The Mechanism and Function of Epigenetics in Uterine Leiomyoma Development

被引:104
作者
Yang, Qiwei [1 ]
Mas, Aymara [1 ]
Diamond, Michael P. [1 ]
Al-Hendy, Ayman [1 ]
机构
[1] Georgia Regents Univ, Med Coll Georgia, Div Translat Res, Dept Obstet & Gynecol, Augusta, GA USA
基金
美国国家卫生研究院;
关键词
DNA methylation; oxidative DNA demethylation; TET proteins; histone modification; miRNA; leiomyoma; stem cells; epigenetics; LONG NONCODING RNA; ESTROGEN-RECEPTOR-ALPHA; TUMOR-SUPPRESSOR GENES; TRANSCRIPTION FACTOR KLF11; RENAL-CELL CARCINOMA; SOMATIC STEM-CELLS; DNA METHYLATION; PROMOTER HYPERMETHYLATION; HISTONE METHYLTRANSFERASE; SIDE POPULATION;
D O I
10.1177/1933719115584449
中图分类号
R71 [妇产科学];
学科分类号
100211 ;
摘要
Uterine leiomyomas, also known as uterine fibroids, are the most common pelvic tumors, occurring in nearly 70% of all reproductive-aged women and are the leading indication for hysterectomy worldwide. The development of uterine leiomyomas involve a complex and heterogeneous constellation of hormones, growth factors, stem cells, genetic, and epigenetic abnormalities. An increasing body of evidence emphasizes the important contribution of epigenetics in the pathogenesis of leiomyomas. Genome-wide methylation analysis demonstrates that a subset of estrogen receptor (ER) response genes exhibit abnormal hypermethylation levels that are inversely correlated with their RNA expression. Several tumor suppressor genes, including Kruppel-like factor 11 (KLF11), deleted in lung and esophageal cancer 1 (DLEC1), keratin 19 (KRT19), and death-associated protein kinase 1 (DAPK1) also display higher hypermethylation levels in leiomyomas when compared to adjacent normal tissues. The important role of active DNA demethylation was recently identified with regard to the ten-eleven translocation protein 1 and ten-eleven translocation protein 3-mediated elevated levels of 5-hydroxymethylcytosine in leiomyoma. In addition, both histone deacetylase and histone methyltransferase are reported to be involved in the biology of leiomyomas. A number of deregulated microRNAs have been identified in leiomyomas, leading to an altered expression of their targets. More recently, the existence of side population (SP) cells with characteristics of tumor-initiating cells have been characterized in leiomyomas. These SP cells exhibit a tumorigenic capacity in immunodeficient mice when exposed to 17-estradiol and progesterone, giving rise to fibroid-like tissue in vivo. These new findings will likely enhance our understanding of the crucial role epigenetics plays in the pathogenesis of uterine leiomyomas as well as point the way to novel therapeutic options.
引用
收藏
页码:163 / 175
页数:13
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