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Transcription and chromatin determinants of de novo DNA methylation timing in oocytes. | LitMetric

AI Article Synopsis

  • Gametogenesis in mammals involves significant epigenetic changes, particularly in the female germline, where DNA methylation is established late in oocyte growth, primarily through transcription events.
  • The study aimed to understand if the timing of transcription affects the rate of this methylation process and the asynchronized methylation of imprinted genes by creating comprehensive maps of methylation and transcription in developing oocytes.
  • Findings revealed that while most genomic elements gain methylation at similar rates, CpG islands experience delays linked to chromatin remodeling rather than transcription timing, with chromatin features and transcription factor binding potentially influencing the timing of methylation acquisition.

Article Abstract

Background: Gametogenesis in mammals entails profound re-patterning of the epigenome. In the female germline, DNA methylation is acquired late in oogenesis from an essentially unmethylated baseline and is established largely as a consequence of transcription events. Molecular and functional studies have shown that imprinted genes become methylated at different times during oocyte growth; however, little is known about the kinetics of methylation gain genome wide and the reasons for asynchrony in methylation at imprinted loci.

Results: Given the predominant role of transcription, we sought to investigate whether transcription timing is rate limiting for de novo methylation and determines the asynchrony of methylation events. Therefore, we generated genome-wide methylation and transcriptome maps of size-selected, growing oocytes to capture the onset and progression of methylation. We find that most sequence elements, including most classes of transposable elements, acquire methylation at similar rates overall. However, methylation of CpG islands (CGIs) is delayed compared with the genome average and there are reproducible differences amongst CGIs in onset of methylation. Although more highly transcribed genes acquire methylation earlier, the major transitions in the oocyte transcriptome occur well before the de novo methylation phase, indicating that transcription is generally not rate limiting in conferring permissiveness to DNA methylation. Instead, CGI methylation timing negatively correlates with enrichment for histone 3 lysine 4 (H3K4) methylation and dependence on the H3K4 demethylases KDM1A and KDM1B, implicating chromatin remodelling as a major determinant of methylation timing. We also identified differential enrichment of transcription factor binding motifs in CGIs acquiring methylation early or late in oocyte growth. By combining these parameters into multiple regression models, we were able to account for about a fifth of the variation in methylation timing of CGIs. Finally, we show that establishment of non-CpG methylation, which is prevalent in fully grown oocytes, and methylation over non-transcribed regions, are later events in oogenesis.

Conclusions: These results do not support a major role for transcriptional transitions in the time of onset of DNA methylation in the oocyte, but suggest a model in which sequences least dependent on chromatin remodelling are the earliest to become permissive for methylation.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5429541PMC
http://dx.doi.org/10.1186/s13072-017-0133-5DOI Listing

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