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Glucocorticoid and progesterone inhibit involution and programmed cell death in the mouse mammary gland.

Milk production during lactation is a consequence of the suckling stimulus and the presence of glucocorticoids, prolactin, and insulin. After weaning the glucocorticoid hormone level drops, secretory mammary epithelial cells die by programmed cell death and the gland is prepared for a new pregnancy. We studied the role of steroid hormones and prolactin on the mammary gland structure, milk protein synthesis, and on programmed cell death. Slow-release plastic pellets containing individual hormones were implanted into a single mammary gland at lactation. At the same time the pups were removed and the consequences of the release of hormones were investigated histologically and biochemically. We found a local inhibition of involution in the vicinity of deoxycorticosterone- and progesterone-release pellets while prolactin-release pellets were ineffective. Dexamethasone, a very stable and potent glucocorticoid hormone analogue, inhibited involution and programmed cell death in all the mammary glands. It led to an accumulation of milk in the glands and was accompanied by an induction of protein kinase A, AP-1 DNA binding activity and elevated c-fos, junB, and junD mRNA levels. Several potential target genes of AP-1 such as stromelysin-1, c-jun, and SGP-2 that are induced during normal involution were strongly inhibited in dexamethasone-treated animals. Our results suggest that the cross-talk between steroid hormone receptors and AP-1 previously described in cells in culture leads to an impairment of AP-1 activity and to an inhibition of involution in the mammary gland implying that programmed cell death in the postlactational mammary gland depends on functional AP-1.

Animals↗

Genetic control of programmed cell death in the nematode C. elegans.

The wild-type functions of the genes ced-3 and ced-4 are required for the initiation of programmed cell deaths in the nematode Caenorhabditis elegans. The reduction or loss of ced-3 or ced-4 function results in a transformation in the fates of cells that normally die; in ced-3 or ced-4 mutants, such cells instead survive and differentiate, adopting fates that in the wild type and associated with other cells. ced-3 and ced-4 mutants appear grossly normal in morphology and behavior, indicating that programmed cell death is not an essential aspect of nematode development. The genes ced-3 and ced-4 define the first known step of a developmental pathway for programmed cell death, suggesting that these genes may be involved in determining which cells die during C. elegans development.

Alleles↗

Absence of bcl-2 expression by activated CD45RO+ T lymphocytes in acute infectious mononucleosis supporting their susceptibility to programmed cell death.

bcl-2 proto-oncogene encodes an inner mitochondrial membrane protein that blocks programmed cell death (apoptosis). There is now increasing evidence that regulation of bcl-2 expression is a determinant of life or death in normal lymphocytes. We have recently described that activated (CD45RO+) CD4+ and CD8+ T cells in acute infectious mononucleosis (IM) undergo apoptotic cell death on culturing, indicating an activation-driven cell death of mature T cells. In this work, we examine bcl-2 expression by activated T cells in acute IM using a flow-cytometric analysis with an anti-bcl-2 monoclonal antibody (MoAb). It was consistently observed that most T cells from acute IM patients displayed only much less bcl-2, while normal T cells expressed bcl-2 relatively strongly. Multicolor analysis showed that bcl-2-lacking T cells in acute IM were restricted to the CD45RO+ (activated) populations of CD4+, as well as CD8+ T cells. In contrast, the relatively intense levels of bcl-2 were expressed in both CD45RO+ and CD45RO- T-cell populations from normal subjects. This marked difference in bcl-2 expression of CD45RO+ T cells between acute IM and normal controls was also confirmed by Western blot analysis. Activated (CD45RO+) T cells with low bcl-2 expression, but not bcl-2-expressing CD45RO- T cells, in acute IM patients were found to die easily when cultured without added growth factors. However, in normal individuals, both CD45RO+ and CD45RO- T cells were relatively stable on culturing. These findings suggest that lack of bcl-2 expression by activated (CD45RO+) T cells in acute IM might be associated with their susceptibility to programmed cell death.

Adolescent↗

Programmed cell death in the wing of Orgyia leucostigma (Lepidoptera: Lymantriidae).

Programmed cell death is an integral and ubiquitous phenomenon of development that is responsible for the reduction of wing size in female moths of Orgyia leucostigma (Lymantriidae). Throughout larval and pupal life, cells of the wing epithelium proliferate and interact to form normal imaginal discs and pupal wings in both sexes. But at the onset of adult development, most cells in female O. leucostigma wings degenerate over a brief, 2-day period. Lysosomes and autophagic vacuoles appear in cells of the wing epithelium shortly after it retracts from the pupal cuticle. Hemocytes actively participate in removing the resulting cellular debris. By contrast, epithelial cells in wings of developing adult males of O. leucostigma do not undergo massive cell death. Wing epithelium of female pupae transferred to male pupal hosts behaves autonomously in this foreign environment. By pupation, cells of the female wing apparently are committed to self-destruct even in a male pupal environment. Normal interactions among epithelial cells within the plane of a wing monolayer as well as between the upper and lower monolayers of the wing are disrupted in female O. leucostigma by massive cell degeneration. Despite this disruption, the remaining cells of the wing contribute to the formation of a diminutive, but reasonably proportioned, adult wing with scales and veins.

