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Epigenome-wide base-resolution profiling of DNA methylation in chorionic villi of fetuses with Down syndrome by methylcapture sequencingopen access

Authors
Lim, Ji HyaeKang, Yu-JungLee, Bom YiHan, You JungChung, Jin HoonKim, Moon YoungKim, Min HyoungKim, Jin WooCho, Youl-HeeRyu, Hyun Mee
Issue Date
Dec-2019
Publisher
BMC
Keywords
Down syndrome; Epigenetics; DNA methylation; Chorionic villi; Methyl-capture sequencing
Citation
CLINICAL EPIGENETICS, v.11, no.1, pp.1 - 11
Indexed
SCIE
SCOPUS
Journal Title
CLINICAL EPIGENETICS
Volume
11
Number
1
Start Page
1
End Page
11
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/146690
DOI
10.1186/s13148-019-0756-4
ISSN
1868-7075
Abstract
Background: Epigenetic mechanisms provide an interface between environmental factors and the genome and are influential in various diseases. These mechanisms, including DNA methylation, influence the regulation of development, differentiation, and establishment of cellular identity. Here, we performed high-throughput methylome profiling to determine whether differential patterns of DNA methylation correlate with Down syndrome (DS). Materials and methods: We extracted DNA from the chorionic villi cells of five normal and five DS fetuses at the early developmental stage (12-13 weeks of gestation). Methyl-capture sequencing (MC-Seq) was used to investigate the methylation levels of CpG sites distributed across the whole genome to identify differentially methylated CpG sites (DMCs) and regions (DMRs) in DS. New functional annotations of DMR genes using bioinformatics tools were predicted. Results: DNA hypermethylation was observed in DS fetal chorionic villi cells. Significant differences were evident for 4,439 DMCs, including hypermethylation (n = 4,261) and hypomethylation (n = 178). Among them, 140 hypermethylated DMRs and only 1 hypomethylated DMR were located on 121 genes and 1 gene, respectively. One hundred twenty-two genes, including 141 DMRs, were associated with heart morphogenesis and development of the ear, thyroid gland, and nervous systems. The genes were significantly associated with DS and various diseases, including hepatopulmonary syndrome, conductive hearing loss, holoprosencephaly, heart diseases, glaucoma, and musculoskeletal abnormalities. Conclusions: This is the first study to compare the whole-epigenome DNA methylation pattern of the chorionic villi cells from normal and DS fetuses at the early developmental-stage using MC-seq. Overall, our results indicate that the chorionic villi cells of DS fetuses are hypermethylated in all autosomes and suggested that altered DNA methylation may be a recurrent and functionally relevant downstream response to DS in human cells. This study provides basic information for future research focused on the pathophysiology of the DS and its potential effects, as well as the role DNA methylation plays in the early developmental stage of DS fetuses.
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