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At least 19 recordsLinked to original sources

Live dynamics of induced cell-cell fusion between mitotic and interphasic cells.

The cell cycle is tightly regulated by checkpoint mechanisms that ensure faithful duplication and segregation of the genome. Here, we induced cell-cell fusion between mitotic and interphase cells to study how nuclei from different cell cycle stages behave in a shared cytoplasm. We found that mitosis is a dominant cell cycle state: the mitotic cytoplasm can drive interphase nuclei into mitosis, whereas, in high ratios of interphase versus mitotic nuclei, fusion forced mitotic nuclei to exit mitosis. Both outcomes represent checkpoint override events with impactful consequences. Interphase nuclei forced into mitosis form aberrant mitotic spindles, show partially condensed DNA and ultimately undergo mitotic catastrophe. Conversely, forced mitotic exit resulted in reformation of nuclear envelope membranes around condensed chromosomes, forming nuclei with a defective nuclear import machinery. Altogether, cell-cell fusion revealed the consequences of checkpoint override, forcing nuclei through untimely cell cycle transitions, and highlight how cell-cell fusion experiments can be a powerful system to study how competing cytoplasmic states are integrated in a shared cytoplasm, such as in muscle, placenta formation and in cancer.

Cell cycle

XC-cell fusion induced by murine plasmocytoma cells. II. Cytological and ultrastructural study.

The MF2 strain, a mouse myeloma derived cell line, was found to induce the mixed culture cytopathogenicity test when cocultured with XC cells. Only one MF2 cell was present per syncytium, as shown by autoradiography. Pretreatment of cells with inhibitors of DNA, RNA or protein synthesis suggested that a normal RNA synthesis was required to obtain optimal polykaryon growth. Immunoelectron microscopy using a syngenic mouse MF2 cell antiserum and peroxydase labeling revealed a complete mixing and redistribution of the respective plasma membrane sites of MF2 and XC cells on polykaryon surface.

Animals

XC-cell fusion induced by murine plasmocytoma cell. III. RNA gene expression correlated to syncytium formation.

The MF2 strain, a mouse myeloma derived cell line, was found to continuously produce C-type viral particles when maintained in tissue-culture. These cells when cultured in an ascitic form by injection to Balb/c mice lost this property. The ability to induce syncytia by cocultivation of the MF2 cell with XC-cells was shown to be related to the viral production. A DNA complementary to viral 70 S RNA was synthesized using the viral reverse-transcriptase endogenous activity. The quality of the probe is discussed and the expression of the viral genome among cellular poly A rich RNA varied concomitently to the syncytium inducing ability as evidenced by molecular hybridization experiments.

Animals

[Kinetics and ultrastructure of sheep fibroblast fusion induced by polyethylene glycol. Comparison with endogenous cell fusion induced by Visna virus].

The authors compare the fusion of sheep fibroblasts induced by low multiplicities of infection using visna virus and by high concentrations of polyethylene-glycol. In the case of Visna virus cell fusion is of the endogenous type, while fusion induced by polyethylene-glycol is of the exogenous type. The ultrastructural features are discussed for each type of cell fusion. The main differences between the two systems involve the intracellular microfilaments and Golgi apparatus.

Animals

Timing of some of the molecular events required for cell fusion induced by herpes simplex virus type 1.

The timing of some of the molecular events that are required for cell fusion was investigated. Cell fusion was produced by a mutant of herpes simplex virus type 1 that causes extensive cell fusion during infection. The timing of molecular events required for fusion was established by the use of blocking agents. Phosphonoacetic acid blocks viral DNA synthesis; actinomycin D blocks RNA synthesis; cycloheximide blocks protein synthesis; 2-deoxyglucose blocks glycosylation of glycoproteins; high temperature, NH(4)Cl, and adamantanone block unknown steps required for cell fusion. For cells infected at a low multiplicity of infection, phosphonoacetic acid decreased the rate but not the final amount of fusion, but at a multiplicity of infection of 10 it had no effect on the rate of cell fusion. RNA synthesis was required for fusion until 4 h after infection, protein synthesis until 5.5 h after infection, and glycosylation until 7 h after infection. The temperature-dependent step occurred before 6 h after infection, whereas NH(4)Cl and adamantanone acted at steps that occurred until 8 h after infection. Cycloheximide, temperature, NH(4)Cl, and adamantanone acted reversibly; actinomycin D and 2-deoxyglucose acted irreversibly. The same order of action of the inhibitors was also determined by using pairs of inhibitors sequentially. These experiments also indicated that the fusion factor was not an alpha-polypeptide. Virus growth and cell fusion were both found to be highly dependent on temperature in the range of 30 to 40 degrees C. Wild-type infections are apparently characterized by the presence of a fusion factor and a fusion inhibitor. The fusion-blocking agents were added to wild-type-infected cells under a variety of conditions in an attempt to selectively block the production of the fusion inhibitor molecule and thereby cause extensive cell fusion. However, fusion was not observed in any of these experiments.

Adamantane

Cell fusion between temperature-sensitive mutants of a Drosophila melanogaster cell line.

Temperature-sensitive (ts) mutants were isolated in a cell line of Drosophila melanogaster, GM1, by ethyl methanesulfate treatment. Two of them, ts15 and ts58, formed colonies at 23 degrees C but not at 30 degrees when inoculated at densities of/or less than 10(5) cells per 60 X 15-mm dish. By using these ts mutants, cell fusion was attempted with polyethylene glycol (PEG) 6000. Several colonies per dish developed at 30 degrees C when different ts mutants were mixed, treated with PEG, and inoculated at a density of 10(4) cells per dish. Cells in some of the colonies thus developed were propagated and their temperature-sensitive character and karyotypes were studied. The results indicated that cell fusion could be induced with PEG and that the cells which formed colonies at 30 degrees C after PEG treatment were the hybrids in which the temperature-sensitive lesions in the mutants were complemented.

