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Transcription driven somatic DNA methylation within the imprinted Gnas cluster. | LitMetric

Transcription driven somatic DNA methylation within the imprinted Gnas cluster.

PLoS One

Mammalian Genetics Unit, MRC Harwell, Harwell Science and Innovation Campus, Oxfordshire, OX11 0RD, United Kingdom.

Published: March 2015

AI Article Synopsis

  • DNA methylation is key for genomic imprinting, where genes are marked differently in male and female gametes; in females, specific transcription is necessary for this process at certain regions called differentially methylated regions (DMRs).
  • The study focuses on the Gnas gene cluster, showing that in female mice, a transcript called Nesp facilitates methylation at DMRs, leading to expression of Gnas and repression of Gnasxl; while in male mice, Nesp is usually repressed, keeping Gnas turned off and Gnasxl active.
  • Using mutant mice, researchers found that when Nesp is abnormally expressed in males, it triggers methylation of DMRs in som

Article Abstract

Differential marking of genes in female and male gametes by DNA methylation is essential to genomic imprinting. In female gametes transcription traversing differentially methylated regions (DMRs) is a common requirement for de novo methylation at DMRs. At the imprinted Gnas cluster oocyte specific transcription of a protein-coding transcript, Nesp, is needed for methylation of two DMRs intragenic to Nesp, namely the Nespas-Gnasxl DMR and the Exon1A DMR, thereby enabling expression of the Gnas transcript and repression of the Gnasxl transcript. On the paternal allele, Nesp is repressed, the germline DMRs are unmethylated, Gnas is repressed and Gnasxl is expressed. Using mutant mouse models, we show that on the paternal allele, ectopic transcription of Nesp traversing the intragenic Exon1A DMR (which regulates Gnas expression) results in de novo methylation of the Exon1A DMR and de-repression of Gnas just as on the maternal allele. However, unlike the maternal allele, methylation on the mutant paternal allele occurs post-fertilisation, i.e. in somatic cells. This, to our knowledge is the first example of transcript/transcription driven DNA methylation of an intragenic CpG island, in somatic tissues, suggesting that transcription driven de novo methylation is not restricted to the germline in the mouse. Additionally, Gnasxl is repressed on a paternal chromosome on which Nesp is ectopically expressed. Thus, a paternally inherited Gnas cluster showing ectopic expression of Nesp is "maternalised" in terms of Gnasxl and Gnas expression. We show that these mice have a phenotype similar to mutants with two expressed doses of Gnas and none of Gnasxl.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4319783PMC
http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0117378PLOS

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