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Superoxide dismutase activity of normal murine liver, regenerating liver, and H6 hepatoma.

By means of both direct assay and gel electrophoresis, normal A/J mouse liver was shown to possess both Cu-Zn and Mn superoxide dismutase (SD) activity. H6 hepatoma cells contained Cu-Zn SD activity, but no Mn SD activity was detectable. Isolated mitochondria from normal liver contained both forms of the enzyme, but isolated mitochondria from H6 hepatoma cells contained no SD activity. To ascertain whether this loss of Mn SD activity was characteristic of these tumor cells or was simply a property of rapidly dividing cells, SD activity was measured in regenerating liver. Mn SD activity was present in the regenerating liver at all times after surgery. Hence loss of the Mn SD activity seemed to be a characteristic of some tumor cells but not of corresponding rapidly dividing normal cells.

Animals

Adsorption of messenger RNA of Novikoff hepatoma, normal liver, and regenerating liver on complementary DNA-cellulose affinity matrices.

Complementary DNA (cDNA)-oligodeoxythmidylate-celluloses were prepared from cDNA copies of polysomal messenger RNA (mRNA) of Novikoff hepatoma, normal rat liver, and regenerating rat liver. cDNA synthesis with reverse transcriptase was approximately 46% with respect to input mRNA with oligodeoxythymidylate-cellulose primer. The cDNA's of normal liver, regenerating liver, and Novikoff hepatomas were used as affinity matrices for hybridization of different mRNA species. Under the conditions used, degradation of mRNA was not detected. After normalization for homologous hybridization efficiency, 53 and 65% of the Novikoff hepatoma mRNA bound to normal liver and regenerating liver cDNA's. Under these conditions an average of 82% of mRNA of normal liver bound to regenerating liver cDNA, and 92% of regenerating liver mRNA bound to normal liver cDNA. The bound and unbound mRNA's were analyzed by translation in the wheat germ system; 2-D gel analysis of the proteins synthesized in the wheat germ system indicated that the cDNA affinity columns selectively adsorbed some mRNA species.

Animals

The regenerating liver: a site of erythropoiesis in the adult Long-Evans rat.

Erythropoiesis, which is primarily hepatic in the rat during fetal and early neonatal life, shifts almost entirely to the bone marrow in the neonatal-adolescent stage of development. In the adult, extramedullary erythropoiesis has been demonstrated in the liver and spleen under certain pathological conditions when bone marrow red cell production is insufficient. In the present study, erythropoietic foci have been found in young-adult rat liver regenerating 24-72 hr after subtotal hepatectomy. This erythropoiesis is both extravascular and sinusoidal, with some erythroblastic islands noted. The centrolobular hepatic area contains the highest concentration of erythroblasts. Peripheral blood reticulocytosis coincides with the appearance of these cells and this is considered as an indicator of effective erythropoiesis. Liver regenerating after partial hepatectomy produces significant quantities of erythropoietin (Ep) in response to hypoxia. Subtotal hepatectomy may confer upon the adult liver the ability to revert to a fetal-like condition both in its ability to produce Ep and to function as a hematopoietic inductive microenvironment for erythropoiesis.

Age Factors

The effect of halothane anaesthesia on liver regeneration.

The effects of halothane and diethyl ether on the regenerating liver following 70 per cent hepatectomy were studied in Fisher/344 (F) rats. Our aim was to discover whether halothane administered repeatedly and over prolonged periods could influence the liver regenerative process or hepatocyte function. We also wished to know if the effects of halothane differed from those of diethyl ether. We found: 1. Prolonged halothane or diethyl ether anaesthesia did not inhibit liver mitotic activity, even if administered repeatedly. 2. The effects of halothane and diethyl ether on liver cell division were identical. 3. With reference to liver regeneration, halothane is as safe as diethyl ether when administered during extensive hepatectomy.

Animals

Loss and reappearance of gap junctions in regenerating liver.

