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Serum bile acids, programmed cell death and cell proliferation in the mucosa of patients with colorectal adenomas.

BACKGROUND: Deoxycholic acid induced programmed cell death and an imbalance with cell proliferation may favour colorectal tumourigenesis according to 'in vitro' studies, but information is lacking on the relationships occurring 'in vivo' in humans. AIMS: To evaluate whether serum deoxycholic acid is associated with programmed cell death and cell proliferation in colonic mucosa. METHODS: In 10 patients with colorectal adenomas, we measured fasting serum levels of bile acids; and, in normal colonic mucosa, programmed cell death by the TUNEL technique and cell proliferation by immunohistochemical staining with anti-Ki67. Total and compartmental indices for both activities were calculated. RESULTS: Among serum bile acids, only total deoxycholic acid (median: 0.89 micromol/L +/- 0.54 95% CI), showed a significant positive correlation with the total and basal compartments PCD Index (r = 0.68, p < 0.05). Total proliferation index showed no correlation with either total PCD Index, or bile acids. Within the median compartment of the crypt, cell proliferation was negatively associated with all unconjugated bile acids. CONCLUSIONS: The positive association between deoxycholic acid and programmed cell death in the basal compartment of the crypt, and the negative association of cell proliferation and unconjugated bile acids in the median compartment, do not seem to support the co-carcinogenic effect of deoxycholic acid.

Adenoma↗

Apoptosis: pathophysiology of programmed cell death.

In all normal tissues, cell proliferation and cell death are balanced. The physiology of normal cell death, which has become generally known as apoptosis or programmed cell death, has been intensely investigated in recent years. In this review the cell biology and biochemistry of apoptosis are discussed. Although apoptotic cells can be morphologically recognized, characteristic molecular features such as internucleosomal DNA fragmentation, and histochemical techniques such as in situ end labeling, facilitate the recognition of apoptosis. Many of the genes involved in the regulation of apoptosis, which include cell growth associated genes such as c-myc and p53, have been identified. It has become clear that the bcl-genes (more explicitly bcl-2 and bax) are important apoptosis regulators. The details of the mechanism of programmed cell death are, however, not completely unraveled. It has become clear that apoptosis plays an important role in organ and tissue development during embryogenesis. Examples are the morphogenesis of limbs from limb buds, the development of the central nervous system and the maturation of the hematopoietic and lymphatic systems. Hormonal regulation of cells and tissues is also partly executed through apoptosis. In a variety of disease apoptosis plays a role. In cancer, apoptosis is a crucial feature, and in the resolution of inflammatory reactions, apoptosis is essential. In neurodegenerative diseases, dysregulation of the cell death programme may play a role. Further elucidation of the role of apoptosis in these diseases may lead to new possibilities for treatment.

Animals↗

Programmed cell death of developing mammalian neurons after genetic deletion of caspases.

An analysis of programmed cell death of several populations of developing postmitotic neurons after genetic deletion of two key members of the caspase family of pro-apoptotic proteases, caspase-3 and caspase-9, indicates that normal neuronal loss occurs. Although the amount of cell death is not altered, the death process may be delayed, and the cells appear to use a nonapoptotic pathway of degeneration. The neuronal populations examined include spinal interneurons and motor, sensory, and autonomic neurons. When examined at both the light and electron microscopic levels, the caspase-deficient neurons exhibit a nonapoptotic morphology in which nuclear changes such as chromatin condensation are absent or reduced; in addition, this morphology is characterized by extensive cytoplasmic vacuolization that is rarely observed in degenerating control neurons. There is also reduced terminal deoxynucleotidyl transferase-mediated biotinylated UTP nick end labeling in dying caspase-deficient neurons. Despite the altered morphology and apparent temporal delay in cell death, the number of neurons that are ultimately lost is indistinguishable from that seen in control animals. In contrast to the striking perturbations in the morphology of the forebrain of caspase-deficient embryos, the spinal cord and brainstem appear normal. These results are consistent with the growing idea that the involvement of specific caspases and the occurrence of caspase-independent programmed cell death may be dependent on brain region, cell type, age, and species or may be the result of specific perturbations or pathology.

Animals↗

[Withdrawal of exogenous auxin induces programmed cell death of cotton embryogenic suspension cultures].

In the establishment of cotton suspension culture, we had observed an interesting phenomenon that large-scale cell death occurred when the embryogenic cells were transferred from the medium MS supplemented with IBA 0.5 mg/L to fresh MS medium without IBA. Cytological study and genomic DNA electrophoresis showed that this kind of cell death was accompanied by such morphological characters as chromatin condensation, the maintenance of membrane continuity, a condensed cytoplasm and evident DNA fragmentation of multimers of 140-180 bp. Inhibitor studies suggested the proteolysis and the caspase-like proteases were involved in cell death. These results support that cell death caused by withdrawal of exogenous auxins is a kind of programmed cell death (PCD). So auxin is involved in the regulation of programmed cell death signal transduction pathways, and may be another plant-specific regulator beside ethylene, abscisic acid and gibberellin in PCD.

