Evidence for a role of spindle matrix formation in cell cycle progression by antibody perturbation.
In Drosophila it has recently been demonstrated that a spindle matrix in the form of a membrane-less macromolecular assembly embeds the microtubule-based spindle apparatus. In addition, two of its constituents, Megator and Chromator, were shown to function as spatial regulators of spindle checkpoint...
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doaj-163badb7e2994f72859f0510bc4808892021-03-03T21:05:08ZengPublic Library of Science (PLoS)PLoS ONE1932-62032018-01-011311e020802210.1371/journal.pone.0208022Evidence for a role of spindle matrix formation in cell cycle progression by antibody perturbation.Changfu YaoChao WangYeran LiMichael ZavortinkVincent ArchambaultJack GirtonKristen M JohansenJørgen JohansenIn Drosophila it has recently been demonstrated that a spindle matrix in the form of a membrane-less macromolecular assembly embeds the microtubule-based spindle apparatus. In addition, two of its constituents, Megator and Chromator, were shown to function as spatial regulators of spindle checkpoint proteins. However, whether the spindle matrix plays a wider functional role in spatially regulating cell cycle progression factors was unknown. Here using a live imaging approach we provide evidence that a number of key cell cycle proteins such as Cyclin B, Polo, and Ran co-localize with the spindle matrix during mitosis. Furthermore, prevention of spindle matrix formation by injection of a function blocking antibody against the spindle matrix protein Chromator results in cell cycle arrest prior to nuclear envelope breakdown. In such embryos the spatial dynamics of Polo and Cyclin B enrichment at the nuclear rim and kinetochores is abrogated and Polo is not imported into the nucleus. This is in contrast to colchicine-arrested embryos where the wild-type dynamics of these proteins are maintained. Taken together these results suggest that spindle matrix formation may be a general requirement for the localization and proper dynamics of cell cycle factors promoting signaling events leading to cell cycle progression.https://doi.org/10.1371/journal.pone.0208022 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Changfu Yao Chao Wang Yeran Li Michael Zavortink Vincent Archambault Jack Girton Kristen M Johansen Jørgen Johansen |
spellingShingle |
Changfu Yao Chao Wang Yeran Li Michael Zavortink Vincent Archambault Jack Girton Kristen M Johansen Jørgen Johansen Evidence for a role of spindle matrix formation in cell cycle progression by antibody perturbation. PLoS ONE |
author_facet |
Changfu Yao Chao Wang Yeran Li Michael Zavortink Vincent Archambault Jack Girton Kristen M Johansen Jørgen Johansen |
author_sort |
Changfu Yao |
title |
Evidence for a role of spindle matrix formation in cell cycle progression by antibody perturbation. |
title_short |
Evidence for a role of spindle matrix formation in cell cycle progression by antibody perturbation. |
title_full |
Evidence for a role of spindle matrix formation in cell cycle progression by antibody perturbation. |
title_fullStr |
Evidence for a role of spindle matrix formation in cell cycle progression by antibody perturbation. |
title_full_unstemmed |
Evidence for a role of spindle matrix formation in cell cycle progression by antibody perturbation. |
title_sort |
evidence for a role of spindle matrix formation in cell cycle progression by antibody perturbation. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2018-01-01 |
description |
In Drosophila it has recently been demonstrated that a spindle matrix in the form of a membrane-less macromolecular assembly embeds the microtubule-based spindle apparatus. In addition, two of its constituents, Megator and Chromator, were shown to function as spatial regulators of spindle checkpoint proteins. However, whether the spindle matrix plays a wider functional role in spatially regulating cell cycle progression factors was unknown. Here using a live imaging approach we provide evidence that a number of key cell cycle proteins such as Cyclin B, Polo, and Ran co-localize with the spindle matrix during mitosis. Furthermore, prevention of spindle matrix formation by injection of a function blocking antibody against the spindle matrix protein Chromator results in cell cycle arrest prior to nuclear envelope breakdown. In such embryos the spatial dynamics of Polo and Cyclin B enrichment at the nuclear rim and kinetochores is abrogated and Polo is not imported into the nucleus. This is in contrast to colchicine-arrested embryos where the wild-type dynamics of these proteins are maintained. Taken together these results suggest that spindle matrix formation may be a general requirement for the localization and proper dynamics of cell cycle factors promoting signaling events leading to cell cycle progression. |
url |
https://doi.org/10.1371/journal.pone.0208022 |
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