Changes in intercellular junctional morphology associated with rat liver regeneration were examined in a freeze-fracture study. After a two-thirds partial hepatectomy, both gap junctions and zonulae occludentes were drastically altered. Between 0 and 20 h after partial hepatectomy, the junctions appeared virtually unchanged. 28 h after partial hepatectomy, however, the large gap junctions usually located close to the bile canaliculi and the small gap junctions enmeshed within the strands of the zonulae occudentes completely disappeared. Although the zonulae occludentes bordering the bile canaliculi apparently remained intact, numerous strands could now be found oriented perpendicular to the canaliculi. In some instances, the membrane outside the canaliculi was extensively filled with isolated junctional strands, often forming very complex configurations. About 40 h after partial hepatectomy, very many small gap junctions reappeared in close association with the zonulae occludentes. Subsequently, gap junctions increased in size and decreased in number until about 48 h after partial hepatectomy when gap junctions were indistinguishable in size and number from those of control animals. The zonulae occludentes were again predominantly located around the canalicular margins. These studies provide further evidence for the growth of gap junctions by the accretion of particles and of small gap junctions to form large maculae.

Animals

Effect of 5-fluorouracil on liver regeneration and metabolism after partial hepatectomy in the rat.

The effects of 5-fluorouracil (5-FU) on regenerating liver were studied after two thirds hepatectomy in rats. In Group I, 68% hepatectomy was performed. In Group II, 5-FU in a dose of 20 mg/kg was administered intravenously immediately after, 24 and 48 hours after the same hepatectomy. In Group III, the same amount of 5-FU was given after sham-operation. The mortality rates were 4.5% in Group I, 28.0% in Group II, and 0% in Group III. The treatment with 5-FU following hepatectomy caused not only suppression but delay of liver cell division. Histologic changes such as cellular degeneration, liver steatosis and dilatation of the sinusoidal space were marked and prolonged in the hepatectomy-5-FU group. The metabolic abnormalities in albumin, cholesterol, triglycedides, and phospholipids were further more profound in Group II compared to those in Group I. In Group III, moderate derangements in albumin, triglycerides and phospholipids were observed. The results may indicate that adjuvant chemotherapy with 5-FU or similar drugs immediately after partial hepatectomy in hepatoma patients should be performed with great care if necessary. Otherwise, it should not be carried out until hepatic regneration is almost completed.

Animals

Effect of a single treatment with the alkylating carcinogens dimethylnitrosamine, diethylnitrosamine and methyl methanesulphonate, on liver regenerating after partial hepatectomy. II. Alkylation of DNA and inhibition of DNA replication.

Experiments were carried out to determine whether replication of alkylated DNA could be involved in the initiation of hepatocellular carcinoma which results from a single administration of dimethylnitrosamine (DMN) given after partial hepatectomy. The incidence of tumours is higher when DMN is given during the wave of DNA synthesis induced by the operation than when given in the early prereplicative stage. Therefore the alkylation of DNA in the regenerating liver by DMN given at these times and the effect of DMN on DNA synthesis were investigated. The extent, duration and pattern of alkylation of DNA, including the formation of 0-6-methylguanine, were similar whether DMN was given in the early pre-replicative stage (6 h after the operation) or during the period of DNA synthesis (at 24 h). DMN given a 6 h very greatly reduced the wave of DNA replication which would otherwise have ensued. When given at 24 h, by which time DNA synthesis was already taking place, DMN reduced the rate of incorporation of (-3H)thymidine after 1-2 h delay. However, in neither case was DNA synthesis reduced to the level occurring in normal intact liver. Treatment with diethylnitrosamine (DEN) at 6 h or at 24 h had a similar effect to DMN on the wave of DNA replication induced by partial hepatectomy. Methyl methanesulphonate (MMS given in the early pre-replicative stage delayed the wave of DNA synthesis by about 8 h, but when it did take place the extent of synthesis was as great as in untreated animals. When given during the period of DNA replication, MMS rapidly reduced the rate of synthesis. As in the case of the nitrosamines, synthesis was not reduced to the level occuring in normal intact animals. The difference from the nitrosamines lies in the nature of the alkylated bases formed in DNA. The fact that a single treatment with DMN induces cancer in partially hepatectomised animals but not in intact adult animals is not considered to be due to a gross difference in the nature of the alkylation of DNA. The experiments described support the concept that replication of DNA containing bases which are likely to mispair during replication may be necessary to 'fix' the lesion and thus cause a permanent inheritable change in the genetic material.

