Cargando…
The Spindle Assembly Checkpoint Functions during Early Development in Non-Chordate Embryos
In eukaryotic cells, a spindle assembly checkpoint (SAC) ensures accurate chromosome segregation, by monitoring proper attachment of chromosomes to spindle microtubules and delaying mitotic progression if connections are erroneous or absent. The SAC is thought to be relaxed during early embryonic de...
Autores principales: | , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2020
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7290841/ https://www.ncbi.nlm.nih.gov/pubmed/32354040 http://dx.doi.org/10.3390/cells9051087 |
_version_ | 1783545770925883392 |
---|---|
author | Chenevert, Janet Roca, Marianne Besnardeau, Lydia Ruggiero, Antonella Nabi, Dalileh McDougall, Alex Copley, Richard R. Christians, Elisabeth Castagnetti, Stefania |
author_facet | Chenevert, Janet Roca, Marianne Besnardeau, Lydia Ruggiero, Antonella Nabi, Dalileh McDougall, Alex Copley, Richard R. Christians, Elisabeth Castagnetti, Stefania |
author_sort | Chenevert, Janet |
collection | PubMed |
description | In eukaryotic cells, a spindle assembly checkpoint (SAC) ensures accurate chromosome segregation, by monitoring proper attachment of chromosomes to spindle microtubules and delaying mitotic progression if connections are erroneous or absent. The SAC is thought to be relaxed during early embryonic development. Here, we evaluate the checkpoint response to lack of kinetochore-spindle microtubule interactions in early embryos of diverse animal species. Our analysis shows that there are two classes of embryos, either proficient or deficient for SAC activation during cleavage. Sea urchins, mussels, and jellyfish embryos show a prolonged delay in mitotic progression in the absence of spindle microtubules from the first cleavage division, while ascidian and amphioxus embryos, like those of Xenopus and zebrafish, continue mitotic cycling without delay. SAC competence during early development shows no correlation with cell size, chromosome number, or kinetochore to cell volume ratio. We show that SAC proteins Mad1, Mad2, and Mps1 lack the ability to recognize unattached kinetochores in ascidian embryos, indicating that SAC signaling is not diluted but rather actively silenced during early chordate development. |
format | Online Article Text |
id | pubmed-7290841 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-72908412020-06-17 The Spindle Assembly Checkpoint Functions during Early Development in Non-Chordate Embryos Chenevert, Janet Roca, Marianne Besnardeau, Lydia Ruggiero, Antonella Nabi, Dalileh McDougall, Alex Copley, Richard R. Christians, Elisabeth Castagnetti, Stefania Cells Article In eukaryotic cells, a spindle assembly checkpoint (SAC) ensures accurate chromosome segregation, by monitoring proper attachment of chromosomes to spindle microtubules and delaying mitotic progression if connections are erroneous or absent. The SAC is thought to be relaxed during early embryonic development. Here, we evaluate the checkpoint response to lack of kinetochore-spindle microtubule interactions in early embryos of diverse animal species. Our analysis shows that there are two classes of embryos, either proficient or deficient for SAC activation during cleavage. Sea urchins, mussels, and jellyfish embryos show a prolonged delay in mitotic progression in the absence of spindle microtubules from the first cleavage division, while ascidian and amphioxus embryos, like those of Xenopus and zebrafish, continue mitotic cycling without delay. SAC competence during early development shows no correlation with cell size, chromosome number, or kinetochore to cell volume ratio. We show that SAC proteins Mad1, Mad2, and Mps1 lack the ability to recognize unattached kinetochores in ascidian embryos, indicating that SAC signaling is not diluted but rather actively silenced during early chordate development. MDPI 2020-04-28 /pmc/articles/PMC7290841/ /pubmed/32354040 http://dx.doi.org/10.3390/cells9051087 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Article Chenevert, Janet Roca, Marianne Besnardeau, Lydia Ruggiero, Antonella Nabi, Dalileh McDougall, Alex Copley, Richard R. Christians, Elisabeth Castagnetti, Stefania The Spindle Assembly Checkpoint Functions during Early Development in Non-Chordate Embryos |
title | The Spindle Assembly Checkpoint Functions during Early Development in Non-Chordate Embryos |
title_full | The Spindle Assembly Checkpoint Functions during Early Development in Non-Chordate Embryos |
title_fullStr | The Spindle Assembly Checkpoint Functions during Early Development in Non-Chordate Embryos |
title_full_unstemmed | The Spindle Assembly Checkpoint Functions during Early Development in Non-Chordate Embryos |
title_short | The Spindle Assembly Checkpoint Functions during Early Development in Non-Chordate Embryos |
title_sort | spindle assembly checkpoint functions during early development in non-chordate embryos |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7290841/ https://www.ncbi.nlm.nih.gov/pubmed/32354040 http://dx.doi.org/10.3390/cells9051087 |
work_keys_str_mv | AT chenevertjanet thespindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT rocamarianne thespindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT besnardeaulydia thespindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT ruggieroantonella thespindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT nabidalileh thespindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT mcdougallalex thespindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT copleyrichardr thespindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT christianselisabeth thespindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT castagnettistefania thespindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT chenevertjanet spindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT rocamarianne spindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT besnardeaulydia spindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT ruggieroantonella spindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT nabidalileh spindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT mcdougallalex spindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT copleyrichardr spindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT christianselisabeth spindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos AT castagnettistefania spindleassemblycheckpointfunctionsduringearlydevelopmentinnonchordateembryos |