2,4-Dichlorophenoxyacetic Acid↗

Computational models of neocortical neuronogenesis and programmed cell death in the developing mouse, monkey, and human.

This paper presents a computational model allowing quantitative simulations of acquisition of neocortical neuronal number across mammalian species. When extrapolating scientific findings from rodents to humans, it is particularly pertinent to acknowledge the importance of the accelerated enlargement of the neocortex during human evolution. Neocortex development is marked by discrete stages of neural progenitor cell proliferation and death, neuronal differentiation, and neuronal programmed cell death. We have developed computational models of human and rhesus monkey neocortical neuronal cell acquisition based on experimentally derived parameters of cell cycle length, commitment to cell cycle exit, and cell death. Our model results agree with independent stereological studies estimating neocortical neuron number in adult and developing rhesus monkey and human. Comparisons of our primate models with previously developed rodent models suggest correlations between the lengthening of the duration of the neuronogenesis period and a lengthening of the cellular processes of cell cycle progression and death can account for the vast increase in size of the primate neocortex. Furthermore, when compared with rodents, we predict that cell death may play a larger role in shaping the primate neocortex. Our mathematical models of the development and evolution of the neocortex provide a quantitative, biologically based construct for extrapolation between rodent and humans. These models can assist in focusing future experimental research on the differing mechanisms of rodent versus human neocortical development.

Aging↗

Neurodegeneration in the thalamus following neonatal hypoxia-ischemia is programmed cell death.

We studied neuronal cell body, axonal, and terminal degeneration in brains from 7-day-old rat pups recovered for 0, 1.5, 3, 6, 24, 48, 72 h, and 6 days following hypoxia-ischemia and identified proteins involved in the delayed neurodegeneration in the thalamus. We found that injury is biphasic with initial necrosis in the ipsilateral forebrain by 3 h following hypoxia-ischemia, in contrast to more delayed and apoptotic-like injury in the ventral-basal thalamus, brainstem, and other remote non-forebrain regions. Prior to the appearance of large numbers of apoptotic profiles in the ventral-basal thalamus, expression of Fas death receptor protein, activated forms of caspase 8 and caspase 3, and pro-apoptotic Bcl-2 proteins are increased. This manuscript combines our data on hypoxic-ischemic injury in the developing brain and presents evidence for at least two forms of neurodegeneration, namely, acute necrosis in the forebrain and delayed neurodegeneration in the thalamus, which is death-receptor-mediated programmed cell death.

Animals↗

Programmed cell death in plant disease: the purpose and promise of cellular suicide.

The interaction of pathogens with plants leads to a disruption in cellular homeostasis, often leading to cell death, in both compatible and incompatible relationships. The mechanistic basis of this cellular disruption and consequent death is complex and poorly characterized, but it is established that host responses to pathogens are dependent on gene expression, involve signal transduction, and require energy. Recent data suggest that in animals, a genetically regulated, signal transduction-dependent programmed cell death process, commonly referred to as apoptosis, is conserved over a wide range of phyla. The basic function of apoptosis is to direct the selective elimination of certain cells during development, but it also is a master template that is involved in host responses to many pathogens. Programmed cell death in plants, while widely observed, has not been studied extensively at either the biochemical or genetic level. Current data suggest that activation or suppression of programmed cell death may underlie diseases in plants as it does in animals. This review describes some of the fundamental characteristics of apoptosis in animals and points to a number of connections to programmed cell death in plants that may lead to both a better understanding of disease processes and novel strategies for engineering disease resistance in plants.

Journal Article↗

The programmed cell death theory of AIDS pathogenesis: implications, testable predictions, and confrontation with experimental findings.

The programmed cell death theory of acquired immunodeficiency syndrome (AIDS) pathogenesis postulates that most immunological and non-immunological defects in human immunodeficiency virus (HIV)-infected people are related to a single mechanism, the inappropriate expression in mature CD4+ T cells and other cell-populations such as neurons of an activation-induced physiological cell suicide program that plays an essential role during embryogenesis in the maturation of both the immune and the nervous systems. The theory is discussed in the context of a series of recent experimental findings indicating that mature T cells can, as immature thymocytes, undergo programmed cell death in response to T-cell receptor mobilization in various physiological and pathological circumstances including murine and human acquired immunodeficiency of retroviral origin. These findings provide new insights into the pathogenesis of AIDS and may have implications for the design of therapeutic strategies.

Acquired Immunodeficiency Syndrome↗

Programmed cell death in the pathogenesis of rabbit hemorrhagic disease.