Alkylation

Morphology of nuclear ribonucleoproteins in the early period of liver regeneration.

A cytochemical study on the nuclei of hepatocytes in the regenerating liver after partial hepatectomy by the method of Higgins and Anderson was carried out. The behaviour of the ribonucleoprotein components of the nucleus, using EDTA according to Bernhard, revealed altered proportions of the fibrillar and granular components of the nucleoli in the early phase of regeneration and morphologic changes in nuclear RNP, especially in perichromatin fibrils. At 6 h after hepatectomy, the reaction with perichromatin fibrils (FP) was intense, localized around fields of condensed chromatin, which suggests intense transcription of extranucleolar RNA. The behaviour of the remaining nuclear ribonucleoproteins was uncharacteristic.

Animals

Changes in transcription of endogenous type-C virus genome during mouse liver regeneration.

In the present study the extent of endogenous, type-C virus genome transcription in normal and regenerating mouse liver was analysed by using the technique of nucleic acid hybridization. The RNA preparations from regenerating liver tissues collected at various intervals following partial hepatectomy, and from normal liver samples of BALB/c mice, were hybridized to 3H-DNA complementary to 60 to 70S RNA of an endogenous, N-tropic virus, released spontaneously from BALB/c mouse cells in culture. Although partial transcription of the endogenous virus genome can be clearly detected in normal liver, a significant increase in the level of virus-specific RNA synthesis in the regenerating liver, in comparison to normal liver, is apparent, following partial hepatectomy. This increase in virus-specific RNA synthesis attains its highest level just before the level of DNA synthesis in the regenerating liver reaches its maximum. These observations may indicate a qualitative or quantitative change in the endogenous type-C virus genome transcription pattern in hepatocytes, in response to partial hepatectomy and suggest that this change in the transcription pattern and the initiation of cell proliferation, in regenerating livers, are probably sequential and related events.

Animals

Induction and 'superinduction' of sialylation of membrane-bound gamma-glutamyltransferase during liver regeneration.

The present paper shows that in the regenerating rat liver the membrane-bound-gamma-glutamyltransferase exists in two molecular forms. Depending on the state of proliferation, a sialic-acid-rich enzyme (in the fetal or regenerating liver) or a sialic-acid-poor enzyme (in the adult or quiescent liver) could be detected. In regeneration liver (24 h after 2/3 resection) only the sialic-acid-rich or fetal enzyme could be found. Since total enzyme activity (adult + fetal type) remained unchanged, it is assumed that the adult type of gamma-glutamyltransferase was modified by sialylation during the initial phase of liver regeneration. This process of sialylation was prevented by inhibitors of RNA or protein synthesis such as D-galactosamine, actinomycin D or cycloheximide, provided that the inhibitor (D-galactosamine) was given within the first 8 h after partial hepatectomy. Sialylation was not impaired by inhibitors of DNA synthesis, e.g. hydroxyurea or cytosine arabinoside. Administration of actinomycin D during a defined phase of proliferation (24 to 48 h after partial hepatectomy) stimulated the transfer of sialic acid to gamma-glutamyltransferase, a finding which describes for the first time the so-called 'superinduction' of a sialylation process.

Animals

Beta-catenin/sirtuin 1/farnesoid X receptor pathway promotion of portal vein ligation and parenchymal transection-induced rapid liver regeneration.

