Actomyosin-dependent cortical dynamics contributes to the prophase force-balance in the early Drosophila embryo.

The assembly of the Drosophila embryo mitotic spindle during prophase depends upon a balance of outward forces generated by cortical dynein and inward forces generated by kinesin-14 and nuclear elasticity. Myosin II is known to contribute to the dynamics of the cell cortex but how this influences th...

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Main Authors: Patrizia Sommi, Dhanya Cheerambathur, Ingrid Brust-Mascher, Alex Mogilner
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2011-03-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3069073?pdf=render
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author Patrizia Sommi
Dhanya Cheerambathur
Ingrid Brust-Mascher
Alex Mogilner
author_facet Patrizia Sommi
Dhanya Cheerambathur
Ingrid Brust-Mascher
Alex Mogilner
author_sort Patrizia Sommi
collection DOAJ
description The assembly of the Drosophila embryo mitotic spindle during prophase depends upon a balance of outward forces generated by cortical dynein and inward forces generated by kinesin-14 and nuclear elasticity. Myosin II is known to contribute to the dynamics of the cell cortex but how this influences the prophase force-balance is unclear.Here we investigated this question by injecting the myosin II inhibitor, Y27632, into early Drosophila embryos. We observed a significant increase in both the area of the dense cortical actin caps and in the spacing of the spindle poles. Tracking of microtubule plus ends marked by EB1-GFP and of actin at the cortex revealed that astral microtubules can interact with all regions of these expanded caps, presumably via their interaction with cortical dynein. In Scrambled mutants displaying abnormally small actin caps but normal prophase spindle length in late prophase, myosin II inhibition produced very short spindles.These results suggest that two complementary outward forces are exerted on the prophase spindle by the overlying cortex. Specifically, dynein localized on the mechanically firm actin caps and the actomyosin-driven contraction of the deformable soft patches of the actin cortex, cooperate to pull astral microtubules outward. Thus, myosin II controls the size and dynamic properties of the actin-based cortex to influence the spacing of the poles of the underlying spindle during prophase.
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spelling doaj.art-bdc8910a076a4b2e82f5a95c503e1ebc2022-12-21T18:32:45ZengPublic Library of Science (PLoS)PLoS ONE1932-62032011-03-0163e1836610.1371/journal.pone.0018366Actomyosin-dependent cortical dynamics contributes to the prophase force-balance in the early Drosophila embryo.Patrizia SommiDhanya CheerambathurIngrid Brust-MascherAlex MogilnerThe assembly of the Drosophila embryo mitotic spindle during prophase depends upon a balance of outward forces generated by cortical dynein and inward forces generated by kinesin-14 and nuclear elasticity. Myosin II is known to contribute to the dynamics of the cell cortex but how this influences the prophase force-balance is unclear.Here we investigated this question by injecting the myosin II inhibitor, Y27632, into early Drosophila embryos. We observed a significant increase in both the area of the dense cortical actin caps and in the spacing of the spindle poles. Tracking of microtubule plus ends marked by EB1-GFP and of actin at the cortex revealed that astral microtubules can interact with all regions of these expanded caps, presumably via their interaction with cortical dynein. In Scrambled mutants displaying abnormally small actin caps but normal prophase spindle length in late prophase, myosin II inhibition produced very short spindles.These results suggest that two complementary outward forces are exerted on the prophase spindle by the overlying cortex. Specifically, dynein localized on the mechanically firm actin caps and the actomyosin-driven contraction of the deformable soft patches of the actin cortex, cooperate to pull astral microtubules outward. Thus, myosin II controls the size and dynamic properties of the actin-based cortex to influence the spacing of the poles of the underlying spindle during prophase.http://europepmc.org/articles/PMC3069073?pdf=render
spellingShingle Patrizia Sommi
Dhanya Cheerambathur
Ingrid Brust-Mascher
Alex Mogilner
Actomyosin-dependent cortical dynamics contributes to the prophase force-balance in the early Drosophila embryo.
PLoS ONE
title Actomyosin-dependent cortical dynamics contributes to the prophase force-balance in the early Drosophila embryo.
title_full Actomyosin-dependent cortical dynamics contributes to the prophase force-balance in the early Drosophila embryo.
title_fullStr Actomyosin-dependent cortical dynamics contributes to the prophase force-balance in the early Drosophila embryo.
title_full_unstemmed Actomyosin-dependent cortical dynamics contributes to the prophase force-balance in the early Drosophila embryo.
title_short Actomyosin-dependent cortical dynamics contributes to the prophase force-balance in the early Drosophila embryo.
title_sort actomyosin dependent cortical dynamics contributes to the prophase force balance in the early drosophila embryo
url http://europepmc.org/articles/PMC3069073?pdf=render
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