I. Apparent thresholds were observed for induction of AI by UV (normal fibroblasts, 2.7 J/m2; XP variant fibroblasts, 0.3 J/m2) and BPDE-I (both, 0.05 microM). Doses of UV and BPDE-I above these thresholds produced proportional increases in the inhibition of DNA replication in operating replicons and in the induced frequency of anchorage-independent colonies. At doses of UV and BPDE-I that produced the same degree of inhibition of DNA strand growth, BPDE-I induced a greater number of cells capable of anchorage-independent growth than did UV in both normal and XP variant fibroblasts.

7,8-Dihydro-7,8-dihydroxybenzo(a)pyrene 9,10-oxide

Role of DNA replication in carrier-ligand-specific resistance to platinum compounds in L1210 cells.

L1210 cell lines have been described that are sensitive to most platinum compounds (L1210/0), resistant to ethylenediamine (en)-Pt but sensitive to diaminocyclohexane (dach)-Pt (L1210/DDP), and resistant to dach-Pt but sensitive to en-Pt (L1210/DACH). We have examined the effect of the dach and en carrier ligands on the ability of Pt-DNA adducts to inhibit DNA replication. Alkaline sucrose gradient sedimentation was used to determine the influence of both carrier ligands on the inhibition of replicon initiation and DNA chain elongation. Initiation of replicons was inhibited by Pt-DNA adducts to a greater extent than chain elongation in all three cell lines. Inhibition of replicon initiation was affected by the nature of the platinum carrier ligands only in the L1210/DACH cells in which 7.8-fold more dach-Pt adducts than en-Pt adducts were required to reach 63% inhibition. However, a strong carrier ligand effect was observed on the inhibition of DNA chain elongation in both the L1210/DDP and L1210/DACH cell lines. The L1210/DDP cell line required 4-fold more en-Pt adducts than dach-Pt adducts to inhibit DNA chain elongation by 63%. In the L1210/DACH cell line, 2.7-fold more dach-Pt adducts than en-Pt adducts were required for 63% inhibition. The L1210/0 cell line demonstrated no carrier ligand specificity for inhibition of chain elongation. Significant replicative bypass of Pt-DNA adducts was observed even in the L1210/0 cell line in that greater than 50 Pt-DNA adducts per 100 kb were required for 63% inhibition. The same level of inhibition was reached with 1.25 adducts of benzo[a]pyrene diolepoxide I per 100 kb. These data suggest that L1210 cells are capable of substantial replicative bypass of Pt-DNA adducts. Furthermore, the bypass of Pt-DNA adducts is increased in resistant L1210 cells and is markedly dependent on the nature of the platinum carrier ligand.

Animals

Proliferation of carcinogen-damaged hepatocytes during cell-cycle-dependent initiation of hepatocarcinogenesis in the rat.

Hepatocyte proliferation and damage to DNA were characterized during the initiation phase of carcinogenesis in livers of rats that had received a single administration of the methylating agent methyl(acetoxymethyl)nitrosamine (DMN-OAc). Quiescent non-proliferating hepatocytes in intact livers did not appear to be susceptible to initiation by DMN-OAc, whereas proliferating hepatocytes in the S phase appeared to have greatest risk. To characterize the phenomenology of S-phase-dependent initiation further, the fractions of hepatocytes in the S and M phases of the cell cycle were enumerated at various times after treatment with DMN-OAc. Hepatocytes treated when in G1 experienced a delay of up to 20 h in the onset of S phase and a reduced rate of entry into the S and M cycle phases. Hepatocytes treated when in S phase experienced considerable delay in progression to mitosis due to part to inhibition of DNA replication. Hepatocytes treated when in late S/G2 also demonstrated a delay in progression into mitosis. The levels of 7-methylguanine and O6-methyldeoxyguanosine were quantified in the nuclear DNA of proliferating hepatocytes. The kinetics of removal of these lesions appeared to be first-order (half-life = 24 h). Hepatocyte risk of initiation was modeled by a function which summed over time the product of the fraction of hepatocytes in the S phase and the fraction of residual, unrepaired damage to DNA. For hepatocytes treated when in early G1, the time-weighted frequency of premutagenic DNA damage that was present during DNA replication was estimated to be less than half of that for hepatocytes treated when in early S. The results suggest that cell-cycle-dependent variation in sensitivity to initiation of hepatocarcinogenesis may be, in part, due to efficient removal of potentially carcinogenic lesions from DNA during an extended G1. The apparent high sensitivity of hepatocytes in late S/G2 suggests the contribution of additional factors.

Animals

Inhibition of replicon initiation in human cells following stabilization of topoisomerase-DNA cleavable complexes.

