Delays in anaphase initiation occur in individual nuclei of the syncytial Drosophila embryo.
- 1 September 1993
- journal article
- Published by American Society for Cell Biology (ASCB) in Molecular Biology of the Cell
- Vol. 4 (9) , 885-896
- https://doi.org/10.1091/mbc.4.9.885
Abstract
The syncytial divisions of the Drosophila melanogaster embryo lack some of the well established cell-cycle checkpoints. It has been suggested that without these checkpoints the divisions would display a reduced fidelity. To test this idea, we examined division error frequencies in individuals bearing an abnormally long and rearranged second chromosome, designated C(2)EN. Relative to a normal chromosome, this chromosome imposes additional structural demands on the mitotic apparatus in both the early syncytial embryonic divisions and the later somatic divisions. We demonstrate that the C(2)EN chromosome does not increase the error frequency of the late larva neuroblast divisions. However, in the syncytial embryonic nuclear divisions, the C(2)EN chromosome produces a 10-fold increase in division errors relative to embryos with a normal karyotype. During late anaphase of the neuroblast divisions, the sister C(2)EN chromosomes cleanly separate from one another. In contrast, during late anaphase of the syncytial divisions in C(2)EN-bearing nuclei, large amounts of chromatin often lag on the metaphase plate. Live analysis of C(2)EN-bearing embryos demonstrates that individual nuclei in the syncytial population of dividing nuclei often delay in their initiation of anaphase. These delays frequently lead to division errors. Eventually the products of the nuclei delayed in anaphase sink inward and are removed from the dividing population of syncytial nuclei. These results suggest that the Drosophila embryo may be equipped with mechanisms that monitor the fidelity of the syncytial nuclear divisions. Unlike checkpoints that rely on cell cycle delays to identify and correct division errors, these embryonic mechanisms rely on cell cycle delays to identify and discard the products of division errors.Keywords
This publication has 32 references indexed in Scilit:
- Cell proliferation and controlCurrent Opinion in Cell Biology, 1992
- Feedback control of mitosis in budding yeastCell, 1991
- S. cerevisiae genes required for cell cycle arrest in response to loss of microtubule functionCell, 1991
- Direct cell lineage analysis in Drosophila melanogaster by time-lapse, three-dimensional optical microscopy of living embryos.The Journal of cell biology, 1989
- The dissociation of nuclear and centrosomal division in gnu, a mutation causing giant nuclei in DrosophilaCell, 1986
- A cell division mutant of drosophila with a functionally abnormal spindleCell, 1985
- Localization of antigenic determinants in whole Drosophila embryosDevelopmental Biology, 1983
- Cell division from a genetic perspectiveThe Journal of cell biology, 1978
- Ultrastructural patterns of RNA synthesis during early embryogenesis of Drosophila melanogasterCell, 1976
- Scanning electron microscopy of Drosophila embryogenesisDevelopmental Biology, 1976