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Roles of Polymerization Dynamics, Opposed Motors, and a Tensile Element in Governing the Length of XenopusExtract Meiotic Spindles

Authors :
Mitchison, T. J.
Maddox, P.
Gaetz, J.
Groen, A.
Shirasu, M.
Desai, A.
Salmon, E. D.
Kapoor, T. M.
Source :
Molecular Biology of the Cell; June 2005, Vol. 16 Issue: 6 p3064-3076, 13p
Publication Year :
2005

Abstract

Metaphase spindles assemble to a steady state in length by mechanisms that involve microtubule dynamics and motor proteins, but they are incompletely understood. We found that Xenopusextract spindles recapitulate the length of egg meiosis II spindles, by using mechanisms intrinsic to the spindle. To probe these mechanisms, we perturbed microtubule polymerization dynamics and opposed motor proteins and measured effects on spindle morphology and dynamics. Microtubules were stabilized by hexylene glycol and inhibition of the catastrophe factor mitotic centromere-associated kinesin (MCAK) (a kinesin 13, previously called XKCM) and destabilized by depolymerizing drugs. The opposed motors Eg5 and dynein were inhibited separately and together. Our results are consistent with important roles for polymerization dynamics in regulating spindle length, and for opposed motors in regulating the relative stability of bipolar versus monopolar organization. The response to microtubule destabilization suggests that an unidentified tensile element acts in parallel with these conventional factors, generating spindle shortening force.

Details

Language :
English
ISSN :
10591524 and 19394586
Volume :
16
Issue :
6
Database :
Supplemental Index
Journal :
Molecular Biology of the Cell
Publication Type :
Periodical
Accession number :
ejs8684292
Full Text :
https://doi.org/10.1091/mbc.e05-02-0174