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Biology subjects

Yi, S. V.

Publications and source records attributed to Yi, S. V..

3 recordsLinked to original sources

Knockdown of Dnmt1 links Gene body DNA methylation to regulation of gene expression and maternal-zygotic transition in the wasp Nasonia

Gene body methylation (GBM) is an ancestral aspect of DNA methylation (Sarda, Zeng, Hunt, & Yi, 2012; Yi, 2012; Zemach, McDaniel, Silva, & Zilberman, 2010) whose role in development has been obscured by the more prominent roles of promoter and CpG island methylation. The wasp Nasonia has little promoter and CpG island methylation, yet retains strong GBM (Park et al., 2011; Wang et al., 2013; Werren et al., 2010), making it an excellent model for elucidating the role of GBM. Here we show that Nasonia DNA methyl transferase 1a (Nv-Dnmt1a) knockdown leads to failures in cellularization and gastrulation of the embryo. Both of these disrupted events are hallmarks of the maternal-zygotic transition (MZT) in insects. Analysis of the embryonic transcriptome and methylome revealed strong reduction of GBM and widespread disruption of gene expression during embryogenesis after Nv-Dnmt1a knockdown. There was a strong correlation between loss of GBM and reduced gene expression in thousands of methylated loci, while affected unmethylated genes tended to be upregulated. We propose that reduced GBM and subsequent lower expression levels of methylated genes was the direct effect of Nv-Dnmt1 knockdown, and that this disruption led to widespread downstream dysregulation of MZT, and manifesting in developmental failure at gastrulation. Significance StatementThe importance of gene-body methylation (GBM) in development is unclear, due to the difficulty in teasing apart the effects of cis-regulatory methylation from those of GBM in vertebrate model systems. Unlike vertebrate models, the methylation machinery in the jewel wasp Nasonia vitripennis appears to exclusively mediate GBM, thus simplifying interpretation of the role of GBM in development. Knockdown of DNMT1 (Nv-Dnmt1a) in Nasonia leads to embryonic lethality, which we show is caused by a failure of cellularization and gastrulation. Nv-Dnmt1a knockdown resulted in a global loss of GBM in the embryo, which was strongly correlated with a down-regulation of gene expression. We propose that GBM facilitated by Nv-Dnmt1a is required for proper zygotic genome activation in the wasp.

genomics

Divergent DNA methylation signatures underlying X chromosome regulation in marsupials and eutherians

X chromosome inactivation (XCI) mediated by differential DNA methylation between sexes is well characterized in eutherian mammals. Although XCI is shared between eutherians and marsupials, the role of DNA methylation in marsupial XCI remains contested. Here we examine genome-wide signatures of DNA methylation from methylation maps across fives tissues from a male and female koala (Phascolarctos cinereus) and present the first whole genome, multi-tissue marsupial "methylome atlas." Using these novel data, we elucidate divergent versus common features of marsupial and eutherian DNA methylation. First, tissue-specific differential DNA methylation in marsupials primarily occurs in gene bodies. Second, females show significant global reduction (hypomethylation) of X chromosome DNA methylation compared to males. We show that this pattern is also observed in eutherians. Third, on average, promoter DNA methylation shows little difference between male and female koala X chromosomes, a pattern distinct from that of eutherians. Fourth, the sex-specific DNA methylation landscape upstream of Rsx, the primary lncRNA associated with marsupial XCI, is consistent with the epigenetic regulation of female-(and presumably inactive X chromosome-) specific expression. Finally, we utilize the prominent female X chromosome hypomethylation and classify 98 previously unplaced scaffolds as X-linked, contributing an additional 14.6 Mb (21.5 %) to genomic data annotated as the koala X chromosome. Our work demonstrates evolutionarily divergent pathways leading to functionally conserved patterns of XCI in two deep branches of mammals.

evolutionary biology

Cell-type and cytosine context-specific evolution of DNA methylation in the human brain

Cell-type specific epigenetic modifications are critical for brain development and neuropsychiatric diseases. Here we elucidate evolutionary origins of neuron- and oligodendrocyte-specific DNA methylation in human prefrontal cortex, and demonstrate dynamic and distinctive changes of CG and CH methylation. We show that the human brain has experienced pronounced reduction of CG methylation during evolution, which significantly contributed to cell-type specific active regulatory regions. On the other hand, a substantial increase of CH methylation occurred during human brain evolution, associated with fine-tuning expression in development and neuronal subtypes. The majority of differential CG methylation between neurons and oligodendrocytes originated before the divergence of hominoids and catarrhine monkeys, and carries strong signal for genetic risk for schizophrenia. Remarkably, a substantial portion of differential CG methylation between neurons and oligodendrocytes emerged in the human lineage and harbors additional genetic risk for schizophrenia, implicating epigenetic evolution of human cortex in increased vulnerability to neuropsychiatric diseases.

genomics