Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Cell Cycle Checkpoints”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 757 records · Page 42Linked to original sources

A role of the mitotic spindle checkpoint in the cellular response to DNA replication stress.

Replication stress is a frequent and early event during tumorigenesis. Whereas the cellular responses to a persistent block of replication fork progression have been extensively studied, relatively little is known about how cells respond to low-intensity replication stress. However, transient replication fork perturbations are likely to occur even more frequently in tumor cells than a permanent replication arrest. We report here that transient, low intensity replication stress leads to a rapid activation of the DNA replication checkpoint but to a significantly delayed apoptotic response in a small but significant number of cells. This late apoptotic response was independent of p53 and we found evidence for cell death during mitosis in a proportion of cells. To further explore the role of p53 in the response to replication stress, we analyzed mouse embryonic fibroblasts (MEFs) deficient of p53 in comparison to wild-type or p63- or p73-deficient MEFs. We detected a significant increase of apoptosis and morphological signs of failed mitosis such as multinucleation in p53-deficient MEFs following replication stress, but not in wild-type or p63- or p73-deficient cells. Multinucleated p53-deficient MEFs frequently retained cyclin B1 expression indicating a persistently activated mitotic spindle checkpoint. Collectively, our results suggest that the cellular response to replication stress involves the mitotic spindle checkpoint in a proportion of cells. These findings imply that the mitotic spindle checkpoint may act in concert with DNA damage and cell-cycle checkpoints as an early anti-tumor barrier and provide a possible explanation for its frequent relaxation in human cancer.

Animals↗

ATM: from gene to function.

The identification of ATM , the gene responsible for the pleiotropic recessive disease ataxia telangiectasia, has initiated extensive research to determine the functions of its multifaceted protein product. The ATM protein belongs to a family of protein kinases that share similarities at their C-terminal region with the catalytic domain of phosphatidylinositol 3-kinases. Studies with ataxia telangiectasia (A-T) cells and Atm-deficient mice have shown that ATM is a key regulator of multiple signaling cascades which respond to DNA strand breaks induced by damaging agents or by normal processes, such as meiotic or V(D)J recombination. These responses involve the activation of cell cycle checkpoints, DNA repair and apoptosis. Other roles outside the cell nucleus might be carried out by the cytoplasmic fraction of ATM. In addition, ATM appears to function as a 'caretaker', suppressing tumorigenesis in specific T cell lineages.

Animals↗

A MHC-encoded ubiquitin-like protein (FAT10) binds noncovalently to the spindle assembly checkpoint protein MAD2.

Recently a number of nonclass I genes were discovered in the human MHC class I region. One of these, FAT10, encodes a protein consisting of two domains with homology to ubiquitin. FAT10 mRNA is expressed constitutively in some lymphoblastoid lines and dendritic cells and in certain other cells after gamma-interferon induction. FAT10 protein expression is controlled at several levels including transcription, translation, and protein stability. Yeast two-hybrid screening of a human lymphocyte library and immunoprecipitation studies revealed that FAT10 noncovalently associated with MAD2, a protein implicated in a cell-cycle checkpoint for spindle assembly during anaphase. Thus, FAT10 may modulate cell growth during B cell or dendritic cell development and activation.

Amino Acid Sequence↗

Mitotic catastrophe as a consequence of chemotherapy.

According to a widespread model, anti-cancer chemotherapy involves the triggering of tumor cells to undergo apoptosis, so apoptosis-resistant cells would be recalcitrant to such therapy. However, in addition to apoptosis, which is mainly dependent on the activity of the tumor suppressor protein p53, cells can be eliminated following DNA damage by other mechanisms. Mitotic catastrophe, a form of cell death that results from abnormal mitosis, is one such mechanism. While the term mitotic catastrophe has been used to describe a type of cell death that occurs during mitosis, there is still no broadly accepted definition. Occasionally, mitotic catastrophe is used restrictively for abnormal mitosis leading to cell death, which can occur through necrosis or apoptosis, rather than cell death itself. Although different classes of cytotoxic agents induce mitotic catastrophe, the pathways of abnormal mitosis differ depending on the nature of the inducer and the status of cell-cycle checkpoints. Moreover, mitotic catastrophe can also develop because of aberrant re-entry of tumor cells into the cell cycle after prolonged growth arrest. Elucidation of the factors that regulate different aspects of treatment-induced mitotic catastrophe should assist in improving the efficacy of anti-cancer therapy, providing opportunities for the development of new drugs.