Animals↗

Programmed cell death during Xenopus development: a spatio-temporal analysis.

Programmed cell death (PCD) is an integral part of many developmental processes. In vertebrates little is yet known on the patterns of PCD and its role during the early phases of development, when embryonic tissue layers migrate and pattern formation takes place. We describe the spatio-temporal patterns of cell death during early Xenopus development, from fertilization to the tadpole stage (stage 35/36). Cell death was analyzed by a whole-mount in situ DNA end-labeling technique (the TUNEL protocol), as well as by serial sections of paraffin-embedded TUNEL-stained embryos. The first cell death was detected during gastrulation, and as development progressed followed highly dynamic and reproducible patterns, strongly suggesting it is an important component of development at these stages. The detection of PCD during neural induction, neural plate patterning, and later during the development of the nervous system highlights the role of PCD throughout neurogenesis. Additionally, high levels of cell death were detected in the developing tail and sensory organs. This is the first detailed description of PCD throughout early development of a vertebrate, and provides the basis for further studies on its role in the patterning and morphogenesis of the embryo.

Animals↗

Influence of BDNF and FCS on viability and programmed cell death (PCD) of developing cortical chicken neurons in vitro.

Programmed cell death (PCD) has been proposed to occur in vitro after withdrawal of growth factors and serum deprivation. In the present study the influence of brain derived neurotrophic factor (BDNF) and different serum (FCS) concentrations on viability, survival and apoptotic cell death of cortical cells from 8 days old chicken embryos after 3, 5 or 7 DIV was investigated. Results show that BDNF as well as fetal calf serum (FCS) influence the metabolism of neurons. Furthermore, serum, but not BDNF, is able to protect neurons from cell death. For the detection of apoptosis TUNEL-staining and DNA gel electrophoresis was performed. These methods supplied contrary information about the type of cell death in neurons raised without serum. The first technique indicates the occurrence of apoptosis whereas the second suggests necrosis. In addition, by the means of DNA gel electrophoresis it was exhibited that cortical cells from 8 days old chicken embryos are committed to undergo PCD already in vivo at time of preparation.

Animals↗

Lymphocytes as cell model to study apoptosis in Alzheimer's disease: vulnerability to programmed cell death appears to be altered.

Recent evidence indicates that programmed cell death (apoptosis) may contribute to neuronal death in Alzheimer's disease (AD). In situ data derived from post mortem brain tissue indicate that DNA fragmentation which represents an important and typical apoptotic feature is markedly increased in brain cells of AD patients compared to controls. Furthermore, in vitro studies demonstrate that the peptide beta-amyloid (A beta) and its fragments induce apoptosis in neuronal cell cultures. One possible mechanism initiating apoptosis could be free radical generation by the peptide leading to oxidative stress. In a wide range of cell types common morphological and molecular events occur during apoptosis and several genes appear to be involved. Particularly in lymphocytes, apoptosis plays an important physiological role. Our data demonstrate that similar oxidative stressors induce apoptosis in mature human lymphocytes as in neurons. In addition, first evidence indicates that susceptibility to apoptosis is altered in lymphocytes from AD patients compared to non-demented controls. Our preliminary findings suggest that changes of the individual sensitivity to undergo cellular apoptosis are already detectable in lymphocytes from AD patients, probably as a consequence of genetic as well as other risk factors. Therefore, this biochemical marker might have the potential for identifying individuals at risk of the diseases.

Aged↗

The role of apoptosis (programmed cell death) in haemopoiesis and the immune system.

Apoptosis, or programmed cell death, is a series of controlled sequential events resulting in the demise of cells without invoking an inflammatory response. It is a naturally occurring process which maintains a cellular balance during both animal development and in the mature adult. Although first described 20 years ago, there is now renewed interest in this phenomenon, particularly in the light of our greater understanding of cellular signalling pathways and their genetic control. This is especially pertinent to haemopoiesis and the overall maintenance of a functional immune system. This review broadly covers the biochemical events of apoptosis and the recognition of apoptotic cells by phagocytes. Reference is made to the selective development of T- and B-cells and to the control of inflammation. Molecular events in apoptosis are also discussed with special reference to aberrant bcl-2 gene expression in follicular B-cell lymphoma and the role of other death genes in the control of apoptosis.

Apoptosis↗

Programmed cell death in a human intestinal parasite, Blastocystis hominis.

