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Updated: Aug 8, 2026

Analysis of Cell Cycle Position in Mammalian Cells
Published on: January 21, 2012
The cell cycle in polyploid megakaryocytes is associated with reduced activity of cyclin B1-dependent cdc2 kinase
1Department of Biochemistry, Boston University School of Medicine, Boston, Massachusetts 02118, USA.
Abstract:
The platelet precursor, the megakaryocyte, matures to a polyploid cell as a result of DNA replication in the absence of mitosis (endomitosis). The factors controlling endomitosis are accessible to analysis in our megakaryocytic cell line, MegT, generated by targeted expression of temperature-sensitive simian virus 40 large T antigen to megakaryocytes of transgenic mice. We aimed to define whether endomitosis consists of a continuous phase of DNA synthesis (S) or of S phases interrupted by gaps. Analysis of the cell cycle in MegT cells revealed that, upon inactivation of large T antigen, the cells shifted from a mitotic cell cycle to an endomitotic cell cycle consisting of S/Gap phases. The level of the G1/S cyclin, cyclin A, as well as of the G1 phase cyclin, cyclin D3, were elevated at the onset of DNA synthesis, either in MegT cells undergoing a mitotic cell cycle or during endomitosis. In contrast, the level of the mitotic cyclin, cyclin B1, cycled in cells displaying a mitotic cell cycle while not detectable during endomitosis. Comparable levels of the mitotic kinase protein, Cdc2, were detected during the mitotic cell cycle or during endomitosis; however, cyclin B1-dependent Cdc2 kinase activity was largely abolished in the polyploid cells. Fibroblasts immortalized with the same heat-labile oncogene do not display reduced levels of cyclin B1 upon shifting to high temperature nor do they become polyploid, indicating that reduced levels of cyclin B1 is a property of megakaryocytes and not of the T-antigen mutant. We conclude that cellular programming during endoreduplication in megakaryocytes is associated with reduced levels of cyclin B1.
Insights
Megakaryocyte maturation involves endomitosis, a cell cycle process. This study reveals that reduced levels of mitotic cyclin B1 are key to megakaryocyte endoreduplication.
Area of Science:
- Cell Biology
- Hematopoiesis
- Molecular Biology
Background:
- Megakaryocytes are platelet precursors that mature through endomitosis, a process of DNA replication without cell division.
- Understanding the cell cycle regulation of endomitosis is crucial for comprehending megakaryocyte development.
Purpose of the Study:
- To investigate the cell cycle dynamics of endomitosis in megakaryocytes.
- To determine the role of specific cyclins and kinases in the endomitotic process.
Main Methods:
- Utilized a megakaryocytic cell line (MegT) derived from transgenic mice expressing a temperature-sensitive simian virus 40 large T antigen.
- Analyzed cell cycle progression, cyclin and kinase levels, and kinase activity upon inactivation of the large T antigen.
Main Results:
- MegT cells shifted from a mitotic to an endomitotic cell cycle upon large T antigen inactivation, characterized by S/Gap phases.
- Elevated levels of cyclin A and cyclin D3 were observed at the onset of DNA synthesis during both mitotic and endomitotic cycles.
- Mitotic cyclin B1 levels were undetectable during endomitosis, and cyclin B1-dependent Cdc2 kinase activity was abolished in polyploid cells.
Conclusions:
- Endomitosis in megakaryocytes involves a distinct cell cycle program characterized by the absence of mitotic cyclin B1.
- Reduced levels of cyclin B1 are a specific feature of megakaryocyte endoreduplication, not a general effect of the T-antigen mutation.
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