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A Columbano

Publications and source records attributed to A Columbano.

At least 37 records · Page 2Linked to original sources

9-cis retinoic acid is a direct hepatocyte mitogen in rats.

We recently suggested that peroxisome proliferators (PP)-induced hepatocyte DNA synthesis may be mediated by a specific peroxisome proliferator activated receptor (PPAR). Heterodimers of the PPAR with the retinoid nuclear receptor, RXR, activate transcription after binding to DR1 response elements of the target genes. DR1 elements are also activated by RXR homodimers formed in the presence of 9-cis retinoic acid (9 cis RA) suggesting that PP and 9 cis RA might regulate an overlapping set of target genes. The present study was therefore designed to test whether 9-cis RA stimulates hepatocyte DNA synthesis. Male Wistar rats were given a single intragastric dose of 9-cis RA (10-100 mg/Kg) or all trans retinoic acid (RA)(200 mg/Kg and 100 mg/Kg), and levels of hepatocyte DNA synthesis after 24 hours were determined by BrdU immunohistochemistry. Effects of 9-cis RA and RA(10(-9)-10(-5)M) on hepatocyte DNA synthesis in primary culture were also examined. Over 10 fold increases in the levels of BrdU incorporation were noted 24 hours after a single dose of 9 cis RA at a dose of 60 and 100 mg/Kg. RA at a dose of 200 mg/Kg induced a 5-6 fold increases in BrdU labeling, while a dose of 100 mg/Kg had no significant effects. Since the RA effect only occurs at higher doses, it may be only after conversion to 9-cis RA. In primary culture of hepatocytes, neither 9-cis RA nor RA with or without EGF had stimulatory effects on hepatocyte DNA synthesis. This is the first report to demonstrate a potent stimulatory effect of 9-cis RA on DNA synthesis of rat hepatocytes in vivo. It is suggested that 9-cis RA exerts this effect through receptor mediated mechanisms similar to PP, both activating genes that regulate hepatocyte proliferation.

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Effects of cell proliferation and cell death (apoptosis and necrosis) on the early stages of rat hepatocarcinogenesis.

An experiment was performed to investigate whether, during regression of the liver hyperplasia induced by a direct mitogen, apoptosis differentially affects replicated and non-replicated hepatocytes. After a single dose of the direct mitogen lead nitrate (LN), male Wistar rats were given repeated injections of tritiated thymidine, and were killed either 3 days (time of maximal hepatic DNA increase) or 15 days (complete regression of the hyperplasia) after mitogen treatment. Determination of liver DNA radioactivities and labelling indices (LIs) at the two time points revealed an approximately 40% loss in total liver DNA radioactivity, a 20% decrease in the specific activity of DNA, and a 20% reduction in the cell LI. Three days after LN administration 64% of the apoptotic bodies contained thymidine grains in their nuclear fragments. The results indicated that apoptosis affects both hepatocytes that replicated, and those that did not replicate, the former being slightly more sensitive. A second experiment was then performed to investigate whether and to what extent different types of cell death (apoptosis versus necrosis) influence the growth of hepatocytes initiated by a chemical carcinogen. Male Wistar rats were given a single dose of diethylnitrosamine, and 2 weeks thereafter either a single dose of LN, or a necrogenic dose of carbon tetrachloride (CCl4). Bromodeoxyuridine was next infused for 5 days, and some of the animals were killed at this time point, and others after an additional 3 weeks. Administration of CCl4 resulted in an increase in both the average size and the percentage area occupied by placental glutathione S-transferase-positive lesions. In contrast, administration of lead nitrate resulted in a strong reduction (50%) in the number of positive lesions with no remarkable change in the percentage area occupied by them. These differential effects occurred even though comparable LIs were observed in rats treated with the two agents. The results suggest that lead nitrate leads to a loss of initiated hepatocytes, due to the apoptosis that occurs during regression of the LN-induced hyperplasia.

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Liver regeneration versus direct hyperplasia.

