Prenatal Alcohol Exposure and Cellular Differentiation A Role for Polycomb and Trithorax Group Proteins in MS Phenotypes?

被引:0
|
作者
Veazey, Kylee J. [1 ]
Muller, Daria [1 ]
Golding, Michael C. [1 ]
机构
[1] Texas A&M Univ, Coll Vet Med & Biomed Sci, Dept Vet Physiol & Pharmacol, College Stn, TX 77843 USA
来源
ALCOHOL RESEARCH-CURRENT REVIEWS | 2013年 / 35卷 / 01期
关键词
Alcohol exposure; ethanol exposure; prenatal alcohol exposure; fetal alcohol spectrum disorders; fetal alcohol syndrome (FAS); FAS phenotypes; fetal development; epigenetics; epigenetic mechanisms; epigenetic changes; gene expression; developmental programming; transcription; cellular differentiation; Polycomb group proteins; Trithorax group proteins; INDUCED BRAIN ABNORMALITIES; EMBRYONIC STEM-CELLS; HISTONE H3; DNA METHYLATION; NEURONAL DIFFERENTIATION; ACUTE INSULT; ETHANOL; MOUSE; EXPRESSION; METHYLTRANSFERASE;
D O I
暂无
中图分类号
R194 [卫生标准、卫生检查、医药管理];
学科分类号
摘要
Exposure to alcohol significantly alters the developmental trajectory of progenitor cells and fundamentally compromises tissue formation (i.e., histogenesis). Emerging research suggests that ethanol can impair mammalian development by interfering with the execution of molecular programs governing differentiation. For example, ethanol exposure disrupts cellular migration, changes cell cell interactions, and alters growth factor signaling pathways. Additionally, ethanol can alter epigenetic mechanisms controlling gene expression. Normally, lineage-specific regulatory factors (i.e., transcription factors) establish the transcriptional networks of each new cell type; the cell's identity then is maintained through epigenetic alterations in the way in which the DNA encoding each gene becomes packaged within the chromatin. Ethanol exposure can induce epigenetic changes that do not induce genetic mutations but nonetheless alter the course of fetal development and result in a large array of patterning defects. Two crucial enzyme complexes-the Polycomb and Trithorax proteins are central to the epigenetic programs controlling the intricate balance between self-renewal and the execution of cellular differentiation, with diametrically opposed functions. Prenatal ethanol exposure may disrupt the functions of these two enzyme complexes, altering a crucial aspect of mammalian differentiation. Characterizing the involvement of Polycomb and Trithorax group complexes in the etiology of fetal alcohol spectrum disorders will undoubtedly enhance understanding of the role that epigenetic programming plays in this complex disorder.
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页码:77 / 85
页数:9
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