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Acute myeloid leukemia cells in G0 phase of the cell cycle that are unresponsive to conventional chemotherapy are sensitive to treatment with granulocyte-macrophage colony-stimulating factor/diphtheria toxin fusion proteins.

OBJECTIVE: Unresponsiveness to chemotherapy is a major problem in the treatment of leukemia, which can be caused by unresponsiveness of noncycling cells to cell cycle-dependent cytotoxic agents. Targeted toxins consisting of a targeting and activating cytokine (granulocyte-macrophage colony-stimulating factor [GM-CSF]) and diphtheria toxin (DT) can be used to overcome this kind of resistance of leukemic cells. In this study we manipulated the cell cycle and proliferative status of leukemic cells, explored the effect on sensitivity to DT, and determined the ability of DT388GMCSF fusion proteins to activate and subsequently kill leukemic cells. MATERIALS AND METHODS: We used the GM-CSF-dependent myeloid leukemic cell line AML-193 as a model. GM-CSF or granulocyte colony-stimulating factor (G-CSF) was used to manipulate the cell cycle and proliferative state of AML-193 cells. Cell death was quantified by 51Cr release assays. The results obtained in the AML-193 cell line model were confirmed using primary leukemic blasts. RESULTS: Similar to treatment with chemotherapy and immunotherapy, leukemic cells in resting G0 phase were relatively resistant to DT-induced cell death. Synchronized recruitment of leukemic cells into activated phases of the cell cycle by low concentrations of GM-CSF or G-CSF resulted in significant increased DT sensitivity. DT388GMCSF fusion proteins specifically targeted GM-CSF receptor-expressing cells, resulting in recruitment of leukemic cells from G0 phase of the cell cycle and subsequent kill of these cells. CONCLUSION: Leukemic cells in G0 phase, which are resistant to conventional chemotherapy, Fas-induced immunotherapy, and DT alone, can be synchronically activated and subsequently killed by DT388GMCSF fusion proteins.

Cell Division↗

Cytotoxic arylnaphthalene lignans from a Vietnamese acanthaceae, Justicia patentiflora.

One new norlignan (1) and five new lignans (2-6) were isolated from the leaves and stems of Justicia patentiflora by a bioassay-guided purification. Five known compounds, carinatone, diphyllin, justicidin A, taiwanin E, and tuberculatin, were also found in J. patentiflora. Most of the new compounds display significant activity in in vitro cytotoxic assays against KB, HCT116, and MCF-7 cancer cell lines and arrest the cell cycle in the G0/G1 phase.

Acanthaceae↗

Tumor necrosis factor induces doxorubicin resistance to lung cancer cells in vitro.

Tumor necrosis factor can alter the cell cycle of tumor cells and protect hematopoietic stem cells from cell cycle-specific chemotherapy, but the ability of tumor necrosis factor to protect cancer cells from chemotherapy by manipulation of the cell cycle is unknown. Twenty-four-hour exposure of A549 human lung cancer cells to tumor necrosis factor shifted cells from S phase to G0/G1 phase as determined by analysis of isolated cell nuclei with an FACScan Cell Sorter. This effect was not seen in cells exposed to interleukin-1 or interleukin-6. Growth assays demonstrated that tumor necrosis factor slowed the doubling time of A549 cells, confirming that tumor necrosis factor caused G0/G1 arrest in these cells. Pretreatment with tumor necrosis factor rendered cells resistant to subsequent 1-hour exposure to doxorubicin, a chemotherapeutic agent active against S phase cells. Tumor necrosis factor did not protect cells against either cisplatin or mitomycin C, drugs not specific for S phase. Measurement of intracellular drug levels indicated that pretreatment with tumor necrosis factor did not affect doxorubicin uptake or efflux. These findings suggest that cells producing tumor necrosis factor within a tumor may render surrounding malignant cells resistant to cell cycle-specific chemotherapy, and this mechanism may explain failure of sequential immunotherapy-chemotherapy protocols.

Adenocarcinoma↗

Optimal control problems arising in cell-cycle-specific cancer chemotherapy.

