Vertebrate centromeres in mitosis are functionally bipartite structures stabilized by cohesin
Sacristan, Carlos; Samejima, Kumiko; Ruiz, Lorena Andrade; Deb, Moonmoon; Lambers, Maaike L.A.; Buckle, Adam; Brackley, Chris A.; Robertson, Daniel; Hori, Tetsuya; Webb, Shaun; Kiewisz, Robert; Bepler, Tristan; van Kwawegen, Eloïse; Risteski, Patrik; Vukušić, Kruno; Tolić, Iva M.; Müller-Reichert, Thomas; Fukagawa, Tatsuo; Gilbert, Nick; Marenduzzo, Davide; Earnshaw, William C.; Kops, Geert J.P.L.
(2024) Cell, volume 187, issue 12, pp. 3006 - 3023.e26
(Article)
Abstract
Centromeres are scaffolds for the assembly of kinetochores that ensure chromosome segregation during cell division. How vertebrate centromeres obtain a three-dimensional structure to accomplish their primary function is unclear. Using super-resolution imaging, capture-C, and polymer modeling, we show that vertebrate centromeres are partitioned by condensins into two subdomains during mitosis.
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The bipartite structure is found in human, mouse, and chicken cells and is therefore a fundamental feature of vertebrate centromeres. Super-resolution imaging and electron tomography reveal that bipartite centromeres assemble bipartite kinetochores, with each subdomain binding a distinct microtubule bundle. Cohesin links the centromere subdomains, limiting their separation in response to spindle forces and avoiding merotelic kinetochore-spindle attachments. Lagging chromosomes during cancer cell divisions frequently have merotelic attachments in which the centromere subdomains are separated and bioriented. Our work reveals a fundamental aspect of vertebrate centromere biology with implications for understanding the mechanisms that guarantee faithful chromosome segregation.
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Keywords: centromere, chromatin organization, chromosomal instability, cohesin, condensin, kinetochore, mitosis, General Biochemistry,Genetics and Molecular Biology
ISSN: 0092-8674
Publisher: Elsevier
Note: Publisher Copyright: © 2024 The Author(s)
(Peer reviewed)