Liver cell growth can be induced in two distinct patterns: compensatory regeneration and direct hyperplasia. In the former, DNA synthesis is preceded by a loss of liver cells such as seen after partial resection of the liver or cell necrosis, whereas in direct hyperplasia, DNA synthesis is stimulated without cell loss. During the past decade, considerable advances have been made in understanding molecular mechanisms of the compensatory regeneration. There is increasing evidence that hepatocyte proliferation induced by some primary mitogens is mediated by patterns of growth factor modulation and signal transduction different from those of compensatory regeneration. Indeed, whereas activation of transcription factors such as NF-kappa B and increased expression of immediate early genes such as c-fos, c-jun, egr-1, and c-myc are induced during compensatory regeneration, such changes are not observed during hyperplasia induced by certain primary mitogens. In addition, although experimental evidence suggests a critical role for growth factors such as hepatocyte growth factor and transforming growth factor-alpha for the progression into cell cycle of competent hepatocytes in compensatory regeneration, these growth factors do not appear to play a major role in direct hyperplasia. One class of primary mitogens may trigger their actions through tumor necrosis factor-alpha, and the other by activation of nuclear hormone receptors. The differences in molecular events observed between liver regeneration and direct hyperplasia may affect differently the initiation step of chemical hepatocarcinogenesis. Whereas the former supports initiation by chemicals, the latter does not. A similar lack of effect on promotion of carcinogen-altered cells has also been observed after acute treatment with some primary mitogens. Definition of the mechanisms by which primary mitogens stimulate liver cell proliferation may elucidate the nature of the signals responsible for triggering the entry into cell cycle. Furthermore, due to their low toxicity, primary liver mitogens could have significant clinical applications in gene transfer and liver transplantation.

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Cell proliferation, cell death and hepatocarcinogenesis.

The carcinogenic process in the liver is a multistep process, characterised by an altered ratio between cell proliferation and cell death. In the last few years, we have undertaken studies aimed at determining the possible differences exhibited by two different types of cell proliferation, namely compensatory regeneration and direct hyperplasia at a molecular and cellular level. These two types of proliferative stimuli appear to play different roles in liver carcinogenesis. The scope of this article is to summarise the present knowledge about the differences in the expression of genes involved in the entry of liver cells into cell cycle, between liver regeneration following cell loss and/or cell death and direct hyperplasia induced by primary mitogens.

Journal Article↗

Hepatocyte proliferation induced by a single dose of a peroxisome proliferator.

In compensatory hyperplasia after partial hepatectomy or liver cell injury, hepatocyte proliferation is triggered by coordinated actions of growth factor such as hepatocyte growth factor and transforming growth factor-alpha and -beta. Initiation of hepatocyte DNA synthesis is preceded by the activation of the set of early growth response genes mediated by enhanced nuclear factor-kappa B binding to DNA. Using an experimental model to induce hepatocyte DNA synthesis in vivo by a single dose of a peroxisome proliferator, which does not induce liver cell necrosis (direct hyperplasia), we investigated whether peroxisome proliferator-induced hepatocyte proliferation involved an induction of known growth factors, an activation of early growth response genes, and nuclear factor-kappa B. A single intragastric administration of 250 mg/kg BR931 (4-chloro-6-(2,3-xylidino)-2-pyrimidinylthio-(N-beta-hydroxyethyl) acetamide) to male wistar rats induced a wave of hepatocyte DNA synthesis starting after 12 hours and peaking at approximately 24 to 36 hours. The response was dose dependent. The treatment also induced the expression of the mRNA for the peroxisomal bifunctional enzyme, one of the peroxisome-related fatty acid beta-oxidation enzymes. Pretreatment of rats with dexamethasone (2 mg/kg) inhibited both hepatocyte DNA synthesis and the induction of the peroxisomal bifunctional enzyme gene. Northern blot analyses of liver RNA during a period preceding the onset of DNA synthesis revealed no induction of hepatocyte growth factor, transforming growth factor-alpha, or tumor necrosis factor-alpha mRNAs. No induction of early growth response genes, liver regeneration factor-1, or c-myc was detected. Furthermore, gel mobility shift assays showed no enhanced nuclear factor-kappa B binding to its DNA consensus sequence after BR931 treatment, whereas control studies demonstrated a distinct increase in binding after partial hepatectomy or lead nitrate treatment. The results suggest that peroxisome-proliferator-induced hepatocyte proliferation may be triggered by signal transduction pathways different from those after partial hepatectomy and that the binding of peroxisome proliferators to their nuclear receptors may play a role in stimulation of DNA synthesis and peroxisome proliferation.

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Genotoxic and non-genotoxic activities of 2,4- and 2,6-diaminotoluene, as evaluated in Fischer-344 rat liver.

