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W Bursch

Publications and source records attributed to W Bursch.

At least 37 records · Page 2Linked to original sources

Apoptosis in the liver and its role in hepatocarcinogenesis.

Apoptosis seems to be the predominant type of active cell death in the liver (type I), while in other tissues cells may die via biochemically and morphologically different pathways (type II, type III). Active cell death is under the control of growth factors and death signals. In the liver, endogenous factors, such as transforming growth factor beta 1 (TGF-beta 1), activin A, CD95 ligand, and tumor necrosis factor (TNF) may be involved in induction of apoptosis. Release and action of these death factors seems to be triggered by exogenous signals such as withdrawal of hepato-mitogens, food restriction, etc. During stages of hepatocarcinogenesis, not only DNA synthesis but also apoptosis gradually increase from normal to preneoplastic to adenoma and carcinoma tissue. Also, in human carcinomas, birth and death rates of cells are several times higher than in surrounding liver. (Pre)neoplastic liver cells are more susceptible than normal hepatocytes to stimulation of cell replication and of cell death. Consequently, tumor promoters may act as survival factors, i.e., inhibit apoptosis preferentially in preneoplastic and even in malignant liver cells, thereby stimulating selective growth of (pre)neoplastic lesions. On the other hand, regimens favoring apoptosis and lowering cell replication may result in selective elimination of (pre)neoplastic cell clones from the liver. Finally, we have studied the first stage of carcinogenesis, namely the appearance of putatively initiated cells after a single dose of the genotoxic carcinogen N-nitrosomorpholine (NNM). Most of these cells were found to be eliminated by apoptosis, suggesting that initiation, at the organ level, can be reversed at least partially by preferential elimination of initiated cells. These events may be regulated by autocrine or paracrine actions of survival factors.

Apoptosis↗

Transforming growth factor beta 1-induced cell death in preneoplastic foci of rat liver and sensitization by the antiestrogen tamoxifen.

Previous studies have shown 5- to 10-fold higher rates of apoptosis in prestages of liver cancer (putative preneoplastic cell foci [PPF]) than in unaltered liver; fasting or withdrawal of tumor promoters enhanced apoptosis even further. We studied whether transforming growth factor beta 1 (TGF-beta 1), an inducer of apoptosis in normal liver, might be involved in induction of apoptosis in PPF. PPF were produced in 7-week-old female Sprague-Dawley rats with a single oral dose of the genotoxic carcinogen 7,12-dimethylbenz(a)anthracene (DMBA). At 24 weeks of age, TGF-beta 1 was injected into animals (40 micro g/kg intravenously) either once and they were killed 4 hours later (single-dose experiment) or eight times at 24-hour intervals and they were killed 24 hours after the last administration (multiple-dose experiment). Further subgroups received daily subcutaneous injections of tamoxifen (TAM) (8 mg/kg) for 4 consecutive weeks before TGF-beta 1 treatment. In normal liver, the apoptosis incidence was low in solvent- and TAM-only-treated animals, in the single- as well as the multiple-dose experiment. TGF-beta 1, increased the apoptosis incidence severalfold, and the combined administration of TGF-beta 1 with TAM caused a further strong increase. The already-elevated basal apoptotic incidence in PPF was further increased by TGF-beta 1, and particularly by TGF-beta 1 plus TAM treatments, which resulted in a reduction of foci number and size. In summary, these results show that TGF-beta 1 can induce apoptosis in PPF. This apoptosis-inducing activity is strongly enhanced by the additional treatment with the antiestrogen TAM, which by itself does not have any cell death-inducing effect in the liver or PPF. The elevated apoptotic activity of PPF in response to TGF-beta 1 can lead to a selective reduction of the liver load with preneoplastic cells.

Animals↗

Active cell death induced by the anti-estrogens tamoxifen and ICI 164 384 in human mammary carcinoma cells (MCF-7) in culture: the role of autophagy.

