Symmetry breaking in mouse oocytes requires transient F-actin meshwork destabilization

Author:

Azoury Jessica1,Lee Karen Wingman1,Georget Virginie2,Hikal Pascale1,Verlhac Marie-Hélène1

Affiliation:

1. UMR7622, CNRS/UMPC, 9 quai Saint Bernard, 75005 Paris, France

2. UMR5237, Montpellier RIO Imaging, 1919 route de Mende, 34000 Montpellier, France

Abstract

Female meiotic divisions are extremely asymmetric, giving rise to a large oocyte and small degenerating polar bodies, keeping the maternal stores for further embryo development. This asymmetry is achieved via off-center positioning of the division spindle. Mouse oocytes have developed a formin-2-dependent actin-based spindle positioning mechanism that allows the meiotic spindle to migrate towards the closest cortex. Using spinning disk microscopy and FRAP analysis, we studied the changes in the organization of the cytoplasmic F-actin meshwork during the first meiotic division. It is very dense in prophase I, undergoes a significant density drop upon meiosis resumption and reforms progressively later on. This meshwork remodeling correlates with endogenous formin 2 regulation. High formin 2 levels at meiosis I entry induce meshwork maintenance, leading to equal forces being exerted on the chromosomes, preventing spindle migration. Hence, the meshwork density drop at meiosis resumption is germane to the symmetry-breaking event required for successful asymmetric meiotic divisions.

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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