Apoptosis↗

Radiation Research Society. 1952-2002. Historical and current highlights in radiation biology: has anything important been learned by irradiating cells?

Around 30 years ago, a very prominent molecular biologist confidently proclaimed that nothing of fundamental importance has ever been learned by irradiating cells! The poor man obviously did not know about discoveries such as DNA repair, mutagenesis, connections between mutagenesis and carcinogenesis, genomic instability, transposable genetic elements, cell cycle checkpoints, or lines of evidence historically linking the genetic material with nucleic acids, or origins of the subject of oxidative stress in organisms, to name a few things of fundamental importance learned by irradiating cells that were well known even at that time. Early radiation studies were, quite naturally, phenomenological. They led to the realization that radiations could cause pronounced biological effects. This was followed by an accelerating expansion of investigations of the nature of these radiobiological phenomena, the beginnings of studies aimed toward better understanding the underlying mechanisms, and a better appreciation of the far-reaching implications for biology, and for society in general. Areas of principal importance included acute tissue and tumor responses for applications in medicine, whole-body radiation effects in plants and animals, radiation genetics and cytogenetics, mutagenesis, carcinogenesis, cellular radiation responses including cell reproductive death, cell cycle effects and checkpoint responses, underlying molecular targets leading to biological effects, DNA repair, and the genetic control of radiosensitivity. This review summarizes some of the highlights in these areas, and points to numerous examples where indeed, many things of considerable fundamental importance have been learned by irradiating cells.

Animals↗

Apoptosis-inducing levels of UV radiation and proteasome inhibitors produce opposite effects on p21(WAF1) in human melanoma cells.

The stability of p21(WAF1) and p53 is increased by UV radiation or proteasome inhibitors in normal and some tumor cells. However, p21(WAF1) can either stimulate in vitro assembly of active cyclin-kinase complexes at low concentrations or inhibit this activity at high concentrations. Also, ectopic p21(WAF1) over-expression has been reported to promote or suppress apoptosis, depending on the target cells. We have investigated changes in p21(WAF1) expression as a result of exposure to either 25 J/m(2) UV or 10 microM MG-115 proteasome inhibitor, both of which cause apoptosis in human C8161 melanoma cells. p21(WAF1) mRNA increased in response to UV irradiation but failed to accumulate at the protein level because of its early UV-activated degradation counteracted by proteasome inhibition. UV-mediated loss of p21(WAF1) protein preceding induction of p53 and cell death was greater in non-metastatic than in metastatic C8161 melanoma cells. No loss in p21(WAF1) occurred with apoptosis induced by 10 microM proteasome inhibitors MG-115 or lactacystin, mediated by over-expression of p21(WAF1). Our results suggest that conditions causing prolonged or permanent changes in basal levels of p21(WAF1) may impair its reversible cell-cycle checkpoint function, leading to irreversible growth arrest or cell death.

Apoptosis↗

Study of the cytolethal distending toxin-induced cell cycle arrest in HeLa cells: involvement of the CDC25 phosphatase.

