Related Experiment Video
Updated: May 10, 2025

Protocol for Human Blastoids Modeling Blastocyst Development and Implantation
Published on: August 10, 2022
Origin and development of uniparental and polyploid blastomeres
Yan Zhao1,2, Andrea Fernández-Montoro3, Greet Peeters1
1Laboratory for Cytogenetics and Genome Research, Department of Human Genetics, KU Leuven, 3000 Leuven, Belgium.
Abstract:
Whole-genome (WG) abnormalities, such as uniparental diploidy and triploidy, cause fetal death. Occasionally, they coexist with biparental diploid cells in live births. Understanding the origin and early development of WG abnormal blastomeres is crucial for explaining the formation of androgenotes, gynogenotes, triploidy, chimerism, and mixoploidy. By haplotyping 118 bovine blastomeres from the first cleavages, we identified that heterogoneic division occurs in both multipolar and bipolar cleaving zygotes. During heterogoneic division, parental genomes segregate into distinct blastomeres, resulting in the coexistence of uniparental and biparental diploid or polyploid cells. After culturing the totipotent blastomeres to three preimplantation stages and exploring transcriptomes of 446 cells, we discovered that stress responses contribute to developmental impairment in WG abnormal cells, resulting in either cell arrest or blastocyst formation. Their dominance in preimplantation embryos represents an overlooked cause of abnormal development. Haplotype-based screening could improve in vitro fertilization outcomes.
Related Concept Videos
Cleavage and Blastulation
Zygotic Development And Stem Cell Formation
Meiosis I
Meiosis II
Fertilization
Gastrulation

