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Coordinated change of a ratio of methylated H3-Iysine 4 or acetylated H3 to acetylated H4 and DNA methylation is associated with tissue-specific gene expression in cloned pig

Authors
Jae-Ku KangKwang-Wook ParkYeon-Gu ChungJueng-Soo YouYong-Kee KimSeung-Hyeon LeeSeung-Pyo HongKi-Myung ChoiKi-Nam HeoJae-Goo SeolJong-Ho LeeDong-Il JinChang-Sik ParkJeong-Sun SeoHyang-Woo LeeJeung-Whan Han
Issue Date
Feb-2007
Publisher
생화학분자생물학회
Keywords
DNA methylationDNA modification methylasesgene expressionopen reading framesorgan specificity
Citation
Experimental and Molecular Medicine, v.39, no.1, pp 84 - 96
Pages
13
Journal Title
Experimental and Molecular Medicine
Volume
39
Number
1
Start Page
84
End Page
96
URI
https://scholarworks.sookmyung.ac.kr/handle/2020.sw.sookmyung/151402
DOI
10.1038/emm.2007.10
ISSN
1226-3613
2092-6413
Abstract
Various cell types in higher multicellular organisms are genetically homogenous, but are functionally and morphologically heterogeneous due to the differential expression of genes during development, which appears to be controlled by epigenetic mechanisms. However, the exact molecular mechanisms that govern the tissue-specific gene expression are poorly understood. Here, we show that dynamic changes in histone modifications and DNA methylation in the upstream coding region of a gene containing the transcription initiation site determine the tissue-specific gene expression pattern. The tissue-specific expression of the transgene correlated with DNA demethylation at specific CpG sites as well as significant changes in histone modifications from a low ratio of methylated H3-lysine 4 or acetylated H3-lysine 9, 14 to acetylated H4 to higher ratios. Based on the programmed status of transgene silenced in cloned mammalian ear- derived fibroblasts, the transgene could be reprogrammed by change of histone modification and DNA methylation by inhibiting both histone deacetylase and DNA methylation, resulting in high expression of the transgene. These findings indicate that dynamic change of histone modification and DNA methylation is potentially important in the establishment and maintenance of tissue-specific gene expression.
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