Abstract
The life cycle of mammals begins when a sperm enters an egg. Immediately after fertilization, both the maternal and paternal genomes undergo dramatic reprogramming to prepare for the transition from germ cell to somatic cell transcription programs. One of the molecular events that takes place during this transition is the demethylation of the paternal genome. Despite extensive efforts, the factors responsible for paternal DNA demethylation have not been identified. To search for such factors, we developed a live cell imaging system that allows us to monitor the paternal DNA methylation state in zygotes. Through short-interfering-RNA-mediated knockdown in mouse zygotes, we identified Elp3 (also called KAT9), a component of the elongator complex, to be important for paternal DNA demethylation. We demonstrate that knockdown of Elp3 impairs paternal DNA demethylation as indicated by reporter binding, immunostaining and bisulphite sequencing. Similar results were also obtained when other elongator components, Elp1 and Elp4, were knocked down. Importantly, injection of messenger RNA encoding the Elp3 radical SAM domain mutant, but not the HAT domain mutant, into MII oocytes before fertilization also impaired paternal DNA demethylation, indicating that the SAM radical domain is involved in the demethylation process. Our study not only establishes a critical role for the elongator complex in zygotic paternal genome demethylation, but also indicates that the demethylation process may be mediated through a reaction that requires an intact radical SAM domain.
MeSH Terms
Animals
Cell Line
Cells, Cultured
DNA Methylation
Embryonic Development/genetics
Female
Gene Knockdown Techniques
Genome/genetics
Histone Acetyltransferases/metabolism
Male
Mice
Mice, Inbred C57BL
Mutation/genetics
Protein Structure, Tertiary/genetics
Zygote/metabolism
Chemicals
Elp3 protein, mouse
Histone Acetyltransferases
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Okada Yuki
Howard Hughes Medical Institute, Chapel Hill, North Carolina 27599-7295, USA.
Yamagata Kazuo
Hong Kwonho
Wakayama Teruhiko
Zhang Yi
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