Active cell death in hormone-dependent cells was studied using cultured human mammary carcinoma cells (MCF-7) treated with the anti-estrogens (AEs) tamoxifen (TAM), 4-hydroxy-tamoxifen (OH-TAM) or ICI 164 384 (10(-8)-10(-5) M) as a model. The following results were obtained. (i) In untreated MCF-7 cells a wave of replication occurred in the first 5 days of culture. All three AEs caused a dose-dependent inhibition of cell replication. (ii) TAM and OH-TAM at 10(-5) M, but not ICI 164 384, caused lytic cell death (necrosis) within 24 h, which was not inhibited by estradiol (10(-9)-10(-6)M). (iii) Lower concentrations of TAM or OH-TAM (up to 10(-6) M) or ICI 164 384 induced a more gradual appearance of cell death beginning at day 3. This type of cell death was inhibited by estradiol (10(-9) M), indicating its active nature. (iv) Nuclei showed two distinct patterns of alteration: (a) apoptosis-like condensation and fragmentation of chromatin to crescent masses abutting the nuclear envelope; (b) condensation of the chromatin to a single, pyknotic mass in the center of the nucleus, detached from the nuclear envelope. Quantitative histological evaluation revealed the predominance of pyknosis. (v) Biochemical DNA analysis revealed that only a relatively small amount of the total DNA was finally degraded into low molecular weight fragments (20 kb and less). (vi) Active cell death, with both apoptotic and pyknotic nuclear morphology, was associated with extensive formation of autophagic vacuoles (AV).3-Methyladenine, a known inhibitor of AV formation, partially prevented cell death as detected by nuclear changes. (vii) ICI 164 384 was about 10 times more effective than TAM or OH-TAM at inhibiting DNA synthesis, but had equal potency in inducing active cell death. It is concluded that AEs have anti-proliferative and anti-survival effects on MCF-7 human mammary cancer cells in culture. These two effects are under separate control because they differ by kinetics, dose dependence and sensitivity to the various AEs. Active cell death in MCF-7 cells seems to be initiated by autophagy, in contrast to concepts of apoptosis, and thus corresponds to autophagic/ lysosomal or type II death as previously defined. This may be important because of biochemical and molecular differences between these various subtypes of active cell death.

Autophagy↗

In situ detection of fragmented DNA (TUNEL assay) fails to discriminate among apoptosis, necrosis, and autolytic cell death: a cautionary note.

Detection of DNA fragments in situ using the terminal deoxyribonucleotidyl transferase (TDT)-mediated dUTP-digoxigenin nick end labeling (TUNEL) assay is increasingly applied to investigate active cell death (apoptosis). We studied the specificity of the assay in well-defined models of apoptosis and necrosis as well as in postmortem autolysis in rat liver. During involution of liver hyperplasia, which follows stopping treatment with the hepatomitogens cyproterone acetate (CPA) or nafenopin (NAF), numerous apoptotic hepatocytes could be observed with TUNEL-positive chromatin residues. A similar TUNEL-positive reaction appeared in necrotic hepatocytes after a cytotoxic dose of carbon tetrachloride (CCl4) or N-nitrosomorpholine (NNM). Also, in insufficiently fixed, autolytic livers TUNEL-positive nuclei were observed. Thus, DNA fragmentation is common to different kinds of cell death; its detection in situ should not be considered a specific marker of apoptosis.

Animals↗

Growth kinetics of enzyme-altered liver foci in rats treated with phenobarbital or alpha-hexachlorocyclohexane.

A quantitative method based upon a stochastic model for the appearance of initiated cells and their clonal growth was used to estimate cell birth and death rates in enzyme-altered liver foci (EAF). gamma-Glutamyltranspeptidase (gamma-GT)-positive foci were initiated in livers of female SPF Wistar rats by a single application of N-nitrosomorpholine. Serial terminations during and after stop of promoter treatment with either phenobarbital (PB) or alpha-hexachlorocyclohexane (alpha-HCH) provided information on the growth and regression of the EAF. Simultaneous labeling index (LI) measurements were obtained via single injections with [3H]thymidine. No significant increases of the LI were observed with PB or alpha-HCH treatment. Since both agents are strong liver promoters we conclude that the growth of gamma-GT-positive foci is mainly due to a decrease in the rate of apoptosis. Indeed, our analysis supports this conclusion but determines that the abrogation of homeostatic control during promoter treatment is subtle. The ratio of cell death and cell birth rate is found to be decreased only slightly during promoter treatment and slightly increased after stop of promotion. For the mathematical analysis, two distinct focal growth scenarios were employed: (i) volume growth, i.e., all cells within individual foci cycle actively with the same rate, and (ii) surface growth where only cells on the surface of foci cycle actively while interior cells are resting. The model based upon scenario (ii) provides a better fit to the data and is more consistent with the experimental observations indicating heterogeneity of cell division rates within individual foci.