Diploid human fibroblast strains were treated for 10 min with inhibitors of type I and type II DNA topoisomerases, and after removal of the inhibitors, the rate of initiation of DNA synthesis at replicon origins was determined. By alkaline elution chromatography, 4'-(9-acridinylamino)methanesulfon-m-anisidide (amsacrine), an inhibitor of DNA topoisomerase II, was shown to produce DNA strand breaks. These strand breaks are thought to reflect drug-induced stabilization of topoisomerase-DNA cleavable complexes. Removal of the drug led to a rapid resealing of the strand breaks by dissociation of the complexes. Velocity sedimentation analysis was used to quantify the effects of amsacrine treatment on DNA replication. It was demonstrated that transient exposure to low concentrations of amsacrine inhibited replicon initiation but did not substantially affect DNA chainelongation within operating replicons. Maximal inhibition of replicon initiation occurred 20 to 30 min after drug treatment, and the initiation rate recovered 30 to 90 min later. Ataxia telangiectasia cells displayed normal levels of amsacrine-induced DNA strand breaks during stabilization of cleavable complexes but failed to downregulate replicon initiation after exposure to the topoisomerase inhibitor. Thus, inhibition of replicon initiation in response to DNA damage appears to be an active process which requires a gene product which is defective or missing in ataxia telangiectasia cells. In normal human fibroblasts, the inhibition of DNA topoisomerase I by camptothecin produced reversible DNA strand breaks. Transient exposure to this drug also inhibited replicon initiation. These results suggest that the cellular response pathway which downregulates replicon initiation following genotoxic damage may respond to perturbations of chromatin structure which accompany stabilization of topoisomerase-DNA cleavable complexes.

Amsacrine

Defective postreplication repair in xeroderma pigmentosum variant fibroblasts.

Postreplication repair (PRR) was quantified in normal human fibroblasts and in xeroderma pigmentosum (XP) variant fibroblasts after treatment with UV or benzo[a]pyrene diol epoxide-I (BPDE-I). PRR may be defined as the elimination of discontinuities in the daughter-strand DNA and the replicative bypass of lesions in the DNA template. Pathways of PRR reduce the number of DNA growing points that are blocked at template lesions and increase the rate of growth of nascent DNA on damaged templates. Rates of DNA synthesis and strand growth were measured in solvent- and carcinogen-treated cells by velocity sedimentation analyses of radiolabeled nascent DNA in alkaline sucrose gradients. Logarithmically growing normal fibroblasts displayed D0 values of 6.3 J/m2 and 0.37 microM for the inhibition of DNA synthesis in active replicons by UV and BPDE-I, respectively. Under identical conditions, the XP variant cells exhibited D0 values of 1.5-2.0 J/m2 and 0.27-0.31 microM. Pulse-chase experiments were performed in cells synchronized at the beginning of the S phase. Normal and XP variant cells displayed inhibition of DNA strand growth by UV, with D0 values of 21.6 and 7.0 J/m2, respectively. The D0 values for the inhibition of DNA strand growth by BPDE-I were 0.85 microM for the normal cells and 0.62-0.79 microM for the XP variant cells. The inhibitions of DNA replication by UV and BPDE-I were also analyzed in terms of DNA lesion frequencies. Based on the D0 values for inhibition of DNA replication, we concluded that the XP variant cells express maximally 25-33% of the total PRR activity observed in normal fibroblasts after UV treatment. Conceivably, this deficiency in PRR activity results in the XP variant's increased risk of cancers induced by sunlight, because XP variant cells and normal fibroblasts are equally proficient in excision repair. Both normal and XP variant fibroblasts, however, displayed similar PRR activities in response to BPDE-I treatment.

7,8-Dihydro-7,8-dihydroxybenzo(a)pyrene 9,10-oxide

DNA repair endonuclease activity during synchronous growth of diploid human fibroblasts.

DNA-repair endonuclease activity in response to UV-induced DNA damage was quantified in diploid human fibroblasts after synchronizing cell cultures to selected stages of the cell cycle. Incubation of irradiated cells with aphidicolin, an inhibitor of DNA polymerases alpha and delta, delayed the sealing of repair patches and allowed estimation of rates of strand incision by the repair endonuclease. The apparent Vmax for endonucleolytic incision and Km for substrate utilization were determined by Lineweaver-Burk and Eadie-Hofstee analyses. For cells passing through G1, S or G2, Vmax for reparative incision was, respectively, 7.6, 8.4 and 8.4 breaks/10(10) Da per min, suggesting that there was little variation in incision activity during these cell-cycle phases. The Km values of 2.4-3.1 J/m2 for these cells indicate that the nucleotidyl DNA excision-repair pathway operates with maximal effectiveness after low fluences of UV that are in the shoulder region of survival curves. Fibroblasts in mitosis demonstrated a severe attenuation of reparative incision. Rates of incision were 11% of those seen in G2 cells. Disruption of nuclear structure during mitosis may reduce the effective concentration of endonuclease in the vicinity of damaged chromatin. The extreme condensation of chromatin during mitosis also may restrict the accessibility of reparative endonuclease to sites of DNA damage. Confluence-arrested fibroblasts in G0 expressed endonuclease activity with Vmax of 5.5 breaks/10(10) Da per min and a Km of 5.5 J/m2. The greater condensation of chromatin in quiescent cells may restrict the accessibility of endonuclease to dimers and so explain the elevated Km. When fibroblasts were synchronized by serum-deprivation, little variation in reparative endonuclease activity was discerned as released cells transited from early G1 through late G1 and early S. Proliferating fibroblasts in G1 were shown to express comparatively high numbers of reparative incision events in the absence of aphidicolin which was normally used to inhibit DNA polymerases and hold repair patches open. It was calculated that in G0, S and G2 phase cells, single-strand breaks at sites of repair remained open for 30, 19 and 14 sec, respectively. In G1 phase cells, repair sites remained open for 126 sec. Addition of deoxyribonucleosides to G1 cells reduced this time to 42 sec suggesting that the slower rate of synthesis and ligation of repair patches in G1 was due to a relative deficiency of deoxyribonucleotidyl precursors for DNA polymerase.(ABSTRACT TRUNCATED AT 400 WORDS)