Rabbit hemorrhagic disease is a rapidly lethal infection caused by a calicivirus, characterized by acute liver damage and disseminated intravascular coagulation (DIC). Following morphological criteria and using a specific in situ labeling technique, we have found that liver cell death induced upon infection is due to apoptosis, and that programmed cell death is a constant feature in rabbits experimentally infected with RHDV. The process affected mainly hepatocytes, but also macrophages and endothelial cells presented morphologic hallmarks of apoptosis, expressing all these cell types viral antigens as determined by immunohistochemistry. The occurrence of programmed cell death was correlated with the appearance of the RHDV induced pathology in tissues by DNA fragmentation detection in situ. Hepatocyte apoptosis produced extensive parenchymal destruction causing a lethal, acute fulminant hepatitis that is characteristic of RHD. Apoptosis of intravascular monocytes and endothelial cell was observed together with fibrin thrombi in blood vessels. Since apoptotic cells are known sites of enhanced procoagulant activity, apoptosis of these cell populations might constitute a first step in the pathogenesis of DIC and a common pathway to other viral hemorrhagic fevers. In conclusion, apoptosis in RHD may be determinant in the development of the pathogenesis of this disease.

Animals↗

Apoptosis in the heart: about programmed cell death and survival.

Substantial evidence has accumulated that apoptosis, sometimes called "programmed cell death," is important in several cardiac diseases. Although most researchers focus on apoptosis in the hope that by understanding its mechanisms one can block this form of cell death, little attention has been given to programmed cell survival.

Animals↗

Betulinic acid-induced programmed cell death in human melanoma cells involves mitogen-activated protein kinase activation.

Betulinic acid, a naturally occurring triterpene found in the bark of the white birch tree, has been demonstrated to induce programmed cell death with melanoma and certain neuroectodermal tumor cells. We demonstrate currently that treatment of cultured UISO-Mel-1 (human melanoma cells) with betulinic acid leads to the activation of p38 and stress activated protein kinase/c-Jun NH(2)-terminal kinase [widely accepted proapoptotic mitogen-activated protein kinases (MAPKs)] with no change in the phosphorylation of extracellular signal-regulated kinases (antiapoptotic MAPK). Moreover, these results support a link between the MAPKs and reactive oxygen species (ROS). As demonstrated previously, cells treated with betulinic acid generate ROS. Preincubation of cells with antioxidants blocks the process of programmed cell death, and prevents the phosphorylation of p38 and stress activated protein kinase/c-Jun NH(2)-terminal kinase. These data suggest that ROS act upstream of the MAPKs in the signaling pathway of betulinic acid. In addition to mediating these responses, treatment of cells with betulinic acid resulted in a gradual depolarization of mitochondrial membrane potential, a phenomenon established to contribute to the induction of programmed cell death. Interestingly, p38 was capable of partially modulating this perturbation, and investigations of mitochondria-associated apoptotic events indicate no involvement of known caspases. These data provide additional insight in regard to the mechanism by which betulinic acid induces programmed cell death in cultured human melanoma cells, and it likely that similar responses contribute to the antitumor effect mediated with human melanoma carried in athymic mice.

Antineoplastic Agents, Phytogenic↗

Programmed cell death: early changes in metamorphosing cells.

Programmed cell death in intersegmental muscles and labial glands of Manduca sexta is a type II form of active cell death, in which lysosomal destruction of cytoplasm is a prominent and early feature, and the collapse of the nucleus is late and relatively modest until the bulk of the cytoplasm has been eroded. The prominent features of this collapse include an early expansion of the lysosomal compartment and a decrease in overall protein synthesis, while a small number of mRNAs persist or are upregulated. Energy resources appear to be adequate during the early stages of degeneration, and changes in levels of second messages likewise do not seem to be sufficiently dramatic to explain the failure of the tissue. There is some suggestion that DNA may not be completely intact long before the labial gland finally collapses, suggesting that it may fail under heavy load. Otherwise, we do not yet have an explanation for the precipitous drop in overall protein synthesis.

Animals↗

Isolation and mapping of a human gene (PDCD2) that is highly homologous to Rp8, a rat gene associated with programmed cell death.

From a human fetal lung cDNA library we isolated and characterized a human cDNA highly homologous to Rp8, a rat gene associated with programmed cell death. This cDNA, termed PDCD2 (programmed cell death-2), contained an open reading frame of 1032 nucleotides encoding 344 amino acids; it revealed 81% identity in DNA sequence and 83% identity in amino acid sequence with rat Rp8. The gene represented by PDCD2 was expressed in all human tissues examined. We assigned the PDCD2 locus to chromosomal band 6q27 by fluorescence in situ hybridization (FISH).

Amino Acid Sequence↗

Caenorhabditis elegans gene ced-9 protects cells from programmed cell death.