HeLa cells exposed to Escherichia coli cytolethal distending toxins (CDT) arrest their cell cycle at the G2/M transition. We have shown previously that in these cells the CDK1/cyclin B complex is inactive and can be reactivated in vitro using recombinant CDC25 phosphatase. Here we have investigated in vivo the effects of CDC25 on this cell cycle checkpoint. We report that overexpression of CDC25B or CDC25C overrides an established CDT-induced G2 cell cycle arrest and leads the cells to accumulate in an abnormal mitotic stage with condensed chromatin and high CDK1 activity. This effect can be counteracted by coexpression of the WEE1 kinase. In contrast, overexpression of CDC25B or C prior to CDT treatment prevents G2 arrest and allows most of the cells to progress through mitosis with only a low percentage of cells arrested in abnormal mitosis. The implications of these results on the biochemical nature of the CDT-induced cell cycle arrest are discussed.

Bacterial Toxins↗

Checkpoints on the road to mitosis.

Eukaryotic organisms use cell-cycle checkpoints to ensure that nuclear division is restrained while DNA is undergoing replication or repair. Recent studies of the fission yeast Schizosaccharomyces pombe have illuminated these checkpoint mechanisms. These investigations have connected checkpoint proteins with central elements of the mitotic-control machinery.

14-3-3 Proteins↗

Absence of cancer-associated changes in human fibroblasts immortalized with telomerase.

The ectopic expression of telomerase in normal human cells results in an extended lifespan, indicating that telomere shortening regulates the timing of cellular senescence. As telomerase expression is a hallmark of cancer, we investigated the long-term effects of forced expression of human telomerase catalytic component (hTERT) in normal human fibroblasts. In vitro growth requirements, cell-cycle checkpoints and karyotypic stability in telomerase-expressing cells are similar to those of untransfected controls. In addition, co-expression of telomerase, the viral oncoproteins HPV16 E6/E7 (which inactivate p53 and pRB) and oncogenic HRAS does not result in growth in soft agar. Thus, although ectopic expression of telomerase in human fibroblasts is sufficient for immortalization, it does not result in changes typically associated with malignant transformation.

Catalytic Domain↗

CHEK2*1100delC is not an important high-risk gene in families with hereditary prostate cancer in southern Sweden.

OBJECTIVE: CHEK2*1100delC is a frame-shifting germ-line mutation which abolishes the function of cell-cycle-checkpoint kinase 2 (chk2) and hence impairs the cells' response to DNA damage. This variant occurs in 1% of the general Western population but has been reported to be more common among patients with breast and prostate cancer. The aim of this study was to investigate the significance of CHEK2*1100delC as a possible high-risk gene for hereditary prostate cancer in the population of southern Sweden. MATERIAL AND METHODS: We screened for the CHEK2*1100delC variant in 419 men diagnosed with prostate cancer in southern Sweden, 145 of whom were sporadic cases that were divided into two subgroups depending on whether they were diagnosed before (n=64) or after (n=81) the age of 55 years. A further 126 men were classified as familial prostate cancer cases and 148 as hereditary prostate cancer cases. The control group consisted of 305 military conscripts aged 18 years (range 18-21 years). RESULTS: The CHEK2*1100delC variant was found in 1.2% of the cases (sporadic: 0.7%; familial: 1.6%; hereditary: 1.4%) and in 1.0% of the controls. CONCLUSION: The CHEK2 1100delC mutation is not a clinically important high-risk gene for hereditary prostate cancer susceptibility in the population of southern Sweden.

Aged↗

Increased apoptosis and expression of p21 and p53 in premature infant baboon model of bronchopulmonary dysplasia.

Bronchopulmonary dysplasia (BPD) is a major complication of premature infants who receive prolonged ventilatory support. The pathophysiology of BPD involves oxidant injury, baro/volutrauma, and disordered lung repair. Exposure of premature lung that is poorly adapted for air breathing (>3% oxygen in fetal lung) to a higher concentration of oxygen can cause significant oxidant injury. Cell growth and differentiation of the developing lung require selective and ordered cell division. As hyperoxia can increase the expression of cell-cycle checkpoints that can cause growth arrest of lung cells, in this report we examined the expression of checkpoint proteins p53 and p21 in a premature infant the baboon model of BPD. Additionally, we also determined whether enhanced apoptosis occurs in baboon BPD model. We have shown that p53 and p21 expression are increased in 125-day as well as 140-day premature baboons with BPD. We also demonstrate increased apoptosis in lung tissue of premature baboons with BPD. These results demonstrate that cell growth inhibition is a likely factor in the evolution of BPD. Additionally, lung cells may undergo increased apoptosis that can impair the repair process in the postventilatory recovery period.

