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PMID: 12361599 Published · ppublish English

Unstable kinetochore-microtubule capture and chromosomal instability following deletion of CENP-E.

Developmental cell ·Vol. 3 ·No. 3 ·2002-11-13

Putkey Frances R, Cramer Thorsten, Morphew Mary K, Silk Alain D, Johnson Randall S, McIntosh J Richard, Cleveland Don W

Abstract

A selective disruption of the mouse CENP-E gene was generated to test how this kinetochore-associated, kinesin-like protein contributes to chromosome segregation. The removal of CENP-E in primary cells produced spindles in which some metaphase chromosomes lay juxtaposed to a spindle pole, despite the absence of microtubules stably bound to their kinetochores. Most CENP-E-free chromosomes moved to the spindle equator, but their kinetochores bound only half the normal number of microtubules. Deletion of CENP-E in embryos led to early developmental arrest. Selective deletion of CENP-E in liver revealed that tissue regeneration after chemical damage was accompanied by aberrant mitoses marked by chromosome missegregation. CENP-E is thus essential for the maintenance of chromosomal stability through efficient stabilization of microtubule capture at kinetochores.

Article Info
Journal
Developmental cell
Abbr.
Dev Cell
Published
2002-11-13
Indexed
2002-10-03
Updated
2016-11-24
Language
English
Country/Region
United States
NLM ID
101120028
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