Jumonji domain-containing protein 3 regulates histone 3 lysine 27 methylation during bovine preimplantation development

Understanding the mechanisms of epigenetic remodeling that follow fertilization is a fundamental step toward understanding the bases of early embryonic development and pluripotency. Extensive and dynamic chromatin remodeling is observed after fertilization, including DNA methylation and histone modi...

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Veröffentlicht in:Proceedings of the National Academy of Sciences - PNAS 2012-02, Vol.109 (7), p.2400-2405
Hauptverfasser: Canovas, Sebastian, Cibelli, Jose B, Ross, Pablo J
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Ross, Pablo J
description Understanding the mechanisms of epigenetic remodeling that follow fertilization is a fundamental step toward understanding the bases of early embryonic development and pluripotency. Extensive and dynamic chromatin remodeling is observed after fertilization, including DNA methylation and histone modifications. These changes underlie the transition from gametic to embryonic chromatin and are thought to facilitate embryonic genome activation. In particular, trimethylation of histone 3 lysine 27 (H3K27me3) is associated with gene-specific transcription repression. Global levels of this epigenetic mark are high in oocyte chromatin and decrease to minimal levels at the time of embryonic genome activation. We provide evidence that the decrease in H3K27me3 observed during early development is cell-cycle independent, suggesting an active mechanism for removal of this epigenetic mark. Among H3K27me3-specific demethylases, Jumonji domain-containing protein 3 (JMJD3), but not ubiquitously transcribed tetratricopeptide repeat X (UTX), present high transcript levels in oocytes. Soon after fertilization JMJD3 protein levels increase, concurrent with a decrease in mRNA levels. This pattern of expression suggests maternal inheritance of JMJD3. Knockdown of JMJD3 by siRNA injection in parthenogenetically activated metaphase II oocytes resulted in inhibition of the H3K27me3 decrease normally observed in preimplantation embryos. Moreover, knockdown of JMJD3 in oocytes reduced the rate of blastocyst development. Overall, these results indicate that JMJD3 is involved in active demethylation of H3K27me3 during early embryo development and that this mark plays an important role during the progression of embryos to blastocysts.
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This pattern of expression suggests maternal inheritance of JMJD3. Knockdown of JMJD3 by siRNA injection in parthenogenetically activated metaphase II oocytes resulted in inhibition of the H3K27me3 decrease normally observed in preimplantation embryos. Moreover, knockdown of JMJD3 in oocytes reduced the rate of blastocyst development. 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subjects Animals
Biological Sciences
Blastocyst
blastocysts
Cattle
Cell cycle
Chromatin
Chromatin remodeling
Demethylation
Development
DNA methylation
early development
Embryogenesis
Embryonic stem cells
Embryos
Epigenetics
Fertilization
Genomes
Histones
Histones - chemistry
Histones - metabolism
Jumonji Domain-Containing Histone Demethylases - physiology
Lysine
Lysine - metabolism
Maternal inheritance
Messenger RNA
Metaphase
Methylation
Oocytes
Proteins
siRNA
Small interfering RNA
Stem cells
Transcription
Ungulates
Zygotes
title Jumonji domain-containing protein 3 regulates histone 3 lysine 27 methylation during bovine preimplantation development
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