Cell Division

XC cell fusion by murine leukemia viruses: fusion from without.

Concentrated murine leukemia virus (MuLV) or MuLV producing cells induce XC cell fusion within an hour leading to syncytia formation. While MuLV inactivated by UV irradiation, beta-propiolactone or hydroxylamine treatment still caused cell fusion, Bromelin- or trypsin treated MuLV was no longer able to fuse XC cells. Though sonicated MuLV induced no XC cell fusion, it interfered with cell fusion as caused by untreated MuLV. XC cells infected by diluted MuLV of a titer lower than 1 X 10(5) PFU/ml formed no syncytia although they produced MuLV. The cell fusion mechanism is discussed.

Animals

Effect of certain inhibitors of glycoprotein synthesis on cell fusion induced by vesicular stomatitis virus.

The effect of certain metabolic inhibitors on the fusion of BHK-21 cells induced by vesicular stomatitis virus (VSV) was studied. The polykaryocyte formation in infected cells and virus growth were inhibited by 2-deoxy-D-glucose and D-glucosamine. Host-cell proteins synthesis was suppressed profoundly in both BHK-21-KB and B cells infected with VSV. On the other hand, glycoprotein synthesis was significantly enhanced during the polykaryocyte formation in BHK-21-KB cells, while it was suppressed in BHK-21-B cells which were not sensitive to cell fusion by VSV.

Animals

[Modification of a method to study cell fusion induced in vitro by viruses].

A studying method of viruses induced cell-fusion is described, using monolayers of Vero monkey cells. Nature and density of cells and infection multiplicity are studied. The sensibility is equal to 4 hemagglutining units of Sendaï and accuracy about +/- 3 % of polykaryocytosis. Quantification. comparison and kinetics study of cell-fusion are allowed by this method which may lead to systematic and routine exploration of cell-fusion ability of biological extracts from slow degenerative diseases of the human central nervous system.

Animals

Cell fusion induced by invertebrate virus. Brief report.

Inoculation of invertebrate cells with Chilo Iridescent Virus (CIV) leads rapidly to massive formation of syncytia. This polykaryocytosis occurs at a high multiplicity of infection and does not require viral genome expression. Thus, cell fusion appears in non permissive conditions, and CIV suspensions rendered non infections by UV irradiation still retain the ability to produce rapid and extensive cell fusion. In the same way, some polykaryocytes could be detected in vertebrate cells (CV1 cell line). However, this process is more effective and faster in invertebrate cell systems.

Aedes

Chromosome condensation and radiation-induced G2 arrest studied by the induction of premature chromosome condensation following cell fusion.

When mitotic and interphase cells are fused together, the chromosomes of the interphase cell sometimes condense prematurely. The phenomenon of premature chromosome condensation (PCC) was utilized in investigating the problem of whether the chromosomes of cells suffering a radiation-induced G2 delay are capable of condensation. Colcemide-arrested mitotic cells were fused with synchronized G2 cells, and with irradiated cells suffering a G2 delay. The frequency of PCC in mitotic X G2 binucleate cells was determined. This was compared to the PCC frequency in an unirradiated synchronized population rich in G2 cells after fusion with mitotic cells. Flash-labelling with 3HTdR and autoradiography allowed us to eliminate S-phase cells. The frequency of G2 PCCs was not significantly different for the irradiated G2-delayed or unirradiated cells. From these results we conclude that the chromosomes of cells suffering a G2 arrest are capable of condensation, although the involvement of the condensation process in radiation-induced G2 delay cannot be ruled out.

Cell Cycle

A hypotetraploid human T lymphoid cell line established by cell fusion.

A human T lymphoid cell line was established by cell hybridization technique from peripheral blood leucocytes of a patient with Sezary syndrome. The cells beared the surface antigens of human T lymphocyte specificity as demonstrated by immune cytolysis tests, but did not form E rosettes with sheep red blood cells. Isozyme patterns of enzymes in this line such as lactate dehydrogenase, glucose 6-phosphate dehydrogenase and esterase were of human type. The line had 79 chromosomes in modal number. This case supports the proposal that the production of tetraploids is favourable for establishment of cell lines.

Antigens

Redistribution of intramembrane particles of human erythrocytes induced by HVJ (Sendai virus): a prerequisite for the virus-induced cell fusion.

Aggregation of intramembrane particles of human erythrocytes was found to be induced by HVJ (Sendai virus) under conditions which lead to cell fusion. Degree of polyerythrocyte formation was compared under a variety of conditions with extent of cluster formation observed with the same preparations. Both structural changes of the membranes, ie, fusion and clustering of the particles, behaved very similarly under widely different virus-to-cell ratios and over the time course of cell fusion. Furthermore, by inclusion of high concentrations of antispectrin antibodies within the ghosts, inhibition of clustering of intramembrane particles and hindrance of virus-induced cell fusion were found to occur simultaneously. Antibodies by themselves did not induce aggregation of particles under isotonic conditions, whereas particle clustering could be induced under hypotonic conditions at antibody concentrations causing partial cross-linking of spectrin molecules. In conclusion, clustering of intramembrane particles seems to be required for virus-induced fusion of human erythrocytes.

Antigen-Antibody Reactions