Communications Biology· 2026Q1
Mitotic molecular braking prevents DNA damage in anaphase
- 0citations
- Q1SCImago
- 2026year
Short summary
A study in budding yeast reveals that slowing down chromosome separation during anaphase prevents DNA damage caused by unresolved DNA entanglements.
AI-generated from the title and abstract; the full text is not read.
Abstract
During mitosis, duplicated sister chromatids are sorted into opposite poles of a dividing mother cell. In all eukaryotic cells, the speed at which sister chromatids are separated during anaphase, the final phase of mitosis, is limited by targeted regulatory mechanisms. However, the cellular consequence of exceeding this speed limit is unknown. In this study, we used budding yeast to investigate the consequences of exceeding the anaphase speed limit. Here, we discovered that, in budding yeast, a rapid rate of anaphase spindle elongation led to unresolved DNA catenations in anaphase, leading to DNA damage and nuclear division failure. A topoisomerase mutation with critically impaired DNA decatenation phenocopied these defects, while pre-anaphase pauses to facilitate decatenation rescued the DNA damage phenotype in the fast-anaphase mutants. Thus, our results describe a novel and essential genome protective pathway in which anaphase chromosome separation is maintained at a slow speed to allow for proper decatenation of DNA, thereby protecting genome stability. Budding yeast was used to investigate the consequences of exceeding the anaphase speed limit during mitosis, revealing that a rapid rate of anaphase spindle elongation led to DNA damage and nuclear division failure.
The authors' abstract, as published at the source. Communications Biology, 2026 · DOI ↗
The rest is in the Pofolia app
Takeaways, key points and questions to the paper; new summaries every day for your field. Free.
Sign in on the web to openCell BiologyBiochemistry, Genetics and Molecular Biology