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Chromosome segregation regulation in human zygotes: altered mitotic histone phosphorylation dynamics underlying
C van de Werken1, M Avo Santos2, J S E Laven1
1Division of Reproductive Medicine, Department of Obstetrics and Gynaecology, Erasmus MC, University Medical Center, 3000 CA Rotterdam, The Netherlands.
Study Question:
Are the kinase feedback loops that regulate activation and centromeric targeting of the chromosomal passenger complex (CPC), functional during mitosis in human embryos?
Summary Answer:
Investigation of the regulatory kinase pathways involved in centromeric CPC targeting revealed normal phosphorylation dynamics of histone H2A at T120 (H2ApT120) by Bub1 kinase and subsequent recruitment of Shugoshin, but phosphorylation of histone H3 at threonine 3 (H3pT3) by Haspin failed to show the expected centromeric enrichment on metaphase chromosomes in the zygote.
What Is Known Already:
Human cleavage stage embryos show high levels of chromosomal instability. What causes this high error rate is unknown, as mechanisms used to ensure proper chromosome segregation in mammalian embryos are poorly described.
Study Design, Size, Duration:
In this study, we investigated the pathways regulating CPC targeting to the inner centromere in human embryos. We characterized the distribution of the CPC in relation to activity of its two main centromeric targeting pathways: the Bub1-H2ApT120-Sgo-CPC and Haspin-H3pT3-CPC pathways.
Participants/Materials, Setting, Methods:
The study was conducted between May 2012 and March 2014 on human surplus embryos resulting from in vitro fertilization treatment and donated for research. In zygotes, nuclear envelope breakdown was monitored by time-lapse imaging to allow timed incubations with specific inhibitors to arrest at prometaphase and metaphase, and to interfere with Haspin and Aurora B/C kinase activity. Functionality of the targeting pathways was assessed through characterization of histone phosphorylation dynamics by immunofluorescent analysis, combined with gene expression by RT-qPCR and immunofluorescent localization of key pathway proteins.
Main Results And The Role Of Chance:
Immunofluorescent analysis of the CPC subunit Inner Centromere Protein revealed the pool of stably bound CPC proteins was not strictly confined to the inner centromere of prometaphase chromosomes in human zygotes, as observed in later stages of preimplantation development and somatic cells. Investigation of the regulatory kinase pathways involved in centromeric CPC targeting revealed normal phosphorylation dynamics of histone H2A at T120 (H2ApT120) by Bub1 kinase and subsequent recruitment of Shugoshin. However, phosphorylation of histone H3 at threonine 3 (H3pT3) by Haspin kinase failed to show the expected centromeric enrichment on metaphase chromosomes in the zygote, but not at later stages. Inhibition of Haspin revealed this activity to be essential for proper mitotic checkpoint complex activation in human zygotes, thus demonstrating an active mitotic checkpoint under normal conditions. Abolishment of H3pT3 during zygotic prometaphase further shows that centromeric H2ApT120 alone is not sufficient for proper shugoshin and CPC localization. As the removal of H3pT3 from the chromosome arms during prometaphase normally contributes to further centromeric enrichment of the CPC in somatic cells, CPC targeting may be less accurate in human zygotes.
Limitations, Reasons For Caution:
Owing to ethical limitations, tripronuclear zygotes were used in functional experiments. Although these represent the best available models, it is unknown if they are completely representative for dipronuclear zygotes. In addition, further research is needed to determine to what extent the differences we observed in H3T3 phosphorylation dynamics and CPC localization affect chromosome attachment.
Wider Implications Of The Findings:
In the zygote, paternal and maternal chromosomes coming from two separate pronuclei, and with contrasting epigenetic signatures, need to be aligned on a single metaphase plate. Our results suggest that adaptations in mechanisms regulating CPC targeting exist in the human zygote, to ensure symmetric recruitment despite the epigenetic asymmetry between maternal and paternal chromosomes. This adaptation may come at a price regarding chromosome segregation fidelity.
Study Funding/Competing Interests:
This study was funded by the Portuguese Fundação para a Ciência e Tecnologia and the Netherlands Organization for Scientific Research. The authors have no conflicts of interest to declare.
Insights
Kinase feedback loops regulating the chromosomal passenger complex (CPC) show altered function in human zygotes. While H2A phosphorylation is normal, H3 phosphorylation by Haspin fails centromeric enrichment, potentially impacting chromosome segregation fidelity.
Area of Science:
- Cell Biology
- Developmental Biology
- Genetics
Background:
- Human cleavage stage embryos exhibit high chromosomal instability.
- Mechanisms ensuring proper chromosome segregation in early human embryos are not well understood.
- Investigating these mechanisms is crucial for understanding embryonic development and aneuploidy.
Purpose of the Study:
- To investigate the functionality of kinase feedback loops regulating chromosomal passenger complex (CPC) activation and centromeric targeting during mitosis in human embryos.
- To characterize the distribution of the CPC in relation to the Bub1-H2ApT120-Sgo-CPC and Haspin-H3pT3-CPC pathways in human zygotes.
Main Methods:
- Study conducted on surplus human embryos from in vitro fertilization.
- Time-lapse imaging used to monitor nuclear envelope breakdown for timed inhibitor incubations.
- Immunofluorescent analysis of histone phosphorylation (H2ApT120, H3pT3) and CPC localization.
- RT-qPCR for gene expression and immunofluorescent localization of key pathway proteins.
Main Results:
- The chromosomal passenger complex (CPC) was not strictly confined to the inner centromere in human zygotes.
- Histone H2A phosphorylation at T120 (H2ApT120) by Bub1 kinase and Shugoshin recruitment were normal.
- Histone H3 phosphorylation at T3 (H3pT3) by Haspin kinase failed to show expected centromeric enrichment in zygotes.
- Haspin inhibition demonstrated its essential role in mitotic checkpoint complex activation.
- H3pT3 is necessary for proper shugoshin and CPC localization, as H2ApT120 alone is insufficient.
Conclusions:
- Human zygotes possess unique adaptations in CPC targeting mechanisms to manage epigenetic asymmetry between maternal and paternal chromosomes.
- These adaptations, particularly the failure of Haspin-mediated H3pT3 enrichment, may compromise chromosome segregation fidelity.
- Further research is needed to understand the impact of observed differences on chromosome attachment and segregation accuracy.
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