Live dynamics of induced cell-cell fusion between mitotic and interphasic cells

The cell cycle is tightly regulated by checkpoint mechanisms that ensure faithful duplication and segregation of the genome. Here, we induced cell-cell fusion between mitotic and interphase cells to study how nuclei from different cell cycle stages behave in a shared cytoplasm. We found that mitosis is a dominant cell cycle state: the mitotic cytoplasm can drive interphase nuclei into mitosis, whereas, in high ratios of interphase versus mitotic nuclei, fusion forced mitotic nuclei to exit mitosis. Both outcomes represent checkpoint override events with impactful consequences. Interphase nuclei forced into mitosis form aberrant mitotic spindles, show partially condensed DNA and ultimately undergo mitotic catastrophe. Conversely, forced mitotic exit resulted in reformation of nuclear envelope membranes around condensed chromosomes, forming nuclei with a defective nuclear import machinery. Altogether, cell-cell fusion revealed the consequences of checkpoint override, forcing nuclei through untimely cell cycle transitions, and highlight how cell-cell fusion experiments can be a powerful system to study how competing cytoplasmic states are integrated in a shared cytoplasm, such as in muscle, placenta formation and in cancer.

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Publication Details

Journal
Journal of Cell Science
Published
2026-09-10
DOI
https://doi.org/10.1242/jcs.264827
Citations
2
Primary Topic
Nuclear Structure and Function
Type
article
Field-Weighted Citation Impact
5.64
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article

Live dynamics of induced cell-cell fusion between mitotic and interphasic cells

Jennifer Lippincott-Schwartz, Daniel Feliciano, Olga Afonso
2 citations
Journal of Cell Science
Nuclear Structure and Function
5.64
article

Live dynamics of induced cell-cell fusion between mitotic and interphasic cells

Jennifer Lippincott-Schwartz, Daniel Feliciano, Olga Afonso
article en
2 citations

Abstract

The cell cycle is tightly regulated by checkpoint mechanisms that ensure faithful duplication and segregation of the genome. Here, we induced cell-cell fusion between mitotic and interphase cells to study how nuclei from different cell cycle stages behave in a shared cytoplasm. We found that mitosis is a dominant cell cycle state: the mitotic cytoplasm can drive interphase nuclei into mitosis, whereas, in high ratios of interphase versus mitotic nuclei, fusion forced mitotic nuclei to exit mitosis. Both outcomes represent checkpoint override events with impactful consequences. Interphase nuclei forced into mitosis form aberrant mitotic spindles, show partially condensed DNA and ultimately undergo mitotic catastrophe. Conversely, forced mitotic exit resulted in reformation of nuclear envelope membranes around condensed chromosomes, forming nuclei with a defective nuclear import machinery. Altogether, cell-cell fusion revealed the consequences of checkpoint override, forcing nuclei through untimely cell cycle transitions, and highlight how cell-cell fusion experiments can be a powerful system to study how competing cytoplasmic states are integrated in a shared cytoplasm, such as in muscle, placenta formation and in cancer.

Journal of Cell Science
Howard Hughes Medical Institute (US), Janelia Research Campus (US)
Openalex Percentile: Top 6%
Nuclear Structure and Function
5.64
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Live dynamics of induced cell-cell fusion between mitotic and interphasic cells — Jennifer Lippincott-Schwartz, Daniel Feliciano, et al. · Journal of Cell Science (2026) | TGRS Research Map | TGRS