Animals↗

Expression of clusterin (testosterone-repressed prostate message-2) mRNA during growth and regeneration of rat liver.

Clusterin has been used as a marker for apoptosis (often denoted "active" "or programmed" cell death) in the prostate, mammary gland and other solid organs. The protein is thought to be involved in membrane remodelling during separation of apoptotic cells from their vital neighbours and fragmentation into apoptotic bodies. In the present study, we have looked at the expression of clusterin during the growth and regression of rat liver induced by short term administration of the hepatomitogen, cyproterone acetate. The steady state level of clusterin mRNA, as measured by Northern and slot blot analysis, is low in control hepatocytes. Following administration of cyproterone acetate, the clusterin mRNA level is increased during both liver growth and regression. In situ hybridization reveals that clusterin is expressed in all hepatocytes, indicating that it is not confined to cell death by apoptosis. These results suggest that the gene product may be involved in maintaining membrane integrity, which is necessary during both mitosis and apoptosis. To determine whether clusterin mRNA is induced by membrane remodelling independent of either mitosis or apoptosis, we examined the expression of clusterin mRNA in the liver after a necrogenic dose of carbon tetrachloride. During the first 24-48 h of this time period, necrosis is the predominant form of cell death and liver regeneration starts after approximately 24 h. Elevated levels of clusterin mRNA are found as early as 12 h after carbon tetrachloride administration and persist for at least 72 h.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Apoptosis and multistage carcinogenesis in rat liver.

Apoptosis is a type of active cell death. It is involved in the homeostasis of cell number in tissues and is controlled by the growth regulatory network in the organism. It is also involved in the active removal of damaged cells. We have studied the role of apoptosis in cancer pre-stages and overt cancer in vivo, using rat liver as our main model system. Quantitative determination of apoptosis in histological specimens revealed that the rate of apoptosis tends to increase from normal to (pre)neoplastic to malignant cells. Thereby active cell death largely counterbalances the increasing replicative activity in developing malignancy. Tumor promoters shift the balance in favor of cell replication, whereas promoter withdrawal, fasting or TGF-beta 1 favor apoptosis (anti-promotion). Preneoplastic cells are more susceptible than normal liver cells to stimulation of both cell replication or cell death. Consequentially (pre)neoplastic tissue may preferentially grow or die during the appropriate treatment. Regimens that favor apoptosis and lower cell replication are shown to result in the elimination of preneoplastic cell clones from the liver (anti-initiation) and to reduce the cancer risk of the animal.

Animals↗

Role of active cell death (apoptosis) in multi-stage carcinogenesis.

Active cell death is a genetically encoded self-destruction of a cell. There occur morphologically different types of active cell death, e.g. apoptosis in the liver or autophagic cell death in human mammary carcinoma cells after tamoxifen treatment (Pre)neoplastic lesions in rat liver exhibit enhanced rates of apoptosis, which tend to increase with increasing malignancy. Tumor promoters and non-genotoxic carcinogens inhibit active cell death, thereby increasing the accumulation of (pre)neoplastic cells and accelerating the development of cancer. On the other hand promoter withdrawal, fasting or application of negative growth signals such as transforming growth factor beta 1 (TGF beta 1) enhance apoptosis and can lead to selective regression of preneoplastic lesions or tumors.

Animals↗

Cell death: programmed, apoptosis, necrosis, or other?

There are at least two major types of active or physiological cell death. The most well-known form, apoptosis or Type I, involves early nuclear collapse, condensation of chromatin, generation of nucleosomal ladders, and cell fragmentation with little or no early alteration of lysosomes. It is most commonly seen in cells deriving from highly mitotic lines, and the cells are phagocytosed by neighboring cells or infiltrating macrophages. In metamorphosing or secretory cells, and under conditions where the majority of cells die, the bulk of the cytoplasm is consumed by expansion of the lysosomal system well before nuclear collapse is manifest. This form of cell death has been termed Type II cell death, and we revert to this terminology. The requirement for protein synthesis is more characteristic of Type II cell death in developmental situations than it is for Type I cell death. The variations seen force a reassessment of those aspects of physiological cell death that are truly universal, thereby focusing attention on the biology of the process. A better understanding of the biology and morphology of dying cells will help clarify the significance of the molecular and biochemical findings.

