Molecular contribution to embryonic aneuploidy and karyotypic complexity in initial cleavage divisions of mammalian development

Author:

Brooks Kelsey E.1ORCID,Daughtry Brittany L.12ORCID,Davis Brett34,Yan Melissa Y.3ORCID,Fei Suzanne S.3ORCID,Shepherd Selma1,Carbone Lucia4567ORCID,Chavez Shawn L.1789ORCID

Affiliation:

1. Oregon National Primate Research Center 1 Division of Reproductive and Developmental Sciences , , Beaverton, OR 97006 , USA

2. Oregon Health and Science University 2 Department of Cell, Developmental and Cancer Biology , , Portland, OR 97239 , USA

3. Oregon National Primate Research Center 3 Bioinformatics and Biostatistics Unit , , Beaverton, OR 97006 , USA

4. Knight Cardiovascular Institute, Oregon Health and Science University 4 Department of Medicine , , Portland, OR 97239 , USA

5. Oregon National Primate Research Center 5 Division of Genetics , , Beaverton, OR 97006 , USA

6. Oregon Health and Science University 6 Department of Medical Informatics and Clinical Epidemiology, Division of Bioinformatics and Computational Biomedicine , , Portland, OR 97239 , USA

7. Oregon Health and Science University 7 Department of Molecular and Medical Genetics , , Portland, OR 97239 , USA

8. Oregon Health and Science University 8 Department of Obstetrics and Gynecology , , Portland, OR 97239 , USA

9. Oregon Health and Science University 9 Department of Biomedical Engineering , , Portland, OR 97239 , USA

Abstract

ABSTRACT Embryonic aneuploidy is highly complex, often leading to developmental arrest, implantation failure or spontaneous miscarriage in both natural and assisted reproduction. Despite our knowledge of mitotic mis-segregation in somatic cells, the molecular pathways regulating chromosome fidelity during the error-prone cleavage-stage of mammalian embryogenesis remain largely undefined. Using bovine embryos and live-cell fluorescent imaging, we observed frequent micro-/multi-nucleation of mis-segregated chromosomes in initial mitotic divisions that underwent unilateral inheritance, re-fused with the primary nucleus or formed a chromatin bridge with neighboring cells. A correlation between a lack of syngamy, multipolar divisions and asymmetric genome partitioning was also revealed, and single-cell DNA-seq showed propagation of primarily non-reciprocal mitotic errors. Depletion of the mitotic checkpoint protein BUB1B (also known as BUBR1) resulted in similarly abnormal nuclear structures and cell divisions, as well as chaotic aneuploidy and dysregulation of the kinase-substrate network that mediates mitotic progression, all before zygotic genome activation. This demonstrates that embryonic micronuclei sustain multiple fates, provides an explanation for blastomeres with uniparental origins, and substantiates defective checkpoints and likely other maternally derived factors as major contributors to the karyotypic complexity afflicting mammalian preimplantation development.

Funder

National Institutes of Health

P.E.O. Scholar Award

N. L. Tartar Research Fellowship

Oregon Health and Science University

Oregon National Primate Research Center

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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