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Auto‐inhibition of Mif2/CENP‐C ensures centromere‐dependent kinetochore assembly in budding yeast

Kinetochores are chromatin‐bound multi‐protein complexes that allow high‐fidelity chromosome segregation during mitosis and meiosis. Kinetochore assembly is exclusively initiated at chromatin containing Cse4/CENP‐A nucleosomes. The molecular mechanisms ensuring that subcomplexes assemble efficiently...

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Autores principales: Killinger, Kerstin, Böhm, Miriam, Steinbach, Philine, Hagemann, Götz, Blüggel, Mike, Jänen, Karolin, Hohoff, Simone, Bayer, Peter, Herzog, Franz, Westermann, Stefan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7360964/
https://www.ncbi.nlm.nih.gov/pubmed/32515113
http://dx.doi.org/10.15252/embj.2019102938
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author Killinger, Kerstin
Böhm, Miriam
Steinbach, Philine
Hagemann, Götz
Blüggel, Mike
Jänen, Karolin
Hohoff, Simone
Bayer, Peter
Herzog, Franz
Westermann, Stefan
author_facet Killinger, Kerstin
Böhm, Miriam
Steinbach, Philine
Hagemann, Götz
Blüggel, Mike
Jänen, Karolin
Hohoff, Simone
Bayer, Peter
Herzog, Franz
Westermann, Stefan
author_sort Killinger, Kerstin
collection PubMed
description Kinetochores are chromatin‐bound multi‐protein complexes that allow high‐fidelity chromosome segregation during mitosis and meiosis. Kinetochore assembly is exclusively initiated at chromatin containing Cse4/CENP‐A nucleosomes. The molecular mechanisms ensuring that subcomplexes assemble efficiently into kinetochores only at centromeres, but not anywhere else, are incompletely understood. Here, we combine biochemical and genetic experiments to demonstrate that auto‐inhibition of the conserved kinetochore subunit Mif2/CENP‐C contributes to preventing unscheduled kinetochore assembly in budding yeast cells. We show that wild‐type Mif2 is attenuated in its ability to bind a key downstream component in the assembly pathway, the Mtw1 complex, and that addition of Cse4 nucleosomes overcomes this inhibition. By exchanging the N‐terminus of Mif2 with its functional counterpart from Ame1/CENP‐U, we have created a Mif2 mutant which bypasses the Cse4 requirement for Mtw1 binding in vitro, thereby shortcutting kinetochore assembly. Expression of this Mif2 mutant in cells leads to mis‐localization of the Mtw1 complex and causes pronounced chromosome segregation defects. We propose that auto‐inhibition of Mif2/CENP‐C constitutes a key concept underlying the molecular logic of kinetochore assembly.
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spelling pubmed-73609642020-07-17 Auto‐inhibition of Mif2/CENP‐C ensures centromere‐dependent kinetochore assembly in budding yeast Killinger, Kerstin Böhm, Miriam Steinbach, Philine Hagemann, Götz Blüggel, Mike Jänen, Karolin Hohoff, Simone Bayer, Peter Herzog, Franz Westermann, Stefan EMBO J Articles Kinetochores are chromatin‐bound multi‐protein complexes that allow high‐fidelity chromosome segregation during mitosis and meiosis. Kinetochore assembly is exclusively initiated at chromatin containing Cse4/CENP‐A nucleosomes. The molecular mechanisms ensuring that subcomplexes assemble efficiently into kinetochores only at centromeres, but not anywhere else, are incompletely understood. Here, we combine biochemical and genetic experiments to demonstrate that auto‐inhibition of the conserved kinetochore subunit Mif2/CENP‐C contributes to preventing unscheduled kinetochore assembly in budding yeast cells. We show that wild‐type Mif2 is attenuated in its ability to bind a key downstream component in the assembly pathway, the Mtw1 complex, and that addition of Cse4 nucleosomes overcomes this inhibition. By exchanging the N‐terminus of Mif2 with its functional counterpart from Ame1/CENP‐U, we have created a Mif2 mutant which bypasses the Cse4 requirement for Mtw1 binding in vitro, thereby shortcutting kinetochore assembly. Expression of this Mif2 mutant in cells leads to mis‐localization of the Mtw1 complex and causes pronounced chromosome segregation defects. We propose that auto‐inhibition of Mif2/CENP‐C constitutes a key concept underlying the molecular logic of kinetochore assembly. John Wiley and Sons Inc. 2020-06-09 2020-07-15 /pmc/articles/PMC7360964/ /pubmed/32515113 http://dx.doi.org/10.15252/embj.2019102938 Text en © 2020 The Authors. Published under the terms of the CC BY 4.0 license This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Articles
Killinger, Kerstin
Böhm, Miriam
Steinbach, Philine
Hagemann, Götz
Blüggel, Mike
Jänen, Karolin
Hohoff, Simone
Bayer, Peter
Herzog, Franz
Westermann, Stefan
Auto‐inhibition of Mif2/CENP‐C ensures centromere‐dependent kinetochore assembly in budding yeast
title Auto‐inhibition of Mif2/CENP‐C ensures centromere‐dependent kinetochore assembly in budding yeast
title_full Auto‐inhibition of Mif2/CENP‐C ensures centromere‐dependent kinetochore assembly in budding yeast
title_fullStr Auto‐inhibition of Mif2/CENP‐C ensures centromere‐dependent kinetochore assembly in budding yeast
title_full_unstemmed Auto‐inhibition of Mif2/CENP‐C ensures centromere‐dependent kinetochore assembly in budding yeast
title_short Auto‐inhibition of Mif2/CENP‐C ensures centromere‐dependent kinetochore assembly in budding yeast
title_sort auto‐inhibition of mif2/cenp‐c ensures centromere‐dependent kinetochore assembly in budding yeast
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7360964/
https://www.ncbi.nlm.nih.gov/pubmed/32515113
http://dx.doi.org/10.15252/embj.2019102938
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