Abstract
Failure of cells to cleave at the end of mitosis is dangerous to the organism because it immediately produces tetraploidy and centrosome amplification, which is thought to produce genetic imbalances. Using normal human and rat cells, we reexamined the basis for the attractive and increasingly accepted proposal that normal mammalian cells have a "tetraploidy checkpoint" that arrests binucleate cells in G1, thereby preventing their propagation. Using 10 microM cytochalasin to block cleavage, we confirm that most binucleate cells arrest in G1. However, when we use lower concentrations of cytochalasin, we find that binucleate cells undergo DNA synthesis and later proceed through mitosis in >80% of the cases for the hTERT-RPE1 human cell line, primary human fibroblasts, and the REF52 cell line. These observations provide a functional demonstration that the tetraploidy checkpoint does not exist in normal mammalian somatic cells.
MeSH Terms
Animals
Cell Line, Transformed
Cell Nucleus/drug effects,genetics,ultrastructure
Cytochalasin D/pharmacology
DNA/biosynthesis
Fibroblasts/cytology,drug effects,metabolism
G1 Phase/genetics
Genes, cdc/physiology
Heterocyclic Compounds, 4 or More Rings/pharmacology
Humans
Mitosis/genetics
Polyploidy
Rats
Chemicals
Heterocyclic Compounds, 4 or More Rings
blebbistatin
Cytochalasin D
DNA
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Uetake Yumi
Department of Cell Biology, University of Massachusetts Medical School, Biotech 4, 3rd floor, 377 Plantation St., Worcester, MA 01605, USA.
Sluder Greenfield
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