Although programmed cell death (PCD) has been associated with multicellular organisms, there have been more reports of its presence in some protozoans. Our study shows the existence of PCD in an intestinal protozoan, Blastocystis hominis. Light and electron microscopy, biochemical and flow cytometry studies showed apoptosis-like death in B. hominis cells exposed to a cytotoxic monoclonal antibody (MAb 1D5). B. hominis cells displayed key morphological and biochemical features of apoptosis, namely, nuclear condensation and in situ fragmentation, reduced cytoplasmic volume, some externalization of phosphatidylserine and maintenance of plasma membrane integrity. No oligonucleosomal DNA laddering was observed in gel electrophoresis. This study supports earlier observations that the cellular machinery that is required to carry out PCD may have existed before the advent of multicellularity. Our study also ascribes a novel function for the B. hominis central vacuole in apoptosis; it acts as a repository where apoptotic bodies are stored before being released into the extracellular space.

Animals↗

Programmed cell death and Bcl-2 protection in very low oxygen.

Programmed cell death (PCD) is a fundamental feature of animal cells, but the mechanism remains unknown. Similarly, the Bcl-2 oncoprotein can suppress PCD in a variety of cell types and circumstances, but it is not known how it does so. It has been suggested that PCD involves the generation of reactive oxygen species (ROS) and that Bcl-2 protects against PCD by inhibiting the generation or action of ROS. To determine whether ROS are required for PCD, we cultured cells in a near-anaerobic atmosphere where the generation of ROS would be expected not to occur, or at least to be greatly reduced. We find that these conditions inhibit PCD induced by ROS-generating agents but do not inhibit PCD induced by other means. Furthermore, we show that Bcl-2 can protect cells from PCD in these anaerobic conditions. These results suggest that ROS are not required for PCD, and that Bcl-2 protects against PCD in ways that do not depend on the inhibition of ROS production or activity.

Alkaloids↗

Programmed cell death in the pancreas of Bufo bufo during metamorphosis.

Programmed cell death or apoptosis occurred in anuran amphibian larval pancreas as a remodelling agent, and was responsible for the reduction of the gland volume during metamorphosis. Apoptotic cells were recognisable by their morphological characteristics and could be immunocytochemically detected by means of the TUNEL reaction, which evidenced nuclear DNA fragmentation. During the last stages of prometamorphosis, that is in the period of hindlimb differentiation, only a few TUNEL positive cells occurred, whereas they increased at the beginning of metamorphic climax, that is at forelimb emergence and during tail regression. Under the electron microscope, the typical morphological characteristics of apoptosis were observed: decrease in size, and the presence of wide intercellular spaces and nuclei with dense chromatin masses arranged in crescents. The fragmentation of these cells produced the so-called 'apoptotic bodies': portions of cytoplasm lined by a membrane, containing nuclear fragments and cytoplasmic organites. Dead cell elimination is hypothesised to occur by phagocytic ingestion.

Animals↗

Mammary-derived signals activate programmed cell death during the first stage of mammary gland involution.

Programmed cell death (PCD) of mammary alveolar cells during involution commences within hours of the end of suckling. Locally, milk accumulates within alveolar lumens; systemically, levels of lactogenic hormones fall. Four experimental models were used to define the role of local factors as compared with systemic hormones during the first and second stages of involution. In three models, milk release was disrupted in the presence of systemic lactogenic hormones: (i) sealing of the teats, (ii) mammary gland transplants that cannot release milk due to the absence of a teat connection, and (iii) inactivation of the oxytocin gene. The ability of systemic hormones to preserve lobular-alveolar structure without blocking PCD was illustrated using a fourth transgenic model of lactation failure. During the first stage of involution, local signals were sufficient to induce alveolar PCD even in the presence of systemic lactogenic hormones. PCD coincided with bax induction, decreased expression of milk proteins, block of prolactin signal transduction through Stat5a and 5b, and activation of Stat3. The two stages of mammary gland involution are regulated by progressive gain of death signals and loss of survival factors. This study demonstrates that genetic events that occur during the first reversible stage are controlled by local factors. These mammary-derived death signals are dominant over protective effects related to systemic hormone stimulation.

Animals↗

Programmed cell death (apoptosis) and response to anti-cancer drugs.

Programmed cell death (apoptosis) is a conserved, natural mechanism for the removal of redundant and unwanted cells during normal development. This article reviews the evidence that apoptosis may also control the response of tumor cells to treatment with cytostatic drugs. Whereas most clinically used anti-cancer drugs can activate late events of apoptosis (DNA degradation and morphological changes) there are differences in essential signalling pathways between pharmacological cell death and the physiological induction of an active suicide programme. However, deregulation of normally integrated cell cycle progression appears a central signalling event in most forms of apoptosis, linking cell cycle control, DNA repair and cell death. Whether apoptosis is the cause or the consequence of drug-induced cell death remains to be established.

