Going mobile: microtubule motors and chromosome segregation.
- 5 March 1996
- journal article
- review article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 93 (5) , 1735-1742
- https://doi.org/10.1073/pnas.93.5.1735
Abstract
Proper chromosome segregation in eukaryotes depends upon the mitotic and meiotic spindles, which assemble at the time of cell division and then disassemble upon its completion. These spindles are composed in large part of microtubules, which either generate force by controlled polymerization and depolymerization or transduce force generated by molecular microtubule motors. In this review, we discuss recent insights into chromosome segregation mechanisms gained from the analyses of force generation during meiosis and mitosis. These analyses have demonstrated that members of the kinesin superfamily and the dynein family are essential in all organisms for proper chromosome and spindle behavior. It is also apparent that forces generated by microtubule polymerization and depolymerization are capable of generating forces sufficient for chromosome movement in vitro; whether they do so in vivo is as yet unclear. An important realization that has emerged is that some spindle activities can be accomplished by more than one motor so that functional redundancy is evident. In addition, some meiotic or mitotic movements apparently occur through the cooperative action of independent semiredundant processes. Finally, the molecular characterization of kinesin-related proteins has revealed that variations both in primary sequence and in associations with other proteins can produce motor complexes that may use a variety of mechanisms to transduce force in association with microtubules. Much remains to be learned about the regulation of these activities and the coordination of opposing and cooperative events involved in chromosome segregation; this set of problems represents one of the most important future frontiers of research.Keywords
This publication has 94 references indexed in Scilit:
- Heterodimerization of the Two Motor Subunits of the Heterotrimeric Kinesin, KRP85/95Journal of Molecular Biology, 1995
- Exclusive Expression of Kinesin Gene in Chemosnsory Neurons Open to the External EnvironmentJournal of Molecular Biology, 1995
- Chiasma functionCell, 1994
- Cellular roles of kinesin and related proteinsCurrent Opinion in Cell Biology, 1994
- CENP-E is a putative kinetochore motor that accumulates just before mitosisNature, 1992
- A plus-end-directed motor enzyme that moves antiparallel microtubules in vitro localizes to the interzone of mitotic spindlesNature, 1992
- Taxol-induced microtubule asters in mitotic extracts of Xenopus eggs: requirement for phosphorylated factors and cytoplasmic dynein.The Journal of cell biology, 1991
- A monoclonal antibody to a mitotic microtubule-associated protein blocks mitotic progression.The Journal of cell biology, 1990
- Distribution of a matrix component of the midbody during the cell cycle in Chinese hamster ovary cellsThe Journal of cell biology, 1988
- MAP 1C is a microtubule-activated ATPase which translocates microtubules in vitro and has dynein-like properties.The Journal of cell biology, 1987