Long non-coding RNA in health and disease

被引:0
作者
Philipp G. Maass
Friedrich C. Luft
Sylvia Bähring
机构
[1] Experimental and Clinical Research Center (ECRC),
[2] a joint cooperation between the Charité Medical Faculty and the Max Delbrück Center for Molecular Medicine (MDC),undefined
[3] Max Delbrück Center for Molecular Medicine (MDC),undefined
来源
Journal of Molecular Medicine | 2014年 / 92卷
关键词
Gene regulation; Chromatin loop; In ; In ; Histone code; Transcriptional regulation; Long non-coding RNA; lncRNA; Chromosomal territories; Waddington; Boveri;
D O I
暂无
中图分类号
学科分类号
摘要
Long non-coding RNAs (lncRNAs) interact with the nuclear architecture and are involved in fundamental biological mechanisms, such as imprinting, histone-code regulation, gene activation, gene repression, lineage determination, and cell proliferation, all by regulating gene expression. Understanding the lncRNA regulation of transcriptional or post-transcriptional gene regulation expands our knowledge of disease. Several associations between altered lncRNA function and gene expression have been linked to clinical disease phenotypes. Early advances have been made in developing lncRNAs as biomarkers. Several mouse models reveal that human lncRNAs have very diverse functions. Their involvement in gene and genome regulation as well as disease underscores the importance of lncRNA-mediated regulatory networks. Because of their tissue-specific expression potential, their function as activators or repressors, and their selective targeting of genes, lncRNAs are of potential therapeutic interest. We review the regulatory mechanisms of lncRNAs, their major functional principles, and discuss their role in Mendelian disorders, cancer, cardiovascular disease, and neurological disorders.
引用
收藏
页码:337 / 346
页数:9
相关论文
共 393 条
[1]  
Waddington CH(2012)The epigenotype. 1942 Int J Epidemiol 41 10-13
[2]  
Mercer TR(2013)Understanding the regulatory and transcriptional complexity of the genome through structure Genome Res 23 1081-1088
[3]  
Mattick JS(2007)The evolution of gene regulation by transcription factors and microRNAs Nat Rev Genet 8 93-103
[4]  
Chen K(2011)Developments in RNA splicing and disease Cold Spring Harb Perspect Biol 3 a000778-474
[5]  
Rajewsky N(2013)Chromatin insulators: linking genome organization to cellular function Mol Cell 50 461-732
[6]  
Poulos MG(2007)Tissue-specific transcriptional regulation has diverged significantly between human and mouse Nat Genet 39 730-10
[7]  
Batra R(2007)Parallel evolution of conserved non-coding elements that target a common set of developmental regulatory genes from worms to humans Genome Biol 8 R15-950
[8]  
Charizanis K(2006)Defining a genomic radius for long-range enhancer action: duplicated conserved non-coding elements hold the key Trends Genet 22 5-1910
[9]  
Swanson MS(2000)Nuclear localization and histone acetylation: a pathway for chromatin opening and transcriptional activation of the human beta-globin locus Genes Dev 14 940-705
[10]  
Phillips-Cremins JE(2000)ATP-dependent chromatin-remodeling complexes Mol Cell Biol 20 1899-63