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Aboelenain, M.

Publications and source records attributed to Aboelenain, M..

3 recordsLinked to original sources

Multi-nucleation in two-cell human embryos stems from spindle and metaphase plate incoherence in the first mitosis

The first embryonic division in humans is highly error-prone and a source of aneuploidies. Multi-nucleation is prevalent in two-cell human embryos, with unknown cause. Here, we live-image human zygotes to elucidate the features of the first mitosis that predispose embryos to multinucleation. We show that failure to collect chromosomes into a single mass and establish a bipolar spindle during zygotic metaphase leads to severe multi-nucleation. We find that KIF10/CENP-E kinesin activity is essential to prevent the formation of multiple spindle poles and to congress chromosomes onto a metaphase plate. Furthermore, although the spindle assembly checkpoint mediates a delay in response to a highly disorganised spindle, KIF10/CENP-E-inhibited embryos ultimately undergo the first mitosis with a chaotic anaphase. Therefore, defective chromosome congression in the zygote combined with a failure to sense this error cause multi-nucleation. Remarkably, multi-nucleation can be corrected during the second mitotic division in a KIF10/CENP-E-dependent manner. We suggest that multi-nucleation may be a safeguarding mechanism to prevent chromosome loss during the highly error-prone first embryonic mitosis.

cell biology↗

Maternal CENP-C restores centromere symmetry in mammalian zygotes to ensure proper chromosome segregation

Across metazoan species, the centromere-specific histone variant CENP-A is essential for accurate chromosome segregation, yet its regulation at the parental-to-zygote transition in mammals is poorly understood. To address this, we developed a CENP-A-mScarlet knock-in mouse model, which revealed sex-specific dynamics: mature sperm retains 10% of the CENP-A levels present in MII-oocytes. However, in zygotes prior to the first mitosis, this difference is resolved, using maternally inherited cytoplasmic-CENP-A. Notably, the increase in CENP-A at paternal centromeres is independent of sensing CENP-A asymmetry or the presence of maternal chromosomes. Instead, CENP-A equalization relies on asymmetric recruitment of maternal CENP-C to paternal centromeres. Depletion of maternal CENP-A decreases total CENP-A in pronuclei without disrupting equalization. In contrast, reducing maternal CENP-C or disruption of its dimerization domains impairs CENP-A equalization and chromosome segregation. Therefore, maternal CENP-C acts a key epigenetic regulator that resets centromeric symmetry at fertilization to preserve genome integrity. Highlights[bullet] CENP-A asymmetry between sperm and oocyte centromeres is a conserved feature from flies to mammals including mice and humans. [bullet]CENP-A asymmetry between parental centromeres is resolved prior to the first zygotic division via maternally inherited, cytoplasmic CENP-A. [bullet]Zygotic CENP-A levels in zygotes are regulated in a pronucleus-autonomous manner. [bullet]CENP-A equalization relies on asymmetric CENP-C recruitment to the paternal pronucleus and requires CENP-C dimerization. Key TermsCentromere; CENP-A; CENP-C; sperm; oocyte; zygote; intergenerational; epigenetics; mouse

genetics↗

Equalizing epigenetically imprinted centromeres in early mammalian embryos

The CENP-A histone variant epigenetically defines centromeres, where its levels and locations are precisely maintained through mitotic cell divisions. However, differences in centromere CENP-A propagation in soma versus female/male germline remains poorly understood. Here, we generated CenpamScarlet mice and followed CENP-A dynamics in gametes, zygotes, and embryos. We found that, unlike somatic cells, progenitor female and male germ cells carry high centromeric CENP-A levels that decrease upon terminal differentiation. The reduction in CENP-A is differentially regulated between sexes, resulting in a ten-fold higher level in oocytes compared to sperm. In the zygote, the parent-of-origin CENP-A asymmetry is equalized prior to initial S-phase by redistribution of nuclear CENP-A from maternal to paternal chromosomes. Redistribution of CENP-A requires both CDK1/2 and PLK1 centromeric machinery. These experiments provide direct evidence for resetting of epigenetically imprinted centromeres in early pronuclear stage embryos and imply a mechanism to sense the non-equivalency of parental chromosomes. HighlightsO_LIIncreased CENP-A density at centromeres is a conserved property of germline stem cells while CENP-A reduction is coincident with germ cell differentiation C_LIO_LIPaternal and maternal CENP-A containing nucleosomes are intergenerationally inherited C_LIO_LICENP-A density at centromeres differs between male and female mature gametes C_LIO_LIUpon fertilization, maternal nuclear CENP-A is redistributed to equalize with parental CENP-A C_LIO_LICENP-C and MIS18BP1 are asymmetrically enriched in the parental pronuclei in accordance with CENP-A asymmetry. C_LIO_LILicensing for centromere equalization begins before zygotic DNA replication C_LI

developmental biology↗