Journal Article↗

Food restriction eliminates preneoplastic cells through apoptosis and antagonizes carcinogenesis in rat liver.

Restriction of dietary calories reduces cancer formation in experimental animals and probably also in humans. This effect is generally attributed to the inhibitory effect of fasting on cell proliferation. Here we studied the effect of fasting on physiological cell death through apoptosis by using rat liver as a model. (i) In normal liver, involution of hyperplasia by apoptosis was reinforced by food withdrawal and suppressed by feeding. Complete food withdrawal for 8 days or food reduction by 40% for 3 months eliminated 20-30% of normal liver cells through apoptosis. (ii) Putative preneoplastic liver foci exhibited severalfold higher rates of DNA replication and apoptosis than unaltered liver. Food restriction lowered DNA replication but increased apoptosis, which reduced the number and volume of putative preneoplastic liver foci by 85% within 3 months. Subsequent return to ad libitum feeding normalized cell replication and apoptosis but clear differences in the volume and number of putative preneoplastic liver foci persisted throughout the following 17 months. Treatment of animals after food restriction with nafenopin, a peroxisome proliferator and potent tumor promoter, produced only half as many hepatocellular adenomas and carcinomas as in animals fed unrestrictedly throughout their lifetime. This indicates that food restriction had actually eliminated a part of the initiated cells. This study demonstrates that food restriction preferentially enhances apoptosis of preneoplastic cells. This effect in combination with lowered cell replication provides protection from carcinogenesis.

Animals↗

Tumor development and apoptosis.

Apoptosis or other types of active cell death may play a major role at various stages of carcinogenesis. Active cell death can be induced, by internal and exogenous signals, in preneoplastic, neoplastic and even malignant cells. It may reverse the effects of initiation and promotion and may lead to tumor regression. Conversely tumor promoters may inhibit active cell death in preneoplastic cells and thereby accelerate cancer development.

Animals↗

[Relevance of apoptosis for carcinogenesis].

Apoptosis is a type of active, genetically programmed cell death. It occurs under specific conditions and is characterized by it's morphology. It is controlled by genes, hormones and other factors regulating the growth of organs and cells in the organism. In the liver and some other epithelial tissues transforming growth factor beta 1 and related peptides seem to be involved in the homeostasis of cell multiplication and cell death. In the course of carcinogenesis, initiated, preneoplastic and neoplastic cells and cell foci in the liver show enhanced DNA synthesis and also enhanced apoptosis. Tumor promoters inhibit apoptosis and increase cell replication and can thereby shift the balance between birth and death of cells accelerating tumor development. Fasting can have the opposite effect.

Animals↗

Transforming growth factor-beta 1 as a signal for induction of cell death by apoptosis.

Cell death by apoptosis is a major determinant of growth of normal tissues and tumours. The present study aimed to elucidate signal factors involved in its regulation. Epithelial cells in control liver, during regression of cyproterone acetate induced liver hyperplasia, in liver (pre)neoplasia and in uterus undergoing apoptosis in vivo show immunostaining for transforming growth factor beta 1 (TGF-beta 1) as detected by anti-pre(266-278) TGF-beta 1 antibodies. Positive immunostaining is also seen in a few intact cells of hyperplastic, regressing liver apparently preparing for apoptosis, but is virtually not found in hepatocytes of normal or growing liver nor in cells undergoing death by necrosis. Recombinant latency associated protein (rLAP, dimer of the pro-region non-covalently associated with the mature region) complex and mature TGF-beta 1 induce apoptosis in isolated hepatocytes cultured in vitro. These findings suggest an involvement of TGF-beta 1 in the induction of apoptosis in certain epithelia in vivo.

Animals↗

Cell proliferation and apoptosis in normal liver and preneoplastic foci.