Animals↗

p21 and p53 Immunostaining and survival following systemic chemotherapy for urothelial cancer.

INTRODUCTION: Induction of apoptosis and regulation of cell cycle checkpoints are important mechanisms of chemotherapy-induced cell death. The intact p53 tumor suppressor gene is required for efficient activation of apoptosis. The WAF1/p21 gene is transcriptionally activated by p53 and mediates p53-dependent G1 arrest following DNA damage. Therefore, p53 and p21 expression might be related to urothelial tumor response to cytotoxic therapy. METHODS: In a retrospective study, archival tumor specimens from 60 patients treated with cisplatinum-based systemic chemotherapy for locally advanced and/or metastatic urothelial cancer were immunohistochemically stained for p53 and p21. Response to chemotherapy and overall survival were correlated with the results of immunohistochemistry. RESULTS: Thirty-five tumors (58%) of the 60 specimens showed p53 accumulation, and 25 (42%) expressed detectable p21. No association between p53 accumulation and expression of p21 was observed. Correlation with complete and partial remissions following inductive chemotherapy (n = 39) demonstrated that patients with intact p53 responded significantly better (70 vs. 31%, p < 0.05). However, no difference in overall survival was observed with regard to p53 immunostaining (median 12 and 17 months for p53-positive and p53-negative tumors, respectively). The p21 expression was related neither to response nor to overall survival following inductive chemotherapy. In patients receiving adjuvant chemotherapy after cystectomy (n = 21), the outcome was correlated with the immunohistochemistry results. While the survival times for p53-negative patients (60 months) and p53-positive patients (23 months) did not translate into a significant difference, the median overall survival for patients with p21-positive or p21-negative tumors (60 vs. 21 months) was significantly different (p < 0.005). CONCLUSIONS: The short survival of patients with metastatic bladder cancer may conceal putative differences between different prognostic groups in smaller trials. In contrast, p21 immunohistochemistry appears to be of prognostic value in patients receiving systemic adjuvant chemotherapy for locally advanced bladder cancer. The observations made in this retrospective study in a limited number of patients warrant further investigation on the correlation between G1/S checkpoint regulatory genes and adjuvant chemotherapy in larger prospective studies.

Aged↗

Cell cycle roles for two 14-3-3 proteins during Drosophila development.

Drosophila 14-3-3 epsilon and 14-3-3 zeta proteins have been shown to function in RAS/MAP kinase pathways that influence the differentiation of the adult eye and the embryo. Because 14-3-3 proteins have a conserved involvement in cell cycle checkpoints in other systems, we asked (1) whether Drosophila 14-3-3 proteins also function in cell cycle regulation, and (2) whether cell proliferation during Drosophila development has different requirements for the two 14-3-3 proteins. We find that antibody staining for 14-3-3 family members is cytoplasmic in interphase and perichromosomal in mitosis. Using mutants of cyclins, Cdk1 and Cdc25(string) to manipulate Cdk1 activity, we found that the localization of 14-3-3 proteins is coupled to Cdk1 activity and cell cycle stage. Relocalization of 14-3-3 proteins with cell cycle progression suggested cell-cycle-specific roles. This notion is confirmed by the phenotypes of 14-3-3 epsilon and 14-3-3 zeta mutants: 14-3-3 epsilon is required to time mitosis in undisturbed post-blastoderm cell cycles and to delay mitosis following irradiation; 14-3-3 zeta is required for normal chromosome separation during syncytial mitoses. We suggest a model in which 14-3-3 proteins act in the undisturbed cell cycle to set a threshold for entry into mitosis by suppressing Cdk1 activity, to block mitosis following radiation damage and to facilitate proper exit from mitosis.

