AI Article Synopsis

  • The study examines changes in DNA methylation patterns during early development in zebrafish, highlighting two major waves of demethylation and re-methylation that occur at key stages.
  • It focuses on the role of the histone variant H2A.Z (H2afv), suggesting that it plays a crucial role in restricting DNA methylation levels during development.
  • The research finds that depletion of H2afv leads to increased DNA methylation and developmental issues, but these problems can be mitigated by reducing Dnmt1, indicating a necessary interaction between H2afv and Dnmt1 for proper embryonic development.

Article Abstract

The DNA methylome is re-patterned during discrete phases of vertebrate development. In zebrafish, there are 2 waves of global DNA demethylation and re-methylation: the first occurs before gastrulation when the parental methylome is changed to the zygotic pattern and the second occurs after formation of the embryonic body axis, during organ specification. The occupancy of the histone variant H2A.Z and regions of DNA methylation are generally anti-correlated, and it has been proposed that H2A.Z restricts the boundaries of highly methylated regions. While many studies have described the dynamics of methylome changes during early zebrafish development, the factors involved in establishing the DNA methylation landscape in zebrafish embryos have not been identified. We test the hypothesis that the zebrafish ortholog of H2A.Z (H2afv) restricts DNA methylation during development. We find that, in control embryos, bulk genome methylation decreases after gastrulation, with a nadir at the bud stage, and peaks during mid-somitogenesis; by 24 hours post -fertilization, total DNA methylation levels return to those detected in gastrula. Early zebrafish embryos depleted of H2afv have significantly more bulk DNA methylation during somitogenesis, suggesting that H2afv limits methylation during this stage of development. H2afv deficient embryos are small, with multisystemic abnormalities. Genetic interaction experiments demonstrate that these phenotypes are suppressed by depletion of DNA methyltransferase 1 (Dnmt1). This work demonstrates that H2afv is essential for global DNA methylation reprogramming during early vertebrate development and that embryonic development requires crosstalk between H2afv and Dnmt1.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5739095PMC
http://dx.doi.org/10.1080/15592294.2017.1359382DOI Listing

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