Animals↗

Programmed cell death correlates with virus transmission in a filamentous fungus.

Programmed cell death (PCD) is an essential part of the defence response in plants and animals against pathogens. Here, we report that PCD is also involved in defence against pathogens of fungi. Vegetative incompatibility is a self/non-self recognition system in fungi that results in PCD when cells of incompatible strains fuse. We quantified the frequency of cell death associated with six vegetative incompatibility (vic) genes in the filamentous ascomycete fungus Cryphonectria parasitica. Cell death frequencies were compared with the effects of vic genes on transmission of viruses between the same strains. We found a significant negative correlation between cell death and virus transmission. We also show that asymmetry in cell death correlates with asymmetry in virus transmission; greater transmission occurs into vic genotypes that exhibit delayed or infrequent PCD after fusion with an incompatible strain. Furthermore, we found that virus infection can have a significant, strain-specific, positive or negative effect on PCD. Specific interactions between vic gene function and viruses, along with correlations between cell death and transmission, strongly implicate PCD as a host-mediated pathogen defence strategy in fungi.

Alleles↗

TGF-beta modulates programmed cell death in the retina of the developing chick embryo.

Programmed cell death (PCD) is a key phenomenon in the regulation of cell number in multicellular organisms. We have shown that reduction of endogenous transforming growth factor beta (TGF-beta) prevents apoptotic PCD of neurons in the developing peripheral and central nervous system, suggesting that TGF-beta is an important mediator of ontogenetic neuron death. Previous studies suggested that there are other pro-apoptotic molecules, nerve growth factor (NGF) and brain-derived neurotrophic factor, that induce cell death in the nervous system. In the developing chick retina, NGF induces PCD by activation of the p75 receptor. We have studied the role of TGF-beta and its putative interdependence with NGF-mediated PCD in the chick retina. We found that TGF-beta is present in the developing chick retina during the period of PCD and is essentially required to regulate PCD of retinal cells. TGF-beta 2, TGF-beta 3 and the ligand-binding TGF-beta receptor can be detected immunocytochemically in the central retina, a region where apoptosis is most prominent during the early period of PCD. Application of a TGF-beta-neutralizing antibody to chick embryos in ovo resulted in a decrease in the number of TUNEL-positive cells and a reduction of free nucleosome levels. In terms of magnitude, reduction of PCD caused by the neutralization of endogenous TGF-beta was equivalent to that seen after anti-NGF application. Neutralization of both factors did not result in a further decrease in apoptosis, indicating that NGF and TGF-beta may act on the same cell population. Furthermore, neutralization of TGF-beta did not affect the expression of NGF or the p75-receptor. Our results suggest that TGF-beta and NGF are both required to regulate cell death in the chick retina in vivo.

Animals↗

[Preparation and identification of monoclonal antibodies against human programmed cell death 10 (PDCD10)].

OBJECTIVE: To obtain monoclonal antibodies against programmed cell death 10 (PDCD10) for further study of the structure and function of PDCD10 protein. METHODS: Balb/c mice were immunized with recombinant PDCD10, hybridoma cell lines secreting monoclonal antibodies against PDCD10 were screened by regular cell fusion and subcloning approach. The specificities of these monoclonal antibodies were determined by ELISA, Western blotting and Immunofluorescence assay. RESULTS: Three hybridoma cell lines (5G1, 4F7 and 3H5) stable in secreting specific monoclonal antibodies were successfully obtained. Subclass of IgG belonged to IgG1 (4F7 and 5G1) and IgG2b (3H5), respectively. The ascite titers of these monoclonal antibodies reached 1:10(7). They could specifically bind to recombinant PDCD10 and endogenous and overexpressed PDCD10 proteins proved by ELISA and Western blotting. They failed to react with E.coli lysates and glutathione S-transferase (GST). In addition, these three monoclonal antibodies could recognize different epitopes of PDCD10 proteins assessed by immune fluorescence competitive binding assay. Both endogenous and overexpressed PDCD10 protein mainly located in the nucleus. CONCLUSION: Monoclonal antibodies against PDCD10 with high titers and specificity have been successfully prepared, which has laid the foundation for further study of PDCD10 protein.

Animals↗

[Apoptosis (programmed cell death) in the immune system and hemopoiesis].

Apoptosis, or programmed cell death, is a series of controlled sequential events resulting in the demise of cells without evoking an inflammatory response. Although first described 20 years ago, this phenomenon evokes now renewed interest in this phenomenon, particularly in the light of our greater understanding of cellular signalling pathways and their genetic control. This is especially pertinent to haemopoiesis and overall maintenance of a functional immune system.

Animals↗