We explore mathematical properties of models of cancer chemotherapy including cell-cycle dependence. Using the mathematical methods of control theory, we demonstrate two assertions of interest for the biomedical community: 1 Periodic chemotherapy protocols are close to the optimum for a wide class of models and have additional favourable properties. 2 Two possible approaches, (a) to minimize the final count of malignant cells and the cumulative effect of the drug on normal cells, or (b) to maximize the final count of normal cells and the cumulative effect of the drug on malignant cells, lead to similar principles of optimization. From the mathematical viewpoint, the paper provides a catalogue of simplest mathematical models of cell-cycle dependent chemotherapy. They can be classified based on the number of compartments and types of drug action modelled. In all these models the optimal controls are complicated by the singular and periodic trajectories and multiple solutions. However, efficient numerical methods have been developed. In simpler cases, it is also possible to provide an exhaustive classification of solutions. We also discuss developments in estimation of cell cycle parameters and cell-cycle dependent drug action.

Cell Compartmentation↗

Lupron retards proliferation of ovarian epithelial tumor cells cultured in serum-free medium.

Some patients with recurrent ovarian epithelial cancer respond favorably to treatment with GnRH agonists. This effect was proposed to be mediated by suppression of pituitary gonadotropin release. The present in vitro study investigated effects of human gonadotropin (Pergonal LH/FSH, 1:1) and Lupron, a GnRH agonist, on proliferation of an ovarian cancer cell line, 2774, which is estrogen receptor negative and grows well in serum-free, defined medium. Pergonal, 10 IU/mL or 30 IU/mL, did not enhance cell proliferation, which argues against stabilization of ovarian tumors in vivo due to decreased serum gonadotropin. Lupron, 1.4 micrograms/mL and 140 micrograms/mL, retarded cell division by day 6-8 of culture, in a dose-dependent manner. Flow cytometric cell cycle phase DNA analysis demonstrated Lupron caused a reversible 5-6% increase in the portion of cells in rest phase, G0/G1, compared to controls during log growth, and a corresponding decrease in the portion of cells in DNA synthesis, S phase. However, long-term culture, 3 weeks, with Lupron failed to arrest cells in G0/G1, and experimental cultures plateaued at cell number similar to control cultures. We conclude Lupron's effect on ovarian cancer cell proliferation is independent of gonadotropin and steroid, involves a cell cycle regulatory event, and duration of benefit observed in vivo for some patients may be related to total tumor volume at the time of treatment.

Antineoplastic Agents↗

High rates of actin filament turnover in budding yeast and roles for actin in establishment and maintenance of cell polarity revealed using the actin inhibitor latrunculin-A.

We report that the actin assembly inhibitor latrunculin-A (LAT-A) causes complete disruption of the yeast actin cytoskeleton within 2-5 min, suggesting that although yeast are nonmotile, their actin filaments undergo rapid cycles of assembly and disassembly in vivo. Differences in the LAT-A sensitivities of strains carrying mutations in components of the actin cytoskeleton suggest that tropomyosin, fimbrin, capping protein, Sla2p, and Srv2p act to increase actin cytoskeleton stability, while End3p and Sla1p act to decrease stability. Identification of three LAT-A resistant actin mutants demonstrated that in vivo effects of LAT-A are due specifically to impairment of actin function and implicated a region on the three-dimensional actin structure as the LAT-A binding site. LAT-A was used to determine which of 19 different proteins implicated in cell polarity development require actin to achieve polarized localization. Results show that at least two molecular pathways, one actin-dependent and the other actin-independent, underlie polarity development. The actin-dependent pathway localizes secretory vesicles and a putative vesicle docking complex to sites of cell surface growth, providing an explanation for the dependence of polarized cell surface growth on actin function. Unexpectedly, several proteins that function with actin during cell polarity development, including an unconventional myosin (Myo2p), calmodulin, and an actin-interacting protein (Bud6/Aip3p), achieved polarized localization by an actin-independent pathway, revealing interdependence among cell polarity pathways. Finally, transient actin depolymerization caused many cells to abandon one bud site or mating projection and to initiate growth at a second site. Thus, actin filaments are also required for maintenance of an axis of cell polarity.

Actin Cytoskeleton↗

Post-transcriptional repression of thymidine kinase expression during cell cycle and growth stimulation.

In vertebrates, endogenous thymidine kinase (TK) gene expression is strictly growth-dependent. Here we report that in continuously cycling Ltk-mouse fibroblasts, stably transfected with a vector expressing human TK cDNA from a constitutive promoter, enzyme activity rises 8-fold at the G1/S phase transition and declines again in G2. The mechanism did not involve changes in protein stability. When hTK was put under the control of a hormone-inducible promoter, production of high mRNA levels following addition of dexamethasone did not result in any enzyme activity in resting NIH-3T3tk- cells. After growth stimulation with serum, TK activity rose together with the onset of DNA synthesis only in the simultaneous presence of the hormone.