The gene ced-9 of the nematode Caenorhabditis elegans acts to protect cells from programmed cell death. A mutation that abnormally activates ced-9 prevents the cell deaths that occur during normal C. elegans development. Conversely, mutations that inactivate ced-9 cause cells that normally live to undergo programmed cell death; these mutations result in embryonic lethality, indicating that ced-9 function is essential for development. The ced-9 gene functions by negatively regulating the activities of other genes that are required for the process of programmed cell death.

Animals↗

Induction of programmed cell death in human breast cancer cells by an unsymmetrically alkylated polyamine analogue.

The need for antineoplastic compounds with novel mechanisms of action is great. One such agent is the recently synthesized polyamine analogue N1-ethyl-N11-((cyclopropyl)methyl)-4,8-diazaundecane (CPENSpm). Exposure of hormone-dependent and -independent human breast cancer cells to 0.1-10 microM CPENSpm led to both growth inhibition and induction of programmed cell death. Fragmentation of DNA to high molecular weight fragments and oligonucleosomal-sized fragments, both characteristic of programmed cell death, was determined to be time and concentration dependent. Depletion of natural polyamine pools and accumulation of the analogue was also demonstrated. These data provide the first evidence that a polyamine analogue induces programmed cell death.

Acetyltransferases↗

Regulation of intestinal tyrosine phosphorylation and programmed cell death by peroxovanadate.

Cell suspensions of ileal mucosa undergo a rapid and synchronized form of programmed cell death when cultured in a simple medium at 37 degrees C. Because tyrosine phosphorylation of proteins plays a crucial role in the signal transduction of many cellular processes, we examined its role in intestinal programmed cell death by use of immunoblot and immunohistochemical methods. We observed a 50-70% reduction in tyrosine phosphorylation during the initial 10 min of intestinal epithelial cell culture. We hypothesized that the inhibition of protein tyrosine phosphatases would increase protein tyrosine phosphorylation in these suspensions and decrease programmed cell death. A strong inhibitor of these phosphatases (peroxovanadate) but not a weaker one (sodium orthovanadate) abolished the DNA fragmentation/laddering normally seen in dying enterocytes. Peroxovanadate enhanced protein tyrosine phosphorylation of many intestinal proteins, dramatically increasing the dually phosphorylated and active form of mitogen-activated protein kinase. Immunohistochemistry revealed a particularly high level of increased tyrosine phosphorylation in the intestinal crypts in peroxovanadate-treated mucosa. Kinetic studies indicated that the pivotal time for protein tyrosine phosphatase inhibition occurred within 5 min of ex vivo culture, precisely when protein tyrosine phosphorylation declined. Our data suggest that tyrosine kinase inactivation or tyrosine phosphatase activation may initiate intestinal epithelial cell death.

Animals↗

High glucose causes apoptosis in cultured human pancreatic islets of Langerhans: a potential role for regulation of specific Bcl family genes toward an apoptotic cell death program.

Type 2 diabetes is characterized by insulin resistance and inadequate insulin secretion. In the advanced stages of the disease, beta-cell dysfunction worsens and insulin therapy may be necessary to achieve satisfactory metabolic control. Studies in autopsies found decreased beta-cell mass in pancreas of people with type 2 diabetes. Apoptosis, a constitutive program of cell death modulated by the Bcl family genes, has been implicated in loss of beta-cells in animal models of type 2 diabetes. In this study, we compared the effect of 5 days' culture in high glucose concentration (16.7 mmol/l) versus normal glucose levels (5.5 mmol/l) or hyperosmolar control (mannitol 11 mmol/l plus glucose 5 mmol/l) on the survival of human pancreatic islets. Apoptosis, analyzed by flow cytometry and electron and immunofluorescence microscopy, was increased in islets cultured in high glucose (HG5) as compared with normal glucose (NG5) or hyperosmolar control (NG5+MAN5). We also analyzed by reverse transcriptase-polymerase chain reaction and Western blotting the expression of the Bcl family genes in human islets cultured in normal glucose or high glucose. The antiapoptotic gene Bcl-2 was unaffected by glucose change, whereas Bcl-xl was reduced upon treatment with HG5. On the other hand, proapoptotic genes Bad, Bid, and Bik were overexpressed in the islets maintained in HG5. To define the pancreatic localization of Bcl proteins, we performed confocal immunofluorescence analysis on human pancreas. Bad and Bid were specifically expressed in beta-cells, and Bid was also expressed, although at low levels, in the exocrine pancreas. Bik and Bcl-xl were expressed in other endocrine islet cells as well as in the exocrine pancreas. These data suggest that in human islets, high glucose may modulate the balance of proapoptotic and antiapoptotic Bcl proteins toward apoptosis, thus favoring beta-cell death.

Apoptosis↗