Among aminoaromatics, 2,4-diaminotoluene (2,4-DAT) and 2,6-diaminotoluene (2,6-DAT) represent a conflicting couple of isomers; despite showing the same structural alert to DNA reactivity (and thus potential genotoxicity), they are different in terms of carcinogenicity. Of the two, 2,4-DAT alone is a potent rodent carcinogen, the liver being its major target. According to the literature, assays using various short-term genotoxicity tests have not discriminated satisfactorily between the carcinogenic and non-carcinogenic isomer, both chemicals producing overall positive results. To investigate their mechanism of action, we assayed both 2,4-DAT and 2,6-DAT in F-344 rat liver for their ability to induce DNA adducts, as detected by the 32P-postlabelling technique, and to enhance the induction of preneoplastic foci, as detected by GGT-staining in diethylnitrosamine (DENA)-initiated hepatocytes. Our expectation was that, using the correct target/metabolism, a classic genotoxicity assay and an assay detecting non-genotoxic activities could, together, reflect the different carcinogenic behaviour of the two isomers. The results indicate that, at the single equimolar dose of 250 mg/kg i.p., 2,4-DAT was able to induce approximately 6500 times more DNA adducts than 2,6-DAT; the estimated RAL values for the two isomers were 18.6 x 10(-6) and 0.29 x 10(-8), respectively. Moreover, of the two, only 2,4-DAT was able to significantly enhance the growth of DENA-initiated hepatocytes. Indeed, liver sections from rats treated with 2,4-DAT (30 daily doses of 25 mg/kg, i.g.) exhibited an average total number and area of foci of 10.53/cm2 and 1.22 mm2/cm2 vs. 4.46/cm2 and 0.33 mm2/cm2, for their respective controls. By contrast, no effect on the growth of GGT-positive foci was observed when liver sections from rats treated with 2,6-DAT (30 daily doses of 50 mg/kg, i.g.) were scored (5.54 foci per cm2 and total area of 0.42 mm2/cm2). The results indicate that in spite of the structural alert common to the two isomers, 2,4-DAT and 2,6-DAT, only the former appears to significantly affect the carcinogenic process in the liver.

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Cell death: current difficulties in discriminating apoptosis from necrosis in the context of pathological processes in vivo.

The term apoptosis was proposed to define a type of cell death morphologically, biochemically, and molecularly distinct from necrosis, which plays a fundamental regulatory function in the control of the overall size of cell populations, being complementary but opposite to cell proliferation [Kerr et al. (1972): Br J Cancer 26:239-257]. This view has led to the appreciation that apoptosis is an integral part of normal biological processes and may impact on disease states. Introduction of the concept of apoptosis has raised great interest and many studies have been aimed to the identification of genes responsible for the induction of cell death. Indeed, over the past few years, many genes whose expression is associated with cell death have been described, and the molecular mechanisms underlying cell death have been, in some circumstances, clearly established. However, it is now evident that extension of the conclusions achieved by studies performed with highly selected in vitro systems (simple systems), to in vivo conditions (complex systems), has generated a certain degree of confusion. This is in part due to the indiscriminate use of the term apoptosis and to the uncertainty whether apoptosis is always different from necrosis, and, if this is the case, to the lack of well established criteria to discriminate the two processes; in addition, it still remains to be established whether both types of cell death, although different, could be induced simultaneously by the same agent, depending on the cell type and the experimental condition used. The distinction between apoptosis and necrosis, is not simply a problem of terminology; if necrosis and apoptosis are different from a mechanistic point of view, and if necrosis is merely the passive result of cellular injury (still to be shown), it becomes critical to discriminate between the two processes, in order to understand how to modulate apoptosis in view of its potential therapeutic use. This review will summarize existing informations and discuss some of the conflicting issues related to cell death in the liver.

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Genetic mapping and expression analysis of the murine DNA ligase I gene.

We mapped the murine DNA ligase I gene (Lig1) in the mouse genome by using a mapping panel from an interspecific cross. Lig1 mapped to a centromeric part of chromosome 7, a region homologous to human chromosome 19q, where the human homologue LIG1 was localized. In addition, Lig1 expression was analyzed during the course of mouse liver-cell regeneration induced by partial hepatectomy, necrogenic doses of carbon tetrachloride, or the mitogen 1,4-bis[2-(3,5-dichloropyridyloxy)]benzene. The results demonstrate that Lig1 is expressed in the liver during active cell proliferation.

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An electron microscopic study of apoptosis induced by cycloheximide in rat liver.

