Whole genome duplication through mitotic slippage causes nuclear instability

Abstract Whole-genome duplication (WGD), leading to polyploidy can arise in physiological and pathological contexts. WGD can occur via non-canonical cell cycles such as mitotic slippage, cytokinesis failure or endoreplication. Whether the routes to WGD influence the behaviour of the resulting polyploid cells remains unclear. Here, we compared these routes under both physiological and non-physiological conditions. Remarkably, only mitotic slippage led to widespread nuclear abnormalities defined by highly variable nuclear deformations that we termed nuclear instability. Mechanistically, we found that these nuclei were softer and thus more vulnerable to microtubule-driven deformations. The resulting nuclear instability leads to local nuclear reorganisation and changes in 3D genome organisation. Importantly, we observed similar nuclear instability in megakaryocytes, which are physiological polyploid cells generated by mitotic slippage, providing a molecular mechanism for their atypical nuclear architecture. In striking contrast, nuclear shape was stable in different physiological polyploid cells generated by cytokinesis failure and endoreplication. Overall, our findings highlight that the route towards WGD matters and that mitotic slippage uniquely destabilizes nuclear architecture, with implications for both physiology and disease.

Authors

Publication Details

Journal
The EMBO Journal
Published
2026-09-19
DOI
https://doi.org/10.1038/s44318-026-00912-y
Primary Topic
Nuclear Structure and Function
Type
article
Field-Weighted Citation Impact
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article

Whole genome duplication through mitotic slippage causes nuclear instability

Simon Gemble, Federica Scotto di Carlo, Sara A. Wickström, Renata Basto et al.
The EMBO Journal
Nuclear Structure and Function
article

Whole genome duplication through mitotic slippage causes nuclear instability

Simon Gemble, Federica Scotto di Carlo, Sara A. Wickström, Renata Basto, Véronique Marthiens, Chantal Desdouets, Geneviève Almouzni, Elisa Oricchio, Luca Nanni, Audrey Forest, Yekaterina A. Miroshnikova, Jing Fang, Anthony Simon, Margot Budzyk, Nicole Weiss, Giovanni Ciriello, Ruxandra Lambuta, Corentin Verdel
article en

Abstract

Abstract Whole-genome duplication (WGD), leading to polyploidy can arise in physiological and pathological contexts. WGD can occur via non-canonical cell cycles such as mitotic slippage, cytokinesis failure or endoreplication. Whether the routes to WGD influence the behaviour of the resulting polyploid cells remains unclear. Here, we compared these routes under both physiological and non-physiological conditions. Remarkably, only mitotic slippage led to widespread nuclear abnormalities defined by highly variable nuclear deformations that we termed nuclear instability. Mechanistically, we found that these nuclei were softer and thus more vulnerable to microtubule-driven deformations. The resulting nuclear instability leads to local nuclear reorganisation and changes in 3D genome organisation. Importantly, we observed similar nuclear instability in megakaryocytes, which are physiological polyploid cells generated by mitotic slippage, providing a molecular mechanism for their atypical nuclear architecture. In striking contrast, nuclear shape was stable in different physiological polyploid cells generated by cytokinesis failure and endoreplication. Overall, our findings highlight that the route towards WGD matters and that mitotic slippage uniquely destabilizes nuclear architecture, with implications for both physiology and disease.

The EMBO Journal
Openalex Percentile: Top 18%
Nuclear Structure and Function
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