Cell growth and differentiation in vitro in mouse macrophages transformed by a tsA mutant of simian virus40. I. Cellular response in proliferative and phagocytic activities to the shift of temperature differs depending on the culture state in mouse bone marrow cells transformed by the tsA640 mutant of simian virus 40
- 31 August 1983
- journal article
- research article
- Published by Wiley in Journal of Cellular Physiology
- Vol. 116 (3) , 303-310
- https://doi.org/10.1002/jcp.1041160307
Abstract
It was shown previously that mouse bone marrow cells transformed by simian virus 40 (SV40) show a reversible cell density-dependent phenotypic transition between the nonmacrophage (rapidly growing) and the macrophage (stationary) states; cells in low-density cultures are in the growing phase, express SV40 T antigen strongly as revealed by immunofluorescence, and lose typical macrophage properties such as immune phagocytosis; whereas cells in high-density cultures are in the stationary (nongrowing) phase, express SV40 T antigen weakly, and recover their macrophage properties (Takayama, 1980). In the hope of clarifying the relationship between T antigen, cell growth, and macrophage-specific cellular function, we examined the behavior at 33 and 39°C of mouse bone marrow cells transformed by an SV40 gene A mutant (tsA640) whose mutation renders the molecular weight of 90K (large) T antigen temperature sensitive. The results presented in this paper suggest that functional large T antigen is required for cells in the stationary phase to initiate multiplication when transferred at lower density and is not necessary for a majority of them to maintain the nongrowing state (viability) at both high and lower cell densities, whereas it is required for cells in the growing phase to keep multiplying without losing their viability. The results also suggest that the functional large T antigen does not play a direct role in maintaining the cells as either phagocytic or nonphagocytic. It is also suggested that the physiological or tsA mutation-mediated arrest of growth may or may not be accompanied by induction and/or maintenance of cellular phagocytic activity depending on the culture state.Keywords
This publication has 31 references indexed in Scilit:
- Changes in Prostaglandin Levels in Cultures of SV40-Transformed Macrophage Cell Lines in Relation to Their Phenotypic ExpressionMicrobiology and Immunology, 1982
- Phenotypic Change of an SV40-Transformed Mouse Macrophage Line, BB-W-531-2, Induced by Different Cultural MethodsMicrobiology and Immunology, 1981
- Production of Interferon by an SV40-Transformed Macrophage Line, BB-W-531-2Microbiology and Immunology, 1981
- Induction of a Stable Phagocytic Property by Cytosine Arabinoside in an SV40‐Transformed Macrophage Cell LineMicrobiology and Immunology, 1980
- Transformation of Mouse Peritoneal Macrophages and Bone Marrow Cells by Simian Virus 40Microbiology and Immunology, 1980
- Viral and Cellular Control of the SV40-transformed PhenotypeCold Spring Harbor Symposia on Quantitative Biology, 1980
- Human placental cells transformed by tsA mutants of simian virus 40: a model system for the study of placental functions.Proceedings of the National Academy of Sciences, 1978
- Regulation of viral transciption and tumor antigen expression in cells transformed by simian virus 40.Proceedings of the National Academy of Sciences, 1976
- SV40 transformation of mouse brain cells: Critical role of gene A in maintenance of the transformed phenotypeJournal of Cellular Physiology, 1976
- The Tumor Imprint Technique For Demonstrating SV40 T Antigen By ImmunofluorescenceExperimental Biology and Medicine, 1972