BACKGROUND: By accelerating the regeneration of the future liver remnant, portal vein ligation and parenchymal transection allows for more extensive hepatectomy. Given that the mechanism remains poorly understood, the aim of this study was to investigate the mechanism of portal vein ligation and parenchymal transection-induced liver regeneration. METHODS: A portal vein ligation and parenchymal transection-induced liver regeneration mouse model was established, followed by RNA microarray analysis to identify candidate molecules. Genomic deletion and chemical manipulation of target molecules were used to explore their functions in portal vein ligation and parenchymal transection-induced liver regeneration. Validation was conducted using a diseased liver model and human samples. RESULTS: Portal vein ligation and parenchymal transection-induced liver regeneration was significantly accelerated compared with that in sham-operated mice (P < .05). An RNA microarray revealed that Sirtuin 1 is a crucial molecule in the proliferation of the future liver remnant. Regardless of whether Sirtuin 1 is inhibited chemically or through genetic deletion, portal vein ligation and parenchymal transection-induced liver regeneration is distinctly attenuated. Further investigation revealed that Sirtuin 1 promoted portal vein ligation and parenchymal transection-induced liver regeneration via the farnesoid X receptor. In addition, beta-catenin also was found to participate in the process of future liver remnant proliferation. Chemical inhibition of beta-catenin markedly impaired but activation of WNT/beta-catenin mildly enhanced portal vein ligation and parenchymal transection-induced liver regeneration (P < .05). Deletion of Sirtuin 1 blocked the facilitating effect of beta-catenin on portal vein ligation and parenchymal transection-induced liver regeneration. These findings were validated in diseased liver models and patient samples, confirming the correlation between the beta-catenin/Sirtuin 1/farnesoid X receptor pathway and portal vein ligation and parenchymal transection-induced liver regeneration. CONCLUSION: Activation of the beta-catenin/Sirtuin 1/farnesoid X receptor pathway offers critical mechanistic insights into accelerating portal vein ligation and parenchymal transection-induced liver regeneration. Modulation of beta-catenin/Sirtuin 1/farnesoid X receptor may therefore improve clinical outcomes in patients receiving staged hepatectomy.

Liver Regeneration

[Effect of thryoidectomy on the properties of rat liver mitochondria during liver regeneration].

The properties of regenerating rat liver mitochondria are not changed by the thyroidectomy. Thus, hepatectomy induces, in thyroidectomized rats as in normal ones, a decrease in the activity of the outer membrane enzymes, a stimulation of oxidative phosphorylations and an increase of the turn over rate of mitochondrial proteins. Thyroid hormones do not seem to have a major effect upon the liver regeneration mechanism.

Animals

Accumulation of polyadenylated mRNA during liver regeneration.

Cytoplasmic and polysomal polyadenylated mRNA [poly(A)+-mRNA] increased by 120% prior to the onset of DNA synthesis during the regeneration of rat liver following partial hepatectomy. Despite this large change in cytoplasmic mRNA and an approximately 50% increase in total nuclear RNA, the amount of polyadenylated nuclear RNA increased by only 15--20% during this time. Neither the average size of nuclear or of cytoplasmic polyadenylated mRNA nor the length of their poly(adenylic acid) [poly(A)] tracts changed during liver regeneration. Polysomal poly-(A)+-mRNA increased proportionately more and at a faster rate than rRNA during the first day following partial hepatectomy. Normal livers contained a substantial proportion of cytoplasmic poly(A)+-mRNA not associated with polysomes but this proportion was not altered in 3-h regenerating liver. Thus, in regenerating liver, most preexisting cytoplasmic mRNA does not appear to be recruited into polysomes prior to the substantial increase in the amount of cytoplasmic poly(A)+-mRNA.

Animals

Changes in nuclear and polysomal polyadenylated RNA sequences during rat-liver regeneration.

Nuclear and polysomal polyadenylated RNA populations of normal and 16 hour regenerating rat liver have been compared by mRNA-cDNA hybridisations and by unique DNA saturation experiments. It was found that nuclear polyadenylated RNA hybridises to 6.8% of unique DNA in both normal and 16 hour regenerating rat liver. However, cross-hybridisation experiments using cDNA have shown that 10-15% by weight of nuclear polyadenylated RNA sequences are specific to 16 hour regenerating rat-liver. Since both unique DNA and cDNA hybridisation have shown that normal and 16 hour regenerating rat-liver polysomal polyadenylated RNA populations are qualitatively very similar sequences specific to 16 hour regenerating rat-liver nuclear polyadenylated RNA are nucleus confined. Polysomal RNA sequences which were abundant in normal rat-liver have become less abundant in regenerating rat liver.

Animals