3T3 Cells↗

Ploidy pattern and cell cycle in breast cancer as detected by image analysis and flow cytometry.

Both image analysis (IA) and flow cytometry (FCM) may be applied to detect ploidy pattern and cell cycle fractions. However, they have different performance characteristics and may yield different results. The two approaches are applied in this study to 66 breast cancers: IA on imprints and FCM on fresh tissue. The percent coefficient of variation (CV) ranged from 2.0 to 7.0 (mean 5.5; SD 1.1) in IA and from 2.0 to 7.0 (mean 4.4; SD 1.1) in FCM. The values were well correlated. With regard to ploidy pattern, the agreement between the two methods was 92.4%; disagreements were due to four cases being aneuploid by IA but not detected by FCM and one case being aneuploid by IA but tetraploid by FCM. This suggests that IA is capable of detecting aneuploidy with more sensitivity than FCM. In diploid cases, the percent values of cells in G0/G1, S-phase (SPF), and G2M phase were concordant and well correlated. In aneuploid cases, IA was more sensitive than FCM in detecting aneuploid fraction as well as G2M phase, whereas FCM was more sensitive than IA in detecting SPF. A good correlation was found between the DNA indexes (DIs) obtained with the two methods.

Aneuploidy↗

T cells in G1 provide a memory-like response to secondary stimulation.

The commitment of naive T cells to proliferate is a function of the strength and duration of stimuli mediated by the TCR and coreceptors. Ranges of 2-20 h of stimulation have been reported as necessary in vitro. Whether T cells actually experience uninterrupted stimulation for such long periods under physiological conditions is controversial. Here we ask whether commitment to proliferate requires continuous stimulation, or can T cells integrate intermittent periods of stimulation. T cells were stimulated for two short-term (subthreshold) periods (5-7 h) either sequentially or separated by an interval of rest. Naive lymph node T cells were able to integrate interrupted stimulation, even when the duration of rest was as long as 2 days. Furthermore, when short-term-stimulated T cells were separated by density, three populations were observed: low density blasts, intermediate density G(1) cells, and high density G(0) cells. Low density cells progressed to division without further stimulation, whereas G(0) and G(1) cells remained undivided. However, after a period of rest, a second subthreshold stimulation caused the G(1) but not the G(0) fraction to quickly proceed through the cell cycle. We conclude that noncycling T cells in the G(1) phase of the cell cycle remain in a state of readiness for prolonged periods of time, and may represent a population of memory-like effectors capable of responding rapidly to antigenic challenge.

Animals↗

Release from G0/G1 arrest induced by dimethyl sulfoxide in human lymphoid cells: regulation of synthesis and activation of the p33cdk2 and p34cdc2 kinases.

Raji cells, a human Burkitt's lymphoma-derived cell line, will accumulate in a G0-like state upon prolonged (5-6 days) incubation in medium containing 1.5% dimethyl sulfoxide (DMSO). After removal of DMSO, the cells reenter the cell cycle in a synchronous manner and proliferate. After 5.5 days incubation in DMSO, S phase entry occurs at about 21-24 h after release, which is about the length of the first G1 phase of normal human lymphocytes which are stimulated in vitro to enter the cell cycle. The G0-like state of arrested cells and the sequence of events occurring after release from DMSO mimic, in most ways studied, those of normal lymphocytes. Arrested Raji cells lack many cell cycle-regulated molecules, including cyclin A, proliferating cell nuclear antigen, and the p34cdc2 kinase. They contain only hypophosphorylated p110Rb and a low level of enzymatically inactive p33cdk2 kinase. After reentering the cell cycle, a series of events occurred, including phosphorylation of p110Rb and accumulation of the cyclin A and proliferating cell nuclear antigen proteins in mid-G1 and the accumulation of the p33cdk2 and p34cdc2 proteins beginning in late G1, just prior to S-phase entry. Cyclin E levels in Raji cells appeared to be less regulated than in normal cells, with high levels of this protein being present in resting cells and throughout the entire cell cycle. The time courses of activation of the p34cdc2 and p33cdk2 kinases were similar; both became detectable at about 21 h after release and increased greatly in early S.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetyltransferases↗

Guanylic nucleotide starvation affects Saccharomyces cerevisiae mother-daughter separation and may be a signal for entry into quiescence.

