Genome-wide DNA methylation landscape of four Chinese populations and epigenetic variation linked to Tibetan high-altitude adaptation

被引:0
作者
Zeshan Lin
Yan Lu
Guoliang Yu
Huajing Teng
Bao Wang
Yajun Yang
Qinglan Li
Zhongsheng Sun
Shuhua Xu
Wen Wang
Peng Tian
机构
[1] Northwestern Polytechnical University,School of Ecology and Environment
[2] Fudan University,State Key Laboratory of Genetic Engineering, Center for Evolutionary Biology, Collaborative Innovation Center of Genetics and Development, School of Life Sciences
[3] GrandOmics Biosciences,Department of Radiation Oncology, Key Laboratory of Carcinogenesis and Translational Research (Ministry of Education)
[4] Peking University Cancer Hospital and Institute,Human Phenome Institute, Zhangjiang Fudan International Innovation Center, and Ministry of Education Key Laboratory of Contemporary Anthropology
[5] Fudan University,Beijing Institutes of Life Science
[6] Chinese Academy of Sciences,School of Life Science and Technology
[7] ShanghaiTech University,Center for Excellence in Animal Evolution and Genetics
[8] Chinese Academy of Sciences,State Key Laboratory of Crop Stress Biology for Arid Areas and College of Agronomy
[9] Northwest A&F University,undefined
来源
Science China Life Sciences | 2023年 / 66卷
关键词
DNA methylation; double-strand bisulfite sequencing; Chinese ethnic groups; Tibetan; high-altitude adaptation;
D O I
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中图分类号
学科分类号
摘要
DNA methylation (DNAm) is one of the major epigenetic mechanisms in humans and is important in diverse cellular processes. The variation of DNAm in the human population is related to both genetic and environmental factors. However, the DNAm profiles have not been investigated in the Chinese population of diverse ethnicities. Here, we performed double-strand bisulfite sequencing (DSBS) for 32 Chinese individuals representing four major ethnic groups including Han Chinese, Tibetan, Zhuang, and Mongolian. We identified a total of 604,649 SNPs and quantified DNAm at more than 14 million CpGs in the population. We found global DNAm-based epigenetic structure is different from the genetic structure of the population, and ethnic difference only partially explains the variation of DNAm. Surprisingly, non-ethnic-specific DNAm variations showed stronger correlation with the global genetic divergence than these ethnic-specific DNAm. Differentially methylated regions (DMRs) among these ethnic groups were found around genes in diverse biological processes. Especially, these DMR-genes between Tibetan and non-Tibetans were enriched around high-altitude genes including EPAS1 and EGLN1, suggesting DNAm alteration plays an important role in high-altitude adaptation. Our results provide the first batch of epigenetic maps for Chinese populations and the first evidence of the association of epigenetic changes with Tibetans’ high-altitude adaptation.
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页码:2354 / 2369
页数:15
相关论文
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