A histological and ultrastructural study, coupled with transmission and scanning electron microscopy of the early changes in the liver following a single administration of cycloheximide (CHX), was carried out in male Wistar rats. At the histological level, apoptosis was already present in the liver 2 h after treatment. By scanning electron microscopy, the following sequential changes were observed: brightness and progressive detachment of hepatocytes from neighbouring cells, formation of surface infolds with multiple blebs and, finally, release of several membrane-bounded apoptotic bodies (ABs) in the extracellular space and into the sinusoidal lumen. Three hours after CHX administration, the apoptotic cycle was completed, as shown by the presence of phagocytosed ABs inside the cytoplasm of intact liver cells. Light microscopic examination of the liver 6 h after CHX administration showed ABs mainly located in the cytoplasm of intact hepatocytes and inside activated Kupffer cells. By transmission electron microscopy, it was possible to demonstrate that cells undergoing apoptosis were hepatocytes. At 24 h, the livers of treated animals appeared normal, with no evidence of apoptosis.

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Dexamethasone inhibits induction of liver tumor necrosis factor-alpha mRNA and liver growth induced by lead nitrate and ethylene dibromide.

We have recently demonstrated that a single injection of the mitogen lead nitrate to rats induced a rapid increase of tumor necrosis factor-alpha (TNF-alpha) mRNA in the liver and suggested that this cytokine may be involved in triggering hepatocyte proliferation in this model of direct hyperplasia. In this study, we examined whether a similar induction of liver TNF-alpha mRNA could be observed preceding the onset of hepatocyte proliferation induced by ethylene dibromide, another hepatocyte mitogen. In addition, we used dexamethasone, a well known inhibitor of TNF-alpha production, to determine whether its administration could suppress hepatocyte proliferation induced by lead nitrate and ethylene dibromide. A single intragastric administration of ethylene dibromide (100 mg/kg) to male Wistar rats enhanced liver TNF-alpha mRNA after 4 and 7 hours, which then returned to control levels by 24 hours. TNF-alpha mRNA was detectable only in a nonparenchymal cell fraction of the liver. Pretreatment of rats with a single dose of dexamethasone (2 mg/kg) 60 minutes before lead nitrate (100 mumol/kg) or ethylene dibromide completely abolished the increased levels of liver TNF-alpha mRNA induced by these agents. Inhibition by dexamethasone of TNF-alpha mRNA was associated with an inhibition of liver cell proliferation induced by these mitogens, as measured by [3H]thymidine incorporation into hepatic DNA, mitotic index, and DNA content. These results further support the hypothesis that TNF-alpha may be involved in triggering hepatocyte proliferation induced by primary mitogens.

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Roles of growth factors and of tumor necrosis factor-alpha on liver cell proliferation induced in rats by lead nitrate.

BACKGROUND: A single intravenous injection of lead nitrate to rats induces a synchronized wave of hepatocyte proliferation without accompanying liver cell necrosis. However, the mechanism of the mitogenic effect of lead nitrate is not known, and whether hepatocyte growth factor (HGF), transforming growth factor-alpha (TGF-alpha), and transforming growth factor-beta 1 (TGF-beta 1) play any role in it have not been investigated. These growth factors have indeed been shown to provide either positive or negative stimuli for liver cell regeneration after partial hepatectomy or liver cell necrosis. Moreover, there are reports showing that administration of non-necrogenic doses of tumor necrosis factor-alpha (TNF-alpha) to rats lead to an enhanced proliferation of hepatocytes and liver nonparenchymal cells. Lead is known to sensitize animals to lethal effects of bacterial lipopolysaccharides (LPS), suggesting that lead nitrate may modify the production of TNF-alpha in response to endogenous LPS of intestinal origin. An enhanced production of TNF-alpha could therefore be involved in the mitogenic action of lead nitrate. EXPERIMENTAL DESIGN: We investigated first whether a single intravenous dose of lead nitrate (100 mumole/kg) to rats modifies the production of HGF, TGF-alpha, and TGF-beta 1, by examining the steady-state level of their mRNA in the liver by Northern blot analyses. The response of rats given lead nitrate to various doses of LPS was next evaluated to determine whether lead-treated rats have an enhanced sensitivity to LPS. Finally, the level of TNF-alpha mRNA was examined in the liver of rats at various time periods after a single injection of lead nitrate. RESULTS: No changes were observed in the liver levels of mRNAs for HGF, TGF-alpha, and TGF-beta 1 at various time intervals after a single injection of lead nitrate. All rats given only single injections of LPS up to 100 micrograms survived. However, lead nitrate-treated rats tolerated LPS at dosages of only 6 micrograms. The liver of control rats showed a single 1.6 kb TNF-alpha transcript, whereas 1.8-kb transcripts were seen at 1 hour after lead nitrate injection, and persisted for 12 hours. The 1.8 kb TNF-alpha transcript was also present in the spleen of control rats, and its expression was enhanced in lead nitrate-treated rats. CONCLUSIONS: Stimulation of hepatocyte proliferation induced by lead nitrate was not accompanied by changes in liver levels of HGF, TGF-alpha, or TGF-beta 1 mRNA. Lead nitrate, however, enhanced expression of TNF-alpha at a time preceding the onset of hepatocyte DNA synthesis, indicating that TNF-alpha may trigger the lead nitrate-induced proliferation of hepatocytes.

