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Byrska, A.

Publications and source records attributed to Byrska, A..

2 recordsLinked to original sources

Attenuation of mosaic aneuploidy and erroneous first mitotic division of human embryos

Human reproduction is inherently inefficient1 and 1 in 6 people worldwide suffer infertility. In vitro fertilisation (IVF) can help some couples conceive, but only ~30% of cycles are successful. One factor affecting IVF efficacy is mitotic-origin (mosaic) aneuploidy in which embryos contain a mixture of cells with different numbers of chromosomes2. We previously showed that chromosome segregation error phenotypes are frequent in the first mitotic division of the human embryo3. However, the cause of these errors and impact on daughter cell karyotype is unknown. Here, using live chromosome imaging and next generation sequencing we show that activation of the microtubule depolymerase KIF2C reduces chromosome segregation errors and mitotic-origin aneuploidy at the 2-cell stage. The number of first divisions that show alternative cleavage patterns (associated with failed embryo development in IVF clinics) are also reduced with KIF2C activation. Our findings demonstrate that modulation of microtubule dynamics is a potential therapeutic route to improving human embryo quality and IVF outcomes.

cell biology↗

The Chromosome Periphery is an Essential Compartment of Oocyte Chromosomes

Chromosomes and their constituent compartments are core elements of the cell division machinery. In mammalian oocytes, defects in the structure or composition of chromosomes are a leading cause of aberrant or failed meiosis, and by extension, can cause miscarriage and infertility. The underlying mechanisms are poorly understood, but are critical for development of novel diagnostics and treatments. The chromosome periphery, the least understood chromosome compartment, has recently emerged as an essential component of mitotic chromosomes and somatic cell division. However, in female meiosis it remains completely unexplored. This study provides the first comprehensive survey of a meiotic chromosome periphery compartment in both human and mouse oocytes. Using a combination of time-lapse microscopy, super-resolution imaging and 3DCLEM we show that removing the chromosome periphery, via Ki67 depletion, has substantial negative impact on chromosome structure, spatial organization and positional awareness, with many oocytes stalling and arresting in meiosis I. Importantly, we also reveal key differences between the mitotic and oocyte meiotic chromosome periphery compartments, most remarkably in the retention of Ki67 in the oocyte through anaphase I, where unwanted chromosomes are stripped of Ki67 before being ejected from the oocyte. This work presents the discovery of an exciting new pathway operating during female meiosis and a provides a platform for future work exploring the meiotic chromosome periphery for therapeutic vulnerabilities.

cell biology↗