Aphidicolin

Biochemical characteristics of endonuclease activity within the nucleotidyl DNA excision repair pathway of permeable human fibroblasts.

DNA strand breage in response to damage produced by UV (254 nm) radiation was characterized after permeabilization of diploid normal and xeroderma pigmentosum variant fibroblasts. The breakage reaction required ATP, Mg2+ and sucrose for maximal activity and was inhibited by 150 mM Na+ or K+ and 1 mM N-ethylmaleimide. ATP-dependent strand breakage was saturated at UV fluences of above 10 J/m2 and in the presence of DNA precursors breakage was rapidly followed by DNA polymerase and ligase activities to seal the strand breaks. The biochemical features of strand breakage in irradiated permeable cells suggest an enzymatic process. These results, therefore, provide an indication of the biochemical requirements for the rate-limiting strand incision step within the nucleotidyl DNA excision repair pathway.

Adenosine Triphosphate

Pathways of human cell post-replication repair.

Mutagenesis, clastogenesis, and carcinogenesis, may all be S-phase dependent processes within carcinogen-damaged human cells. Carcinogens have been shown to inhibit replicative DNA synthesis in S phase cells and the mechanisms of inhibition have been identified. It is proposed that the sequelae of carcinogen action (mutations, sister-chromatid exchanges, chromosome aberrations) are the consequence of the production of lesions in the DNA template which interfere with the ability of DNA polymerase to synthesize a complementary strand without error. Mis-instructive lesions in the template give rise to base-substitution mutations in nascent strands as DNA polymerase inserts an incorrect but complementary base. Non-instructive base lesions and sterically interfering bulky adducts in the template inhibit DNA polymerase and cause the growing points of nascent DNA strands to be blocked. This blockage perpetuates discontinuities in daughter strands. These discontinuities are eliminated by a process known as post-replication repair. Blocked growing points may be relieved by un-directed insertion of DNA precursors to span the non-instructive lesions. Transient dislocation of the primer terminus from the damaged template may occur at palindromic or repetitive sequences. Reannealing of the primer terminus beyond the site of damage may allow bypass of blocking lesions with a consequence of deletion or insertion of genetic information. DNA at the site of blocked growing points may be a substrate for other enzymes involved in DNA metabolism. Single-strand gaps in daughter strands may be recognized by Rec A-like proteins which catalyze paranemic invasion of sister duplex strands. Recombination intermediates generated at sites of blocked growing points may be resolved by a pathway that produces either sister-chromatid exchanges or the insertion of a patch of parental template DNA within the daughter strand. Single-strand-specific endonuclease may attack regions of denatured DNA at blocked growing points producing double-strand breaks which appear to be intermediates in the formation of chromatid aberrations. The utilization of each of these pathways of post-replication repair will depend upon the precise structure of the template lesion, the sequence context in which the lesion is embedded in the template strand, and stochastic processes.

Cell Cycle

Factors influencing the initiation by gamma rays of hepatocarcinogenesis in the rat.

F344 male rats were irradiated once with 6 G of cesium 137 gamma rays at various times after a two-thirds partial hepatectomy (PH) and then fed a diet containing the liver tumor promoter phenobarbital to evoke the expression of initiated hepatocytes. Yields of hepatocellular neoplasms were enumerated at 45 weeks after irradiation. Although proliferating hepatocytes in regenerating livers appeared to have increased risk of initiation by gamma rays, there was no apparent variation in risk among groups that were treated at times when hepatocytes were in different portions of the cell cycle (G1, S, G2/M). Gamma irradiation delayed the onsets of DNA synthesis and mitosis by proliferating hepatocytes by 18-20 h. The rate of rejoining of radiation-induced DNA strand breaks was analyzed in primary cultures of hepatocytes; 98% of the strand breaks were rejoined within 30 min after irradiation. Efficient repair of certain types of radiation-induced damage to DNA before the damaged DNA is replicated should cause a substantial reduction in the probability of induction of base-substitution mutations. Hepatocellular islands and neoplasms that were initiated by gamma rays may be derived from proliferating hepatocytes which incurred other radiation-induced DNA damages such as chromosomal aberrations.

Animals