Whole-genome DNA methylomes of tree shrew brains reveal conserved and divergent roles of DNA methylation on sex chromosome regulation.

IF 4.4 1区 生物学 Q1 BIOLOGY BMC Biology Pub Date : 2024-11-28 DOI:10.1186/s12915-024-02071-0
Dongmin R Son, Yifan Kong, Yulian Tan, Ting Hu, Lei Shi, Soojin V Yi
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Abstract

Background: The tree shrew (Tupaia belangeri) is a promising emerging model organism in biomedical studies, notably due to their evolutionary proximity to primates. To enhance our understanding of how DNA methylation is implicated in regulation of gene expression and the X chromosome inactivation (XCI) in tree shrew brains, here we present their first genome-wide, single-base-resolution methylomes integrated with transcriptomes from prefrontal cortices.

Results: Genome-wide relationships between DNA methylation and gene expression are consistent with those in other mammals. Interestingly, we observed a clear and significant global reduction (hypomethylation) of DNA methylation across the entire female X chromosome compared to male X. Female hypomethylation does not directly contribute to the gene silencing of the inactivated X chromosome nor does it significantly drive sex-specific gene expression in tree shrews. However, we identified a putative regulatory region in the 5' end of the X-inactive-specific transcript (Xist) gene, whose pattern of differential DNA methylation strongly relate to its sex-differential expression in tree shrews. Furthermore, differential methylation of this region is conserved across different species. We also provide evidence suggesting that the observed difference between human and tree shrew X-linked promoter methylation is associated with the difference in genomic CpG contents.

Conclusions: Our study offers novel information on genomic DNA methylation of tree shrews as well as insights into the evolution of sex chromosome regulation in mammals. Specifically, we show conserved role of DNA methylation in regulation of Xist expression and propose genomic CpG contents as a factor in driving sex-differential DNA methylation of X-linked promoters.

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树鼩全基因组DNA甲基化组揭示了DNA甲基化在性染色体调控中的保守性和差异性作用。
背景:树鼩(Tupaia belangeri)在生物医学研究中是一种很有前途的新兴模式生物,特别是由于它们与灵长类动物的进化接近。为了加强我们对树鼩大脑中DNA甲基化如何参与基因表达调控和X染色体失活(XCI)的理解,我们在这里展示了他们的第一个全基因组、单碱基分辨率的甲基组与来自前额叶皮层的转录组的整合。结果:DNA甲基化与基因表达的全基因组关系与其他哺乳动物一致。有趣的是,与雄性X染色体相比,我们观察到整个雌性X染色体DNA甲基化的明显和显著的整体减少(低甲基化)。雌性低甲基化并不直接导致失活X染色体的基因沉默,也不会显著推动树鼩性别特异性基因的表达。然而,我们在x无活性特异性转录本(Xist)基因的5'端发现了一个假定的调控区域,其差异DNA甲基化模式与其在树鼩中的性别差异表达密切相关。此外,该区域的甲基化差异在不同物种之间是保守的。我们还提供证据表明,人类和树鼩x连锁启动子甲基化的差异与基因组CpG含量的差异有关。结论:我们的研究为树鼩基因组DNA甲基化提供了新的信息,并为哺乳动物性染色体调控的进化提供了新的见解。具体来说,我们发现DNA甲基化在Xist表达调控中的保守作用,并提出基因组CpG含量是驱动x连锁启动子性别差异DNA甲基化的一个因素。
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来源期刊
BMC Biology
BMC Biology 生物-生物学
CiteScore
7.80
自引率
1.90%
发文量
260
审稿时长
3 months
期刊介绍: BMC Biology is a broad scope journal covering all areas of biology. Our content includes research articles, new methods and tools. BMC Biology also publishes reviews, Q&A, and commentaries.
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