| Literature DB >> 31607652 |
Maria Almonacid1, Adel Al Jord1, Stephany El-Hayek1, Alice Othmani2, Fanny Coulpier2, Sophie Lemoine2, Kei Miyamoto3, Robert Grosse4, Christophe Klein5, Tristan Piolot1, Philippe Mailly1, Raphaël Voituriez6, Auguste Genovesio7, Marie-Hélène Verlhac8.
Abstract
Nucleus position in cells can act as a developmental cue. Mammalian oocytes position their nucleus centrally using an F-actin-mediated pressure gradient. The biological significance of nucleus centering in mammalian oocytes being unknown, we sought to assess the F-actin pressure gradient effect on the nucleus. We addressed this using a dedicated computational 3D imaging approach, biophysical analyses, and a nucleus repositioning assay in mouse oocytes mutant for cytoplasmic F-actin. We found that the cytoplasmic activity, in charge of nucleus centering, shaped the nucleus while promoting nuclear envelope fluctuations and chromatin motion. Off-centered nuclei in F-actin mutant oocytes were misshaped with immobile chromatin and modulated gene expression. Restoration of F-actin in mutant oocytes rescued nucleus architecture fully and gene expression partially. Thus, the F-actin-mediated pressure gradient also modulates nucleus dynamics in oocytes. Moreover, this study supports a mechano-transduction model whereby cytoplasmic microfilaments could modulate oocyte transcriptome, essential for subsequent embryo development.Entities:
Keywords: F-actin; bio-physics; mechano-transduction; mouse oocyte; nuclear dynamics
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Year: 2019 PMID: 31607652 DOI: 10.1016/j.devcel.2019.09.010
Source DB: PubMed Journal: Dev Cell ISSN: 1534-5807 Impact factor: 12.270