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PMID: 25383660 Published · ppublish English

Kinetochore motors drive congression of peripheral polar chromosomes by overcoming random arm-ejection forces.

Nature cell biology ·Vol. 16 ·No. 12 ·2015-03-10

Barisic Marin, Aguiar Paulo, Geley Stephan, Maiato Helder

Abstract

Accurate chromosome segregation during cell division in metazoans relies on proper chromosome congression at the equator. Chromosome congression is achieved after bi-orientation to both spindle poles shortly after nuclear envelope breakdown, or by the coordinated action of motor proteins that slide misaligned chromosomes along pre-existing spindle microtubules. These proteins include the minus-end-directed kinetochore motor dynein, and the plus-end-directed motors CENP-E at kinetochores and chromokinesins on chromosome arms. However, how these opposite and spatially distinct activities are coordinated to drive chromosome congression remains unknown. Here we used RNAi, chemical inhibition, kinetochore tracking and laser microsurgery to uncover the functional hierarchy between kinetochore and arm-associated motors, exclusively required for congression of peripheral polar chromosomes in human cells. We show that dynein poleward force counteracts chromokinesins to prevent stabilization of immature/incorrect end-on kinetochore-microtubule attachments and random ejection of polar chromosomes. At the poles, CENP-E becomes dominant over dynein and chromokinesins to bias chromosome ejection towards the equator. Thus, dynein and CENP-E at kinetochores drive congression of peripheral polar chromosomes by preventing arm-ejection forces mediated by chromokinesins from working in the wrong direction.

Article Info
Journal
Nature cell biology
Abbr.
Nat Cell Biol
Published
2015-03-10
Indexed
2014-12-01
Updated
2016-11-25
Language
English
Country/Region
England
NLM ID
100890575
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