BACKGROUND: Guanylic nucleotides are both macromolecules constituents and crucial regulators for a variety of cellular processes. Therefore, their intracellular concentration must be strictly controlled. Consistently both yeast and mammalian cells tightly correlate the transcription of genes encoding enzymes critical for guanylic nucleotides biosynthesis with the proliferation state of the cell population. RESULTS: To gain insight into the molecular relationships connecting intracellular guanylic nucleotide levels and cellular proliferation, we have studied the consequences of guanylic nucleotide limitation on Saccharomyces cerevisiae cell cycle progression. We first utilized mycophenolic acid, an immunosuppressive drug that specifically inhibits inosine monophosphate dehydrogenase, the enzyme catalyzing the first committed step in de novo GMP biosynthesis. To approach this system physiologically, we next developed yeast mutants for which the intracellular guanylic nucleotide pools can be modulated through changes of growth conditions. In both the pharmacological and genetic approaches, we found that guanylic nucleotide limitation generated a mother-daughter separation defect, characterized by cells with two unseparated daughters. We then showed that this separation defect resulted from cell wall perturbations but not from impaired cytokinesis. Importantly, cells with similar separation defects were found in a wild type untreated yeast population entering quiescence upon nutrient limitation. CONCLUSION: Our results demonstrate that guanylic nucleotide limitation slows budding yeast cell cycle progression, with a severe pause in telophase. At the cellular level, guanylic nucleotide limitation causes the emergence of cells with two unseparated daughters. By fluorescence and electron microscopy, we demonstrate that this phenotype arises from defects in cell wall partition between mother and daughter cells. Because cells with two unseparated daughters are also observed in a wild type population entering quiescence, our results reinforce the hypothesis that guanylic nucleotide intracellular pools contribute to a signal regulating both cell proliferation and entry into quiescence.

Cell Cycle↗

Kinetic analysis of cell population growth during cultivation in vitro.

XL-2 cells (Xenopus laevis) were used for kinetic analysis of cell population growth. The dependence of the time of cell duplication on the percentage of cells in the G0 phase of the cell cycle was studied and described by a mathematical expression. Possible causes of the changes in the ratio between the percentage of cells in the cell cycle and that in the G0 phase were analyzed. These are the decrease in the percentage of cells in the G0 phase due to the increase in the number of dividing cells, their position in the cell islets, the number of nuclei, the relative position of cells in the G0 phase. It was shown that the loss of the free edge by cells during their transition to the second layer of the cell islets without any changes in spreading led to a significant increase in the percentage of cells in the G0 phase. The percentage of cells in the G0 phase increased about five times for multinuclear cells. Analysis of the position of cells in the G0 phase showed that these cells were mostly in groups of two, three or four. Studies of a real cell culture in the logarithmic phase of growth (48-120 h of cultivation) showed that the percentage of cells in the G0 phase did not virtually change and all processes were equalized by one another. We propose a new method to determine the cell cycle duration under conditions from the time of cell culture duplication and the data on the percentage of cells in the G0 phase. This method can be used when traditional approaches using BrdU or [3H]]thymidine are difficult to implement or are unacceptable.

Animals↗

Cell cycle constraints on peroxide- and radiation-induced inhibitory checkpoints.

The growth of human skin fibroblasts was reduced in a dose-dependent manner after either treatment with hydrogen peroxide or exposure to ionizing radiation. Serum-starved cells were markedly responsive to the inhibitory properties of large doses of either agent at any time during the first 12-14 h after restimulation. In contrast, when logarithmically growing cells were treated with hydrogen peroxide, a large percentage of G1 cells synchronously traversed S phase in a wave that appeared after a 3-4 h delay, with a population of these cells eventually arresting in late S and G2. An analogous compartment of cells exiting G1 was not obvious when logarithmically growing cells were treated with ionizing radiation alone. However, when irradiated cells were subsequently treated for 4 h with aphidicolin to depress ongoing DNA synthesis to the levels seen in cultures treated with peroxide, a similar pattern of cells synchronously exiting G1 was seen. Therefore, although cells between G0 and S had a marked sensitivity to the inhibitory effects of either peroxide or radiation, logarithmically growing cells in G1 between M and S were far less susceptible to either type of growth inhibition.

Cell Cycle↗

Significance of phosphotyrosine proteins, Bcl-2 and p53 for apoptosis in resting B-chronic lymphocytic leukemia (CLL) cells.