14-3-3 Proteins↗

Cytokine-based treatment of radiation injury: potential benefits after low-level radiation exposure.

The use of growth factors (GFs) in the treatment of radiation injury has focused on enhancing recovery from acute radiation syndrome. A number of new GFs have shown significant in vivo and in vitro preclinical efficacy; some of these have recently been approved by the Food and Drug Administration, some are in various phases of clinical trials, and some are moving through preclinical evaluations. The most promising new GFs in the context of enhancing the viability of irradiated hematopoietic stem cells (HSCs) are flt-3L, c-kitL, and c-mplL. These GFs, as well as interleukin 3 (IL-3), have been shown to maintain viability, suppress apoptosis, and promote the clonal growth of primitive murine and human hematopoietic progenitor cells. Further evidence suggests that these GFs may also act in synergy with each other. Additionally, three families of chimeric proteins that consist of dual GF receptor (R) agonists have been engineered: myelopoietin, promegapoietin, and progenipoietin. These proteins activate the IL-3 and granulocyte colony-stimulating factor Rs, the IL-3 and mpl Rs, and the flt-3L and granulocyte colony-stimulating factor Rs, respectively. The preclinical data indicate that the chimeric GFR agonists are potent stimulators of hematopoiesis in myelosuppressed nonhuman primates and can effectively alleviate acute radiation syndrome in animals. Acute or protracted low-level radiation exposure does not require the extensive clinical care necessary following radiation-induced myelosuppression. The main question is whether these new GFs will allow for enhanced repair of radiation-induced chromosome aberrations while promoting early survival of HSCs. Other questions include the following: Will an early, brief exposure to GFs suppress p53-dependent apoptosis and induce expression of bcl-2 with a concomitant enhancement of DNA repair capacity? What is the effect of GF stimulation of irradiated HSCs on p53 cell cycle checkpoint activity? Will GFs promote survival of "transformed" cells that would otherwise be eliminated by p53 activation of apoptosis-promoting genes? Relevant animal models and access to appropriate GFs will be required to answer these questions.

Animals↗

[The role of hepatitis B virus X gene and p53 on hepatocellular carcinoma cell growth].

OBJECTIVE: To explore the effects of hepatitis B virus X gene and p53 on hepatocellular growth. METHODS: Two kinds of plasmids containing sense and antisense human wild p53 gene respectively were constructed. SMMU-7721 cells were transfected with HBx, sense-wtp53 antisense-wtp53 separately or cotransfected with either HBx and sense-wtp53 or HBx and antisense-wtp53. Flow cytometry was adopted to measure the apoptosis rates and the effects of HBx on cell cycle progression. The activity of p21(Waf1) promoter-luciferase construct was detected. Growth curves for SMMU-7721 stably transfected with pcDNA3 and pcDNA3HBx were analyzed. RESULTS: After doxorubicin administration, HBx was noticed able to initiate apoptosis of the liver cells. The apoptosis rate was 5.32% in the pcDNA3 transfected and 12.66% in the pcDNA3HBx transfected groups respectively. HBx could also abrogate p53-mediated apoptosis. The apoptosis rate in groups transfected with pcDNA3, pcDNA3wtp53 and pcDNA3HBx + pcDNA3wtp53 was 5.32%, 11.72% and 4.67% respectively. In compared with the normal group, the number of cells in transiently HBx-expressed group and HBx-transfected group decreased 4.79% and 10.25% respectively. HBx inhibited the activity of p21(Waf1) promoter-luciferase constructed (P < 0.05) and promoted cell growth. The growth rate of HBx expression cells was faster. CONCLUSION: Under DNA damage, HBx reduced expression of p21(Waf1) by repressing the activity of p53 protein, followed by disturbing the regulation of G(0)-G(1) cell cycle checkpoint, and promoted the growth rate of hepatoma cells.

