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bioRxiv · 10.1101/2021.01.30.428896

Distinct classes of lagging chromosome underpin age-related oocyte aneuploidy in mouse

Abstract

Chromosome segregation errors that cause oocyte aneuploidy increase in frequency with maternal age and are considered a major contributing factor of age-related fertility decline in females. A common age-associated chromosome segregation phenomenon in oocytes is the lagging anaphase chromosome, but whether anaphase laggards actually missegregate and cause aneuploidy is unclear. Here we show unexpectedly that lagging chromosomes in mouse oocytes comprise two mechanistically distinct classes of motion that we refer to as Class-I and Class-II. We use imaging approaches and mechanistic interventions to dissociate the two classes, and find that whereas Class-II laggards are benign, Class-I laggards can directly cause aneuploidy. Most notably, a controlled prolongation of meiosis-I specifically lessens Class-I lagging to prevent aneuploidy. Our data thus reveal lagging chromosomes to be a cause of age-related aneuploidy in mouse oocytes and suggest that manipulating the cell cycle could increase the yield of useful oocytes in some contexts.

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BibTeXRIS

Mihajlovic, A. I., Haverfield, J., FitzHarris, G.. 2021-01-31. Distinct classes of lagging chromosome underpin age-related oocyte aneuploidy in mouse. https://doi.org/10.1101/2021.01.30.428896

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