A soft cortex is essential for asymmetric spindle positioning in mouse oocytes

A. Chaigne , C. Campillo , N.S. Gov , R. Voituriez , J. Azoury , C. Umana-Diaz , M. Almonacid , I. Queguiner , P. Nassoy , C. Sykes , M.H. Verlhac , M.E. Terret

Bibtex , URL
NATURE CELL BIOLOGY, 15, 8
Published 01 Aug. 2013
DOI: 10.1038/ncb2799
ISSN: 1465-7392

Abstract

At mitosis onset, cortical tension increases and cells round up, ensuring correct spindle morphogenesis and orientation. Thus, cortical tension sets up the geometric requirements of cell division. On the contrary, cortical tension decreases during meiotic divisions in mouse oocytes, a puzzling observation because oocytes are round cells, stable in shape, that actively position their spindles. We investigated the pathway leading to reduction in cortical tension and its significance for spindle positioning. We document a previously uncharacterized Arp2/3-dependent thickening of the cortical F-actin essential for first meiotic spindle migration to the cortex. Using micropipette aspiration, we show that cortical tension decreases during meiosis I, resulting from myosin-II exclusion from the cortex, and that cortical F-actin thickening promotes cortical plasticity. These events soften and relax the cortex. They are triggered by the Mos-MAPK pathway and coordinated temporally. Artificial cortex stiffening and theoretical modelling demonstrate that a soft cortex is essential for meiotic spindle positioning.

This publication is related to:

Stochastic dynamics of reactive and living systems