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Chromosome mis-segregation triggers cell cycle arrest through a mechanosensitive nuclear envelope checkpoint

Chromosome mis-segregation triggers cell cycle arrest through a mechanosensitive nuclear envelope checkpoint

Authors :
Hervé, Solène
Scelfo, Andrea
Bersano Marchisio, Gabriele
Grison, Marine
Vaidžiulytė, Kotryna
Dumont, Marie
Angrisani, Annapaola
Keikhosravi, Adib
Pegoraro, Gianluca
Deygas, Mathieu
P. F. Nader, Guilherme
Macé, Anne-Sophie
Gentili, Matteo
Williart, Alice
Manel, Nicolas
Piel, Matthieu
Miroshnikova, Yekaterina A.
Fachinetti, Daniele
Source :
Nature Cell Biology; 20250101, Issue: Preprints p1-14, 14p
Publication Year :
2025

Abstract

Errors during cell division lead to aneuploidy, which is associated with genomic instability and cell transformation. In response to aneuploidy, cells activate the tumour suppressor p53 to elicit a surveillance mechanism that halts proliferation and promotes senescence. The molecular sensors that trigger this checkpoint are unclear. Here, using a tunable system of chromosome mis-segregation, we show that mitotic errors trigger nuclear deformation, nuclear softening, and lamin and heterochromatin alterations, leading to rapid p53/p21 activation upon mitotic exit in response to changes in nuclear mechanics. We identify mTORC2 and ATR as nuclear deformation sensors upstream of p53/p21 activation. While triggering mitotic arrest, the chromosome mis-segregation-induced alterations of nuclear envelope mechanics provide a fitness advantage for aneuploid cells by promoting nuclear deformation resilience and enhancing pro-invasive capabilities. Collectively, this work identifies a nuclear mechanical checkpoint triggered by altered chromatin organization that probably plays a critical role in cellular transformation and cancer progression.

Details

Language :
English
ISSN :
14657392 and 14764679
Issue :
Preprints
Database :
Supplemental Index
Journal :
Nature Cell Biology
Publication Type :
Periodical
Accession number :
ejs68569724
Full Text :
https://doi.org/10.1038/s41556-024-01565-x