Microscopic view contrasting cell division errors: one surviving DNA-doubled cell and one dying cell, for cancer research news illustration.
Microscopic view contrasting cell division errors: one surviving DNA-doubled cell and one dying cell, for cancer research news illustration.
Àwòrán tí AI ṣe

Study suggests the route to whole-genome doubling influences whether DNA-doubled cells survive

Àwòrán tí AI ṣe
Ti ṣayẹwo fun ododo

Researchers at Hokkaido University report that cells left with an extra set of DNA after a division error can have markedly different outcomes depending on how the division fails—findings that could help explain why some abnormal cells persist in diseases where whole-genome duplication is common, including cancer.

Scientists have long linked whole-genome duplication (WGD)—when a cell ends up with double the usual amount of DNA—to harmful outcomes such as cellular dysfunction and genetic instability. A new study from Hokkaido University argues that the mechanism that produces WGD is a major factor in what happens next.

The researchers compared two common routes to WGD:

  • Cytokinesis failure, in which the cell completes most steps of mitosis but fails at the final physical split into two cells.
  • Mitotic slippage, in which the cell exits mitosis too early, before chromosomes are properly separated.

Using live-cell imaging and chromosome-labeling approaches, the team found that cells produced through cytokinesis failure were generally more stable and more likely to survive, while cells produced through mitotic slippage more often showed uneven chromosome distribution and lower survival.

The study also reports that experimentally improving chromosome separation in cells undergoing mitotic slippage made those cells significantly more viable, pointing to chromosome organization and segregation as a key driver of these different fates.

The findings may carry implications for cancer research, the authors note, because whole-genome duplication is commonly observed in cancer cells and can be triggered unintentionally by some therapies—raising the possibility that the cells most likely to persist after WGD could help fuel continued growth or recurrence.

The work was published in Proceedings of the National Academy of Sciences by Masaya Inoko, Guang Yang, Yuki Tsukada and Ryota Uehara.

Awọn iroyin ti o ni ibatan

Microscopic illustration of migrating neurons in the developing brain showing DNA damage and repair.
Àwòrán tí AI ṣe

Developing neurons sustain and rapidly repair DNA double-strand breaks during migration, study finds

Ti AI ṣe iroyin Àwòrán tí AI ṣe Ti ṣayẹwo fun ododo

A study in Nature reports that newborn neurons can incur double-strand DNA breaks while squeezing through tight spaces in the developing brain, and that healthy cells typically repair most of this damage within about a day.

Scientists have built a basic synthetic cell called SpudCell that can copy DNA and divide a few times using 36 genes from existing organisms.

Ti AI ṣe iroyin

Researchers have identified a previously unknown mechanism called karyoptosis that appears to drive the death of brain cells in Alzheimer's disease and frontotemporal dementia. The discovery, based on analysis of human brain tissue, points to a potential new target for treatments aimed at slowing neuron loss.

Researchers in New York have tested an improved gene-editing method on healthy human embryos donated for research. The study shows mixed success in making precise DNA changes while avoiding some unintended mutations.

Ojú-ìwé yìí nlo kuki

A nlo kuki fun itupalẹ lati mu ilọsiwaju wa. Ka ìlànà àṣírí wa fun alaye siwaju sii.
Kọ