Resetting Epigenetic Memory by Reprogramming of Histone Modifications in Mammals
Male
0301 basic medicine
Zygote
Inheritance Patterns
Embryonic Development
Gene Expression Regulation, Developmental
Polycomb-Group Proteins
Cellular Reprogramming
Embryo, Mammalian
Spermatozoa
Gametogenesis
Epigenesis, Genetic
Histones
Mice, Inbred C57BL
Mice
03 medical and health sciences
Fertilization
Oocytes
Animals
Female
Promoter Regions, Genetic
DOI:
10.1016/j.molcel.2016.08.032
Publication Date:
2016-09-15T16:00:28Z
AUTHORS (12)
ABSTRACT
Polycomb group proteins and the related histone modification H3K27me3 can maintain the silencing of key developmental regulators and provide cellular memory. However, how such an epigenetic state is reprogrammed and inherited between generations is poorly understood. Using an ultra-sensitive approach, STAR ChIP-seq, we investigated H3K27me3 across 14 developmental stages along mouse gametogenesis and early development. Interestingly, highly pervasive H3K27me3 is found in regions depleted of transcription and DNA methylation in oocytes. Unexpectedly, we observed extensive loss of promoter H3K27me3 at Hox and other developmental genes upon fertilization. This is accompanied by global erasure of sperm H3K27me3 but inheritance of distal H3K27me3 from oocytes. The resulting allele-specific H3K27me3 patterns persist to blastocysts before being converted to canonical forms in postimplantation embryos, where both H3K4me3/H3K27me3 bivalent promoter marks are restored at developmental genes. Together, these data revealed widespread resetting of epigenetic memory and striking plasticity of epigenome during gametogenesis and early development.
SUPPLEMENTAL MATERIAL
Coming soon ....
REFERENCES (59)
CITATIONS (364)
EXTERNAL LINKS
PlumX Metrics
RECOMMENDATIONS
FAIR ASSESSMENT
Coming soon ....
JUPYTER LAB
Coming soon ....