The Fission Yeast Transforming Acidic Coiled Coil–related Protein Mia1p/Alp7p Is Required for Formation and Maintenance of Persistent Microtubule-organizing Centers at the Nuclear Envelope
- 1 May 2006
- journal article
- Published by American Society for Cell Biology (ASCB) in Molecular Biology of the Cell
- Vol. 17 (5) , 2212-2222
- https://doi.org/10.1091/mbc.e05-08-0811
Abstract
Microtubule-organizing centers (MTOCs) concentrate microtubule nucleation, attachment and bundling factors and thus restrict formation of microtubule arrays in spatial and temporal manner. How MTOCs occur remains an exciting question in cell biology. Here, we show that the transforming acidic coiled coil–related protein Mia1p/Alp7p functions in emergence of large MTOCs in interphase fission yeast cells. We found that Mia1p was a microtubule-binding protein that preferentially localized to the minus ends of microtubules and was associated with the sites of microtubule attachment to the nuclear envelope. Cells lacking Mia1p exhibited less microtubule bundles. Microtubules could be nucleated and bundled but were frequently released from the nucleation sites in mia1Δ cells. Mia1p was required for stability of microtubule bundles and persistent use of nucleation sites both in interphase and postanaphase array dynamics. The γ-tubulin–rich material was not organized in large perinuclear or microtubule-associated structures in mia1Δ cells. Interestingly, absence of microtubules in dividing wild-type cells prevented appearance of large γ-tubulin–rich MTOC structures in daughters. When microtubule polymerization was allowed, MTOCs were efficiently assembled de novo. We propose a model where MTOC emergence is a self-organizing process requiring the continuous association of microtubules with nucleation sites.Keywords
This publication has 40 references indexed in Scilit:
- Efficient formation of bipolar microtubule bundles requires microtubule-bound γ-tubulin complexesThe Journal of cell biology, 2005
- Ase1p Organizes Antiparallel Microtubule Arrays during Interphase and Mitosis in Fission YeastMolecular Biology of the Cell, 2005
- Interdependency of Fission Yeast Alp14/TOG and Coiled Coil Protein Alp7 in Microtubule Localization and Bipolar Spindle FormationMolecular Biology of the Cell, 2004
- [56] Molecular genetic analysis of fission yeast Schizosaccharomyces pombePublished by Elsevier ,2004
- Astral microtubules monitor metaphase spindle alignment in fission yeastNature Cell Biology, 2002
- De novo formation of centrosomes in vertebrate cells arrested during S phaseThe Journal of cell biology, 2002
- The genome sequence of Schizosaccharomyces pombeNature, 2002
- Kinetics and regulation of de novo centriole assemblyCurrent Biology, 2001
- Isolated Plant Nuclei Nucleate Microtubule Assembly: The Nuclear Surface in Higher Plants Has Centrosome-Like ActivityPlant Cell, 1994
- Feedback control of mitosis in budding yeastCell, 1991