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Ploidy and nuclearity of rat hepatocytes after compensatory regeneration or mitogen-induced liver growth.

The distribution pattern of rat liver parenchymal cells of different ploidy classes was investigated in Wistar rats following cell proliferation induced by surgical partial hepatectomy (compensatory regeneration) or primary mitogens (direct hyperplasia). Animals were killed at 1, 2, 3, 4 and 15 days after the proliferative stimulus, and ploidy and nuclearity were measured using a computer-assisted imaging system in hepatocytes isolated by collagenase perfusion. Analysis of hepatocytes from animals undergoing regeneration after partial hepatectomy revealed a large increase in tetraploid and octoploid mononucleate cells. The most striking feature was the almost complete disappearance of binucleate cells (from 20% to < 1%) at 3 days after partial hepatectomy. On the contrary, when hepatocytes were analyzed after treatment with the mitogen lead nitrate, a high number of binucleate cells (40%) was observed. The increase that was maximal at 3 days after treatment occurred mainly in 4 x 2c and in 8 x 2c compartments. This resulted in an overall increase in the ratio of binucleate/mononucleate cells as well as in the ratio (8c + 16c):(2c + 4c). The cytological changes induced by lead nitrate were not reversible 2 weeks after treatment. Because a massive elimination of excess liver cells occurred by apoptosis during this time period, it appears that polyploid cells are not preferentially eliminated. The hepatic content of DNA at the end of the regression phase was similar to control values. However, because of the higher ploidy state, the number of cells present in the liver 2 weeks after treatment appears to be lower than that of controls (approximately -16%). When liver growth was induced by a single treatment with another mitogen, the peroxisome proliferator nafenopin, a slight increase in the ploidy state of the liver was observed; because of the shift towards higher ploidy classes (8c), the increase in DNA content observed 3 days after a single treatment with nafenopin (+21%) appears to be almost entirely justified by polyploidy rather than by a hyperplastic event.

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Different effects of regenerative and direct mitogenic stimuli on the growth of initiated cells in the resistant hepatocyte model.

The possible mechanism(s) responsible for the different effects exerted by proliferative stimuli of different nature on the appearance of enzyme-altered hepatic foci, were investigated in male Wistar rats. Rats given an initiating dose of diethylnitrosamine (150 mg/kg body weight) were fed a diet containing 0.03% acetylaminofluorene for 2 weeks. Between the first and the second week, cell proliferation was induced by a proliferative stimulus of compensatory type (partial hepatectomy) or by a direct mitogenic stimulus (lead nitrate, 100 mumol/kg). The effect of the two different proliferative stimuli on the appearance of gamma-glutamyl transferase-positive foci was monitored by killing the rats for examination at 1, 2, 3, 5, and 6 days after the induction of cell proliferation. The results indicate that while enzyme-altered hepatocytes can be observed as early as 3 days after partial hepatectomy and are characterized by a rapid growth, direct hyperplasia did not exert any effect on the growth capacity of initiated cells. No effect of lead nitrate-induced hyperplasia was observed following three administrations of the mitogen. When platelet-poor plasma taken from animals exposed to the different proliferative stimuli was tested in primary cultures of hepatocytes, it was found that it induced a significant increase in the labeling index of normal hepatocytes. However, while serum taken 6 days after partial hepatectomy was still able to induce a significant increase in the labeling index, platelet-poor plasma from lead-treated rats had lost part of its effect at 5 days after treatment. The inability of direct hyperplasia to stimulate the development of enzyme-altered hepatic foci was not unique to lead nitrate since the same phenomenon was observed when three other hepatomitogens, nafenopin, cyproterone acetate, and ethylene dibromide, were used.

