The Differential Roles of Budding Yeast Tem1p, Cdc15p, and Bub2p Protein Dynamics in Mitotic Exit
Open Access
- 1 April 2004
- journal article
- Published by American Society for Cell Biology (ASCB) in Molecular Biology of the Cell
- Vol. 15 (4) , 1519-1532
- https://doi.org/10.1091/mbc.e03-09-0708
Abstract
In the budding yeast Saccharomyces cerevisiae the mitotic spindle must be positioned along the mother-bud axis to activate the mitotic exit network (MEN) in anaphase. To examine MEN proteins during mitotic exit, we imaged the MEN activators Tem1p and Cdc15p and the MEN regulator Bub2p in vivo. Quantitative live cell fluorescence microscopy demonstrated the spindle pole body that segregated into the daughter cell (dSPB) signaled mitotic exit upon penetration into the bud. Activation of mitotic exit was associated with an increased abundance of Tem1p-GFP and the localization of Cdc15p-GFP on the dSPB. In contrast, Bub2p-GFP fluorescence intensity decreased in mid-to-late anaphase on the dSPB. Therefore, MEN protein localization fluctuates to switch from Bub2p inhibition of mitotic exit to Cdc15p activation of mitotic exit. The mechanism that elevates Tem1p-GFP abundance in anaphase is specific to dSPB penetration into the bud and Dhc1p and Lte1p promote Tem1p-GFP localization. Finally, fluorescence recovery after photobleaching (FRAP) measurements revealed Tem1p-GFP is dynamic at the dSPB in late anaphase. These data suggest spindle pole penetration into the bud activates mitotic exit, resulting in Tem1p and Cdc15p persistence at the dSPB to initiate the MEN signal cascade.Keywords
This publication has 48 references indexed in Scilit:
- The molecular function of Ase1pThe Journal of cell biology, 2003
- Control of Mitotic Exit in Budding YeastPublished by Elsevier ,2002
- Time-Lapse Microscopy Reveals Unique Roles for Kinesins during Anaphase in Budding YeastThe Journal of cell biology, 1998
- Mitosis in Living Budding Yeast: Anaphase A But No Metaphase PlateScience, 1997
- New heterologous modules for classical or PCR‐based gene disruptions in Saccharomyces cerevisiaeYeast, 1994
- S. cerevisiae genes required for cell cycle arrest in response to loss of microtubule functionCell, 1991
- Microtubule Dynamics in Mitotic Spindles of Living CellsaAnnals of the New York Academy of Sciences, 1986
- Tubulin dynamics in cultured mammalian cells.The Journal of cell biology, 1984
- Spindle microtubule dynamics in sea urchin embryos: analysis using a fluorescein-labeled tubulin and measurements of fluorescence redistribution after laser photobleaching.The Journal of cell biology, 1984
- Structural rearrangements of tubulin and actin during the cell cycle of the yeast Saccharomyces.The Journal of cell biology, 1984