Abstract
Annual Review of Cell and Developmental Biology
Vol. 20:
559-591
(Volume publication date November 2004)
(doi:10.1146/annurev.cellbio.20.010403.103108)
MECHANISMS OF POLARIZED GROWTH AND ORGANELLE SEGREGATION IN YEAST ▪ Abstract Cell polarity, as reflected by polarized growth and organelle segregation during cell division in yeast, appears to follow a simple hierarchy. On the basis of physical cues from previous cell cycles or stochastic processes, yeast cells select a site for bud emergence that also defines the axis of cell division. Once polarity is established, rho protein-based signal pathways set up a polarized cytoskeleton by activating localized formins to nucleate and assemble polarized actin cables. These serve as tracks for the transport of secretory vesicles, the segregation of the trans Golgi network, the vacuole, peroxisomes, endoplasmic reticulum, mRNAs for cell fate determination, and microtubules that orient the nucleus in preparation for mitosis, all by myosin-Vs encoded by the MYO2 and MYO4 genes. Most of the proteins participating in these processes in yeast are conserved throughout the kingdoms of life, so the emerging models are likely to be generally applicable. Indeed, several parallels to cellular organization in animals are evident. Most recent citing papers (via CrossRef)Synthetic lethality between eIF5A and Ypt1 reveals a connection between translation and the secretory pathway in yeast Molecular Genetics and Genomics 280(3):211-221 (2008) An in Vivo Map of the Yeast Protein Interactome Science 320(5882):1465-1470 (2008) Polarized growth in fungi – interplay between the cytoskeleton, positional markers and membrane domains Molecular Microbiology 68(4):813-826 (2008) The class V myosin motor protein, Myo2, plays a major role in mitochondrial motility in Saccharomyces cerevisiae The Journal of Cell Biology 181(1):119-130 (2008) Membrane association and functional regulation of Sec3 by phospholipids and Cdc42 The Journal of Cell Biology 180(1):145-158 (2008)
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