2-Acetylaminofluorene↗

Compensatory regeneration, mitogen-induced liver growth, and multistage chemical carcinogenesis.

Liver cell proliferation has often been implicated to play a major role during different steps of the carcinogenic process. Most of the experimental studies indicating a close association between cell proliferation and liver cancer development have made use of a compensatory type of proliferative stimulus. However, liver growth may also be caused by direct hyperplasia after administration of primary mitogens. Our recent studies examined the possible differences between these two types of cell proliferation. Our studies indicate that a) increased expression of proto-oncogenes such as c-fos, c-jun, and c-myc is not necessary for entry into the cell cycle during mitogen-induced liver growth; b) mitogen-induced liver growth does not support initiation of chemical hepatocarcinogenesis; c) repeated proliferative stimuli induced by primary mitogens do not stimulate the growth of initiated cells to a focal and/or nodular stage; and d) mitogen-induced liver growth, unlike compensatory regeneration, is followed by a particular mode of cell death, namely, apoptosis. This type of cell death may be responsible for the elimination of carcinogen-initiated cells.

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Gap junctional intercellular communication and cell proliferation during rat liver carcinogenesis.

During multistage liver carcinogenesis, there is a sequential decrease in gap junctional intercellular communication (GJIC), associated with reduced expression of a major liver gap-junction protein (connexin 32). There are also several lines of evidence indicating that the induction of cell proliferation plays an important role during liver carcinogenesis. The relationship between GJIC and cell proliferation and their roles in liver carcinogenesis are not yet known. Results from various experiments suggest that there is a close relationship between the inhibition of GJIC and stimulation of liver cell proliferation. However, our results also suggest that different stimuli may affect cell proliferation and GJIC differentially by different mechanisms.

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Differences in the steady-state levels of c-fos, c-jun and c-myc messenger RNA during mitogen-induced liver growth and compensatory regeneration.

The steady-state levels of c-fos, c-jun and c-myc messenger RNA were investigated in rat liver tissue after proliferative stimuli of different nature-namely, compensatory regeneration induced by partial hepatectomy or carbon tetrachloride administration-and direct hyperplasia induced by four different hepatomitogens: lead nitrate, ethylene dibromide, cyproterone acetate and nafenopin. We show here that whereas c-fos and c-jun expression increased soon after partial hepatectomy or carbon tetrachloride administration, an increased expression of c-jun in the absence of c-fos expression occurred during direct hyperplasia induced by lead nitrate and ethylene dibromide. When hyperplasia was induced by cyproterone acetate and nafenopin, the mitogenic response of the liver was not associated with an increased expression of c-jun or c-fos, despite the fact that the timing of the cell cycle was similar to that observed after partial hepatectomy. Finally, when c-myc expression was analyzed, it was found that proliferative conditions associated with an increased expression of this gene were characterized by an increased expression of c-jun. On the contrary, the hyperplasia induced by cyproterone acetate and nafenopin, which is characterized by a lack of increase in the expression of c-fos and c-jun, was also not associated with an increased c-myc expression. Similar results were obtained in these experiments with the mitogen nafenopin, a peroxisome proliferator. In fact, liver hyperplasia induced by this compound was not preceded or accompanied by an increased expression of c-fos and c-myc. This study suggests that depending on the nature of the proliferative stimulus, an increased expression of c-fos, c-jun and c-myc may not be necessary for in vivo induction of liver cell proliferation.

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Involvement of DNA polymerase beta in proliferation of rat liver induced by lead nitrate or partial hepatectomy.

We have studied the expression pattern of DNA polymerase beta in two different models of in vivo cell proliferation. Both mRNA levels and enzyme activity of DNA polymerase beta markedly increased before and/or during DNA synthesis in proliferating hepatocytes in mitogen-treated and partially hepatectomized rats. The time-courses of the expression of the gene coding for DNA polymerase beta were significantly different in the two cell systems. A 5-fold increase in DNA polymerase beta mRNA was observed 8 h after lead nitrate administration, i.e. well before the onset of DNA synthesis. In the regenerative liver cells a 3-fold increase in the amount of mRNA was observed 24-48 h after partial hepatectomy, the event being coincident with extensive DNA synthesis. In both systems, the increase of mRNA levels was always paralleled by an increase in enzyme activity, suggesting that DNA polymerase beta activity may be regulated at a pre-translational level.

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