The growth rate of tissues including tumors is determined by the difference between cell replication and cell death. Among different types of cell death, apoptosis, a form of programmed cell death, is of particular importance. Nongenotoxic carcinogens exert their carcinogenic effects not only via stimulation of cell replication but also by modulating the incidence of apoptosis. This can be seen at different stages of carcinogenesis: a) After initiation in the liver, many initiated cells may undergo apoptosis and never develop into preneoplastic foci, as suggested by both biological and mathematical studies. Thus, apoptosis appears to determine the efficiency of initiation. b) In the promotion stage, early preneoplastic hepatic foci originate either from treatment with a genotoxic carcinogen or spontaneously exhibit much higher rates of cell replication than normal cells, but nevertheless show little preferential growth. This is due to enhanced rates of apoptosis. Some tumor promoters were found to inhibit apoptosis and thereby accelerate foci growth and carcinogenesis. c) In neoplastic nodules and tumors, apoptosis has been shown to be an important growth determinant and to be regulated by growth regulatory hormones, which thereby may decrease or accelerate tumor growth. Studies on the regulation of apoptosis revealed that in the liver, transforming growth factor TGF-beta 1 is involved in the initiation of apoptosis. This was based on three lines of evidence: TGF-beta 1 induced apoptosis in isolated hepatocytes, b) in vivo hepatocytes undergoing apoptosis showed positive immunostaining with antibodies against a precursor of TGF-beta 1.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Apoptosis is induced by transforming growth factor-beta 1 within 5 hours in regressing liver without significant fragmentation of the DNA.

In previous studies we showed that transforming growth factor-beta 1 induces apoptosis in hepatocyte cultures and regressing livers, the mature form being more potent than the transforming growth factor-beta 1 latency-associated protein. In this study we addressed the question of whether apoptosis can be induced within a short time after administration of transforming growth factor-beta 1. Five hours after a single intravenous injection of 25 micrograms mature transforming growth factor-beta 1/kg body weight, apoptosis is augmented ninefold in the regressing rat liver. A second preceding application induces no further augmentation. Transforming growth factor-beta 1 latency-associated protein shows no effect with either regimen. Morphological evaluation shows that 5 hr after injection of transforming growth factor-beta 1 nearly all apoptotic bodies are already engulfed by their neighbor cells. After homogenization of the transforming growth factor-beta 1-treated livers, the condensed apoptotic bodies are not destroyed and remain in the nuclear pellet. No DNA fragmentation into oligosomes could be detected after purification of the DNA from the nuclear pellet and application to conventional gel electrophoresis. Application of in situ nick translation, which allows detection of DNA single- and double-strand breaks in individual apoptotic bodies, also revealed no substantial fragmentation of the DNA in apoptotic bodies. These studies show that transforming growth factor-beta 1 is able to induce apoptosis within a rather short time and also suggest that in vivo digestion of the DNA does not lead to chromatin condensation.

Animals↗

Induction of apoptosis in cultured hepatocytes and in regressing liver by transforming growth factor beta 1.

In previous studies hepatocytes undergoing cell death by apoptosis but not normal hepatocytes in rat liver showed immunostaining for transforming growth factor beta 1 (TGF-beta 1). Staining was much stronger with antibodies recognizing the pro-region of TGF-beta 1 than the mature peptide itself. Therefore we investigated the ability of both forms of TGF-beta 1 to induce apoptosis in primary cultures of rat hepatocytes. Mature TGF-beta 1 induced rounding up of the cells and fragmentation into multiple vesicles. As revealed by the DNA-specific stain H33258, the chromatin of these cells condensed and segregated into masses at the nuclear membrane; this was obviously followed by fragmentation of the nucleus. Ultrastructurally the cytoplasm was well preserved, as demonstrated by the presence of intact cell organelles. These features strongly suggest the occurrence of apoptosis. Quantification of nuclei with condensed chromatin revealed that mature TGF-beta 1 was 30-fold more effective than the TGF-beta 1 latency-associated protein complex. Finally, we administered TGF-beta 1 in vivo using an experimental model in which regression of rat liver was initiated by a short preceding treatment with the hepatomitogen cyproterone acetate. Two doses of TGF-beta 1, each 1 nM/kg, augmented the incidence of apoptotic hepatocytes 5-fold. Equimolar doses of TGF-beta 1 latency-associated protein complex were ineffective. These studies suggest that TGF-beta 1 is involved in the initiation of apoptosis in the liver and that the mature form of TGF-beta 1 is the active principle.

Animals↗