Signal transduction and apoptosis in B-cell chronic lymphocytic leukemia (CLL) cells with a post-germinal center (GC) phenotype were studied. Specific activation of the cells was induced by a combination of soluble anti-CD40 monoclonal antibody and interleukin-4 (CD40/IL-4) and nonspecific activation with a combination of phytohemagglutinin, phorbol-12-myristate-13-acetate and ionomycin (chemical mixture). Less than 5% of these leukemia cells entered the cell cycle after activation, as indicated by the number of cells in G0/G1 phase. The protein tyrosine phosphorylation pattern and expression of the Bcl-2 protein were specific in ex vivo CLL cells of each individual patient. Expression of the p53 protein was not detectable in these leukemia cells. Cross-linking of the CD40/IL-4 receptors on CLL cells significantly upregulated phosphotyrosine proteins and the p53 protein. In the presence of chemical mixture, downregulated phosphotyrosine proteins were detected. Alterations in Bcl-2 expression were independent of cross-linking with CD40/IL-4 or chemical mixture. A high frequency of apoptotic cells was detected in cells that had downregulated phosphotyrosine proteins and Bcl-2 protein. There was no correlation between induction of apoptosis and expression of p53 protein. Our results suggest that apoptosis in resting leukemia cells could occur prior to the cell cycle progression. Alterations in phosphotyrosine proteins and Bcl-2 but not p53 might play an important role in the regulation of apoptosis in resting G0/G1 memory post-GC B-CLL cells.

Antibodies, Monoclonal↗

Cyclin C makes an entry into the cell cycle.

From yeast to humans, cell cycle progression is orchestrated by the oscillation of kinase activities associated with cyclins. In an article published recently in Cell, Ren and Rollins investigate mechanisms controlling the G0/G1 transition in quiescent cells and identify new cyclin C/Cdk3 complexes as key regulators of cell cycle reentry in human cells.

Animals↗

Ki-67 as a marker for cell cycle regulation by interferon.

The effects of interferon (IFN) on the expression of the nuclear antigen Ki-67 were studied in the two IFN-sensitive tumour cell lines Daudi and 251 MG, known to be arrested in the cell cycle in separate stages. The GO/G1-arrested Burkitt's lymphoma cell line Daudi displayed an increasing fraction of Ki-67 negative cells with time, concomitant with an increasing proportion of growth arrested cells. A small fraction of Ki-67 positive cells were found mainly arrested in G2/M. In contrast, no effect on Ki-67 expression was seen in IFN-resistant Namalwa cells, nor in the sensitive glioma cell line 251 MG, which is blocked in the S phase of the cell cycle. Agents blocking the cells in other phases of the cycle did not affect Ki-67 expression. However, after serum deprivation, no Ki-67 expression was found in the glioma cell line, while restimulation initiated expression after 12 hours as cells entered the S phase. We conclude that the Ki-67 antigen was not down regulated in all cells inhibited by IFN and thus does not seem to be useful to monitor clinical effects of IFN treatment.

Biomarkers, Tumor↗

Mechanism of inhibition of lipopolysaccharide-stimulated mouse B-cell responses by transforming growth factor-beta 1.

Transforming growth factor-beta 1 (TGF beta 1) is a pleiotropic cytokine which inhibits growth of many cell types and positively or negatively regulates the production of Ig isotypes. By using mouse resting B cells stimulated by lipopolysaccharide (LPS), we investigated whether the effect of TGF beta 1 on Ig production is related to its effect on cell growth. We show that low doses of TGF beta 1 stimulate IgG3 and IgG2b production whereas higher doses inhibit IgM, IgG3, IgG1 and IgG2b secretion and cell proliferation. TGF beta 1 titration curves and kinetics experiments suggested that the inhibitory effect on Ig secretion and B-cell growth are closely related. We defined the phase at which TGF beta 1 exerts its anti-proliferative effect on mouse B cells. TGF beta 1 does not modify the increase in expression of class II antigens which occurs before transition from G0 to G1. However, it partially inhibits the induction of expression of low-affinity Fc gamma RII and cell enlargement which both begin during the early G1 phase, and it totally blocks induction of the expression of transferrin receptors, a marker of the late G1 phase. Thus, TGF beta 1 blocks LPS-stimulated mouse B cells in the early G1 phase, and this results in inhibition of Ig production.

Animals↗