Apoptosis↗

Attenuated response of p53 and p21 in primary cultures of human prostatic epithelial cells exposed to DNA-damaging agents.

The multifocal origin of prostate cancer suggests a pan-organ defect in a tumor suppressor pathway. Although structural mutations in the p53 gene have been implicated in late-stage prostate cancer, little is known about the p53 response to genotoxic stress in normal human prostatic epithelial cells from which adenocarcinomas originate. We found that the majority (10 of 12) of epithelial cell cultures derived from histologically normal tissues of radical prostatectomy specimens failed to exhibit p53 accumulation in response to ionizing radiation. Epithelial cell cultures derived from benign prostatic hyperplasia and a primary prostatic adenocarcinoma also failed to accumulate p53 in response to ionizing radiation. In contrast, cultures of prostatic stromal cells derived from normal, benign prostatic hyperplasia, or adenocarcinoma tissues exhibited a 3-9-fold induction of p53 within 1-3 h after irradiation. Since p53 regulates a cell cycle checkpoint through the induction of the cyclin-cdk inhibitor p21, we examined p21 accumulation and cell cycle arrest following exposure to ionizing radiation. With one exception, epithelial cells that did not display increased p53 or p21 induction did not demonstrate a significant G1-S arrest in response to ionizing radiation, whereas stromal cells that accumulated p53 and p21 exhibited a large cell cycle arrest. These results indicate a functional difference between the DNA damage response of epithelial and stromal prostatic cells and suggest a possible mechanism for the increased susceptibility of prostatic epithelial cells to accumulate genetic alterations.

Adenocarcinoma↗

Loss of mitotic spindle checkpoint activity predisposes to chromosomal instability at early stages of fibrosarcoma development.

Mice carrying the bovine papillomavirus type I genome develop dermal fibrosarcomas in a multiple step process characterized by distinctive proliferative stages. Chromosomal aberrations are identified early in this tumorigenic pathway, however, the mechanism that originates them is unknown. Using a functional assay, we investigated the status of the mitotic spindle cell cycle checkpoint (MSCCC) that regulates the metaphase to anaphase transition, in cells representing different stages of fibrosarcoma progression. Loss of MSCCC activity was apparent in mild fibromatosis and completely abolished in aggressive fibromatosis and fibrosarcoma lesions. This altered MSCCC status was confirmed biochemically by deregulated expression of Cks1 protein and unscheduled cyclin B metabolism. Immunoprecipitation and sequencing analyses indicated that mutation of p53 was not required for the abrogation of the MSCCC. These results demonstrate that loss of mitotic spindle checkpoint activity predisposes to chromosomal instability at early stages of fibrosarcoma development. To our knowledge, these studies constitute the first report of a transition in MSCCC activity in a tumorigenesis model.

Adaptor Proteins, Signal Transducing↗

Comparative gene expression profiling in response to p53 in a human lung cancer cell line.

The p53 tumor suppressor gene functions through the p53-mediated transcriptional activation and regulation of critical downstream target genes. The mechanism behind such regulation, however, remains unclear. In this study, we compared the expression of 30 genes that are involved in cell cycle checkpoint control and/or apoptosis in a human lung cancer cell line, which contains endogenous wild-type p53, in response to ectopic p53 expression. Of the 30 genes studied, 22 genes have shown an increase in expression. The increase in gene expression of 2 genes-Gadd45 and PIG2-was more than 10-fold. These results suggest that the genes with the highest expression level in a p53-dependent pathway may play a dominant role in determining the pathway that the cell follows: cell cycle arrest or apoptosis. Our screen illustrates the development of a simple and inexpensive p53-specific cDNA array to begin to analyze downstream events in the p53 pathway under physiological, pathological, and stress-induced states.

Apoptosis↗